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- 详细信息
- 文献和实验
- 技术资料
- 免疫原:
KLH-conjugated synthetic peptide encompassing a sequence within the N-term region of human Secretin.
- 亚型:
Rabbit Ig
- 形态:
Each vial contains 0.1 mg IgG in 0.1 ml (1 mg/ml) of PBS pH7.4, 25% glycerol, 0.1 mg/ml BSA with 0.09% sodium azide. Antibody was purified by Protein-A affinity chromatography.
- 保存条件:
Store at -20°C.
- 克隆性:
多克隆抗体
- 标记物:
见下方详细说明
- 适应物种:
H, M, R
- 宿主:
Rabbit
- 应用范围:
WB, E, IHC
- 浓度:
见详细说明信息
- 靶点:
Secretin
- 抗体英文名:
Secretin Antibody
- 抗体名:
Secretin Antibody
- 规格:
0.1 mg
Secretin Antibody产品详细介绍:
| 产品名称: | Secretin Antibody |
| 说明书: | http://www.abbiotec.com/antibodies/secretin-antibody【参考图片】 |
| 货号: | 250853 |
| 规格: | 0.1 mg |
| 产品描述: | Secretin (SCT) stimulates the formation of NaHCO(3)-rich pancreatic juice, the secretion of NaHCO(3)-rich bile and inhibits HCI production by the stomach. SCT belongs to the glucagon family. |
| 克隆类型: | Rabbit Polyclonal Antibody |
| 亚型: | Rabbit Ig |
| 免疫原: | KLH-conjugated synthetic peptide encompassing a sequence within the N-term region of human Secretin. |
| 适用物种: | H, M, R |
| 应用范围: | WB, E, IHC |
| 应用说明: | E: 1:500-1:1,000; WB: 1:100-1:500; IHC: 1:200-1:500 |
| 别名: | Secretin; SCT |
| 形态: | Each vial contains 0.1 mg IgG in 0.1 ml (1 mg/ml) of PBS pH7.4, 25% glycerol, 0.1 mg/ml BSA with 0.09% sodium azide. Antibody was purified by Protein-A affinity chromatography. |
| 保存条件: | Store at -20°C. Minimize freeze-thaw cycles. Product is guaranteed one year from the date of shipment. |
| 参考文献: | Knox K et al. 2011. Placenta. 32(11):811-816. PMID# 21944867. |
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文献和实验第一种被发现的激素。为一种碱性多肽。由27个氨基酸残基组成,含11种不同氨基酸。贝利斯与斯塔林(Bayliss与Starling)等于1902年发现。产生促胰液素的细胞为“S”细胞,主要在十二指肠粘膜,少量分布在空肠、回肠和胃窦。近来已在脑中提纯,因此亦加入脑-肠肽行列。作用为刺激胰腺分泌大量含丰富碳酸氢盐的胰液,对人、狗、猪产生最大刺激的促胰液素剂量,为一次静脉注射或每小时每公斤体重静脉灌注1临床单位,相当于200~250毫微克,对胰酶分泌有弱的加强作用,但如与促胰酶素
胃肠激素的一种。是 W. M. Bayliss和 E. H. Starling( 1902)从十二指肠粘膜的酸性提取液中发现的。此激素的名称和定义首先是由这二位根据此肠促胰液肽所具有的典型作用物质提出来的。在由胃液所造成的酸性的胃内容物进入十二指肠时,存在于肠膜的 S细胞( secretin containing cell)的肠促胰液肽即进入血液,然后作用于胰腺,促使分泌胰液,特别是容量和重碳酸盐的分泌被增加。但是,由于血清中含有肠促胰肽分解酶(肠促胰肽酶),故此激素的作用
Generation of Antibody Molecules Through Antibody Engineering
been overcome to a large extent using genetic-engineering techniques to produce chimeric mouse/human and completely human antibodies. Such an approach is particularly suitable because of the domain structure of the antibody molecule ( 2 ), where functional
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