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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:
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
- 规格:
1*10(6)Cellls/瓶
"COLO 205人结肠癌传代细胞全年复苏|送STR图谱
传代方法:1:2-1:4(首次传代建议1:2)
生长特性:贴壁生长
换液频率:每周2-3次
背景资料:该细胞系是1957年由T.U.Sle等从患有结肠癌的70岁男性白人的腹水中分离的。该病人在取腹水样前已用5-尿嘧啶治疗4~6周。角蛋白免疫过氧化物酶染色阳性;产生A、IL10。
【细胞培养经验分享】启蒙老师的重要性:一般进实验室都有师兄师姐带着做,他们就是你做细胞的启蒙老师。他们的操作手法、细节、理论讲解就成了你操作的准则,如营养液、细胞瓶的摆放位置、灭菌处理程序、开盖手法、细胞吹打手法等等。要学会他们的正确操作,在第一次的时候就要重视。像养孩子一样养细胞,细胞有时真的很脆弱,最好每天都去看看它,以防止出现培养箱缺水、缺二氧化碳、停电、温度不够等异常现象,也好及时解决这些意外,避免重复实验带来的更大痛苦。好细胞要及时保种:细胞要分批传代,这样即使有一批出了问题,还有一批备用的。像后者一般人可能不容易做到。但这是我血的教训,有一次细胞污染了,全军覆没。当时可后悔没有保种。细胞跟人一样,不同的细胞,培养特性是不一样的。培养过程中要细细体会,不同细胞系使用不同的培养基和血清。
B5537SKIN Cells;背景说明: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:MLTC-1 Cells、HT 29 Cells、OVCAR-3 Cells
D-324 Med 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:NCI-SNU-182 Cells、HCT-116 Cells、H2066 Cells
RS4:11 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:成淋巴细胞;相关产品有:PC-3/M Cells、Ramos (RA 1) Cells、COLO-394 Cells
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COLO 205人结肠癌传代细胞全年复苏|送STR图谱
产品包装形式:复苏细胞:T25培养瓶(一瓶)或冻存细胞:1ml冻存管(两支)
贴壁细胞的传代培养,详细步骤如下:首先倒掉培养基,在这一步骤可以收集一些细胞上清做支原体检测;加入胰蛋白酶,一般T25是加2mL,盖好瓶盖,摇晃T25培养瓶,使胰蛋白酶均匀覆盖在细胞表面,放入培养箱2-3min,期间可在显微镜下观察,看到大部分细胞变圆,即可放入超净台,加入2倍的完全培养基,这里就是加4mL培养基,终止消化;将含有胰蛋白酶,细胞和培养基一起转移到离心管中,1000rpm/3min离心,去掉上清;新鲜的完全培养基重悬,根据细胞的生长特性和后续的实验需求进行传代,比如我养的Hepa1-6就长的比较快,不是着急用的话,我就会按1E6个细胞/T75培养瓶进行传代;但如果后两天要用,就会适当多传一点;还可通过显微镜计数后,直接用于细胞铺板,继续后续的实验。
GM10119 Cells(拥有STR基因鉴定图谱)
HAP1 C15orf61 (-) 4 Cells(拥有STR基因鉴定图谱)
SW403 Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:6传代,每周换液2-3次;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:V-79 Cells、no-11 Cells、6T-CEM Cells
来源说明:细胞主要来源ATCC、DSMZ等细胞库
物种来源:Human\Mouse\Rat\Others
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COLO 205人结肠癌传代细胞全年复苏|送STR图谱
形态特性:上皮细胞样
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细胞株(系)的使用,为医学研究和测试工作带来了大的方便。但细胞的传代是有限制的,长期连续传代的细胞,不仅消耗大量的人力和物力,而且细胞的生长与形态等会有一定退变或转化,因而细胞失去原有的遗传性,有时还会由于细胞污染而造成传代中断,种子丢失。因此,在实际工作中常需冻存一定数量的细胞,以备替换使用。细胞冷冻与复苏是细胞培养 室的常规工作和通用技术。目前,细胞冻存Zui常用的技术是冷冻保存法,主要采用加适量保护剂的缓慢冷冻法冻存细胞。细胞在不加任何保护剂的情况下直接冷冻,细胞内外的水分会很快形成冰晶,从而引起一系列不良反应。如细胞脱水使局部电解质浓度增GAO,pH值改变,部分蛋白质由于上述原因而变性,引起细胞内部空间结构紊乱,溶酶体膜由此遭到损伤而释放出溶酶体酶,使细胞内结构成分造成破坏,线粒体肿胀,功能丢失,并造成能量代谢障碍。胞膜上的类脂蛋白复合体也易破坏引起细胞膜通透性的改变,使细胞内容物丢失。如果细胞内冰晶形成较多,随冷冻温度的降低,冰晶体积膨胀造成细胞核DNA空间构型发生不可逆的损伤,而致细胞死亡。因此,细胞冷冻技术的关键是尽可能地减少细胞内水分,减少细胞内冰晶的形成。采用甘油或二甲基亚砜作保护剂,这两种物质分子量小,溶解度大,易穿透细胞,可以使冰点下降,提GAO细胞膜对水的通透性,且对细胞无明显毒性。慢速冷冻方法又可使细胞内的水分渗出细胞外,减少胞内形成冰结晶的机会,从而减少冰晶对细胞的损伤。
SNU761 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:NCIH1694 Cells、H1755 Cells、Bac 1.2F5 Cells
CCD 966SK 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:MS 751 Cells、DHL8 Cells、TGBC11TKB Cells
OCI-Ly03 Cells;背景说明:弥漫大B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:L929 Cells、A-253 Cells、MC/9 Cells
130T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,3-4天换液1次。;生长特性:贴壁生长;形态特性:梭型和大的多核细胞;相关产品有:L 132 Cells、HuPT4 Cells、F81 Cells
MRC-5 Cells;背景说明:MRC-5细胞系来自14周龄男性胎儿的正常肺组织,该细胞老化前能传代42~46个倍增时间。;传代方法:1:2-1:5传代;每周1-2次。;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:Huh7.5 Cells、SW 780 Cells、ST2 Cells
SKMES Cells;背景说明:源于一位65岁患有肺鳞状细胞癌的白人男性,自转移性胸腔积液分离而来。;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:THLE2 Cells、HcerEpic Cells、hFOB1.19 Cells
MCF7/WT Cells;背景说明:MCF-7细胞保留了多个分化了的乳腺上皮的特性,包括:能通过胞质雌激素受体加工雌二醇并能形成圆形复合物(domes)。该细胞含有Tx-4癌基因。肿瘤坏死因子α(TNFalpha)可以抑制MCF-7细胞的生长。抗雌激素处理细胞能调变IGFBP'S的分泌。;传代方法:1:2传代,3-4天长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:MDAMB134VI Cells、MMAc-Serum Free Cells、C26 Cells
RS(4;11) 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:成淋巴细胞;相关产品有:Stanford University Pediatric T-cell line 1 Cells、MUTZ1 Cells、THLE2 Cells
Anip 973 Cells;背景说明:肺腺癌;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:OE21 Cells、CCD-966SK Cells、Co 115 Cells
DH-82 Cells;背景说明:肾;Golden Retrieve;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:PANC-03-27 Cells、CMT167 Cells、BC-009 Cells
VeroC1008 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:Bronchial Epithelium transformed with Ad12-SV40 2B Cells、CEMO-1 Cells、EST81 Cells
NCIH3255 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:EAhy 926 Cells、A-375 Cells、VK2 (E6/E7) Cells
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
H4-II-EC3 Cells;背景说明:在糖皮质激素、胰岛素或cAMP衍生物的诱导下可以产生酪酸基转移酶;可被逆转录病毒感染;可产生白蛋白、转铁蛋白、凝血酶原;在AxC大鼠中可以成瘤。;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:SUM-190 Cells、SKRC-20 Cells、T241 Cells
BC3H-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:769P Cells、ETCC007 Cells、GEO Cells
W256 Cells;背景说明:乳腺癌;雌性;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:HUC Cells、SNU-739 Cells、SKMES1 Cells
NIE 115 Cells;背景说明:神经母细胞瘤;雄性;A/J;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:B16-F10-BL6 Cells、Bac1 2F5 Cells、NCIH1395 Cells
Pt K2 (NBL-5) 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:NP69SV40T Cells、Cor L88 Cells、NCIH1650 Cells
A375 Safe Harbor Landing Pad Cells(拥有STR基因鉴定图谱)
Abcam PC-3 C3 KO Cells(拥有STR基因鉴定图谱)
B1A2A Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line RRQ115 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line YHC354 Cells(拥有STR基因鉴定图谱)
CENSOi019-A Cells(拥有STR基因鉴定图谱)
DA01352 Cells(拥有STR基因鉴定图谱)
DHAV-MAb1 Cells(拥有STR基因鉴定图谱)
GM02783 Cells(拥有STR基因鉴定图谱)
RPMI-6666 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:SKG3A Cells、MC-116 Cells、Madin-Darby Bovine Kidney Cells
SNU-886 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:SuDHL 2 Cells、RBL 1 Cells、MIN-6 Cells
H2198 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:Malme3M Cells、NK10a Cells、TB-1 Lu Cells
N1E-115 Cells;背景说明:神经母细胞瘤;雄性;A/J;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:87MG Cells、MDA-MB-175-VII Cells、AML193 Cells
rHSC-99 Cells;背景说明:肝星状 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:624 Cells、Onda 11 Cells、Panc327 Cells
RTMC 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:PL 45 Cells、J-111 Cells、KMH-2 Cells
MDA-MB-361 Cells;背景说明:该细胞源自40岁女性乳腺癌的脑转移组织。;传代方法: 1:2—1:6传代,每周换液2—3次;生长特性:松散贴壁生长;形态特性:上皮细胞样;相关产品有:LICR-LON-HN6 Cells、FU-MMT-1 Cells、Walker256-TC Cells
H2171 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:聚团悬浮;相关产品有:LS513 Cells、293T/17 Cells、HSC-4 Cells
PANC0327 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:3T3 L1 Cells、EU-2 Cells、Granta-519 Cells
HCC0095 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:Ha Fe Cells、L-1210 Cells、VMRCLCD Cells
NCIH1436 Cells;背景说明:详见相关文献介绍;传代方法:随细胞的密度而增加;生长特性:悬浮生长;形态特性:详见产品说明;相关产品有:RD-ES Cells、NR8383 Cells、HLEC Cells
746T 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:MNNG-HOS (Cl#5) Cells、PC3M-2B4 Cells、VM-CUB1 Cells
NCI-H2081 Cells;背景说明:详见相关文献介绍;传代方法:随细胞的密度而增加;生长特性:悬浮生长;形态特性:聚团悬浮;相关产品有:NCI-H102 Cells、Mouse podocyte Cells、Evsa-T Cells
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4T1-luc2 [Caliper] Cells(拥有STR基因鉴定图谱)
Lec1 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:ChaGo-K-1 Cells、Caco-2/BBe 1 Cells、EOMA Cells
16HBE 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:MC38 Cells、RASMC Cells、SNB.19 Cells
U-87MG 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:D341Med Cells、B16/BL6 Cells、TT Cells
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
MOLM16 Cells;背景说明:急性髓系白血病;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:16-HBE14o Cells、CEM-CCRF Cells、HSF Cells
JEKO Cells;背景说明:一位套细胞淋巴瘤患者的巨细胞变种显示白血病转变,从其外周血单核细胞出发建立了MCL细胞株JeKo-1。 JeKo-1细胞EB病毒阴性,并表达一种B细胞表型的IgM。 细胞过表达cyclin D1, Bcl-2, c-Myc 及 Rb 蛋白。 Bcl-1/J(H)基因重排得到了PCR证实。 JeKo-1细胞在SCID小鼠中高成瘤。 [PubMed: 9753063];传代方法:1:2传代。3天内可长满。;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:H-520 Cells、NCIH1975 Cells、33604 Cells
TF1 Cells;背景说明:详见相关文献介绍;传代方法:维持细胞浓度在3×104-5×105 cells/ml;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:NB1-RGB Cells、SHEP1 Cells、BetaTC6 Cells
H-4 Cells;背景说明:H4细胞系建系于1973年。它衍生于一个患神经胶质瘤的37岁病人的脑组织。该细胞的致瘤特性己经被屏蔽,细胞接种动物一般不产生肿瘤结节。该细胞具有修复MNNG损伤5型腺病毒的能力。;传代方法: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:MV522 Cells、EOC20 Cells、RBL 1 Cells
Vero 76 clone 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:EFO 27 Cells、HMCB Cells、PaTu-8988s Cells
NCIH1437 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:6传代,每周换液2次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H1385 Cells、Madison lung Cells、PL11 Cells
THLE2 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:7860 Cells、SCC90 Cells、SNK-6 Cells
National Medical Center-Glioma 1 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:上皮细胞;相关产品有:HBE 135-E6E7 Cells、HSCT6 Cells、KYSE 410 Cells
HG03547 Cells(拥有STR基因鉴定图谱)
IDG-HEK293T-GABRR1-V5-OE Cells(拥有STR基因鉴定图谱)
LPB7 Cells(拥有STR基因鉴定图谱)
NCI-HPN-F1I Cervix Cells(拥有STR基因鉴定图谱)
PathHunter U2OS OPRK1 Total GPCR Internalization Cells(拥有STR基因鉴定图谱)
Ubigene HCT 116 DHODH KO Cells(拥有STR基因鉴定图谱)
VUi004-A Cells(拥有STR基因鉴定图谱)
HAP1 SUN1 (-) 1 Cells(拥有STR基因鉴定图谱)
H-1648 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:OVCAR-3 Cells、MLMEC Cells、CPA47 Cells
Hs578Bst Cells;背景说明:乳腺 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:RCC10 RGB Cells、A427 Cells、EFM192C Cells
MNNG/HOS Cl #5 Cells;背景说明:骨肉瘤;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:Chinese Hamster Lung Cells、CHP-212 Cells、Hs 895 T Cells
PLA802 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:CaES-17 Cells、HS-5 Cells、CCD-19Lu Cells
138MG Cells;背景说明:星形细胞瘤;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:TYKnu Cells、HEK293-EBNA1 Cells、DrG Cells
138MG Cells;背景说明:星形细胞瘤;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:TYKnu Cells、HEK293-EBNA1 Cells、DrG Cells
Hu-P-T3 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:OCM1 Cells、NCI-H28 Cells、526mel Cells
SW-780 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:U-251 MG Cells、Kasumi 1 Cells、ID8 Cells
WIL2 S 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:OSKM-1 Cells、SW-1222 Cells、HCC-2218 Cells
Hopkins-92 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:SKBr3 Cells、H1650 Cells、Panc 4.03 Cells
138 MG Cells;背景说明:星形细胞瘤;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:HCC-9724 Cells、A-204 Cells、C2BBe1 Cells
130T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,3-4天换液1次。;生长特性:贴壁生长;形态特性:梭型和大的多核细胞;相关产品有:L 132 Cells、HuPT4 Cells、F81 Cells
KBM7 Cells;背景说明:慢性髓原白血病;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:C3A Cells、MDA-MB-231-luc Cells、HS-766-T Cells
SW 13 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:CCD18Co Cells、UMUC-14 Cells、CAOV4 Cells
GM15452 Cells;背景说明:1957年,PuckTT从成年中国仓鼠卵巢的活检组织建立了CHO细胞,CHO-K1是CHO的一个亚克隆。CHO-K1的生长需要脯酸。;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:Hs 343.T Cells、Human Hepatocyte Line 5 Cells、COLO 320 Cells
SBG4 Cells(拥有STR基因鉴定图谱)
MA-782 Cells;背景说明:乳腺癌;Balb/c;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:NKT Cells、AR41P Cells、UCLA SO M14 Cells
HEK293-F 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;悬浮生长;形态特性:上皮细胞样;相关产品有:P3-X63Ag8.653 Cells、SKG3A Cells、B4G12 Cells
MGc80-3 Cells;背景说明:1980年建系,人胃癌低分化黏液腺癌组织小块用RPMI-1640培养液培养4天细胞开始生长,首次传代8日。免疫抑制的Wistar雄幼大鼠皮下移植成功。;传代方法:1:3传代,2-3天换液一次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:Hep 3B Cells、T98-G Cells、OVCAR432 Cells
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HS-294-T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:混合星状和多边形;相关产品有:HSAEC1-KT Cells、TC-1[JHU-1] Cells、TALL1 Cells
Michigan Cancer Foundation-7 Cells;背景说明:MCF-7细胞保留了多个分化了的乳腺上皮的特性,包括:能通过胞质雌激素受体加工雌二醇并能形成圆形复合物(domes)。该细胞含有Tx-4癌基因。肿瘤坏死因子α(TNFalpha)可以抑制MCF-7细胞的生长。抗雌激素处理细胞能调变IGFBP'S的分泌。;传代方法:1:2传代,3-4天长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:WM-239 Cells、Hs 888Lu Cells、SW-13 Cells
C3H-10T1/2 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:MUTZ-3 Cells、ATN1 Cells、Hs 281.T Cells
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
HD11 Cells;背景说明:巨噬 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:GM05887 Cells、RPMI-6666 Cells、SKNDZ Cells
A20 Cells;背景说明:淋巴瘤;BALB/cAnN;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:HNE2 Cells、HME1 Cells、95C Cells
CHO-S 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:OPM-2 Cells、NTera2 cl.D1 Cells、KMB17 Cells
BPH-1 Cells;背景说明:良性前列腺增生;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:H711 Cells、HPAF-II/CD18 Cells、NCI-H2444 Cells
HIT T-15 Cells;背景说明:胰岛β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:CORL23 Cells、HRMC Cells、YAC Cells
PC 61-5-3 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:GM637 Cells、GM2131 Cells、Keio University-19-19 Cells
LLC-MK-2 Cells;背景说明:胚胎;肾;自发永生;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:COLO 205 Cells、H2141 Cells、H-524 Cells
FLS Cells;背景说明:滑膜;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:PL 45 Cells、L-cell Cells、CEMO-1 Cells
BayGenomics ES cell line RRB095 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line XE383 Cells(拥有STR基因鉴定图谱)
CVC.1 Cells(拥有STR基因鉴定图谱)
MH134-TC Cells(拥有STR基因鉴定图谱)
SPV-L3 Cells(拥有STR基因鉴定图谱)
LS180-SLC22A18-KO-c5 Cells(拥有STR基因鉴定图谱)
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Genomic and biological characterization of exon 4 KRAS mutations in human cancer.
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PubMed=22068913; DOI=10.1073/pnas.1111840108; PMCID=PMC3219108
Gillet J.-P., Calcagno A.M., Varma S., Marino M., Green L.J., Vora M.I., Patel C., Orina J.N., Eliseeva T.A., Singal V., Padmanabhan R., Davidson B., Ganapathi R., Sood A.K., Rueda B.R., Ambudkar S.V., Gottesman M.M.
Redefining the relevance of established cancer cell lines to the study of mechanisms of clinical anti-cancer drug resistance.
Proc. Natl. Acad. Sci. U.S.A. 108:18708-18713(2011)
PubMed=22347499; DOI=10.1371/journal.pone.0031628; PMCID=PMC3276511
Ruan X.-Y., Kocher J.-P.A., Pommier Y., Liu H.-F., Reinhold W.C.
Mass homozygotes accumulation in the NCI-60 cancer cell lines as compared to HapMap trios, and relation to fragile site location.
PLoS ONE 7:E31628-E31628(2012)
PubMed=22384151; DOI=10.1371/journal.pone.0032096; PMCID=PMC3285665
Lee J.-S., Kim Y.K., Kim H.J., Hajar S., Tan Y.L., Kang N.-Y., Ng S.H., Yoon C.N., Chang Y.-T.
Identification of cancer cell-line origins using fluorescence image-based phenomic screening.
PLoS ONE 7:E32096-E32096(2012)
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=22628656; DOI=10.1126/science.1218595; PMCID=PMC3526189
Jain M., Nilsson R., Sharma S., Madhusudhan N., Kitami T., Souza A.L., Kafri R., Kirschner M.W., Clish C.B., Mootha V.K.
Metabolite profiling identifies a key role for glycine in rapid cancer cell proliferation.
Science 336:1040-1044(2012)
PubMed=23272949; DOI=10.1186/1755-8794-5-66; PMCID=PMC3543849
Schlicker A., Beran G., Chresta C.M., McWalter G., Pritchard A., Weston S., Runswick S., Davenport S., Heathcote K., Castro D.A., Orphanides G., French T., Wessels L.F.A.
Subtypes of primary colorectal tumors correlate with response to targeted treatment in colorectal cell lines.
BMC Med. Genomics 5:66.1-66.15(2012)
PubMed=23631600; DOI=10.1021/pr400260h
Loftus N.J., Lai L., Wilkinson R.W., Odedra R., Wilson I.D., Barnes A.J.
Global metabolite profiling of human colorectal cancer xenografts in mice using HPLC-MS/MS.
J. Proteome Res. 12:2980-2986(2013)
PubMed=23856246; DOI=10.1158/0008-5472.CAN-12-3342; PMCID=PMC4893961
Abaan O.D., Polley E.C., Davis S.R., Zhu Y.-L.J., Bilke S., Walker R.L., Pineda M.A., Gindin Y., Jiang Y., Reinhold W.C., Holbeck S.L., Simon R.M., Doroshow J.H., Pommier Y., Meltzer P.S.
The exomes of the NCI-60 panel: a genomic resource for cancer biology and systems pharmacology.
Cancer Res. 73:4372-4382(2013)
PubMed=23933261; DOI=10.1016/j.celrep.2013.07.018
Moghaddas Gholami A., Hahne H., Wu Z.-X., Auer F.J., Meng C., Wilhelm M., Kuster B.
Global proteome analysis of the NCI-60 cell line panel.
Cell Rep. 4:609-620(2013)
PubMed=24279929; DOI=10.1186/2049-3002-1-20; PMCID=PMC4178206
Dolfi S.C., Chan L.L.-Y., Qiu J., Tedeschi P.M., Bertino J.R., Hirshfield K.M., Oltvai Z.N., Vazquez A.
The metabolic demands of cancer cells are coupled to their size and protein synthesis rates.
Cancer Metab. 1:20.1-20.13(2013)
PubMed=24670534; DOI=10.1371/journal.pone.0092047; PMCID=PMC3966786
Varma S., Pommier Y., Sunshine M., Weinstein J.N., Reinhold W.C.
High resolution copy number variation data in the NCI-60 cancer cell lines from whole genome microarrays accessible through CellMiner.
PLoS ONE 9:E92047-E92047(2014)
PubMed=24755471; DOI=10.1158/0008-5472.CAN-14-0013
Mouradov D., Sloggett C., Jorissen R.N., Love C.G., Li S., Burgess A.W., Arango D., Strausberg R.L., Buchanan D., Wormald S., O'Connor L., Wilding J.L., Bicknell D.C., Tomlinson I.P.M., Bodmer W.F., Mariadason J.M., Sieber O.M.
Colorectal cancer cell lines are representative models of the main molecular subtypes of primary cancer.
Cancer Res. 74:3238-3247(2014)
PubMed=25984343; DOI=10.1038/sdata.2014.35; PMCID=PMC4432652
Cowley G.S., Weir B.A., Vazquez F., Tamayo P., Scott J.A., Rusin S., East-Seletsky A., Ali L.D., Gerath W.F.J., Pantel S.E., Lizotte P.H., Jiang G.-Z., Hsiao J., Tsherniak A., Dwinell E., Aoyama S., Okamoto M., Harrington W., Gelfand E.T., Green T.M., Tomko M.J., Gopal S., Wong T.C., Li H.-B., Howell S., Stransky N., Liefeld T., Jang D., Bistline J., Meyers B.H., Armstrong S.A., Anderson K.C., Stegmaier K., Reich M., Pellman D., Boehm J.S., Mesirov J.P., Golub T.R., Root D.E., Hahn W.C.
Parallel genome-scale loss of function screens in 216 cancer cell lines for the identification of context-specific genetic dependencies.
Sci. Data 1:140035-140035(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=25841592; DOI=10.1016/j.jprot.2015.03.019
Piersma S.R., Knol J.C., de Reus I., Labots M., Sampadi B.K., Pham T.V., Ishihama Y., Verheul H.M.W., Jimenez C.R.
Feasibility of label-free phosphoproteomics and application to base-line signaling of colorectal cancer cell lines.
J. Proteomics 127:247-258(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=25926053; DOI=10.1038/ncomms8002
Medico E., Russo M., Picco G., Cancelliere C., Valtorta E., Corti G., Buscarino M., Isella C., Lamba S., Martinoglio B., Veronese S., Siena S., Sartore-Bianchi A., Beccuti M., Mottolese M., Linnebacher M., Cordero F., Di Nicolantonio F., Bardelli A.
The molecular landscape of colorectal cancer cell lines unveils clinically actionable kinase targets.
Nat. Commun. 6:7002.1-7002.10(2015)
PubMed=25944804; DOI=10.1158/1078-0432.CCR-14-2457
Bazzocco S., Dopeso H., Carton-Garcia F., Macaya I., Andretta E., Chionh F., Rodrigues P., Garrido M., Alazzouzi H., Nieto R., Sanchez A., Schwartz S. Jr., Bilic J., Mariadason J.M., Arango D.
Highly expressed genes in rapidly proliferating tumor cells as new targets for colorectal cancer treatment.
Clin. Cancer Res. 21:3695-3704(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=26537799; DOI=10.1074/mcp.M115.051235; PMCID=PMC4762531
Holst S., Deuss A.J.M., van Pelt G.W., van Vliet S.J., Garcia-Vallejo J.J., Koeleman C.A.M., Deelder A.M., Mesker W.E., Tollenaar R.A.E.M., Rombouts Y., Wuhrer M.
N-glycosylation profiling of colorectal cancer cell lines reveals association of fucosylation with differentiation and caudal type homebox 1 (CDX1)/villin mRNA expression.
Mol. Cell. Proteomics 15:124-140(2016)
PubMed=27377824; DOI=10.1038/sdata.2016.52; PMCID=PMC4932877
Mestdagh P., Lefever S., Volders P.-J., Derveaux S., Hellemans J., Vandesompele J.
Long non-coding RNA expression profiling in the NCI60 cancer cell line panel using high-throughput RT-qPCR.
Sci. Data 3:160052-160052(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=27807467; DOI=10.1186/s13100-016-0078-4; PMCID=PMC5087121
Zampella J.G., Rodic N., Yang W.R., Huang C.R.L., Welch J., Gnanakkan V.P., Cornish T.C., Boeke J.D., Burns K.H.
A map of mobile DNA insertions in the NCI-60 human cancer cell panel.
Mob. DNA 7:20.1-20.11(2016)
PubMed=28192450; DOI=10.1371/journal.pone.0171435; PMCID=PMC5305277
Fasterius E., Raso C., Kennedy S.A., Rauch N., Lundin P., Kolch W., Uhlen M., Al-Khalili Szigyarto C.
A novel RNA sequencing data analysis method for cell line authentication.
PLoS ONE 12:E0171435-E0171435(2017)
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=28683746; DOI=10.1186/s12943-017-0691-y; PMCID=PMC5498998
Berg K.C.G., Eide P.W., Eilertsen I.A., Johannessen B., Bruun J., Danielsen S.A., Bjornslett M., Meza-Zepeda L.A., Eknaes M., Lind G.E., Myklebost O., Skotheim R.I., Sveen A., Lothe R.A.
Multi-omics of 34 colorectal cancer cell lines -- a resource for biomedical studies.
Mol. Cancer 16:116.1-116.16(2017)
PubMed=28854368; DOI=10.1016/j.celrep.2017.08.010; PMCID=PMC5583477
Roumeliotis T.I., Williams S.P., Goncalves E., Alsinet C., Del Castillo Velasco-Herrera M., Aben N., Ghavidel F.Z., Michaut M., Schubert M., Price S., Wright J.C., Yu L., Yang M., Dienstmann R., Guinney J.H., Beltrao P., Brazma A., Pardo M., Stegle O., Adams D.J., Wessels L.F.A., Saez-Rodriguez J., McDermott U., Choudhary J.S.
Genomic determinants of protein abundance variation in colorectal cancer cells.
Cell Rep. 20:2201-2214(2017)
PubMed=29718670; DOI=10.1021/acs.jproteome.8b00165; PMCID=PMC6670293
Clark D.J., Hu Y.-W., Bocik W., Chen L.-J., Schnaubelt M., Roberts R.R., Shah P., Whiteley G.R., Zhang H.
Evaluation of NCI-7 cell line panel as a reference material for clinical proteomics.
J. Proteome Res. 17:2205-2215(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=30971826; DOI=10.1038/s41586-019-1103-9
Behan F.M., Iorio F., Picco G., Goncalves E., Beaver C.M., Migliardi G., Santos R., Rao Y., Sassi F., Pinnelli M., Ansari R., Harper S., Jackson D.A., McRae R., Pooley R., Wilkinson P., van der Meer D.J., Dow D., Buser-Doepner C.A., Bertotti A., Trusolino L., Stronach E.A., Saez-Rodriguez J., Yusa K., Garnett M.J.
Prioritization of cancer therapeutic targets using CRISPR-Cas9 screens.
Nature 568:511-516(2019)"
传代方法:1:2-1:4(首次传代建议1:2)
生长特性:贴壁生长
换液频率:每周2-3次
背景资料:该细胞系是1957年由T.U.Sle等从患有结肠癌的70岁男性白人的腹水中分离的。该病人在取腹水样前已用5-尿嘧啶治疗4~6周。角蛋白免疫过氧化物酶染色阳性;产生A、IL10。
【细胞培养经验分享】启蒙老师的重要性:一般进实验室都有师兄师姐带着做,他们就是你做细胞的启蒙老师。他们的操作手法、细节、理论讲解就成了你操作的准则,如营养液、细胞瓶的摆放位置、灭菌处理程序、开盖手法、细胞吹打手法等等。要学会他们的正确操作,在第一次的时候就要重视。像养孩子一样养细胞,细胞有时真的很脆弱,最好每天都去看看它,以防止出现培养箱缺水、缺二氧化碳、停电、温度不够等异常现象,也好及时解决这些意外,避免重复实验带来的更大痛苦。好细胞要及时保种:细胞要分批传代,这样即使有一批出了问题,还有一批备用的。像后者一般人可能不容易做到。但这是我血的教训,有一次细胞污染了,全军覆没。当时可后悔没有保种。细胞跟人一样,不同的细胞,培养特性是不一样的。培养过程中要细细体会,不同细胞系使用不同的培养基和血清。
B5537SKIN Cells;背景说明: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:MLTC-1 Cells、HT 29 Cells、OVCAR-3 Cells
D-324 Med 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:NCI-SNU-182 Cells、HCT-116 Cells、H2066 Cells
RS4:11 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:成淋巴细胞;相关产品有:PC-3/M Cells、Ramos (RA 1) Cells、COLO-394 Cells
┈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;
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
产品包装形式:复苏细胞:T25培养瓶(一瓶)或冻存细胞:1ml冻存管(两支)
贴壁细胞的传代培养,详细步骤如下:首先倒掉培养基,在这一步骤可以收集一些细胞上清做支原体检测;加入胰蛋白酶,一般T25是加2mL,盖好瓶盖,摇晃T25培养瓶,使胰蛋白酶均匀覆盖在细胞表面,放入培养箱2-3min,期间可在显微镜下观察,看到大部分细胞变圆,即可放入超净台,加入2倍的完全培养基,这里就是加4mL培养基,终止消化;将含有胰蛋白酶,细胞和培养基一起转移到离心管中,1000rpm/3min离心,去掉上清;新鲜的完全培养基重悬,根据细胞的生长特性和后续的实验需求进行传代,比如我养的Hepa1-6就长的比较快,不是着急用的话,我就会按1E6个细胞/T75培养瓶进行传代;但如果后两天要用,就会适当多传一点;还可通过显微镜计数后,直接用于细胞铺板,继续后续的实验。
GM10119 Cells(拥有STR基因鉴定图谱)
HAP1 C15orf61 (-) 4 Cells(拥有STR基因鉴定图谱)
SW403 Cells;背景说明:详见相关文献介绍;传代方法:1:2—1:6传代,每周换液2-3次;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:V-79 Cells、no-11 Cells、6T-CEM Cells
来源说明:细胞主要来源ATCC、DSMZ等细胞库
物种来源:Human\Mouse\Rat\Others
┈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;
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
形态特性:上皮细胞样
┈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;
细胞株(系)的使用,为医学研究和测试工作带来了大的方便。但细胞的传代是有限制的,长期连续传代的细胞,不仅消耗大量的人力和物力,而且细胞的生长与形态等会有一定退变或转化,因而细胞失去原有的遗传性,有时还会由于细胞污染而造成传代中断,种子丢失。因此,在实际工作中常需冻存一定数量的细胞,以备替换使用。细胞冷冻与复苏是细胞培养 室的常规工作和通用技术。目前,细胞冻存Zui常用的技术是冷冻保存法,主要采用加适量保护剂的缓慢冷冻法冻存细胞。细胞在不加任何保护剂的情况下直接冷冻,细胞内外的水分会很快形成冰晶,从而引起一系列不良反应。如细胞脱水使局部电解质浓度增GAO,pH值改变,部分蛋白质由于上述原因而变性,引起细胞内部空间结构紊乱,溶酶体膜由此遭到损伤而释放出溶酶体酶,使细胞内结构成分造成破坏,线粒体肿胀,功能丢失,并造成能量代谢障碍。胞膜上的类脂蛋白复合体也易破坏引起细胞膜通透性的改变,使细胞内容物丢失。如果细胞内冰晶形成较多,随冷冻温度的降低,冰晶体积膨胀造成细胞核DNA空间构型发生不可逆的损伤,而致细胞死亡。因此,细胞冷冻技术的关键是尽可能地减少细胞内水分,减少细胞内冰晶的形成。采用甘油或二甲基亚砜作保护剂,这两种物质分子量小,溶解度大,易穿透细胞,可以使冰点下降,提GAO细胞膜对水的通透性,且对细胞无明显毒性。慢速冷冻方法又可使细胞内的水分渗出细胞外,减少胞内形成冰结晶的机会,从而减少冰晶对细胞的损伤。
SNU761 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:NCIH1694 Cells、H1755 Cells、Bac 1.2F5 Cells
CCD 966SK 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:MS 751 Cells、DHL8 Cells、TGBC11TKB Cells
OCI-Ly03 Cells;背景说明:弥漫大B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:L929 Cells、A-253 Cells、MC/9 Cells
130T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,3-4天换液1次。;生长特性:贴壁生长;形态特性:梭型和大的多核细胞;相关产品有:L 132 Cells、HuPT4 Cells、F81 Cells
MRC-5 Cells;背景说明:MRC-5细胞系来自14周龄男性胎儿的正常肺组织,该细胞老化前能传代42~46个倍增时间。;传代方法:1:2-1:5传代;每周1-2次。;生长特性:贴壁生长;形态特性:成纤维细胞样;相关产品有:Huh7.5 Cells、SW 780 Cells、ST2 Cells
SKMES Cells;背景说明:源于一位65岁患有肺鳞状细胞癌的白人男性,自转移性胸腔积液分离而来。;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:THLE2 Cells、HcerEpic Cells、hFOB1.19 Cells
MCF7/WT Cells;背景说明:MCF-7细胞保留了多个分化了的乳腺上皮的特性,包括:能通过胞质雌激素受体加工雌二醇并能形成圆形复合物(domes)。该细胞含有Tx-4癌基因。肿瘤坏死因子α(TNFalpha)可以抑制MCF-7细胞的生长。抗雌激素处理细胞能调变IGFBP'S的分泌。;传代方法:1:2传代,3-4天长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:MDAMB134VI Cells、MMAc-Serum Free Cells、C26 Cells
RS(4;11) 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:成淋巴细胞;相关产品有:Stanford University Pediatric T-cell line 1 Cells、MUTZ1 Cells、THLE2 Cells
Anip 973 Cells;背景说明:肺腺癌;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:OE21 Cells、CCD-966SK Cells、Co 115 Cells
DH-82 Cells;背景说明:肾;Golden Retrieve;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:PANC-03-27 Cells、CMT167 Cells、BC-009 Cells
VeroC1008 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:Bronchial Epithelium transformed with Ad12-SV40 2B Cells、CEMO-1 Cells、EST81 Cells
NCIH3255 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:EAhy 926 Cells、A-375 Cells、VK2 (E6/E7) Cells
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
H4-II-EC3 Cells;背景说明:在糖皮质激素、胰岛素或cAMP衍生物的诱导下可以产生酪酸基转移酶;可被逆转录病毒感染;可产生白蛋白、转铁蛋白、凝血酶原;在AxC大鼠中可以成瘤。;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:SUM-190 Cells、SKRC-20 Cells、T241 Cells
BC3H-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:769P Cells、ETCC007 Cells、GEO Cells
W256 Cells;背景说明:乳腺癌;雌性;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:HUC Cells、SNU-739 Cells、SKMES1 Cells
NIE 115 Cells;背景说明:神经母细胞瘤;雄性;A/J;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:B16-F10-BL6 Cells、Bac1 2F5 Cells、NCIH1395 Cells
Pt K2 (NBL-5) 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:NP69SV40T Cells、Cor L88 Cells、NCIH1650 Cells
A375 Safe Harbor Landing Pad Cells(拥有STR基因鉴定图谱)
Abcam PC-3 C3 KO Cells(拥有STR基因鉴定图谱)
B1A2A Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line RRQ115 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line YHC354 Cells(拥有STR基因鉴定图谱)
CENSOi019-A Cells(拥有STR基因鉴定图谱)
DA01352 Cells(拥有STR基因鉴定图谱)
DHAV-MAb1 Cells(拥有STR基因鉴定图谱)
GM02783 Cells(拥有STR基因鉴定图谱)
RPMI-6666 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:SKG3A Cells、MC-116 Cells、Madin-Darby Bovine Kidney Cells
SNU-886 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:SuDHL 2 Cells、RBL 1 Cells、MIN-6 Cells
H2198 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:Malme3M Cells、NK10a Cells、TB-1 Lu Cells
N1E-115 Cells;背景说明:神经母细胞瘤;雄性;A/J;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:87MG Cells、MDA-MB-175-VII Cells、AML193 Cells
rHSC-99 Cells;背景说明:肝星状 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:624 Cells、Onda 11 Cells、Panc327 Cells
RTMC 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:PL 45 Cells、J-111 Cells、KMH-2 Cells
MDA-MB-361 Cells;背景说明:该细胞源自40岁女性乳腺癌的脑转移组织。;传代方法: 1:2—1:6传代,每周换液2—3次;生长特性:松散贴壁生长;形态特性:上皮细胞样;相关产品有:LICR-LON-HN6 Cells、FU-MMT-1 Cells、Walker256-TC Cells
H2171 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:聚团悬浮;相关产品有:LS513 Cells、293T/17 Cells、HSC-4 Cells
PANC0327 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:3T3 L1 Cells、EU-2 Cells、Granta-519 Cells
HCC0095 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:Ha Fe Cells、L-1210 Cells、VMRCLCD Cells
NCIH1436 Cells;背景说明:详见相关文献介绍;传代方法:随细胞的密度而增加;生长特性:悬浮生长;形态特性:详见产品说明;相关产品有:RD-ES Cells、NR8383 Cells、HLEC Cells
746T 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:MNNG-HOS (Cl#5) Cells、PC3M-2B4 Cells、VM-CUB1 Cells
NCI-H2081 Cells;背景说明:详见相关文献介绍;传代方法:随细胞的密度而增加;生长特性:悬浮生长;形态特性:聚团悬浮;相关产品有:NCI-H102 Cells、Mouse podocyte Cells、Evsa-T Cells
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4T1-luc2 [Caliper] Cells(拥有STR基因鉴定图谱)
Lec1 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:ChaGo-K-1 Cells、Caco-2/BBe 1 Cells、EOMA Cells
16HBE 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:MC38 Cells、RASMC Cells、SNB.19 Cells
U-87MG 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:D341Med Cells、B16/BL6 Cells、TT Cells
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
MOLM16 Cells;背景说明:急性髓系白血病;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:16-HBE14o Cells、CEM-CCRF Cells、HSF Cells
JEKO Cells;背景说明:一位套细胞淋巴瘤患者的巨细胞变种显示白血病转变,从其外周血单核细胞出发建立了MCL细胞株JeKo-1。 JeKo-1细胞EB病毒阴性,并表达一种B细胞表型的IgM。 细胞过表达cyclin D1, Bcl-2, c-Myc 及 Rb 蛋白。 Bcl-1/J(H)基因重排得到了PCR证实。 JeKo-1细胞在SCID小鼠中高成瘤。 [PubMed: 9753063];传代方法:1:2传代。3天内可长满。;生长特性:悬浮生长;形态特性:淋巴母细胞样;相关产品有:H-520 Cells、NCIH1975 Cells、33604 Cells
TF1 Cells;背景说明:详见相关文献介绍;传代方法:维持细胞浓度在3×104-5×105 cells/ml;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:NB1-RGB Cells、SHEP1 Cells、BetaTC6 Cells
H-4 Cells;背景说明:H4细胞系建系于1973年。它衍生于一个患神经胶质瘤的37岁病人的脑组织。该细胞的致瘤特性己经被屏蔽,细胞接种动物一般不产生肿瘤结节。该细胞具有修复MNNG损伤5型腺病毒的能力。;传代方法: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:MV522 Cells、EOC20 Cells、RBL 1 Cells
Vero 76 clone 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:EFO 27 Cells、HMCB Cells、PaTu-8988s Cells
NCIH1437 Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:6传代,每周换液2次。;生长特性:贴壁生长;形态特性:上皮样;相关产品有:H1385 Cells、Madison lung Cells、PL11 Cells
THLE2 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:7860 Cells、SCC90 Cells、SNK-6 Cells
National Medical Center-Glioma 1 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:上皮细胞;相关产品有:HBE 135-E6E7 Cells、HSCT6 Cells、KYSE 410 Cells
HG03547 Cells(拥有STR基因鉴定图谱)
IDG-HEK293T-GABRR1-V5-OE Cells(拥有STR基因鉴定图谱)
LPB7 Cells(拥有STR基因鉴定图谱)
NCI-HPN-F1I Cervix Cells(拥有STR基因鉴定图谱)
PathHunter U2OS OPRK1 Total GPCR Internalization Cells(拥有STR基因鉴定图谱)
Ubigene HCT 116 DHODH KO Cells(拥有STR基因鉴定图谱)
VUi004-A Cells(拥有STR基因鉴定图谱)
HAP1 SUN1 (-) 1 Cells(拥有STR基因鉴定图谱)
H-1648 Cells;背景说明:详见相关文献介绍;传代方法:1:3-1:6传代;生长特性:贴壁生长;形态特性:上皮细胞;相关产品有:OVCAR-3 Cells、MLMEC Cells、CPA47 Cells
Hs578Bst Cells;背景说明:乳腺 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:RCC10 RGB Cells、A427 Cells、EFM192C Cells
MNNG/HOS Cl #5 Cells;背景说明:骨肉瘤;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:Chinese Hamster Lung Cells、CHP-212 Cells、Hs 895 T Cells
PLA802 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:CaES-17 Cells、HS-5 Cells、CCD-19Lu Cells
138MG Cells;背景说明:星形细胞瘤;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:TYKnu Cells、HEK293-EBNA1 Cells、DrG Cells
138MG Cells;背景说明:星形细胞瘤;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:TYKnu Cells、HEK293-EBNA1 Cells、DrG Cells
Hu-P-T3 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:OCM1 Cells、NCI-H28 Cells、526mel Cells
SW-780 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:U-251 MG Cells、Kasumi 1 Cells、ID8 Cells
WIL2 S 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:OSKM-1 Cells、SW-1222 Cells、HCC-2218 Cells
Hopkins-92 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:SKBr3 Cells、H1650 Cells、Panc 4.03 Cells
138 MG Cells;背景说明:星形细胞瘤;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:HCC-9724 Cells、A-204 Cells、C2BBe1 Cells
130T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,3-4天换液1次。;生长特性:贴壁生长;形态特性:梭型和大的多核细胞;相关产品有:L 132 Cells、HuPT4 Cells、F81 Cells
KBM7 Cells;背景说明:慢性髓原白血病;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:C3A Cells、MDA-MB-231-luc Cells、HS-766-T Cells
SW 13 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:CCD18Co Cells、UMUC-14 Cells、CAOV4 Cells
GM15452 Cells;背景说明:1957年,PuckTT从成年中国仓鼠卵巢的活检组织建立了CHO细胞,CHO-K1是CHO的一个亚克隆。CHO-K1的生长需要脯酸。;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:Hs 343.T Cells、Human Hepatocyte Line 5 Cells、COLO 320 Cells
SBG4 Cells(拥有STR基因鉴定图谱)
MA-782 Cells;背景说明:乳腺癌;Balb/c;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:NKT Cells、AR41P Cells、UCLA SO M14 Cells
HEK293-F 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;悬浮生长;形态特性:上皮细胞样;相关产品有:P3-X63Ag8.653 Cells、SKG3A Cells、B4G12 Cells
MGc80-3 Cells;背景说明:1980年建系,人胃癌低分化黏液腺癌组织小块用RPMI-1640培养液培养4天细胞开始生长,首次传代8日。免疫抑制的Wistar雄幼大鼠皮下移植成功。;传代方法:1:3传代,2-3天换液一次;生长特性:贴壁生长;形态特性:上皮样;相关产品有:Hep 3B Cells、T98-G Cells、OVCAR432 Cells
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HS-294-T Cells;背景说明:详见相关文献介绍;传代方法:1:2-1:4传代,2-3天换液1次。;生长特性:贴壁生长;形态特性:混合星状和多边形;相关产品有:HSAEC1-KT Cells、TC-1[JHU-1] Cells、TALL1 Cells
Michigan Cancer Foundation-7 Cells;背景说明:MCF-7细胞保留了多个分化了的乳腺上皮的特性,包括:能通过胞质雌激素受体加工雌二醇并能形成圆形复合物(domes)。该细胞含有Tx-4癌基因。肿瘤坏死因子α(TNFalpha)可以抑制MCF-7细胞的生长。抗雌激素处理细胞能调变IGFBP'S的分泌。;传代方法:1:2传代,3-4天长满;生长特性:贴壁生长;形态特性:上皮样;相关产品有:WM-239 Cells、Hs 888Lu Cells、SW-13 Cells
C3H-10T1/2 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:MUTZ-3 Cells、ATN1 Cells、Hs 281.T Cells
COLO 205人结肠癌传代细胞全年复苏|送STR图谱
HD11 Cells;背景说明:巨噬 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:GM05887 Cells、RPMI-6666 Cells、SKNDZ Cells
A20 Cells;背景说明:淋巴瘤;BALB/cAnN;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:HNE2 Cells、HME1 Cells、95C Cells
CHO-S 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:OPM-2 Cells、NTera2 cl.D1 Cells、KMB17 Cells
BPH-1 Cells;背景说明:良性前列腺增生;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:H711 Cells、HPAF-II/CD18 Cells、NCI-H2444 Cells
HIT T-15 Cells;背景说明:胰岛β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:CORL23 Cells、HRMC Cells、YAC Cells
PC 61-5-3 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:GM637 Cells、GM2131 Cells、Keio University-19-19 Cells
LLC-MK-2 Cells;背景说明:胚胎;肾;自发永生;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:COLO 205 Cells、H2141 Cells、H-524 Cells
FLS Cells;背景说明:滑膜;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:PL 45 Cells、L-cell Cells、CEMO-1 Cells
BayGenomics ES cell line RRB095 Cells(拥有STR基因鉴定图谱)
BayGenomics ES cell line XE383 Cells(拥有STR基因鉴定图谱)
CVC.1 Cells(拥有STR基因鉴定图谱)
MH134-TC Cells(拥有STR基因鉴定图谱)
SPV-L3 Cells(拥有STR基因鉴定图谱)
LS180-SLC22A18-KO-c5 Cells(拥有STR基因鉴定图谱)
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文献和实验该产品被引用文献
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