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- 详细信息
- 文献和实验
- 技术资料
- 品系:
详见细胞说明资料
- 细胞类型:
详见细胞说明资料
- 肿瘤类型:
详见细胞说明资料
- 供应商:
上海冠导生物工程有限公司
- 库存:
≥100瓶
- 生长状态:
详见细胞说明资料
- 年限:
详见细胞说明资料
- 运输方式:
常温运输【复苏细胞】或干冰运输【冻存细胞】
- 器官来源:
详见细胞说明资料
- 是否是肿瘤细胞:
详见细胞说明资料
- 细胞形态:
详见细胞说明资料
- 免疫类型:
详见细胞说明资料
- 物种来源:
详见细胞说明资料
- 相关疾病:
详见细胞说明资料
- 组织来源:
详见细胞说明资料
- 英文名:
SNU-16人胃癌细胞系
- 规格:
1*10(6)Cellls/瓶
"SNU-16人胃癌细胞系
传代比例:1:2-1:4(首次传代建议1:2)
生长特性:悬浮生长
换液周期:每周2-3次
公司细胞库冻存并保种有2300多种各类细胞系。针对每种不同的细胞系,公司摸索并积累了大量细胞培养条件和YOU化参数,为您的细胞实验保驾护航。细胞培养是生命科学研究中Zui基础、也是Zui常用的实验手段。从冻存→复苏→传代→实验,在每一次细胞培养的过程中我们都是精心呵护,小心培养,心里都是默默承诺:我要护你一世周全!可是可是……无数次细胞都因污染而离我而去,投入的不只是我们貌美如花的青春,还有那一去不复返的经费!在细胞生物学,生物化学,免疫学,神经生物学,病理学……只要涉及细胞的研究领域,都面临着支原体污染的威胁。在众多污染物中,也就属支原体Zui狡猾了,他Zui善于隐藏自己,因为被支原体污染的细胞不会马上死亡,但会改变细胞的新陈代谢,甚至会改变细胞的基因表达谱,我们就这样被欺骗了无数次,谁让我们就是个看“颜值”的花痴了。可是我们通过被虐了几百次的经验中总结出来,当你的细胞出现了这些症状时:生长速率改变;活性减弱;形态改变;染色体畸变;转染效率显著降低;细胞复苏后存活率降低……。那你就得千万小心了,也许你的细胞已经被支原体欺凌了!
SNU-16人胃癌细胞系
背景信息:是一种表现出上皮形态的细胞系,于1987年从一名33岁女性亚裔胃癌患者化疗前的腹水中分离出来。在癌症研究中使用这些细胞。该系是从化疗前采集的细胞建立的。
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SNGM Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:多边形;相关产品有:H2009 Cells、RT4-D6-P2T Cells、293-FT Cells
18G3.cl 1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SNU-216 Cells、NCI H157 Cells、SKGIIIA Cells
BT 20 Cells;背景说明:该细胞1958年由E.Y. Lasfargues 和 L. Ozzello 建系,源自一位74岁白人女性的乳腺癌组织。该细胞表达WNT3和WNT78。TNF alpha抑制该细胞生长。该细胞雌激素受体阴性,但表达5'外显子缺失的雌激素mRNA。;传代方法:1:2—1:4传代,2—3天换液一次;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:NCI-HUT-460 Cells、NE-4C Cells、NCI-H2122 Cells
HLEB-3 Cells;背景说明:晶状体;Ad12-SV40转化;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:MM1 Cells、Ramos-2G6-4C10 Cells、U266B1 Cells
产品包装:复苏发货:T25培养瓶(一瓶)或冻存发货:1ml冻存管(两支)
来源说明:细胞主要来源ATCC、ECACC、DSMZ、RIKEN等细胞库
SNU-16人胃癌细胞系
细胞培养基应用选择:选择培养基没有一定的标准,有几点建议可供参考:(1)建立某种细胞株所用的培养基应该是培养这种细胞的培养基。可以查阅参考文献,或在购买细胞株时咨询。(2)其它实验室惯用的培养基不妨一试,许多培养基可以适合多种细胞。(3)根据细胞株的点、实验的需要来选择培养基。如小鼠细胞株多选 RPMI1640。(4)用多种培养基培养目的细胞,观察其生长状态,可以用生长曲线、集落形成率等指标判断,根据实验结果选择Zui佳培养基,这是Zui客观的方法,但比较繁琐。以下是部分细胞常用的培养条件:293人胚胎肾细胞培养条件:MEM,10%热灭活马血清;IMR-90人肺成纤维细胞培养条件:MEM,10%胎牛血清和NEAA;W1-38人胚胎肺成纤维细胞培养条件:MEM,10%胎牛血清;A549人肺癌上皮细胞培养条件:F-12K,10%胎牛血清;A431人表皮癌细胞培养条件:DMEM,10%胎牛血清;BHL-100人乳房上皮细胞培养条件:McCoy'5A, 10%胎牛血清;BeWo人绒毛癌上皮滋养层细胞培养条件:F-12K,15%胎牛血清;Caco-2人结肠腺癌上皮细胞培养条件:MEM,10%胎牛血清和NEAA;Chang人肝脏上皮细胞培养条件:BME,10%小牛血清;HC-15人结肠直肠腺癌上皮细胞培养条件:RPMI-1640,10%胎牛血清;HEp-G2人肝细胞癌上皮细胞培养条件:MEM,10% 胎牛血清和NEAA;HEp-2人喉癌上皮细胞培养条件:MEM,10% 胎牛血清;或RPMI-1640,10%胎牛血清;H-29人结肠腺癌上皮细胞培养条件:McCoy'5A,10%胎牛血清;JEG-2人绒毛膜癌上皮细胞培养条件:MEM,10%胎牛血清;KB人口腔癌上皮细胞培养条件:MEM,10%胎牛血清和NEAA;Saos-2人骨肉瘤上皮细胞培养条件:McCoy'5A,15%胎牛血清;WI-38人胚胎肺上皮细胞培养条件:BME,10%胎牛血清;WISH人羊膜上皮细胞培养条件:BME, 10%胎牛血清;HUVEC人脐带内皮细胞培养条件:F-12K,10%胎牛血清和肝素100ug/ml;IM-9人骨髓瘤成淋巴细胞培养条件:RPMI-1640,10%胎牛血清;Daudi人淋巴瘤细胞培养条件:RPMI-1640,10%胎牛血清;Clone M-3小鼠黑素瘤上皮细胞培养条件:F-10,15%马血清和2.5%胎牛血清;BHK-21仓鼠肾成纤维细胞培养条件:GMEM,10%胎牛血清或MEM,10%胎牛血清和NEAA;CHO-K1仓鼠卵巢上皮细胞培养条件:F-12,10%胎牛血清;IEC-6大鼠正常小肠上皮样培养条件:DMEM,5%胎牛血清,胰岛素0.1μg/ml;COS-1猴肾成纤维细胞培养条件:MEM,10%胎牛血清;COS-3猴肾成纤维细胞培养条件:MEM,10%胎牛血清;COS-7猴非洲绿猴肾成纤维细胞培养条件:MEM,10%胎牛血清
MBT-2 Cells;背景说明:膀胱移行细胞癌;C3H/He;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:HEY-A8 Cells、HT-1376 Cells、EC109 Cells
Daoy Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:6传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:多边形;相关产品有:KMB-17 Cells、UMRC-2 Cells、Rat-2 Cells
HHUA Cells;背景说明:子宫内膜癌;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:U266BL Cells、Hs-578Bst Cells、NK92-MI Cells
物种来源:人源、鼠源等其它物种来源
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形态特性:淋巴母细胞样
购买细胞注意事项:1)收到细胞后首先观察细胞瓶是否完HAO,培养是否有漏、浑浊等现象,若有上述现象发生请及时和我们联系;2)仔细阅读细胞说明,了解细胞相关信息,如细胞形态、所用培养基、血清比例、所需细胞因子等;3)用75%酒精擦拭细胞瓶表面,显微镜下观察细胞状态。因运输问题贴壁细胞会有少量从瓶壁脱落,将细胞置于培养箱内静置培养过夜,隔天再取出观察。此时多数细胞均会贴壁,若细胞仍不能贴壁请用台盼蓝染色测定细胞活力,如果证实细胞活力正常,请将细胞离心后用新鲜培养基再次贴壁培养;如果染色结果显示细胞无活力,请拍下照片及时和我们联系,信息确认后我们为您再免费寄送一次;4)建议客户收到细胞后前3天各拍几张细胞照片,记录细胞状态,便于和公司技术部沟通交流。【细胞传代操作步骤】一、贴壁细胞传代:1)提前将培养基、PBS放入37℃水浴锅内预热,用75%酒精擦拭后再放入超净台内;2)吸除或倒掉细胞瓶内旧培养,加少量PBS润洗细胞;3)加入适量胰酶,使胰酶的量能盖住细胞,37℃孵育,每隔2~3min显微镜下观察,待贴壁细胞间间隙变大、细胞趋于圆形但还未漂起时弃去胰酶,加入新鲜培养基,晃动细胞瓶,终止胰酶作用;4)用吸管小心吹打贴壁的细胞,制成细胞悬。控制吹打的力度,避免产生大量的气泡;5)将细胞悬分别接种到另外的2~3个细胞瓶内,加入新鲜培养基,置37℃温箱培养,隔天观察贴壁生长情况。二、悬浮细胞传代:1)将细胞悬转移到无菌离心管内,1000rpm离心5min;2)弃去上清,加入新鲜的培养基,用吸管小心吹散沉淀,制成细胞悬;3)将细胞悬分别接种到另外的2~3个细胞瓶内,加入新鲜培养基,置37℃温箱培养。
P-2003 Cells;背景说明:详见相关文献介绍;传代方法:每周2-3次。;生长特性:悬浮生长;形态特性:淋巴母细胞;相关产品有:SCC 15 Cells、TYK-nu Cells、HSAS4 Cells
CCC-ESF-1 Cells;背景说明:胚胎;皮肤;成纤维 Cells;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:H1781 Cells、Namalwa Cells、MB231 Cells
H2107 Cells;背景说明:详见相关文献介绍;传代方法:3-4天换液1次。;生长特性:悬浮生长 ;形态特性:上皮细胞;相关产品有:38C-13 Cells、HIT T-15 Cells、KB Cells
Verda reno Cells;背景说明:Vero细胞株是日本千叶大学的YasumuraY和KawakitaY从正常成年非洲绿猴的肾脏组织中分离建立的。该细胞常作为转染宿主,用于支原体的检测。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:Roswell Park Memorial Institute 1788 Cells、H9c2(2-1) Cells、KG1A Cells
Hepa 1-6 Cells;背景说明:此细胞株源自C57/L小鼠中引发的BW7756肝癌;表达AFP、α1抗胰蛋白酶、淀粉酶;鼠痘病毒阴性。此细胞可以在无血清的培养基中繁殖,培养基成分是:DMEM,75%;Waymouth'sMAB87/3培养基,25%。添加3x10-8M。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H-2122 Cells、UCH-1 Cells、OCM1 Cells
FRO 81-2 Cells;背景说明:未分化甲状腺癌;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:hTERT-RPE1 Cells、Ect1/E6E7 Cells、IMCD3 Cells
DBTRG-05MG Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:6传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:EBTr Cells、HB611 Cells、NCI-SNU-216 Cells
Caco-2 Cells;背景说明:细胞株分离自一个原发性结肠癌。当细胞长满时,表现出典型的肠细胞分化的特征。Caco-2细胞表达维生素A酸结合蛋白I和视黄醇结合蛋白II,角蛋白阳性。;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:上皮细胞样;相关产品有:M-1 myeloid leukemia Cells、HLF Cells、J774 Cells
4T1 Cells;背景说明:4T1是从410.4瘤株中未经诱变筛得的6-鸟嘌噙抗性细胞株。当注射到BALB/c小鼠中时,4T1自发产生高转移肿瘤,可转移到肺,肝,淋巴结和大脑,同时在注射部位形成始发灶。诱导转移时不需要摘除始发灶。4T1细胞在BALB/c小鼠中的生长与转移特性与人体中的乳腺癌十分相近。这种肿瘤是人VI期乳腺癌的动物模型。4T1-诱导的肿瘤在手术后及未手术情况下转移的动力学相近,可以用作手术后及未手术模型。跟其他肿瘤模型相比,由于4T1的抗6-鸟嘌噙特性,微小的转移细胞团(少到仅仅1个)也可以在许多远端器官中检测到。没必要数淋巴结或称重器官。;传代方法:消化3-5分钟,1:2,3天内可长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:BSC40 Cells、T173 Cells、SK_HEP1 Cells
ES-2 Cells;背景说明:ES-2细胞系源于一位47岁黑人女性的临床卵巢透明细胞癌手术标本。该细胞对中低剂量的阿霉素,顺铂,双乙基亚硝脲,表鬼臼毒素吡喃葡糖苷等化疗药物有一定耐药性。该细胞少量表达糖蛋白P。;传代方法:1:3传代,2-3天传一次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OCI/AML-2 Cells、GMK,BSC-1 Cells、TOV-112 Cells
SNU423 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OCILY-10 Cells、GOTO Cells、EFM192A Cells
Kit225/K6 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:J111 Cells、GM00215 Cells、OCI-AML4 Cells
LI7 Cells;背景说明:人肝癌细胞株。这株细胞从裸鼠体外移植瘤中建立。;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:BxPC-3 Cells、3T3 J2 Cells、T173 Cells
T-HSC Cells;背景说明:肝星形细胞;SV40转化;SD大鼠;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SNU-119 Cells、Leghorn Male Hepatoma cell line Cells、ROS17/2.8 Cells
MALME 3M Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2天换液1次。;生长特性:混合生长;形态特性:成纤维细胞;相关产品有:A204 Cells、HaCaT Cells、MDCK II Cells
SNU-16人胃癌细胞系
K562/ADP Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SJRH-30 Cells、TE-85 clone 5 Cells、Renal Proximal Tubule Epithelial Cells/TERT-immortalized 1 Cells
NK-92 MI Cells;背景说明:NK细胞;淋巴瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:H2291 Cells、GP293 Cells、BE(2)M17 Cells
Abcam A-549 NCOA7 KO 1 Cells(拥有STR基因鉴定图谱)
Abgenix 4.209.3 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line CSG430 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line RRU340 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line YTC783 Cells(拥有STR基因鉴定图谱)
CHO-CPR C13 Cells(拥有STR基因鉴定图谱)
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DA02485 Cells(拥有STR基因鉴定图谱)
DA04647 Cells(拥有STR基因鉴定图谱)
FPMI-CF-200 Cells(拥有STR基因鉴定图谱)
GM2131 Cells;背景说明:B淋巴细胞;EBV转化;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:RT-112 Cells、P3-X63-Ag8-6-5-3 Cells、PIEC Cells
Y3-Ag 1.2.3 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:0V-1063 Cells、DU_145 Cells、ECC-10 Cells
GM07404 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:639-V Cells、Pa017C Cells、OCI/AML-5 Cells
BJ1 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:MD Anderson-Metastatic Breast-330 Cells、T241 Cells、NCI-H510A Cells
RMC Cells;背景说明:肾系膜;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NBL-2 Cells、NCI-H1355 Cells、Hs343T Cells
MX-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HFE-145 Cells、Stanford University-Diffuse Histiocytic Lymphoma-8 Cells、N-2a Cells
Transformed Human Liver Epithelial-2 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;2-3天换液1次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OKT3 Cells、MOLM-13 Cells、RAW264 Cells
L-5178-Y Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:Clone 929 Cells、MD Anderson-Metastatic Breast-330 Cells、GM03569D Cells
HeLa.S3 Cells;背景说明:该细胞是1955年由PuckTT,MarcusPI和CieciuraSJ建系的,含HPV-18序列;角蛋白阳性;可用于与染色体突变、细胞营养、集落形成相关的哺乳动物细胞的克隆分析。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:ND7/23 Cells、Ocular Choroidal Melanoma-1 Cells、BT474 Cells
RBL-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:RBVEC Cells、Hs 604.T Cells、GM00215 Cells
HPB/ALL Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SP-2/0-AG14 Cells、H-1299 Cells、HGBEC Cells
SPC-A1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:H548 Cells、NCIH1793 Cells、HMEC-1 Cells
HCC-9724 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LN299 Cells、L-6 myoblast Cells、697 Cells
108CC5-TG-3 Cells(拥有STR基因鉴定图谱)
Nthy-ori 3.1 Cells;背景说明:甲状腺;SV40转化;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:CL 1-5 Cells、LLC-PK(1) Cells、IPEC1 Cells
KLM-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:RPE1 Cells、KALS1 Cells、MEL Cells
CT-26 WT Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:Line 697 Cells、CAL33 Cells、Adult Retinal Pigment Epithelial cell line-19 Cells
T173 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:Hep-G2/C3A Cells、GOS3 Cells、SUNE-1 Cells
mREC Cells;背景说明:视网膜;内皮 Cells;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SKNBE(2c) Cells、16-HBE14o Cells、LLC-PK-1 Cells
HuNS1 Cells;背景说明:详见相关文献介绍;传代方法:2-3天换液1次。;生长特性:悬浮生长 ;形态特性:淋巴母细胞样;相关产品有:HHFK Cells、MPASMC Cells、ACHN Cells
BNCL2 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:H647 Cells、IGR.OV1 Cells、U-251_MG Cells
NPC-TW-039 Cells;背景说明:鼻咽癌;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:MDAMB231 Cells、OV433 Cells、LWnt3A Cells
GM10744 Cells(拥有STR基因鉴定图谱)
HAP1 CDH6 (-) 1 Cells(拥有STR基因鉴定图谱)
Daudi Cells;背景说明:1967年,该细胞系KleinE和KleinG建系,源于一名16岁患有Burkitt's淋巴瘤的黑人男性,beta-2-微球蛋白阴性,表达EBNA,VCA,sIg。该细胞携带EB病毒,是一个典型的B淋巴母细胞系,可用于白血病发病机制的研究。;传代方法:1:2传代;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:SW 837 Cells、SK-Mel 1 Cells、NKM1 Cells
HG03951 Cells(拥有STR基因鉴定图谱)
IMAGINi002-A Cells(拥有STR基因鉴定图谱)
LuCaP 35 Cells(拥有STR基因鉴定图谱)
ND02062 Cells(拥有STR基因鉴定图谱)
PCI-22B Cells(拥有STR基因鉴定图谱)
TMC16 Cells(拥有STR基因鉴定图谱)
UCT0251 Cells(拥有STR基因鉴定图谱)
HG01922 Cells(拥有STR基因鉴定图谱)
CEMx721.174.T2 Cells;背景说明:详见相关文献介绍;传代方法:1:3—1:6传代,每周换液2—3次;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:Tn5B1-4 Cells、TE-13 Cells、2BS Cells
M-O7e Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HCE-T Cells、EFO27 Cells、NCIH548 Cells
PL-12 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:MOLT-3 Cells、NCIH747 Cells、NIE-115 Cells
Panc02-H0 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:PANC-08-13 Cells、Y-1 Cells、VA-ES-BJ Cells
Vertebral Cancer of the Prostate Cells;背景说明:1997从一位不受激素影响的前列腺癌患者脊椎转移灶中建立了这株细胞。先在小鼠中进行异种移植传代,随后进行体外培养。体内及体外都对雄性激素敏感。;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:CT26.WT Cells、JTC-39 Cells、MMVECs Cells
Vertebral Cancer of the Prostate Cells;背景说明:1997从一位不受激素影响的前列腺癌患者脊椎转移灶中建立了这株细胞。先在小鼠中进行异种移植传代,随后进行体外培养。体内及体外都对雄性激素敏感。;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:CT26.WT Cells、JTC-39 Cells、MMVECs Cells
C28/I2 Cells;背景说明:软骨;SV40转化;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:CHO/dhFr- Cells、Hos TE-85 Cells、526 mel Cells
NCIH1184 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:AU-565 Cells、H498 Cells、H-847 Cells
624-mel Cells;背景说明:黑色素瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:HSC-5 [Human skin squamous cell carcinoma] Cells、aNK Cells、NUGC-2 Cells
SKNBE-2 Cells;背景说明:1972年11月从一们多次化疗及放疗的扩散性神经母细胞瘤患儿骨髓穿刺物中建立了SK-N-BE(2)神经母细胞瘤细胞株。 该细胞显示中等水平的多巴胺-β-羟基酶活性。 有报道称SK-N-BE(2)细胞的饱和浓度超过1x106细胞/平方厘米。细胞形态多样,有的有长突触,有的呈上皮细胞样。 细胞会聚集,形成团块并浮起;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:Laboratory of Allergic Diseases 2 Cells、IMCD3 Cells、SCL I Cells
Vero-E6 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LS-513 Cells、KMH-2 Cells、PSN1 Cells
VMM5 Cells;背景说明:黑色素瘤;神经节转移;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NuTu 19 Cells、HCC9724 Cells、EM3 Cells
DoTc2 4510 Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:3传代,每周换液2—3次;生长特性:贴壁生长 ;形态特性:上皮样;相关产品有:COLO201 Cells、SACC-83 Cells、T-47-D Cells
KMS-18 Cells;背景说明:浆细胞骨髓瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:半贴壁;形态特性:详见产品说明;相关产品有:MALME.3M Cells、TCam 2 Cells、HH [Human lymphoma] Cells
BJA-B1 Cells;背景说明:Burkitt's淋巴瘤;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:Me Wo Cells、Granta 519 Cells、TR146 Cells
SCRP6401i Cells(拥有STR基因鉴定图谱)
NFHIOSE-29 Cells;背景说明:卵巢;上皮细胞;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NCM356 Cells、NCI-H2029 Cells、NCIH1341 Cells
L-5178-Y-R Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:WPE-int Cells、SW260 Cells、OUMS23 Cells
T98 Cells;背景说明:胶质瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SUPB-15 Cells、CF PAC-1 Cells、MV-4-11 Cells
HEK AD293 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:详见产品说明;相关产品有:P3-X63.Ag8.653 Cells、C918 Cells、SF-767 Cells
MADB 106 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HCT FET Cells、KMS18 Cells、KMS18 Cells
BJAB-1 Cells;背景说明:Burkitt's淋巴瘤;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:SF767 Cells、SkMel31 Cells、Hs739T Cells
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IPLB-SF 21AE Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SKO3 Cells、Intestinal Porcine Epithelial Cell line-J2 Cells、HCC-2108 Cells
CTLA4 Ig-24 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LC-1-sq Cells、LC-2/ad Cells、253JB-V Cells
Mouse Podocyte Clone-5 Cells;背景说明:肾足细胞;SV40转化;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:DSL-6A/C1 Cells、HCEC-12 Cells、U-251 Cells
H3255 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:RCC-4 Cells、MESSA-DX5 Cells、PCI:SG-231 Cells
NCIH647 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;每周换液2次。;生长特性:贴壁生长;形态特性:详见产品说明;相关产品有:Kit 225-K6 Cells、Evsa T Cells、NPC-TW-039 Cells
KOPN8 Cells;背景说明:B淋巴细胞白血病;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:HCC 94 Cells、H740 Cells、COLO 680N Cells
L5178YR Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HBZY 1 Cells、HDLM2 Cells、FRO Cells
SNU-16人胃癌细胞系
H-2196 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;每周换液2次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:S-16 Cells、RM-1 Cells、MC3T3-E Cells
BayGenomics ES cell line RRK142 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line XL236 Cells(拥有STR基因鉴定图谱)
GEM5N-2E6 Cells(拥有STR基因鉴定图谱)
OA-ab Cells(拥有STR基因鉴定图谱)
YUMM1.G3 Cells(拥有STR基因鉴定图谱)
MCW005i-40002552 Cells(拥有STR基因鉴定图谱)
" "PubMed=8224613; DOI=10.1096/fasebj.7.14.8224613
Puisieux A., Galvin K., Troalen F., Bressac B., Marcais C., Galun E., Ponchel F., Yakicier C., Ji J.-W., Ozturk M.
Retinoblastoma and p53 tumor suppressor genes in human hepatoma cell lines.
FASEB J. 7:1407-1413(1993)
PubMed=8389256; DOI=10.1093/carcin/14.5.987
Hsu I.-C., Tokiwa T., Bennett W.P., Metcalf R.A., Welsh J.A., Sun T.-T., Harris C.C.
p53 gene mutation and integrated hepatitis B viral DNA sequences in human liver cancer cell lines.
Carcinogenesis 14:987-992(1993)
PubMed=8835345; DOI=10.1002/(SICI)1096-9071(199602)48:2<133::AID-JMV3>3.0.CO;2-A
Tsuboi S., Nagamori S., Miyazaki M., Mihara K., Fukaya K.-i., Teruya K., Kosaka T., Tsuji T., Namba M.
Persistence of hepatitis C virus RNA in established human hepatocellular carcinoma cell lines.
J. Med. Virol. 48:133-140(1996)
DOI=10.11418/jtca1981.16.3_173
Mihara K., Miyazaki M., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ohashi R., Namba M.
The p53 gene status and other cellular characteristics of human cell lines maintained in our laboratory.
Tissue Cult. Res. Commun. 16:173-178(1997)
PubMed=9290701; DOI=10.1002/(SICI)1098-2744(199708)19:4<243::AID-MC5>3.0.CO;2-D
Jia L.-Q., Osada M., Ishioka C., Gamo M., Ikawa S., Suzuki T., Shimodaira H., Niitani T., Kudo T., Akiyama M., Kimura N., Matsuo M., Mizusawa H., Tanaka N., Koyama H., Namba M., Kanamaru R., Kuroki T.
Screening the p53 status of human cell lines using a yeast functional assay.
Mol. Carcinog. 19:243-253(1997)
PubMed=9359923; DOI=10.18926/AMO/30789
Mihara K., Miyazaki M., Kondo T., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ishioka C., Namba M.
Yeast functional assay of the p53 gene status in human cell lines maintained in our laboratory.
Acta Med. Okayama 51:261-265(1997)
PubMed=10523694; DOI=10.3892/or.6.6.1267
Gao C., Ohashi R., Pu H., Inoue Y., Tsuji T., Miyazaki M., Namba M.
Yeast functional assay of the p53 gene status in 11 cell lines and 26 surgical specimens of human hepatocellular carcinoma.
Oncol. Rep. 6:1267-1271(1999)
PubMed=11152498; DOI=10.1128/JVI.75.3.1252-1264.2001; PMCID=PMC114031
Pietschmann T., Lohmann V., Rutter G., Kurpanek K., Bartenschlager R.F.W.
Characterization of cell lines carrying self-replicating hepatitis C virus RNAs.
J. Virol. 75:1252-1264(2001)
PubMed=12029633; DOI=10.1053/jhep.2002.33683
Yasui K., Arii S., Zhao C., Imoto I., Ueda M., Nagai H., Emi M., Inazawa J.
TFDP1, CUL4A, and CDC16 identified as targets for amplification at 13q34 in hepatocellular carcinomas.
Hepatology 35:1476-1484(2002)
PubMed=15708988; DOI=10.1128/JVI.79.5.2689-2699.2005; PMCID=PMC548482
Sumpter R.M. Jr., Loo Y.-M., Foy E.M., Li K., Yoneyama M., Fujita T., Lemon S.M., Gale M. Jr.
Regulating intracellular antiviral defense and permissiveness to hepatitis C virus RNA replication through a cellular RNA helicase, RIG-I.
J. Virol. 79:2689-2699(2005)
PubMed=15767549; DOI=10.1158/1535-7163.MCT-04-0234
Nakatsu N., Yoshida Y., Yamazaki K., Nakamura T., Dan S., Fukui Y., Yamori T.
Chemosensitivity profile of cancer cell lines and identification of genes determining chemosensitivity by an integrated bioinformatical approach using cDNA arrays.
Mol. Cancer Ther. 4:399-412(2005)
PubMed=16935386; DOI=10.1016/j.jhep.2006.05.019
Sun D.-X., Nassal M.
Stable HepG2- and Huh7-based human hepatoma cell lines for efficient regulated expression of infectious hepatitis B virus.
J. Hepatol. 45:636-645(2006)
PubMed=20215515; DOI=10.1158/0008-5472.CAN-09-3458; PMCID=PMC2881662
Rothenberg S.M., Mohapatra G., Rivera M.N., Winokur D., Greninger P., Nitta M., Sadow P.M., Sooriyakumar G., Brannigan B.W., Ulman M.J., Perera R.M., Wang R., Tam A., Ma X.-J., Erlander M., Sgroi D.C., Rocco J.W., Lingen M.W., Cohen E.E.W., Louis D.N., Settleman J., Haber D.A.
A genome-wide screen for microdeletions reveals disruption of polarity complex genes in diverse human cancers.
Cancer Res. 70:2158-2164(2010)
PubMed=22460905; DOI=10.1038/nature11003; PMCID=PMC3320027
Barretina J.G., Caponigro G., Stransky N., Venkatesan K., Margolin A.A., Kim S., Wilson C.J., Lehar J., Kryukov G.V., Sonkin D., Reddy A., Liu M., Murray L., Berger M.F., Monahan J.E., Morais P., Meltzer J., Korejwa A., Jane-Valbuena J., Mapa F.A., Thibault J., Bric-Furlong E., Raman P., Shipway A., Engels I.H., Cheng J., Yu G.-Y.K., Yu J.-J., Aspesi P. Jr., de Silva M., Jagtap K., Jones M.D., Wang L., Hatton C., Palescandolo E., Gupta S., Mahan S., Sougnez C., Onofrio R.C., Liefeld T., MacConaill L.E., Winckler W., Reich M., Li N.-X., Mesirov J.P., Gabriel S.B., Getz G., Ardlie K., Chan V., Myer V.E., Weber B.L., Porter J., Warmuth M., Finan P., Harris J.L., Meyerson M.L., Golub T.R., Morrissey M.P., Sellers W.R., Schlegel R., Garraway L.A.
The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.
Nature 483:603-607(2012)
PubMed=23285155; DOI=10.1371/journal.pone.0052697; PMCID=PMC3527576
Murayama A., Sugiyama N., Yoshimura S., Ishihara-Sugano M., Masaki T., Kim S., Wakita T., Mishiro S., Kato T.
A subclone of HuH-7 with enhanced intracellular hepatitis C virus production and evasion of virus related-cell cycle arrest.
PLoS ONE 7:E52697-E52697(2012)
PubMed=23505090; DOI=10.1002/hep.26402
Wang K., Lim H.Y., Shi S., Lee J., Deng S.-B., Xie T., Zhu Z., Wang Y.-L., Pocalyko D., Yang W.J., Rejto P.A., Mao M., Park C.-K., Xu J.-C.
Genomic landscape of copy number aberrations enables the identification of oncogenic drivers in hepatocellular carcinoma.
Hepatology 58:706-717(2013)
PubMed=23887712; DOI=10.1038/ncomms3218; PMCID=PMC3731665
Nault J.-C., Mallet M., Pilati C., Calderaro J., Bioulac-Sage P., Laurent C., Laurent A., Cherqui D., Balabaud C., Zucman-Rossi J.
High frequency of telomerase reverse-transcriptase promoter somatic mutations in hepatocellular carcinoma and preneoplastic lesions.
Nat. Commun. 4:2218.1-2218.7(2013)
PubMed=24973239; DOI=10.1099/vir.0.065995-0
Richter M., Reimann I., Schirrmeier H., Kirkland P.D., Beer M.
The viral envelope is not sufficient to transfer the unique broad cell tropism of Bungowannah virus to a related pestivirus.
J. Gen. Virol. 95:2216-2222(2014)
PubMed=25485619; DOI=10.1038/nbt.3080
Klijn C., Durinck S., Stawiski E.W., Haverty P.M., Jiang Z.-S., Liu H.-B., Degenhardt J., Mayba O., Gnad F., Liu J.-F., Pau G., Reeder J., Cao Y., Mukhyala K., Selvaraj S.K., Yu M.-M., Zynda G.J., Brauer M.J., Wu T.D., Gentleman R.C., Manning G., Yauch R.L., Bourgon R., Stokoe D., Modrusan Z., Neve R.M., de Sauvage F.J., Settleman J., Seshagiri S., Zhang Z.-M.
A comprehensive transcriptional portrait of human cancer cell lines.
Nat. Biotechnol. 33:306-312(2015)
PubMed=25574106; DOI=10.3748/wjg.v21.i1.311; PMCID=PMC4284350
Cevik D., Yildiz G., Ozturk M.
Common telomerase reverse transcriptase promoter mutations in hepatocellular carcinomas from different geographical locations.
World J. Gastroenterol. 21:311-317(2015)
PubMed=25877200; DOI=10.1038/nature14397
Yu M., Selvaraj S.K., Liang-Chu M.M.Y., Aghajani S., Busse M., Yuan J., Lee G., Peale F.V., Klijn C., Bourgon R., Kaminker J.S., Neve R.M.
A resource for cell line authentication, annotation and quality control.
Nature 520:307-311(2015)
PubMed=26589293; DOI=10.1186/s13073-015-0240-5; PMCID=PMC4653878
Scholtalbers J., Boegel S., Bukur T., Byl M., Goerges S., Sorn P., Loewer M., Sahin U., Castle J.C.
TCLP: an online cancer cell line catalogue integrating HLA type, predicted neo-epitopes, virus and gene expression.
Genome Med. 7:118.1-118.7(2015)
PubMed=27329724; DOI=10.18632/oncotarget.10161; PMCID=PMC5216950
Watari K., Nishitani A., Shibata T., Noda M., Kawahara A., Akiba J., Murakami Y., Yano H., Kuwano M., Ono M.
Phosphorylation of mTOR Ser2481 is a key target limiting the efficacy of rapalogs for treating hepatocellular carcinoma.
Oncotarget 7:47403-47417(2016)
PubMed=27397505; DOI=10.1016/j.cell.2016.06.017; PMCID=PMC4967469
Iorio F., Knijnenburg T.A., Vis D.J., Bignell G.R., Menden M.P., Schubert M., Aben N., Goncalves E., Barthorpe S., Lightfoot H., Cokelaer T., Greninger P., van Dyk E., Chang H., de Silva H., Heyn H., Deng X.-M., Egan R.K., Liu Q.-S., Miroo T., Mitropoulos X., Richardson L., Wang J.-H., Zhang T.-H., Moran S., Sayols S., Soleimani M., Tamborero D., Lopez-Bigas N., Ross-Macdonald P., Esteller M., Gray N.S., Haber D.A., Stratton M.R., Benes C.H., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Garnett M.J.
A landscape of pharmacogenomic interactions in cancer.
Cell 166:740-754(2016)
PubMed=28196595; DOI=10.1016/j.ccell.2017.01.005; PMCID=PMC5501076
Li J., Zhao W., Akbani R., Liu W.-B., Ju Z.-L., Ling S.-Y., Vellano C.P., Roebuck P., Yu Q.-H., Eterovic A.K., Byers L.A., Davies M.A., Deng W.-L., Gopal Y.N.V., Chen G., von Euw E.M., Slamon D.J., Conklin D., Heymach J.V., Gazdar A.F., Minna J.D., Myers J.N., Lu Y.-L., Mills G.B., Liang H.
Characterization of human cancer cell lines by reverse-phase protein arrays.
Cancer Cell 31:225-239(2017)
PubMed=29610054; DOI=10.1016/j.dmpk.2018.03.003; PMCID=PMC6309175
Shi J., Wang X.-W., Lyu L.-Y., Jiang H., Zhu H.-J.
Comparison of protein expression between human livers and the hepatic cell lines HepG2, Hep3B, and Huh7 using SWATH and MRM-HR proteomics: Focusing on drug-metabolizing enzymes.
Drug Metab. Pharmacokinet. 33:133-140(2018)
PubMed=29774518; DOI=10.1007/s13577-018-0212-3; PMCID=PMC6002425
Kasai F., Hirayama N., Ozawa M., Satoh M., Kohara A.
HuH-7 reference genome profile: complex karyotype composed of massive loss of heterozygosity.
Hum. Cell 31:261-267(2018)
PubMed=30894373; DOI=10.1158/0008-5472.CAN-18-2747; PMCID=PMC6445675
Dutil J., Chen Z.-H., Monteiro A.N.A., Teer J.K., Eschrich S.A.
An interactive resource to probe genetic diversity and estimated ancestry in cancer cell lines.
Cancer Res. 79:1263-1273(2019)
PubMed=31063779; DOI=10.1053/j.gastro.2019.05.001
Caruso S., Calatayud A.-L., Pilet J., La Bella T., Rekik S., Imbeaud S., Letouze E., Meunier L., Bayard Q., Rohr-Udilova N., Peneau C., Grasl-Kraupp B., de Koning L., Ouine B., Bioulac-Sage P., Couchy G., Calderaro J., Nault J.-C., Zucman-Rossi J., Rebouissou S.
Analysis of liver cancer cell lines identifies agents with likely efficacy against hepatocellular carcinoma and markers of response.
Gastroenterology 157:760-776(2019)
PubMed=31068700; DOI=10.1038/s41586-019-1186-3; PMCID=PMC6697103
Ghandi M., Huang F.W., Jane-Valbuena J., Kryukov G.V., Lo C.C., McDonald E.R. 3rd, Barretina J.G., Gelfand E.T., Bielski C.M., Li H.-X., Hu K., Andreev-Drakhlin A.Y., Kim J., Hess J.M., Haas B.J., Aguet F., Weir B.A., Rothberg M.V., Paolella B.R., Lawrence M.S., Akbani R., Lu Y.-L., Tiv H.L., Gokhale P.C., de Weck A., Mansour A.A., Oh C., Shih J., Hadi K., Rosen Y., Bistline J., Venkatesan K., Reddy A., Sonkin D., Liu M., Lehar J., Korn J.M., Porter D.A., Jones M.D., Golji J., Caponigro G., Taylor J.E., Dunning C.M., Creech A.L., Warren A.C., McFarland J.M., Zamanighomi M., Kauffmann A., Stransky N., Imielinski M., Maruvka Y.E., Cherniack A.D., Tsherniak A., Vazquez F., Jaffe J.D., Lane A.A., Weinstock D.M., Johannessen C.M., Morrissey M.P., Stegmeier F., Schlegel R., Hahn W.C., Getz G., Mills G.B., Boehm J.S., Golub T.R., Garraway L.A., Sellers W.R.
Next-generation characterization of the Cancer Cell Line Encyclopedia.
Nature 569:503-508(2019)
PubMed=31378681; DOI=10.1016/j.ccell.2019.07.001; PMCID=PMC7505724
Qiu Z.-X., Li H., Zhang Z.-T., Zhu Z.-F., He S., Wang X.-J., Wang P.-C., Qin J.-J., Zhuang L.-P., Wang W., Xie F.-B., Gu Y., Zou K.-K., Li C., Li C., Wang C.-H., Cen J., Chen X.-T., Shu Y.-J., Zhang Z., Sun L.-L., Min L.-H., Fu Y., Huang X.-W., Lv H., Zhou H., Ji Y., Zhang Z.-G., Meng Z.-Q., Shi X.-L., Zhang H.-B., Li Y.-X., Hui L.-J.
A pharmacogenomic landscape in human liver cancers.
Cancer Cell 36:179-193.e11(2019)
PubMed=31395879; DOI=10.1038/s41467-019-11415-2; PMCID=PMC6687785
Yu K., Chen B., Aran D., Charalel J., Yau C., Wolf D.M., van 't Veer L.J., Butte A.J., Goldstein T., Sirota M.
Comprehensive transcriptomic analysis of cell lines as models of primary tumors across 22 tumor types.
Nat. Commun. 10:3574.1-3574.11(2019)
PubMed=31903165; DOI=10.18632/oncotarget.27361; PMCID=PMC6925031
Zheng A., Chevalier N., Calderoni M., Dubuis G., Dormond O., Ziros P.G., Sykiotis G.P., Widmann C.
CRISPR/Cas9 genome-wide screening identifies KEAP1 as a sorafenib, lenvatinib, and regorafenib sensitivity gene in hepatocellular carcinoma.
Oncotarget 10:7058-7070(2019)
PubMed=31978347; DOI=10.1016/j.cell.2019.12.023; PMCID=PMC7339254
Nusinow D.P., Szpyt J., Ghandi M., Rose C.M., McDonald E.R. 3rd, Kalocsay M., Jane-Valbuena J., Gelfand E.T., Schweppe D.K., Jedrychowski M.P., Golji J., Porter D.A., Rejtar T., Wang Y.K., Kryukov G.V., Stegmeier F., Erickson B.K., Garraway L.A., Sellers W.R., Gygi S.P.
Quantitative proteomics of the Cancer Cell Line Encyclopedia.
Cell 180:387-402.e16(2020)
PubMed=32899426; DOI=10.3390/cancers12092510; PMCID=PMC7565451
Scherer D., Davila-Lopez M., Goeppert B., Abrahamsson S., Gonzalez Silos R., Nova I., Marcelain K., Roa J.C., Ibberson D., Umu S.U., Rounge T.B., Roessler S., Lorenzo-Bermejo J.
RNA sequencing of hepatobiliary cancer cell lines: data and applications to mutational and transcriptomic profiling.
Cancers (Basel) 12:2510.1-2510.14(2020)
PubMed=33193621; DOI=10.3389/fgene.2020.546106; PMCID=PMC7581915
Kawamoto M., Yamaji T., Saito K., Shirasago Y., Satomura K., Endo T., Fukasawa M., Hanada K., Osada N.
Identification of characteristic genomic markers in human hepatoma Huh-7 and Huh7.5.1-8 cell lines.
Front. Genet. 11:546106.1-546106.10(2020)"
传代比例:1:2-1:4(首次传代建议1:2)
生长特性:悬浮生长
换液周期:每周2-3次
公司细胞库冻存并保种有2300多种各类细胞系。针对每种不同的细胞系,公司摸索并积累了大量细胞培养条件和YOU化参数,为您的细胞实验保驾护航。细胞培养是生命科学研究中Zui基础、也是Zui常用的实验手段。从冻存→复苏→传代→实验,在每一次细胞培养的过程中我们都是精心呵护,小心培养,心里都是默默承诺:我要护你一世周全!可是可是……无数次细胞都因污染而离我而去,投入的不只是我们貌美如花的青春,还有那一去不复返的经费!在细胞生物学,生物化学,免疫学,神经生物学,病理学……只要涉及细胞的研究领域,都面临着支原体污染的威胁。在众多污染物中,也就属支原体Zui狡猾了,他Zui善于隐藏自己,因为被支原体污染的细胞不会马上死亡,但会改变细胞的新陈代谢,甚至会改变细胞的基因表达谱,我们就这样被欺骗了无数次,谁让我们就是个看“颜值”的花痴了。可是我们通过被虐了几百次的经验中总结出来,当你的细胞出现了这些症状时:生长速率改变;活性减弱;形态改变;染色体畸变;转染效率显著降低;细胞复苏后存活率降低……。那你就得千万小心了,也许你的细胞已经被支原体欺凌了!
SNU-16人胃癌细胞系
背景信息:是一种表现出上皮形态的细胞系,于1987年从一名33岁女性亚裔胃癌患者化疗前的腹水中分离出来。在癌症研究中使用这些细胞。该系是从化疗前采集的细胞建立的。
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SNGM Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:多边形;相关产品有:H2009 Cells、RT4-D6-P2T Cells、293-FT Cells
18G3.cl 1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SNU-216 Cells、NCI H157 Cells、SKGIIIA Cells
BT 20 Cells;背景说明:该细胞1958年由E.Y. Lasfargues 和 L. Ozzello 建系,源自一位74岁白人女性的乳腺癌组织。该细胞表达WNT3和WNT78。TNF alpha抑制该细胞生长。该细胞雌激素受体阴性,但表达5'外显子缺失的雌激素mRNA。;传代方法:1:2—1:4传代,2—3天换液一次;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:NCI-HUT-460 Cells、NE-4C Cells、NCI-H2122 Cells
HLEB-3 Cells;背景说明:晶状体;Ad12-SV40转化;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:MM1 Cells、Ramos-2G6-4C10 Cells、U266B1 Cells
产品包装:复苏发货:T25培养瓶(一瓶)或冻存发货:1ml冻存管(两支)
来源说明:细胞主要来源ATCC、ECACC、DSMZ、RIKEN等细胞库
SNU-16人胃癌细胞系
细胞培养基应用选择:选择培养基没有一定的标准,有几点建议可供参考:(1)建立某种细胞株所用的培养基应该是培养这种细胞的培养基。可以查阅参考文献,或在购买细胞株时咨询。(2)其它实验室惯用的培养基不妨一试,许多培养基可以适合多种细胞。(3)根据细胞株的点、实验的需要来选择培养基。如小鼠细胞株多选 RPMI1640。(4)用多种培养基培养目的细胞,观察其生长状态,可以用生长曲线、集落形成率等指标判断,根据实验结果选择Zui佳培养基,这是Zui客观的方法,但比较繁琐。以下是部分细胞常用的培养条件:293人胚胎肾细胞培养条件:MEM,10%热灭活马血清;IMR-90人肺成纤维细胞培养条件:MEM,10%胎牛血清和NEAA;W1-38人胚胎肺成纤维细胞培养条件:MEM,10%胎牛血清;A549人肺癌上皮细胞培养条件:F-12K,10%胎牛血清;A431人表皮癌细胞培养条件:DMEM,10%胎牛血清;BHL-100人乳房上皮细胞培养条件:McCoy'5A, 10%胎牛血清;BeWo人绒毛癌上皮滋养层细胞培养条件:F-12K,15%胎牛血清;Caco-2人结肠腺癌上皮细胞培养条件:MEM,10%胎牛血清和NEAA;Chang人肝脏上皮细胞培养条件:BME,10%小牛血清;HC-15人结肠直肠腺癌上皮细胞培养条件:RPMI-1640,10%胎牛血清;HEp-G2人肝细胞癌上皮细胞培养条件:MEM,10% 胎牛血清和NEAA;HEp-2人喉癌上皮细胞培养条件:MEM,10% 胎牛血清;或RPMI-1640,10%胎牛血清;H-29人结肠腺癌上皮细胞培养条件:McCoy'5A,10%胎牛血清;JEG-2人绒毛膜癌上皮细胞培养条件:MEM,10%胎牛血清;KB人口腔癌上皮细胞培养条件:MEM,10%胎牛血清和NEAA;Saos-2人骨肉瘤上皮细胞培养条件:McCoy'5A,15%胎牛血清;WI-38人胚胎肺上皮细胞培养条件:BME,10%胎牛血清;WISH人羊膜上皮细胞培养条件:BME, 10%胎牛血清;HUVEC人脐带内皮细胞培养条件:F-12K,10%胎牛血清和肝素100ug/ml;IM-9人骨髓瘤成淋巴细胞培养条件:RPMI-1640,10%胎牛血清;Daudi人淋巴瘤细胞培养条件:RPMI-1640,10%胎牛血清;Clone M-3小鼠黑素瘤上皮细胞培养条件:F-10,15%马血清和2.5%胎牛血清;BHK-21仓鼠肾成纤维细胞培养条件:GMEM,10%胎牛血清或MEM,10%胎牛血清和NEAA;CHO-K1仓鼠卵巢上皮细胞培养条件:F-12,10%胎牛血清;IEC-6大鼠正常小肠上皮样培养条件:DMEM,5%胎牛血清,胰岛素0.1μg/ml;COS-1猴肾成纤维细胞培养条件:MEM,10%胎牛血清;COS-3猴肾成纤维细胞培养条件:MEM,10%胎牛血清;COS-7猴非洲绿猴肾成纤维细胞培养条件:MEM,10%胎牛血清
MBT-2 Cells;背景说明:膀胱移行细胞癌;C3H/He;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:HEY-A8 Cells、HT-1376 Cells、EC109 Cells
Daoy Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:6传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:多边形;相关产品有:KMB-17 Cells、UMRC-2 Cells、Rat-2 Cells
HHUA Cells;背景说明:子宫内膜癌;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:U266BL Cells、Hs-578Bst Cells、NK92-MI Cells
物种来源:人源、鼠源等其它物种来源
┈订┈购┈热┈线:1┈5┈8┈0┈0┈5┈7┈6┈8┈6┈7【微信同号】┈Q┈Q:3┈3┈0┈7┈2┈0┈4┈2┈7┈1;
形态特性:淋巴母细胞样
购买细胞注意事项:1)收到细胞后首先观察细胞瓶是否完HAO,培养是否有漏、浑浊等现象,若有上述现象发生请及时和我们联系;2)仔细阅读细胞说明,了解细胞相关信息,如细胞形态、所用培养基、血清比例、所需细胞因子等;3)用75%酒精擦拭细胞瓶表面,显微镜下观察细胞状态。因运输问题贴壁细胞会有少量从瓶壁脱落,将细胞置于培养箱内静置培养过夜,隔天再取出观察。此时多数细胞均会贴壁,若细胞仍不能贴壁请用台盼蓝染色测定细胞活力,如果证实细胞活力正常,请将细胞离心后用新鲜培养基再次贴壁培养;如果染色结果显示细胞无活力,请拍下照片及时和我们联系,信息确认后我们为您再免费寄送一次;4)建议客户收到细胞后前3天各拍几张细胞照片,记录细胞状态,便于和公司技术部沟通交流。【细胞传代操作步骤】一、贴壁细胞传代:1)提前将培养基、PBS放入37℃水浴锅内预热,用75%酒精擦拭后再放入超净台内;2)吸除或倒掉细胞瓶内旧培养,加少量PBS润洗细胞;3)加入适量胰酶,使胰酶的量能盖住细胞,37℃孵育,每隔2~3min显微镜下观察,待贴壁细胞间间隙变大、细胞趋于圆形但还未漂起时弃去胰酶,加入新鲜培养基,晃动细胞瓶,终止胰酶作用;4)用吸管小心吹打贴壁的细胞,制成细胞悬。控制吹打的力度,避免产生大量的气泡;5)将细胞悬分别接种到另外的2~3个细胞瓶内,加入新鲜培养基,置37℃温箱培养,隔天观察贴壁生长情况。二、悬浮细胞传代:1)将细胞悬转移到无菌离心管内,1000rpm离心5min;2)弃去上清,加入新鲜的培养基,用吸管小心吹散沉淀,制成细胞悬;3)将细胞悬分别接种到另外的2~3个细胞瓶内,加入新鲜培养基,置37℃温箱培养。
P-2003 Cells;背景说明:详见相关文献介绍;传代方法:每周2-3次。;生长特性:悬浮生长;形态特性:淋巴母细胞;相关产品有:SCC 15 Cells、TYK-nu Cells、HSAS4 Cells
CCC-ESF-1 Cells;背景说明:胚胎;皮肤;成纤维 Cells;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:H1781 Cells、Namalwa Cells、MB231 Cells
H2107 Cells;背景说明:详见相关文献介绍;传代方法:3-4天换液1次。;生长特性:悬浮生长 ;形态特性:上皮细胞;相关产品有:38C-13 Cells、HIT T-15 Cells、KB Cells
Verda reno Cells;背景说明:Vero细胞株是日本千叶大学的YasumuraY和KawakitaY从正常成年非洲绿猴的肾脏组织中分离建立的。该细胞常作为转染宿主,用于支原体的检测。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:Roswell Park Memorial Institute 1788 Cells、H9c2(2-1) Cells、KG1A Cells
Hepa 1-6 Cells;背景说明:此细胞株源自C57/L小鼠中引发的BW7756肝癌;表达AFP、α1抗胰蛋白酶、淀粉酶;鼠痘病毒阴性。此细胞可以在无血清的培养基中繁殖,培养基成分是:DMEM,75%;Waymouth'sMAB87/3培养基,25%。添加3x10-8M。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H-2122 Cells、UCH-1 Cells、OCM1 Cells
FRO 81-2 Cells;背景说明:未分化甲状腺癌;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:hTERT-RPE1 Cells、Ect1/E6E7 Cells、IMCD3 Cells
DBTRG-05MG Cells;背景说明:详见相关文献介绍;传代方法:1:4-1:6传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:EBTr Cells、HB611 Cells、NCI-SNU-216 Cells
Caco-2 Cells;背景说明:细胞株分离自一个原发性结肠癌。当细胞长满时,表现出典型的肠细胞分化的特征。Caco-2细胞表达维生素A酸结合蛋白I和视黄醇结合蛋白II,角蛋白阳性。;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:上皮细胞样;相关产品有:M-1 myeloid leukemia Cells、HLF Cells、J774 Cells
4T1 Cells;背景说明:4T1是从410.4瘤株中未经诱变筛得的6-鸟嘌噙抗性细胞株。当注射到BALB/c小鼠中时,4T1自发产生高转移肿瘤,可转移到肺,肝,淋巴结和大脑,同时在注射部位形成始发灶。诱导转移时不需要摘除始发灶。4T1细胞在BALB/c小鼠中的生长与转移特性与人体中的乳腺癌十分相近。这种肿瘤是人VI期乳腺癌的动物模型。4T1-诱导的肿瘤在手术后及未手术情况下转移的动力学相近,可以用作手术后及未手术模型。跟其他肿瘤模型相比,由于4T1的抗6-鸟嘌噙特性,微小的转移细胞团(少到仅仅1个)也可以在许多远端器官中检测到。没必要数淋巴结或称重器官。;传代方法:消化3-5分钟,1:2,3天内可长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:BSC40 Cells、T173 Cells、SK_HEP1 Cells
ES-2 Cells;背景说明:ES-2细胞系源于一位47岁黑人女性的临床卵巢透明细胞癌手术标本。该细胞对中低剂量的阿霉素,顺铂,双乙基亚硝脲,表鬼臼毒素吡喃葡糖苷等化疗药物有一定耐药性。该细胞少量表达糖蛋白P。;传代方法:1:3传代,2-3天传一次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OCI/AML-2 Cells、GMK,BSC-1 Cells、TOV-112 Cells
SNU423 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OCILY-10 Cells、GOTO Cells、EFM192A Cells
Kit225/K6 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:J111 Cells、GM00215 Cells、OCI-AML4 Cells
LI7 Cells;背景说明:人肝癌细胞株。这株细胞从裸鼠体外移植瘤中建立。;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:BxPC-3 Cells、3T3 J2 Cells、T173 Cells
T-HSC Cells;背景说明:肝星形细胞;SV40转化;SD大鼠;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SNU-119 Cells、Leghorn Male Hepatoma cell line Cells、ROS17/2.8 Cells
MALME 3M Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2天换液1次。;生长特性:混合生长;形态特性:成纤维细胞;相关产品有:A204 Cells、HaCaT Cells、MDCK II Cells
SNU-16人胃癌细胞系
K562/ADP Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SJRH-30 Cells、TE-85 clone 5 Cells、Renal Proximal Tubule Epithelial Cells/TERT-immortalized 1 Cells
NK-92 MI Cells;背景说明:NK细胞;淋巴瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:H2291 Cells、GP293 Cells、BE(2)M17 Cells
Abcam A-549 NCOA7 KO 1 Cells(拥有STR基因鉴定图谱)
Abgenix 4.209.3 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line CSG430 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line RRU340 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line YTC783 Cells(拥有STR基因鉴定图谱)
CHO-CPR C13 Cells(拥有STR基因鉴定图谱)
┈订┈购┈热┈线:1┈5┈8┈0┈0┈5┈7┈6┈8┈6┈7【微信同号】┈Q┈Q:3┈3┈0┈7┈2┈0┈4┈2┈7┈1;
DA02485 Cells(拥有STR基因鉴定图谱)
DA04647 Cells(拥有STR基因鉴定图谱)
FPMI-CF-200 Cells(拥有STR基因鉴定图谱)
GM2131 Cells;背景说明:B淋巴细胞;EBV转化;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:RT-112 Cells、P3-X63-Ag8-6-5-3 Cells、PIEC Cells
Y3-Ag 1.2.3 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:0V-1063 Cells、DU_145 Cells、ECC-10 Cells
GM07404 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:639-V Cells、Pa017C Cells、OCI/AML-5 Cells
BJ1 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:MD Anderson-Metastatic Breast-330 Cells、T241 Cells、NCI-H510A Cells
RMC Cells;背景说明:肾系膜;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NBL-2 Cells、NCI-H1355 Cells、Hs343T Cells
MX-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HFE-145 Cells、Stanford University-Diffuse Histiocytic Lymphoma-8 Cells、N-2a Cells
Transformed Human Liver Epithelial-2 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;2-3天换液1次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:OKT3 Cells、MOLM-13 Cells、RAW264 Cells
L-5178-Y Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:Clone 929 Cells、MD Anderson-Metastatic Breast-330 Cells、GM03569D Cells
HeLa.S3 Cells;背景说明:该细胞是1955年由PuckTT,MarcusPI和CieciuraSJ建系的,含HPV-18序列;角蛋白阳性;可用于与染色体突变、细胞营养、集落形成相关的哺乳动物细胞的克隆分析。;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:ND7/23 Cells、Ocular Choroidal Melanoma-1 Cells、BT474 Cells
RBL-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:RBVEC Cells、Hs 604.T Cells、GM00215 Cells
HPB/ALL Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SP-2/0-AG14 Cells、H-1299 Cells、HGBEC Cells
SPC-A1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:H548 Cells、NCIH1793 Cells、HMEC-1 Cells
HCC-9724 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LN299 Cells、L-6 myoblast Cells、697 Cells
108CC5-TG-3 Cells(拥有STR基因鉴定图谱)
Nthy-ori 3.1 Cells;背景说明:甲状腺;SV40转化;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:CL 1-5 Cells、LLC-PK(1) Cells、IPEC1 Cells
KLM-1 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:RPE1 Cells、KALS1 Cells、MEL Cells
CT-26 WT Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:Line 697 Cells、CAL33 Cells、Adult Retinal Pigment Epithelial cell line-19 Cells
T173 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代;每周换液2-3次。;生长特性:贴壁生长;形态特性:成纤维细胞;相关产品有:Hep-G2/C3A Cells、GOS3 Cells、SUNE-1 Cells
mREC Cells;背景说明:视网膜;内皮 Cells;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SKNBE(2c) Cells、16-HBE14o Cells、LLC-PK-1 Cells
HuNS1 Cells;背景说明:详见相关文献介绍;传代方法:2-3天换液1次。;生长特性:悬浮生长 ;形态特性:淋巴母细胞样;相关产品有:HHFK Cells、MPASMC Cells、ACHN Cells
BNCL2 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:H647 Cells、IGR.OV1 Cells、U-251_MG Cells
NPC-TW-039 Cells;背景说明:鼻咽癌;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:MDAMB231 Cells、OV433 Cells、LWnt3A Cells
GM10744 Cells(拥有STR基因鉴定图谱)
HAP1 CDH6 (-) 1 Cells(拥有STR基因鉴定图谱)
Daudi Cells;背景说明:1967年,该细胞系KleinE和KleinG建系,源于一名16岁患有Burkitt's淋巴瘤的黑人男性,beta-2-微球蛋白阴性,表达EBNA,VCA,sIg。该细胞携带EB病毒,是一个典型的B淋巴母细胞系,可用于白血病发病机制的研究。;传代方法:1:2传代;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:SW 837 Cells、SK-Mel 1 Cells、NKM1 Cells
HG03951 Cells(拥有STR基因鉴定图谱)
IMAGINi002-A Cells(拥有STR基因鉴定图谱)
LuCaP 35 Cells(拥有STR基因鉴定图谱)
ND02062 Cells(拥有STR基因鉴定图谱)
PCI-22B Cells(拥有STR基因鉴定图谱)
TMC16 Cells(拥有STR基因鉴定图谱)
UCT0251 Cells(拥有STR基因鉴定图谱)
HG01922 Cells(拥有STR基因鉴定图谱)
CEMx721.174.T2 Cells;背景说明:详见相关文献介绍;传代方法:1:3—1:6传代,每周换液2—3次;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:Tn5B1-4 Cells、TE-13 Cells、2BS Cells
M-O7e Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HCE-T Cells、EFO27 Cells、NCIH548 Cells
PL-12 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮样;相关产品有:MOLT-3 Cells、NCIH747 Cells、NIE-115 Cells
Panc02-H0 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:PANC-08-13 Cells、Y-1 Cells、VA-ES-BJ Cells
Vertebral Cancer of the Prostate Cells;背景说明:1997从一位不受激素影响的前列腺癌患者脊椎转移灶中建立了这株细胞。先在小鼠中进行异种移植传代,随后进行体外培养。体内及体外都对雄性激素敏感。;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:CT26.WT Cells、JTC-39 Cells、MMVECs Cells
Vertebral Cancer of the Prostate Cells;背景说明:1997从一位不受激素影响的前列腺癌患者脊椎转移灶中建立了这株细胞。先在小鼠中进行异种移植传代,随后进行体外培养。体内及体外都对雄性激素敏感。;传代方法:消化3-5分钟。1:2。3天内可长满。;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:CT26.WT Cells、JTC-39 Cells、MMVECs Cells
C28/I2 Cells;背景说明:软骨;SV40转化;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:CHO/dhFr- Cells、Hos TE-85 Cells、526 mel Cells
NCIH1184 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:AU-565 Cells、H498 Cells、H-847 Cells
624-mel Cells;背景说明:黑色素瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:HSC-5 [Human skin squamous cell carcinoma] Cells、aNK Cells、NUGC-2 Cells
SKNBE-2 Cells;背景说明:1972年11月从一们多次化疗及放疗的扩散性神经母细胞瘤患儿骨髓穿刺物中建立了SK-N-BE(2)神经母细胞瘤细胞株。 该细胞显示中等水平的多巴胺-β-羟基酶活性。 有报道称SK-N-BE(2)细胞的饱和浓度超过1x106细胞/平方厘米。细胞形态多样,有的有长突触,有的呈上皮细胞样。 细胞会聚集,形成团块并浮起;传代方法:1:2传代;生长特性:贴壁生长;形态特性:上皮细胞样;相关产品有:Laboratory of Allergic Diseases 2 Cells、IMCD3 Cells、SCL I Cells
Vero-E6 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LS-513 Cells、KMH-2 Cells、PSN1 Cells
VMM5 Cells;背景说明:黑色素瘤;神经节转移;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NuTu 19 Cells、HCC9724 Cells、EM3 Cells
DoTc2 4510 Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:3传代,每周换液2—3次;生长特性:贴壁生长 ;形态特性:上皮样;相关产品有:COLO201 Cells、SACC-83 Cells、T-47-D Cells
KMS-18 Cells;背景说明:浆细胞骨髓瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:半贴壁;形态特性:详见产品说明;相关产品有:MALME.3M Cells、TCam 2 Cells、HH [Human lymphoma] Cells
BJA-B1 Cells;背景说明:Burkitt's淋巴瘤;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:Me Wo Cells、Granta 519 Cells、TR146 Cells
SCRP6401i Cells(拥有STR基因鉴定图谱)
NFHIOSE-29 Cells;背景说明:卵巢;上皮细胞;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:NCM356 Cells、NCI-H2029 Cells、NCIH1341 Cells
L-5178-Y-R Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:WPE-int Cells、SW260 Cells、OUMS23 Cells
T98 Cells;背景说明:胶质瘤;男性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:SUPB-15 Cells、CF PAC-1 Cells、MV-4-11 Cells
HEK AD293 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长;形态特性:详见产品说明;相关产品有:P3-X63.Ag8.653 Cells、C918 Cells、SF-767 Cells
MADB 106 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HCT FET Cells、KMS18 Cells、KMS18 Cells
BJAB-1 Cells;背景说明:Burkitt's淋巴瘤;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:SF767 Cells、SkMel31 Cells、Hs739T Cells
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IPLB-SF 21AE Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:SKO3 Cells、Intestinal Porcine Epithelial Cell line-J2 Cells、HCC-2108 Cells
CTLA4 Ig-24 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:LC-1-sq Cells、LC-2/ad Cells、253JB-V Cells
Mouse Podocyte Clone-5 Cells;背景说明:肾足细胞;SV40转化;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁;形态特性:详见产品说明;相关产品有:DSL-6A/C1 Cells、HCEC-12 Cells、U-251 Cells
H3255 Cells;背景说明:详见相关文献介绍;传代方法:1:2传代;生长特性:贴壁生长 ;形态特性:详见产品说明;相关产品有:RCC-4 Cells、MESSA-DX5 Cells、PCI:SG-231 Cells
NCIH647 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;每周换液2次。;生长特性:贴壁生长;形态特性:详见产品说明;相关产品有:Kit 225-K6 Cells、Evsa T Cells、NPC-TW-039 Cells
KOPN8 Cells;背景说明:B淋巴细胞白血病;女性;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:悬浮;形态特性:详见产品说明;相关产品有:HCC 94 Cells、H740 Cells、COLO 680N Cells
L5178YR Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:3传代;每周换液2-3次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:HBZY 1 Cells、HDLM2 Cells、FRO Cells
SNU-16人胃癌细胞系
H-2196 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;每周换液2次。;生长特性:贴壁或悬浮,详见产品说明部分;形态特性:详见产品说明;相关产品有:S-16 Cells、RM-1 Cells、MC3T3-E Cells
BayGenomics ES cell line RRK142 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line XL236 Cells(拥有STR基因鉴定图谱)
GEM5N-2E6 Cells(拥有STR基因鉴定图谱)
OA-ab Cells(拥有STR基因鉴定图谱)
YUMM1.G3 Cells(拥有STR基因鉴定图谱)
MCW005i-40002552 Cells(拥有STR基因鉴定图谱)
" "PubMed=8224613; DOI=10.1096/fasebj.7.14.8224613
Puisieux A., Galvin K., Troalen F., Bressac B., Marcais C., Galun E., Ponchel F., Yakicier C., Ji J.-W., Ozturk M.
Retinoblastoma and p53 tumor suppressor genes in human hepatoma cell lines.
FASEB J. 7:1407-1413(1993)
PubMed=8389256; DOI=10.1093/carcin/14.5.987
Hsu I.-C., Tokiwa T., Bennett W.P., Metcalf R.A., Welsh J.A., Sun T.-T., Harris C.C.
p53 gene mutation and integrated hepatitis B viral DNA sequences in human liver cancer cell lines.
Carcinogenesis 14:987-992(1993)
PubMed=8835345; DOI=10.1002/(SICI)1096-9071(199602)48:2<133::AID-JMV3>3.0.CO;2-A
Tsuboi S., Nagamori S., Miyazaki M., Mihara K., Fukaya K.-i., Teruya K., Kosaka T., Tsuji T., Namba M.
Persistence of hepatitis C virus RNA in established human hepatocellular carcinoma cell lines.
J. Med. Virol. 48:133-140(1996)
DOI=10.11418/jtca1981.16.3_173
Mihara K., Miyazaki M., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ohashi R., Namba M.
The p53 gene status and other cellular characteristics of human cell lines maintained in our laboratory.
Tissue Cult. Res. Commun. 16:173-178(1997)
PubMed=9290701; DOI=10.1002/(SICI)1098-2744(199708)19:4<243::AID-MC5>3.0.CO;2-D
Jia L.-Q., Osada M., Ishioka C., Gamo M., Ikawa S., Suzuki T., Shimodaira H., Niitani T., Kudo T., Akiyama M., Kimura N., Matsuo M., Mizusawa H., Tanaka N., Koyama H., Namba M., Kanamaru R., Kuroki T.
Screening the p53 status of human cell lines using a yeast functional assay.
Mol. Carcinog. 19:243-253(1997)
PubMed=9359923; DOI=10.18926/AMO/30789
Mihara K., Miyazaki M., Kondo T., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ishioka C., Namba M.
Yeast functional assay of the p53 gene status in human cell lines maintained in our laboratory.
Acta Med. Okayama 51:261-265(1997)
PubMed=10523694; DOI=10.3892/or.6.6.1267
Gao C., Ohashi R., Pu H., Inoue Y., Tsuji T., Miyazaki M., Namba M.
Yeast functional assay of the p53 gene status in 11 cell lines and 26 surgical specimens of human hepatocellular carcinoma.
Oncol. Rep. 6:1267-1271(1999)
PubMed=11152498; DOI=10.1128/JVI.75.3.1252-1264.2001; PMCID=PMC114031
Pietschmann T., Lohmann V., Rutter G., Kurpanek K., Bartenschlager R.F.W.
Characterization of cell lines carrying self-replicating hepatitis C virus RNAs.
J. Virol. 75:1252-1264(2001)
PubMed=12029633; DOI=10.1053/jhep.2002.33683
Yasui K., Arii S., Zhao C., Imoto I., Ueda M., Nagai H., Emi M., Inazawa J.
TFDP1, CUL4A, and CDC16 identified as targets for amplification at 13q34 in hepatocellular carcinomas.
Hepatology 35:1476-1484(2002)
PubMed=15708988; DOI=10.1128/JVI.79.5.2689-2699.2005; PMCID=PMC548482
Sumpter R.M. Jr., Loo Y.-M., Foy E.M., Li K., Yoneyama M., Fujita T., Lemon S.M., Gale M. Jr.
Regulating intracellular antiviral defense and permissiveness to hepatitis C virus RNA replication through a cellular RNA helicase, RIG-I.
J. Virol. 79:2689-2699(2005)
PubMed=15767549; DOI=10.1158/1535-7163.MCT-04-0234
Nakatsu N., Yoshida Y., Yamazaki K., Nakamura T., Dan S., Fukui Y., Yamori T.
Chemosensitivity profile of cancer cell lines and identification of genes determining chemosensitivity by an integrated bioinformatical approach using cDNA arrays.
Mol. Cancer Ther. 4:399-412(2005)
PubMed=16935386; DOI=10.1016/j.jhep.2006.05.019
Sun D.-X., Nassal M.
Stable HepG2- and Huh7-based human hepatoma cell lines for efficient regulated expression of infectious hepatitis B virus.
J. Hepatol. 45:636-645(2006)
PubMed=20215515; DOI=10.1158/0008-5472.CAN-09-3458; PMCID=PMC2881662
Rothenberg S.M., Mohapatra G., Rivera M.N., Winokur D., Greninger P., Nitta M., Sadow P.M., Sooriyakumar G., Brannigan B.W., Ulman M.J., Perera R.M., Wang R., Tam A., Ma X.-J., Erlander M., Sgroi D.C., Rocco J.W., Lingen M.W., Cohen E.E.W., Louis D.N., Settleman J., Haber D.A.
A genome-wide screen for microdeletions reveals disruption of polarity complex genes in diverse human cancers.
Cancer Res. 70:2158-2164(2010)
PubMed=22460905; DOI=10.1038/nature11003; PMCID=PMC3320027
Barretina J.G., Caponigro G., Stransky N., Venkatesan K., Margolin A.A., Kim S., Wilson C.J., Lehar J., Kryukov G.V., Sonkin D., Reddy A., Liu M., Murray L., Berger M.F., Monahan J.E., Morais P., Meltzer J., Korejwa A., Jane-Valbuena J., Mapa F.A., Thibault J., Bric-Furlong E., Raman P., Shipway A., Engels I.H., Cheng J., Yu G.-Y.K., Yu J.-J., Aspesi P. Jr., de Silva M., Jagtap K., Jones M.D., Wang L., Hatton C., Palescandolo E., Gupta S., Mahan S., Sougnez C., Onofrio R.C., Liefeld T., MacConaill L.E., Winckler W., Reich M., Li N.-X., Mesirov J.P., Gabriel S.B., Getz G., Ardlie K., Chan V., Myer V.E., Weber B.L., Porter J., Warmuth M., Finan P., Harris J.L., Meyerson M.L., Golub T.R., Morrissey M.P., Sellers W.R., Schlegel R., Garraway L.A.
The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.
Nature 483:603-607(2012)
PubMed=23285155; DOI=10.1371/journal.pone.0052697; PMCID=PMC3527576
Murayama A., Sugiyama N., Yoshimura S., Ishihara-Sugano M., Masaki T., Kim S., Wakita T., Mishiro S., Kato T.
A subclone of HuH-7 with enhanced intracellular hepatitis C virus production and evasion of virus related-cell cycle arrest.
PLoS ONE 7:E52697-E52697(2012)
PubMed=23505090; DOI=10.1002/hep.26402
Wang K., Lim H.Y., Shi S., Lee J., Deng S.-B., Xie T., Zhu Z., Wang Y.-L., Pocalyko D., Yang W.J., Rejto P.A., Mao M., Park C.-K., Xu J.-C.
Genomic landscape of copy number aberrations enables the identification of oncogenic drivers in hepatocellular carcinoma.
Hepatology 58:706-717(2013)
PubMed=23887712; DOI=10.1038/ncomms3218; PMCID=PMC3731665
Nault J.-C., Mallet M., Pilati C., Calderaro J., Bioulac-Sage P., Laurent C., Laurent A., Cherqui D., Balabaud C., Zucman-Rossi J.
High frequency of telomerase reverse-transcriptase promoter somatic mutations in hepatocellular carcinoma and preneoplastic lesions.
Nat. Commun. 4:2218.1-2218.7(2013)
PubMed=24973239; DOI=10.1099/vir.0.065995-0
Richter M., Reimann I., Schirrmeier H., Kirkland P.D., Beer M.
The viral envelope is not sufficient to transfer the unique broad cell tropism of Bungowannah virus to a related pestivirus.
J. Gen. Virol. 95:2216-2222(2014)
PubMed=25485619; DOI=10.1038/nbt.3080
Klijn C., Durinck S., Stawiski E.W., Haverty P.M., Jiang Z.-S., Liu H.-B., Degenhardt J., Mayba O., Gnad F., Liu J.-F., Pau G., Reeder J., Cao Y., Mukhyala K., Selvaraj S.K., Yu M.-M., Zynda G.J., Brauer M.J., Wu T.D., Gentleman R.C., Manning G., Yauch R.L., Bourgon R., Stokoe D., Modrusan Z., Neve R.M., de Sauvage F.J., Settleman J., Seshagiri S., Zhang Z.-M.
A comprehensive transcriptional portrait of human cancer cell lines.
Nat. Biotechnol. 33:306-312(2015)
PubMed=25574106; DOI=10.3748/wjg.v21.i1.311; PMCID=PMC4284350
Cevik D., Yildiz G., Ozturk M.
Common telomerase reverse transcriptase promoter mutations in hepatocellular carcinomas from different geographical locations.
World J. Gastroenterol. 21:311-317(2015)
PubMed=25877200; DOI=10.1038/nature14397
Yu M., Selvaraj S.K., Liang-Chu M.M.Y., Aghajani S., Busse M., Yuan J., Lee G., Peale F.V., Klijn C., Bourgon R., Kaminker J.S., Neve R.M.
A resource for cell line authentication, annotation and quality control.
Nature 520:307-311(2015)
PubMed=26589293; DOI=10.1186/s13073-015-0240-5; PMCID=PMC4653878
Scholtalbers J., Boegel S., Bukur T., Byl M., Goerges S., Sorn P., Loewer M., Sahin U., Castle J.C.
TCLP: an online cancer cell line catalogue integrating HLA type, predicted neo-epitopes, virus and gene expression.
Genome Med. 7:118.1-118.7(2015)
PubMed=27329724; DOI=10.18632/oncotarget.10161; PMCID=PMC5216950
Watari K., Nishitani A., Shibata T., Noda M., Kawahara A., Akiba J., Murakami Y., Yano H., Kuwano M., Ono M.
Phosphorylation of mTOR Ser2481 is a key target limiting the efficacy of rapalogs for treating hepatocellular carcinoma.
Oncotarget 7:47403-47417(2016)
PubMed=27397505; DOI=10.1016/j.cell.2016.06.017; PMCID=PMC4967469
Iorio F., Knijnenburg T.A., Vis D.J., Bignell G.R., Menden M.P., Schubert M., Aben N., Goncalves E., Barthorpe S., Lightfoot H., Cokelaer T., Greninger P., van Dyk E., Chang H., de Silva H., Heyn H., Deng X.-M., Egan R.K., Liu Q.-S., Miroo T., Mitropoulos X., Richardson L., Wang J.-H., Zhang T.-H., Moran S., Sayols S., Soleimani M., Tamborero D., Lopez-Bigas N., Ross-Macdonald P., Esteller M., Gray N.S., Haber D.A., Stratton M.R., Benes C.H., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Garnett M.J.
A landscape of pharmacogenomic interactions in cancer.
Cell 166:740-754(2016)
PubMed=28196595; DOI=10.1016/j.ccell.2017.01.005; PMCID=PMC5501076
Li J., Zhao W., Akbani R., Liu W.-B., Ju Z.-L., Ling S.-Y., Vellano C.P., Roebuck P., Yu Q.-H., Eterovic A.K., Byers L.A., Davies M.A., Deng W.-L., Gopal Y.N.V., Chen G., von Euw E.M., Slamon D.J., Conklin D., Heymach J.V., Gazdar A.F., Minna J.D., Myers J.N., Lu Y.-L., Mills G.B., Liang H.
Characterization of human cancer cell lines by reverse-phase protein arrays.
Cancer Cell 31:225-239(2017)
PubMed=29610054; DOI=10.1016/j.dmpk.2018.03.003; PMCID=PMC6309175
Shi J., Wang X.-W., Lyu L.-Y., Jiang H., Zhu H.-J.
Comparison of protein expression between human livers and the hepatic cell lines HepG2, Hep3B, and Huh7 using SWATH and MRM-HR proteomics: Focusing on drug-metabolizing enzymes.
Drug Metab. Pharmacokinet. 33:133-140(2018)
PubMed=29774518; DOI=10.1007/s13577-018-0212-3; PMCID=PMC6002425
Kasai F., Hirayama N., Ozawa M., Satoh M., Kohara A.
HuH-7 reference genome profile: complex karyotype composed of massive loss of heterozygosity.
Hum. Cell 31:261-267(2018)
PubMed=30894373; DOI=10.1158/0008-5472.CAN-18-2747; PMCID=PMC6445675
Dutil J., Chen Z.-H., Monteiro A.N.A., Teer J.K., Eschrich S.A.
An interactive resource to probe genetic diversity and estimated ancestry in cancer cell lines.
Cancer Res. 79:1263-1273(2019)
PubMed=31063779; DOI=10.1053/j.gastro.2019.05.001
Caruso S., Calatayud A.-L., Pilet J., La Bella T., Rekik S., Imbeaud S., Letouze E., Meunier L., Bayard Q., Rohr-Udilova N., Peneau C., Grasl-Kraupp B., de Koning L., Ouine B., Bioulac-Sage P., Couchy G., Calderaro J., Nault J.-C., Zucman-Rossi J., Rebouissou S.
Analysis of liver cancer cell lines identifies agents with likely efficacy against hepatocellular carcinoma and markers of response.
Gastroenterology 157:760-776(2019)
PubMed=31068700; DOI=10.1038/s41586-019-1186-3; PMCID=PMC6697103
Ghandi M., Huang F.W., Jane-Valbuena J., Kryukov G.V., Lo C.C., McDonald E.R. 3rd, Barretina J.G., Gelfand E.T., Bielski C.M., Li H.-X., Hu K., Andreev-Drakhlin A.Y., Kim J., Hess J.M., Haas B.J., Aguet F., Weir B.A., Rothberg M.V., Paolella B.R., Lawrence M.S., Akbani R., Lu Y.-L., Tiv H.L., Gokhale P.C., de Weck A., Mansour A.A., Oh C., Shih J., Hadi K., Rosen Y., Bistline J., Venkatesan K., Reddy A., Sonkin D., Liu M., Lehar J., Korn J.M., Porter D.A., Jones M.D., Golji J., Caponigro G., Taylor J.E., Dunning C.M., Creech A.L., Warren A.C., McFarland J.M., Zamanighomi M., Kauffmann A., Stransky N., Imielinski M., Maruvka Y.E., Cherniack A.D., Tsherniak A., Vazquez F., Jaffe J.D., Lane A.A., Weinstock D.M., Johannessen C.M., Morrissey M.P., Stegmeier F., Schlegel R., Hahn W.C., Getz G., Mills G.B., Boehm J.S., Golub T.R., Garraway L.A., Sellers W.R.
Next-generation characterization of the Cancer Cell Line Encyclopedia.
Nature 569:503-508(2019)
PubMed=31378681; DOI=10.1016/j.ccell.2019.07.001; PMCID=PMC7505724
Qiu Z.-X., Li H., Zhang Z.-T., Zhu Z.-F., He S., Wang X.-J., Wang P.-C., Qin J.-J., Zhuang L.-P., Wang W., Xie F.-B., Gu Y., Zou K.-K., Li C., Li C., Wang C.-H., Cen J., Chen X.-T., Shu Y.-J., Zhang Z., Sun L.-L., Min L.-H., Fu Y., Huang X.-W., Lv H., Zhou H., Ji Y., Zhang Z.-G., Meng Z.-Q., Shi X.-L., Zhang H.-B., Li Y.-X., Hui L.-J.
A pharmacogenomic landscape in human liver cancers.
Cancer Cell 36:179-193.e11(2019)
PubMed=31395879; DOI=10.1038/s41467-019-11415-2; PMCID=PMC6687785
Yu K., Chen B., Aran D., Charalel J., Yau C., Wolf D.M., van 't Veer L.J., Butte A.J., Goldstein T., Sirota M.
Comprehensive transcriptomic analysis of cell lines as models of primary tumors across 22 tumor types.
Nat. Commun. 10:3574.1-3574.11(2019)
PubMed=31903165; DOI=10.18632/oncotarget.27361; PMCID=PMC6925031
Zheng A., Chevalier N., Calderoni M., Dubuis G., Dormond O., Ziros P.G., Sykiotis G.P., Widmann C.
CRISPR/Cas9 genome-wide screening identifies KEAP1 as a sorafenib, lenvatinib, and regorafenib sensitivity gene in hepatocellular carcinoma.
Oncotarget 10:7058-7070(2019)
PubMed=31978347; DOI=10.1016/j.cell.2019.12.023; PMCID=PMC7339254
Nusinow D.P., Szpyt J., Ghandi M., Rose C.M., McDonald E.R. 3rd, Kalocsay M., Jane-Valbuena J., Gelfand E.T., Schweppe D.K., Jedrychowski M.P., Golji J., Porter D.A., Rejtar T., Wang Y.K., Kryukov G.V., Stegmeier F., Erickson B.K., Garraway L.A., Sellers W.R., Gygi S.P.
Quantitative proteomics of the Cancer Cell Line Encyclopedia.
Cell 180:387-402.e16(2020)
PubMed=32899426; DOI=10.3390/cancers12092510; PMCID=PMC7565451
Scherer D., Davila-Lopez M., Goeppert B., Abrahamsson S., Gonzalez Silos R., Nova I., Marcelain K., Roa J.C., Ibberson D., Umu S.U., Rounge T.B., Roessler S., Lorenzo-Bermejo J.
RNA sequencing of hepatobiliary cancer cell lines: data and applications to mutational and transcriptomic profiling.
Cancers (Basel) 12:2510.1-2510.14(2020)
PubMed=33193621; DOI=10.3389/fgene.2020.546106; PMCID=PMC7581915
Kawamoto M., Yamaji T., Saito K., Shirasago Y., Satomura K., Endo T., Fukasawa M., Hanada K., Osada N.
Identification of characteristic genomic markers in human hepatoma Huh-7 and Huh7.5.1-8 cell lines.
Front. Genet. 11:546106.1-546106.10(2020)"
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文献和实验该产品被引用文献
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Puisieux A., Galvin K., Troalen F., Bressac B., Marcais C., Galun E., Ponchel F., Yakicier C., Ji J.-W., Ozturk M.
Retinoblastoma and p53 tumor suppressor genes in human hepatoma cell lines.
FASEB J. 7:1407-1413(1993)
PubMed=8389256; DOI=10.1093/carcin/14.5.987
Hsu I.-C., Tokiwa T., Bennett W.P., Metcalf R.A., Welsh J.A., Sun T.-T., Harris C.C.
p53 gene mutation and integrated hepatitis B viral DNA sequences in human liver cancer cell lines.
Carcinogenesis 14:987-992(1993)
PubMed=8835345; DOI=10.1002/(SICI)1096-9071(199602)48:2<133::AID-JMV3>3.0.CO;2-A
Tsuboi S., Nagamori S., Miyazaki M., Mihara K., Fukaya K.-i., Teruya K., Kosaka T., Tsuji T., Namba M.
Persistence of hepatitis C virus RNA in established human hepatocellular carcinoma cell lines.
J. Med. Virol. 48:133-140(1996)
DOI=10.11418/jtca1981.16.3_173
Mihara K., Miyazaki M., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ohashi R., Namba M.
The p53 gene status and other cellular characteristics of human cell lines maintained in our laboratory.
Tissue Cult. Res. Commun. 16:173-178(1997)
PubMed=9290701; DOI=10.1002/(SICI)1098-2744(199708)19:4<243::AID-MC5>3.0.CO;2-D
Jia L.-Q., Osada M., Ishioka C., Gamo M., Ikawa S., Suzuki T., Shimodaira H., Niitani T., Kudo T., Akiyama M., Kimura N., Matsuo M., Mizusawa H., Tanaka N., Koyama H., Namba M., Kanamaru R., Kuroki T.
Screening the p53 status of human cell lines using a yeast functional assay.
Mol. Carcinog. 19:243-253(1997)
PubMed=9359923; DOI=10.18926/AMO/30789
Mihara K., Miyazaki M., Kondo T., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ishioka C., Namba M.
Yeast functional assay of the p53 gene status in human cell lines maintained in our laboratory.
Acta Med. Okayama 51:261-265(1997)
PubMed=10523694; DOI=10.3892/or.6.6.1267
Gao C., Ohashi R., Pu H., Inoue Y., Tsuji T., Miyazaki M., Namba M.
Yeast functional assay of the p53 gene status in 11 cell lines and 26 surgical specimens of human hepatocellular carcinoma.
Oncol. Rep. 6:1267-1271(1999)
PubMed=11152498; DOI=10.1128/JVI.75.3.1252-1264.2001; PMCID=PMC114031
Pietschmann T., Lohmann V., Rutter G., Kurpanek K., Bartenschlager R.F.W.
Characterization of cell lines carrying self-replicating hepatitis C virus RNAs.
J. Virol. 75:1252-1264(2001)
PubMed=12029633; DOI=10.1053/jhep.2002.33683
Yasui K., Arii S., Zhao C., Imoto I., Ueda M., Nagai H., Emi M., Inazawa J.
TFDP1, CUL4A, and CDC16 identified as targets for amplification at 13q34 in hepatocellular carcinomas.
Hepatology 35:1476-1484(2002)
PubMed=15708988; DOI=10.1128/JVI.79.5.2689-2699.2005; PMCID=PMC548482
Sumpter R.M. Jr., Loo Y.-M., Foy E.M., Li K., Yoneyama M., Fujita T., Lemon S.M., Gale M. Jr.
Regulating intracellular antiviral defense and permissiveness to hepatitis C virus RNA replication through a cellular RNA helicase, RIG-I.
J. Virol. 79:2689-2699(2005)
PubMed=15767549; DOI=10.1158/1535-7163.MCT-04-0234
Nakatsu N., Yoshida Y., Yamazaki K., Nakamura T., Dan S., Fukui Y., Yamori T.
Chemosensitivity profile of cancer cell lines and identification of genes determining chemosensitivity by an integrated bioinformatical approach using cDNA arrays.
Mol. Cancer Ther. 4:399-412(2005)
PubMed=16935386; DOI=10.1016/j.jhep.2006.05.019
Sun D.-X., Nassal M.
Stable HepG2- and Huh7-based human hepatoma cell lines for efficient regulated expression of infectious hepatitis B virus.
J. Hepatol. 45:636-645(2006)
PubMed=20215515; DOI=10.1158/0008-5472.CAN-09-3458; PMCID=PMC2881662
Rothenberg S.M., Mohapatra G., Rivera M.N., Winokur D., Greninger P., Nitta M., Sadow P.M., Sooriyakumar G., Brannigan B.W., Ulman M.J., Perera R.M., Wang R., Tam A., Ma X.-J., Erlander M., Sgroi D.C., Rocco J.W., Lingen M.W., Cohen E.E.W., Louis D.N., Settleman J., Haber D.A.
A genome-wide screen for microdeletions reveals disruption of polarity complex genes in diverse human cancers.
Cancer Res. 70:2158-2164(2010)
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Barretina J.G., Caponigro G., Stransky N., Venkatesan K., Margolin A.A., Kim S., Wilson C.J., Lehar J., Kryukov G.V., Sonkin D., Reddy A., Liu M., Murray L., Berger M.F., Monahan J.E., Morais P., Meltzer J., Korejwa A., Jane-Valbuena J., Mapa F.A., Thibault J., Bric-Furlong E., Raman P., Shipway A., Engels I.H., Cheng J., Yu G.-Y.K., Yu J.-J., Aspesi P. Jr., de Silva M., Jagtap K., Jones M.D., Wang L., Hatton C., Palescandolo E., Gupta S., Mahan S., Sougnez C., Onofrio R.C., Liefeld T., MacConaill L.E., Winckler W., Reich M., Li N.-X., Mesirov J.P., Gabriel S.B., Getz G., Ardlie K., Chan V., Myer V.E., Weber B.L., Porter J., Warmuth M., Finan P., Harris J.L., Meyerson M.L., Golub T.R., Morrissey M.P., Sellers W.R., Schlegel R., Garraway L.A.
The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.
Nature 483:603-607(2012)
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Murayama A., Sugiyama N., Yoshimura S., Ishihara-Sugano M., Masaki T., Kim S., Wakita T., Mishiro S., Kato T.
A subclone of HuH-7 with enhanced intracellular hepatitis C virus production and evasion of virus related-cell cycle arrest.
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Wang K., Lim H.Y., Shi S., Lee J., Deng S.-B., Xie T., Zhu Z., Wang Y.-L., Pocalyko D., Yang W.J., Rejto P.A., Mao M., Park C.-K., Xu J.-C.
Genomic landscape of copy number aberrations enables the identification of oncogenic drivers in hepatocellular carcinoma.
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Nault J.-C., Mallet M., Pilati C., Calderaro J., Bioulac-Sage P., Laurent C., Laurent A., Cherqui D., Balabaud C., Zucman-Rossi J.
High frequency of telomerase reverse-transcriptase promoter somatic mutations in hepatocellular carcinoma and preneoplastic lesions.
Nat. Commun. 4:2218.1-2218.7(2013)
PubMed=24973239; DOI=10.1099/vir.0.065995-0
Richter M., Reimann I., Schirrmeier H., Kirkland P.D., Beer M.
The viral envelope is not sufficient to transfer the unique broad cell tropism of Bungowannah virus to a related pestivirus.
J. Gen. Virol. 95:2216-2222(2014)
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Klijn C., Durinck S., Stawiski E.W., Haverty P.M., Jiang Z.-S., Liu H.-B., Degenhardt J., Mayba O., Gnad F., Liu J.-F., Pau G., Reeder J., Cao Y., Mukhyala K., Selvaraj S.K., Yu M.-M., Zynda G.J., Brauer M.J., Wu T.D., Gentleman R.C., Manning G., Yauch R.L., Bourgon R., Stokoe D., Modrusan Z., Neve R.M., de Sauvage F.J., Settleman J., Seshagiri S., Zhang Z.-M.
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Common telomerase reverse transcriptase promoter mutations in hepatocellular carcinomas from different geographical locations.
World J. Gastroenterol. 21:311-317(2015)
PubMed=25877200; DOI=10.1038/nature14397
Yu M., Selvaraj S.K., Liang-Chu M.M.Y., Aghajani S., Busse M., Yuan J., Lee G., Peale F.V., Klijn C., Bourgon R., Kaminker J.S., Neve R.M.
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Scholtalbers J., Boegel S., Bukur T., Byl M., Goerges S., Sorn P., Loewer M., Sahin U., Castle J.C.
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PubMed=27329724; DOI=10.18632/oncotarget.10161; PMCID=PMC5216950
Watari K., Nishitani A., Shibata T., Noda M., Kawahara A., Akiba J., Murakami Y., Yano H., Kuwano M., Ono M.
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Oncotarget 7:47403-47417(2016)
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Shi J., Wang X.-W., Lyu L.-Y., Jiang H., Zhu H.-J.
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PubMed=30894373; DOI=10.1158/0008-5472.CAN-18-2747; PMCID=PMC6445675
Dutil J., Chen Z.-H., Monteiro A.N.A., Teer J.K., Eschrich S.A.
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Next-generation characterization of the Cancer Cell Line Encyclopedia.
Nature 569:503-508(2019)
PubMed=31378681; DOI=10.1016/j.ccell.2019.07.001; PMCID=PMC7505724
Qiu Z.-X., Li H., Zhang Z.-T., Zhu Z.-F., He S., Wang X.-J., Wang P.-C., Qin J.-J., Zhuang L.-P., Wang W., Xie F.-B., Gu Y., Zou K.-K., Li C., Li C., Wang C.-H., Cen J., Chen X.-T., Shu Y.-J., Zhang Z., Sun L.-L., Min L.-H., Fu Y., Huang X.-W., Lv H., Zhou H., Ji Y., Zhang Z.-G., Meng Z.-Q., Shi X.-L., Zhang H.-B., Li Y.-X., Hui L.-J.
A pharmacogenomic landscape in human liver cancers.
Cancer Cell 36:179-193.e11(2019)
PubMed=31395879; DOI=10.1038/s41467-019-11415-2; PMCID=PMC6687785
Yu K., Chen B., Aran D., Charalel J., Yau C., Wolf D.M., van 't Veer L.J., Butte A.J., Goldstein T., Sirota M.
Comprehensive transcriptomic analysis of cell lines as models of primary tumors across 22 tumor types.
Nat. Commun. 10:3574.1-3574.11(2019)
PubMed=31903165; DOI=10.18632/oncotarget.27361; PMCID=PMC6925031
Zheng A., Chevalier N., Calderoni M., Dubuis G., Dormond O., Ziros P.G., Sykiotis G.P., Widmann C.
CRISPR/Cas9 genome-wide screening identifies KEAP1 as a sorafenib, lenvatinib, and regorafenib sensitivity gene in hepatocellular carcinoma.
Oncotarget 10:7058-7070(2019)
PubMed=31978347; DOI=10.1016/j.cell.2019.12.023; PMCID=PMC7339254
Nusinow D.P., Szpyt J., Ghandi M., Rose C.M., McDonald E.R. 3rd, Kalocsay M., Jane-Valbuena J., Gelfand E.T., Schweppe D.K., Jedrychowski M.P., Golji J., Porter D.A., Rejtar T., Wang Y.K., Kryukov G.V., Stegmeier F., Erickson B.K., Garraway L.A., Sellers W.R., Gygi S.P.
Quantitative proteomics of the Cancer Cell Line Encyclopedia.
Cell 180:387-402.e16(2020)
PubMed=32899426; DOI=10.3390/cancers12092510; PMCID=PMC7565451
Scherer D., Davila-Lopez M., Goeppert B., Abrahamsson S., Gonzalez Silos R., Nova I., Marcelain K., Roa J.C., Ibberson D., Umu S.U., Rounge T.B., Roessler S., Lorenzo-Bermejo J.
RNA sequencing of hepatobiliary cancer cell lines: data and applications to mutational and transcriptomic profiling.
Cancers (Basel) 12:2510.1-2510.14(2020)
PubMed=33193621; DOI=10.3389/fgene.2020.546106; PMCID=PMC7581915
Kawamoto M., Yamaji T., Saito K., Shirasago Y., Satomura K., Endo T., Fukasawa M., Hanada K., Osada N.
Identification of characteristic genomic markers in human hepatoma Huh-7 and Huh7.5.1-8 cell lines.
Front. Genet. 11:546106.1-546106.10(2020)"
Puisieux A., Galvin K., Troalen F., Bressac B., Marcais C., Galun E., Ponchel F., Yakicier C., Ji J.-W., Ozturk M.
Retinoblastoma and p53 tumor suppressor genes in human hepatoma cell lines.
FASEB J. 7:1407-1413(1993)
PubMed=8389256; DOI=10.1093/carcin/14.5.987
Hsu I.-C., Tokiwa T., Bennett W.P., Metcalf R.A., Welsh J.A., Sun T.-T., Harris C.C.
p53 gene mutation and integrated hepatitis B viral DNA sequences in human liver cancer cell lines.
Carcinogenesis 14:987-992(1993)
PubMed=8835345; DOI=10.1002/(SICI)1096-9071(199602)48:2<133::AID-JMV3>3.0.CO;2-A
Tsuboi S., Nagamori S., Miyazaki M., Mihara K., Fukaya K.-i., Teruya K., Kosaka T., Tsuji T., Namba M.
Persistence of hepatitis C virus RNA in established human hepatocellular carcinoma cell lines.
J. Med. Virol. 48:133-140(1996)
DOI=10.11418/jtca1981.16.3_173
Mihara K., Miyazaki M., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ohashi R., Namba M.
The p53 gene status and other cellular characteristics of human cell lines maintained in our laboratory.
Tissue Cult. Res. Commun. 16:173-178(1997)
PubMed=9290701; DOI=10.1002/(SICI)1098-2744(199708)19:4<243::AID-MC5>3.0.CO;2-D
Jia L.-Q., Osada M., Ishioka C., Gamo M., Ikawa S., Suzuki T., Shimodaira H., Niitani T., Kudo T., Akiyama M., Kimura N., Matsuo M., Mizusawa H., Tanaka N., Koyama H., Namba M., Kanamaru R., Kuroki T.
Screening the p53 status of human cell lines using a yeast functional assay.
Mol. Carcinog. 19:243-253(1997)
PubMed=9359923; DOI=10.18926/AMO/30789
Mihara K., Miyazaki M., Kondo T., Fushimi K., Tsuji T., Inoue Y., Fukaya K.-i., Ishioka C., Namba M.
Yeast functional assay of the p53 gene status in human cell lines maintained in our laboratory.
Acta Med. Okayama 51:261-265(1997)
PubMed=10523694; DOI=10.3892/or.6.6.1267
Gao C., Ohashi R., Pu H., Inoue Y., Tsuji T., Miyazaki M., Namba M.
Yeast functional assay of the p53 gene status in 11 cell lines and 26 surgical specimens of human hepatocellular carcinoma.
Oncol. Rep. 6:1267-1271(1999)
PubMed=11152498; DOI=10.1128/JVI.75.3.1252-1264.2001; PMCID=PMC114031
Pietschmann T., Lohmann V., Rutter G., Kurpanek K., Bartenschlager R.F.W.
Characterization of cell lines carrying self-replicating hepatitis C virus RNAs.
J. Virol. 75:1252-1264(2001)
PubMed=12029633; DOI=10.1053/jhep.2002.33683
Yasui K., Arii S., Zhao C., Imoto I., Ueda M., Nagai H., Emi M., Inazawa J.
TFDP1, CUL4A, and CDC16 identified as targets for amplification at 13q34 in hepatocellular carcinomas.
Hepatology 35:1476-1484(2002)
PubMed=15708988; DOI=10.1128/JVI.79.5.2689-2699.2005; PMCID=PMC548482
Sumpter R.M. Jr., Loo Y.-M., Foy E.M., Li K., Yoneyama M., Fujita T., Lemon S.M., Gale M. Jr.
Regulating intracellular antiviral defense and permissiveness to hepatitis C virus RNA replication through a cellular RNA helicase, RIG-I.
J. Virol. 79:2689-2699(2005)
PubMed=15767549; DOI=10.1158/1535-7163.MCT-04-0234
Nakatsu N., Yoshida Y., Yamazaki K., Nakamura T., Dan S., Fukui Y., Yamori T.
Chemosensitivity profile of cancer cell lines and identification of genes determining chemosensitivity by an integrated bioinformatical approach using cDNA arrays.
Mol. Cancer Ther. 4:399-412(2005)
PubMed=16935386; DOI=10.1016/j.jhep.2006.05.019
Sun D.-X., Nassal M.
Stable HepG2- and Huh7-based human hepatoma cell lines for efficient regulated expression of infectious hepatitis B virus.
J. Hepatol. 45:636-645(2006)
PubMed=20215515; DOI=10.1158/0008-5472.CAN-09-3458; PMCID=PMC2881662
Rothenberg S.M., Mohapatra G., Rivera M.N., Winokur D., Greninger P., Nitta M., Sadow P.M., Sooriyakumar G., Brannigan B.W., Ulman M.J., Perera R.M., Wang R., Tam A., Ma X.-J., Erlander M., Sgroi D.C., Rocco J.W., Lingen M.W., Cohen E.E.W., Louis D.N., Settleman J., Haber D.A.
A genome-wide screen for microdeletions reveals disruption of polarity complex genes in diverse human cancers.
Cancer Res. 70:2158-2164(2010)
PubMed=22460905; DOI=10.1038/nature11003; PMCID=PMC3320027
Barretina J.G., Caponigro G., Stransky N., Venkatesan K., Margolin A.A., Kim S., Wilson C.J., Lehar J., Kryukov G.V., Sonkin D., Reddy A., Liu M., Murray L., Berger M.F., Monahan J.E., Morais P., Meltzer J., Korejwa A., Jane-Valbuena J., Mapa F.A., Thibault J., Bric-Furlong E., Raman P., Shipway A., Engels I.H., Cheng J., Yu G.-Y.K., Yu J.-J., Aspesi P. Jr., de Silva M., Jagtap K., Jones M.D., Wang L., Hatton C., Palescandolo E., Gupta S., Mahan S., Sougnez C., Onofrio R.C., Liefeld T., MacConaill L.E., Winckler W., Reich M., Li N.-X., Mesirov J.P., Gabriel S.B., Getz G., Ardlie K., Chan V., Myer V.E., Weber B.L., Porter J., Warmuth M., Finan P., Harris J.L., Meyerson M.L., Golub T.R., Morrissey M.P., Sellers W.R., Schlegel R., Garraway L.A.
The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity.
Nature 483:603-607(2012)
PubMed=23285155; DOI=10.1371/journal.pone.0052697; PMCID=PMC3527576
Murayama A., Sugiyama N., Yoshimura S., Ishihara-Sugano M., Masaki T., Kim S., Wakita T., Mishiro S., Kato T.
A subclone of HuH-7 with enhanced intracellular hepatitis C virus production and evasion of virus related-cell cycle arrest.
PLoS ONE 7:E52697-E52697(2012)
PubMed=23505090; DOI=10.1002/hep.26402
Wang K., Lim H.Y., Shi S., Lee J., Deng S.-B., Xie T., Zhu Z., Wang Y.-L., Pocalyko D., Yang W.J., Rejto P.A., Mao M., Park C.-K., Xu J.-C.
Genomic landscape of copy number aberrations enables the identification of oncogenic drivers in hepatocellular carcinoma.
Hepatology 58:706-717(2013)
PubMed=23887712; DOI=10.1038/ncomms3218; PMCID=PMC3731665
Nault J.-C., Mallet M., Pilati C., Calderaro J., Bioulac-Sage P., Laurent C., Laurent A., Cherqui D., Balabaud C., Zucman-Rossi J.
High frequency of telomerase reverse-transcriptase promoter somatic mutations in hepatocellular carcinoma and preneoplastic lesions.
Nat. Commun. 4:2218.1-2218.7(2013)
PubMed=24973239; DOI=10.1099/vir.0.065995-0
Richter M., Reimann I., Schirrmeier H., Kirkland P.D., Beer M.
The viral envelope is not sufficient to transfer the unique broad cell tropism of Bungowannah virus to a related pestivirus.
J. Gen. Virol. 95:2216-2222(2014)
PubMed=25485619; DOI=10.1038/nbt.3080
Klijn C., Durinck S., Stawiski E.W., Haverty P.M., Jiang Z.-S., Liu H.-B., Degenhardt J., Mayba O., Gnad F., Liu J.-F., Pau G., Reeder J., Cao Y., Mukhyala K., Selvaraj S.K., Yu M.-M., Zynda G.J., Brauer M.J., Wu T.D., Gentleman R.C., Manning G., Yauch R.L., Bourgon R., Stokoe D., Modrusan Z., Neve R.M., de Sauvage F.J., Settleman J., Seshagiri S., Zhang Z.-M.
A comprehensive transcriptional portrait of human cancer cell lines.
Nat. Biotechnol. 33:306-312(2015)
PubMed=25574106; DOI=10.3748/wjg.v21.i1.311; PMCID=PMC4284350
Cevik D., Yildiz G., Ozturk M.
Common telomerase reverse transcriptase promoter mutations in hepatocellular carcinomas from different geographical locations.
World J. Gastroenterol. 21:311-317(2015)
PubMed=25877200; DOI=10.1038/nature14397
Yu M., Selvaraj S.K., Liang-Chu M.M.Y., Aghajani S., Busse M., Yuan J., Lee G., Peale F.V., Klijn C., Bourgon R., Kaminker J.S., Neve R.M.
A resource for cell line authentication, annotation and quality control.
Nature 520:307-311(2015)
PubMed=26589293; DOI=10.1186/s13073-015-0240-5; PMCID=PMC4653878
Scholtalbers J., Boegel S., Bukur T., Byl M., Goerges S., Sorn P., Loewer M., Sahin U., Castle J.C.
TCLP: an online cancer cell line catalogue integrating HLA type, predicted neo-epitopes, virus and gene expression.
Genome Med. 7:118.1-118.7(2015)
PubMed=27329724; DOI=10.18632/oncotarget.10161; PMCID=PMC5216950
Watari K., Nishitani A., Shibata T., Noda M., Kawahara A., Akiba J., Murakami Y., Yano H., Kuwano M., Ono M.
Phosphorylation of mTOR Ser2481 is a key target limiting the efficacy of rapalogs for treating hepatocellular carcinoma.
Oncotarget 7:47403-47417(2016)
PubMed=27397505; DOI=10.1016/j.cell.2016.06.017; PMCID=PMC4967469
Iorio F., Knijnenburg T.A., Vis D.J., Bignell G.R., Menden M.P., Schubert M., Aben N., Goncalves E., Barthorpe S., Lightfoot H., Cokelaer T., Greninger P., van Dyk E., Chang H., de Silva H., Heyn H., Deng X.-M., Egan R.K., Liu Q.-S., Miroo T., Mitropoulos X., Richardson L., Wang J.-H., Zhang T.-H., Moran S., Sayols S., Soleimani M., Tamborero D., Lopez-Bigas N., Ross-Macdonald P., Esteller M., Gray N.S., Haber D.A., Stratton M.R., Benes C.H., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Garnett M.J.
A landscape of pharmacogenomic interactions in cancer.
Cell 166:740-754(2016)
PubMed=28196595; DOI=10.1016/j.ccell.2017.01.005; PMCID=PMC5501076
Li J., Zhao W., Akbani R., Liu W.-B., Ju Z.-L., Ling S.-Y., Vellano C.P., Roebuck P., Yu Q.-H., Eterovic A.K., Byers L.A., Davies M.A., Deng W.-L., Gopal Y.N.V., Chen G., von Euw E.M., Slamon D.J., Conklin D., Heymach J.V., Gazdar A.F., Minna J.D., Myers J.N., Lu Y.-L., Mills G.B., Liang H.
Characterization of human cancer cell lines by reverse-phase protein arrays.
Cancer Cell 31:225-239(2017)
PubMed=29610054; DOI=10.1016/j.dmpk.2018.03.003; PMCID=PMC6309175
Shi J., Wang X.-W., Lyu L.-Y., Jiang H., Zhu H.-J.
Comparison of protein expression between human livers and the hepatic cell lines HepG2, Hep3B, and Huh7 using SWATH and MRM-HR proteomics: Focusing on drug-metabolizing enzymes.
Drug Metab. Pharmacokinet. 33:133-140(2018)
PubMed=29774518; DOI=10.1007/s13577-018-0212-3; PMCID=PMC6002425
Kasai F., Hirayama N., Ozawa M., Satoh M., Kohara A.
HuH-7 reference genome profile: complex karyotype composed of massive loss of heterozygosity.
Hum. Cell 31:261-267(2018)
PubMed=30894373; DOI=10.1158/0008-5472.CAN-18-2747; PMCID=PMC6445675
Dutil J., Chen Z.-H., Monteiro A.N.A., Teer J.K., Eschrich S.A.
An interactive resource to probe genetic diversity and estimated ancestry in cancer cell lines.
Cancer Res. 79:1263-1273(2019)
PubMed=31063779; DOI=10.1053/j.gastro.2019.05.001
Caruso S., Calatayud A.-L., Pilet J., La Bella T., Rekik S., Imbeaud S., Letouze E., Meunier L., Bayard Q., Rohr-Udilova N., Peneau C., Grasl-Kraupp B., de Koning L., Ouine B., Bioulac-Sage P., Couchy G., Calderaro J., Nault J.-C., Zucman-Rossi J., Rebouissou S.
Analysis of liver cancer cell lines identifies agents with likely efficacy against hepatocellular carcinoma and markers of response.
Gastroenterology 157:760-776(2019)
PubMed=31068700; DOI=10.1038/s41586-019-1186-3; PMCID=PMC6697103
Ghandi M., Huang F.W., Jane-Valbuena J., Kryukov G.V., Lo C.C., McDonald E.R. 3rd, Barretina J.G., Gelfand E.T., Bielski C.M., Li H.-X., Hu K., Andreev-Drakhlin A.Y., Kim J., Hess J.M., Haas B.J., Aguet F., Weir B.A., Rothberg M.V., Paolella B.R., Lawrence M.S., Akbani R., Lu Y.-L., Tiv H.L., Gokhale P.C., de Weck A., Mansour A.A., Oh C., Shih J., Hadi K., Rosen Y., Bistline J., Venkatesan K., Reddy A., Sonkin D., Liu M., Lehar J., Korn J.M., Porter D.A., Jones M.D., Golji J., Caponigro G., Taylor J.E., Dunning C.M., Creech A.L., Warren A.C., McFarland J.M., Zamanighomi M., Kauffmann A., Stransky N., Imielinski M., Maruvka Y.E., Cherniack A.D., Tsherniak A., Vazquez F., Jaffe J.D., Lane A.A., Weinstock D.M., Johannessen C.M., Morrissey M.P., Stegmeier F., Schlegel R., Hahn W.C., Getz G., Mills G.B., Boehm J.S., Golub T.R., Garraway L.A., Sellers W.R.
Next-generation characterization of the Cancer Cell Line Encyclopedia.
Nature 569:503-508(2019)
PubMed=31378681; DOI=10.1016/j.ccell.2019.07.001; PMCID=PMC7505724
Qiu Z.-X., Li H., Zhang Z.-T., Zhu Z.-F., He S., Wang X.-J., Wang P.-C., Qin J.-J., Zhuang L.-P., Wang W., Xie F.-B., Gu Y., Zou K.-K., Li C., Li C., Wang C.-H., Cen J., Chen X.-T., Shu Y.-J., Zhang Z., Sun L.-L., Min L.-H., Fu Y., Huang X.-W., Lv H., Zhou H., Ji Y., Zhang Z.-G., Meng Z.-Q., Shi X.-L., Zhang H.-B., Li Y.-X., Hui L.-J.
A pharmacogenomic landscape in human liver cancers.
Cancer Cell 36:179-193.e11(2019)
PubMed=31395879; DOI=10.1038/s41467-019-11415-2; PMCID=PMC6687785
Yu K., Chen B., Aran D., Charalel J., Yau C., Wolf D.M., van 't Veer L.J., Butte A.J., Goldstein T., Sirota M.
Comprehensive transcriptomic analysis of cell lines as models of primary tumors across 22 tumor types.
Nat. Commun. 10:3574.1-3574.11(2019)
PubMed=31903165; DOI=10.18632/oncotarget.27361; PMCID=PMC6925031
Zheng A., Chevalier N., Calderoni M., Dubuis G., Dormond O., Ziros P.G., Sykiotis G.P., Widmann C.
CRISPR/Cas9 genome-wide screening identifies KEAP1 as a sorafenib, lenvatinib, and regorafenib sensitivity gene in hepatocellular carcinoma.
Oncotarget 10:7058-7070(2019)
PubMed=31978347; DOI=10.1016/j.cell.2019.12.023; PMCID=PMC7339254
Nusinow D.P., Szpyt J., Ghandi M., Rose C.M., McDonald E.R. 3rd, Kalocsay M., Jane-Valbuena J., Gelfand E.T., Schweppe D.K., Jedrychowski M.P., Golji J., Porter D.A., Rejtar T., Wang Y.K., Kryukov G.V., Stegmeier F., Erickson B.K., Garraway L.A., Sellers W.R., Gygi S.P.
Quantitative proteomics of the Cancer Cell Line Encyclopedia.
Cell 180:387-402.e16(2020)
PubMed=32899426; DOI=10.3390/cancers12092510; PMCID=PMC7565451
Scherer D., Davila-Lopez M., Goeppert B., Abrahamsson S., Gonzalez Silos R., Nova I., Marcelain K., Roa J.C., Ibberson D., Umu S.U., Rounge T.B., Roessler S., Lorenzo-Bermejo J.
RNA sequencing of hepatobiliary cancer cell lines: data and applications to mutational and transcriptomic profiling.
Cancers (Basel) 12:2510.1-2510.14(2020)
PubMed=33193621; DOI=10.3389/fgene.2020.546106; PMCID=PMC7581915
Kawamoto M., Yamaji T., Saito K., Shirasago Y., Satomura K., Endo T., Fukasawa M., Hanada K., Osada N.
Identification of characteristic genomic markers in human hepatoma Huh-7 and Huh7.5.1-8 cell lines.
Front. Genet. 11:546106.1-546106.10(2020)"
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