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- 详细信息
- 文献和实验
- 技术资料
- 免疫原:
Recombinant protein encompassing a sequence within the C-terminus region of human VEGF. The exact sequence is proprietary.
- 亚型:
IgG
- 形态:
Liquid
- 保存条件:
Store as concentrated solution. Centrifuge briefly prior to opening vial. For short-term storage (1-2 weeks), store at 4ºC. For long-term storage, aliquot and store at -20ºC or below. Avoid multiple freeze-thaw cycles.
- 克隆性:
Polyclonal
- 标记物:
Unconjugated
- 适应物种:
Human, Mouse, Rat
- 保质期:
12 months from the shipping date of the product.
- 抗原来源:
Human
- 目录编号:
GTX102643
- 级别:
Primary Antibodies
- 库存:
Available
- 供应商:
GeneTex
- 宿主:
Rabbit
- 应用范围:
WB, IHC-P, ELISA, IHC
- 浓度:
0.17 mg/ml (Please refer to the vial label for the specific concentration.)
- 靶点:
VEGFA
- 抗体英文名:
VEGFA antibody
- 抗体名:
VEGFA 抗体
- 规格:
100 μl/25 μl
| 规格: | 100 μl | 产品价格: | ¥4000.0 |
|---|---|---|---|
| 规格: | 25 μl | 产品价格: | ¥1700.0 |
VEGF antibody detects VEGF protein at cytoplasm in mouse muscle by immunohistochemical analysis.
Sample: Paraffin-embedded mouse muscle.
VEGF antibody (GTX102643) diluted at 1:500.
Antigen Retrieval: Citrate buffer, pH 6.0, 15 min
HepG2 whole cell extract and conditioned medium (30 μg) were separated by 12% SDS-PAGE, and the membrane was blotted with VEGF antibody (GTX102643) diluted at 1:500. The HRP-conjugated anti-rabbit IgG antibody (GTX213110-01) was used to detect the primary antibody.
VEGF antibody detects VEGF protein at cytoplasm in mouse kidney by immunohistochemical analysis.
Sample: Paraffin-embedded mouse kidney.
VEGF antibody (GTX102643) diluted at 1:500.
Antigen Retrieval: Citrate buffer, pH 6.0, 15 min
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文献和实验Yueh-Chien Lin et al., Biomedicines 2022 (PMID:35327448)
Yifeng Lin et al., Stem Cell Res Ther 2022 (PMID:35135594)
Mervat M Youssef et al., J Oral Biol Craniofac Res 2021 (PMID:33996434)
Mengshan He et al., Oxid Med Cell Longev 2021 (PMID:34725563)
El-Sherbiny M et al., Molecules 2021 (PMID:34833950)
Park M et al., Int J Mol Sci 2021 (PMID:34830410)
Cheng YH et al., Biomedicines 2022 (PMID:35203684)
Wang YW et al., Transl Oncol 2021 (PMID:34243015)
Wang Y et al., Front Genet 2021 (PMID:34322152)
Hung TH et al., Brain Pathol 2021 (PMID:33960564)
Chen W et al., Biomed Res Int 2020 (PMID:32596375)
Shen M et al., Clin Exp Hypertens 2021 (PMID:33687297)
Bergeron S et al., Br J Pharmacol 2021 (PMID:33502755)
Oishi T et al., Oncol Lett 2020 (PMID:31897165)
Barus R et al., Transl Stroke Res 2020 (PMID:32440818)
Chang JW et al., Cereb Cortex 2020 (PMID:32248223)
Wu J et al., Exp Cell Res 2020 (PMID:32325080)
Olaya-C M et al., Int J Womens Health 2018 (PMID:30568515)
Lee PC et al., PLoS One 2019 (PMID:31725767)
Long P et al., BMC Ophthalmol 2019 (PMID:31096936)
Zhou Y et al., Int J Oncol 2019 (PMID:31059006)
Gao L et al., Exp Physiol 2019 (PMID:31535412)
Chen YH et al., Cancers (Basel) 2019 (PMID:31430901)
Tsunemi T et al., J Neurosci 2019 (PMID:31097622)
Youssef S et al., Biomedicines 2019 (PMID:31126077)
Abakumova TV et al., Klin Lab Diagn 2018 (PMID:30735319)
Toraih EA et al., Oxid Med Cell Longev 2017 (PMID:29104726)
Chiu JH et al., BMC Complement Altern Med 2017 (PMID:28800782)
Tawfik KM et al., Eur J Pharmacol 2018 (PMID:29807031)
Lecaros RL et al., Mol Ther 2016 (PMID:26373346)
Toraih EA et al., Tumour Biol 2017 (PMID:29110584)
Cheng TY et al., J Chin Med Assoc 2017 (PMID:28969989)
Tsai YF et al., PLoS One 2017 (PMID:28604807)
Kumarasamy VM et al., Int J Oncol 2017 (PMID:28498409)
Lin YJ et al., Theranostics 2017;7(5)
Mar AC et al., J Biol Chem 2015 (PMID:26209639)
Jiang SJ et al., Mol Med Rep 2015 (PMID:26239269)
Rumwald Leo G et al., SPIE Proceedings 2014;8944(Epub)
Tsai CW et al., Neurotherapeutics 2022 (PMID:35229268)
Park M et al., Cells 2022 (PMID:36496979)
Pan Long et al., Exp Biol Med (Maywood) 2021 (PMID:33969723)
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
9.12 Cell Res:VEGFA 信号通路在血管稳态调控过程中的两面性
① Cell Res:VEGFA 信号通路在血管稳态调控过程中的两面性内皮细胞响应信号刺激对血管形态、稳态和功能的调控至关重要。血管内皮生长因子 A (VEGFA) 自 20 世纪 80 年代被鉴定以来,其主要功能之一便是促进血管生长。中国科学院上海营养与健康研究所潘巍峻研究组在斑马鱼中发现,在 VEGFA 刺激条件下,cds2 基因突变胚胎的血管能够发生血管退化。斑马鱼活体成像技术表明,cds2 突变体的内皮细胞受 VEGFA 刺激能够通过逆向迁移和细胞凋亡来诱导血管退化。小鼠
The importance of antibody molecules was first recognized in the 1890s, when it was shown that immunity to tetanus and diphtheria was caused by antibodies against the bacterial exotoxins (1 ). Around the same time, it was shown that antisera
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