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Bcl-2 Family
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Bcl-2 Family Related Products (1042)
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Antibodies (31)
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Bcl-2 Family Signaling Pathway
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Bcl-2 Family Isoform Comparison
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Tau Protein Phosphorylation-IN-1
0 ImagesCat. No.: HY-175841CAS No.: 3075165-36-2Tau Protein Phosphorylation-IN-1 is a tau protein phosphorylation inhibitor that potently protects PC12 cells against Aβ25–35-induced cytotoxicity (EC50 = 1.93 μM), and can penetrate the blood-brain barrier (BBB).Tau Protein Phosphorylation-IN-1 reverses the hyperphosphorylation of tau, significantly inhibits the expression of certain immune-related cytotoxic factors, suppresses the MAPK and NF-κB signaling pathways, and significantly inhibits the expression of RAGE and the apoptosis factors Bax/Bcl-2, both in vitro and in vivo. Tau Protein Phosphorylation-IN-1 relieves nerve damage, and improves learning and memory in an Alzheimer’s disease (AD) mouse model. Tau Protein Phosphorylation-IN-1 can be used for AD research. -
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Beclanorsen sodium
0 ImagesCat. No.: HY-177618ASynonyms: SPC2996 sodium -
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A-1155905
0 ImagesCat. No.: HY-164452CAS No.: 2228052-37-5 -
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Tubulin polymerization-IN-88
0 ImagesCat. No.: HY-181074Tubulin polymerization-IN-88 is a tubulin inhibitor that blocks tubulin polymerization, leading to microtubule destabilization and disruption of the mitotic spindle. Tubulin polymerization-IN-88 induces G2/M phase arrest and apoptosis in cancer cells, and inhibits cancer cell migration and self-renewal of cancer stem cells. It exhibits in vitro anti-proliferative activity against cancer cells with selectivity over normal cells. Tubulin polymerization-IN-88 also demonstrates in vivo anti-cancer activity without significant toxicity. Tubulin polymerization-IN-88 is applicable for research on glioblastoma, lung cancer, endometrial cancer, ovarian cancer, and leukemia. -
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Multi-kinase-IN-8
0 ImagesCat. No.: HY-179439Multi-kinase-IN-8 is a muti-kinase inhibitor. Multi-kinase-IN-8 inhibits COX-1 (IC50 of 12.6 μM), COX-2 (IC50 of 0.05 μM) and VEGFR-2 (IC50 of 0.12 nM). Multi-kinase-IN-8 inhibits tumor-associated carbonic anhydrases (CA IX and CA XII with Ki of 31.5 nM and 386.9 nM, respectively). Multi-kinase-IN-8 triggers cell cycle arrest and apoptosis through upregulation of Caspase 9 and Bax along with downregulation of Bcl 2. Multi-kinase-IN-8 suppresses PGE2, p-VEGFR-2, MMP-9 and HIF-1α and exhibits growth-inhibitory activity against breast cancer, lung cancer, and colorectal adenocarcinoma. -
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Anticancer agent 65
0 ImagesCat. No.: HY-146105CAS No.: 2407861-48-5Anticancer agent 65 (compound 4c) shows excellent activity in cancer cell lines, especially A549 cells, with an IC50 of 1.07 μM. Anticancer agent 65 induces S-phase arrest in A549 cells and increases the expression level of p53 and p21. Anticancer agent 65 causes apoptosis, ROS generation and collapse of MMP in A549 cells. -
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BCL2/BAX modulator-1
0 ImagesCat. No.: HY-189216CAS No.: 1416344-06-3BCL2/BAX modulator-1 is an orally active BCL2/BAX modulator and apoptosis inducer. BCL2/BAX modulator-1 downregulates BCL2 mRNA expression, upregulates BAX mRNA expression, and occupies the BAX trigger site. BCL2/BAX modulator-1 can be used for research on prostate adenocarcinoma, hepatocellular carcinoma, and lung adenocarcinoma. -
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Glycocholic acid sodium (Standard)
0 ImagesCat. No.: HY-N1423ARCAS No.: 863-57-0Glycocholic acid (sodium) (Standard) is the analytical standard of Glycocholic acid sodium (HY-N1423A). This product is intended for research and analytical applications. Glycocholic acid sodium is a bile acid derivative. Glycocholic acid downregulates MDR1, Bcl-2, MRP1, MRP2 and FXR, upregulates Bax, p53, caspase-9, caspase-3, TGR5 and S1PR2. Glycocholic acid sodium inhibits multidrug resistance and efflux pumps, induces mitochondrial apoptosis, and enhances chemosensitivity. Glycocholic acid sodium modulates related bile acid receptor signaling. Glycocholic acid sodium suppresses growth and conjugation of Enterobacteriaceae and increases their antibiotic susceptibility. Glycocholic acid sodium can be used for the research of colon adenocarcinoma and cholangiocarcinoma (CCA). -
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Apoptosis inducer 50
0 ImagesCat. No.: HY-179052Apoptosis inducer 50 (Compound 5e) is an apoptosis inducer as well as an autophagy inducer agent. Apoptosis inducer 50 exhibits potent and selective anti-cancer activity against triple-negative breast cancer cells and metastatic colon cancer cells. Apoptosis inducer 50 upregulates the expression of pro-apoptotic proteins (Bax, Bim, cleaved Caspase-9) and downregulates the expression of the anti-apoptotic protein (BCL-XL). Apoptosis inducer 50 upregulates key autophagy markers such as Beclin-1 and ATG5, and enhances the conversion of LC3-I to LC3-II., Apoptosis inducer 50 arrests cancer cells in the G1/S phase by upregulating the expression of p21 and p27 while downregulating Cyclin D1. Apoptosis inducer 50 increases the level of ROS. -
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- Caylin-2
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EGFR-IN-169
0 ImagesCat. No.: HY-175531EGFR-IN-169 is an epidermal growth factor (EGFR) (IC50 = 5.19 μM) inhibitor form panaxadiol. EGFR-IN-169 interferes with the migration and growth of colorectal cancer cells by inhibiting EGFR-mediated RalA/EMT pathway. EGFR-IN-169 shows an IC50 value of 4.46 μM and SI of 16.92 for HCT-116 cells. EGFR-IN-169 inhibits CDKs activity, induces G0/G1 cycle arrest and inhibits migration and invasion. EGFR-IN-169 reduces mitochondrial membrane potential and induces apoptosis and ROS production. EGFR-IN-169 can be used for the research of cancer, such as colorectal cancer. -
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HDAC-IN-93
0 ImagesCat. No.: HY-178104HDAC-IN-93 is a HDAC inhibitor with promising total pan-HDAC inhibitory activity. HDAC-IN-93 demonstrates significant broad-spectrum antiproliferative activity across various cancer cell lines. HDAC-IN-93 induces cell apoptosis along with necrosis. HDAC-IN-93 can be used for the studies of prostate cancer and breast cancer. -
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GPER/Bcl-2-IN-1
0 ImagesCat. No.: HY-174338GPER/Bcl-2-IN-1 is a GPER/Bcl-2 inhibitor. GPER/Bcl-2-IN-1 can inhibit the proliferation and neurospheres formation of glioblastoma cells. GPER/Bcl-2-IN-1 can be used for the study of glioblastoma multiforme (GBM). -
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EGFR-IN-191
0 ImagesCat. No.: HY-181093EGFR-IN-191 is an anti-tumor agent targeting both EGFR and AKT. EGFR-IN-191 exerts its anti-tumor activity by inducing DNA damage, apoptosis, cell cycle arrest, and inhibition of the PI3K/AKT-EGFR signaling pathway in tumor cells. EGFR-IN-191 can be used in the study of tumors such as triple-negative breast cancer. -
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BCL2L11 Human Pre-designed siRNA Set A
0 ImagesCat. No.: HY-RS01427BCL2L11 Human Pre-designed siRNA Set A contains three designed siRNAs for BCL2L11 gene (Human), as well as a negative control, a positive control, and a FAM-labeled negative control.
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Anticancer agent 63
0 ImagesCat. No.: HY-147504CAS No.: 2529657-32-5Anticancer agent 63 (compound 3h) shows active in reducing the viability of different cancer cell lines, including SW480, HeLa, A549 and MCF-7, with IC50 values at 24 h of 4.9, 11.5, 9.4, and 3.4 μM, respectively. Anticancer agent 63 induce apoptosis in MCF-7 cells via down-regulating the expression of Bcl-2 and up-regulating the expression of IL-2 and Caspase-3. Anticancer agent 63 also shows antioxidant activity. -
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(-)-Mcl-1 inhibitor 22
0 ImagesCat. No.: HY-170763BCAS No.: 2332611-95-5 -
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- Bak BH3 (72-87), TAMRA-labeled
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Tubulin/LSD1-IN-1
0 ImagesCat. No.: HY-176283Tubulin/LSD1-IN-1 is an effective dual inhibitor of Tubulin polymerization and LSD1 (IC50 = 1.72 μM). Tubulin/LSD1-IN-1 has broad-spectrum antiproliferative activity against cancer cell lines. Tubulin/LSD1-IN-1 inhibits tubulin polymerization by targeting colchicine binding sites, thereby disrupting the microtubule network in gastric cancer cells. Tubulin/LSD1-IN-1 increases the methylation levels of H3K4me1/2 and H3K9me2/3, thereby achieving epigenetic regulation. Tubulin/LSD1-IN-1 induces G2/M arrest, promotes apoptosis, and effectively inhibits colony formation of gastric cancer cells. -
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Bcl2l11 Rat Pre-designed siRNA Set A
0 ImagesCat. No.: HY-RS01429Bcl2l11 Rat Pre-designed siRNA Set A contains three designed siRNAs for Bcl2l11 gene (Rat), as well as a negative control, a positive control, and a FAM-labeled negative control.
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Bcl-2 family members have been grouped into three classes. The anti-apoptotic subfamily contains the Bcl-2, Bcl-XL, Bcl-w, Mcl-1, Bfl1/A-1, and Bcl-B proteins, which suppress apoptosis and contain all four Bcl-2 homology domains, designated BH1-4. The pro-apoptotic subfamily contain BH1-3 domains, such as Bax, Bak, and Bok. A third class of BH3 only proteins Bad, Bid, Bim, Noxa and Puma have a conserved BH3 domain that can bind and regulate the anti-apoptotic BCL-2 proteins to promote apoptosis [1].
The intrinsic pathway is initiated by various signals, principally extracellular stimuli. BH3-only proteins (Bim, Bid, Bad, Noxa, Puma) engage with anti-apoptotic Bcl-2 family proteins to relieve their inhibition of Bax and Bak to activate them. Next, Bax and Bak are oligomerized and activated, leading to mitochondrial outer membrane permeabilization. Once mitochondrial membranes are permeabilized, cytochrome c and/or Smac/DIABLO is released into the cytoplasm, wherein they combine with an adaptor molecule, Apaf-1, and an inactive initiator Caspase, Pro-caspase 9, within a multiprotein complex called the apoptosome. Smac/DIABLO inhibits IAPs to activate Caspase 9. Caspase 9 activates Caspase 3, which is the initiation step for the cascade of Caspase activation. The extrinsic pathway can be activated by cell surface receptors, such as Fas and TNF Receptor, subsequently activating Caspase 8, and leads to Caspase 3 activation and cell demolition. Caspases in turn cleave a series of substrates, activate DNases and orchestrate the demolition of the cell. Bcl-2 family proteins are also found on the endoplasmic reticulum and the perinuclear membrane in hematopoietic cells, but they are predominantly localized to mitochondria [2].
Reference:
[1]. Cotter TG, et al. Apoptosis and cancer: the genesis of a research field. Nat Rev Cancer. 2009 Jul;9(7):501-7.
[2]. Kang MH, et al. Bcl-2 inhibitors: targeting mitochondrial apoptotic pathways in cancer therapy. Clin Cancer Res. 2009 Feb 15;15(4):1126-32.
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