Angiogenesis

Angiogenesis (also known as neovascularization) is the generation of new blood vessels from pre-existing vasculature. It is a normal process in growth and development and is required for the formation of arteries, veins, and capillaries in an embryo.Angiogenesis has become an important target for cancer research with the recognition that it is one of the critical events necessary for cancer growth and metastasis. As a tumor develops, its size is limited by the diffusion of metabolites from existing blood vessels. Tumor angiogenesis, the growth of the new blood vessels, is essential for cancerous tumors to keep growing and spreading.As a tumor grows, cells at the center become starved of oxygen, inducing the expression of a transcription factor - hypoxia inducible factor-1 (HIF-1) - which upregulates the expression of a range of angiogenic factors. Growth factor signaling also initiates HIF-1 activity, pre-empting the need for growing cells to maintain oxygen homeostasis. As a result, HIF-1 itself has been isolated as a therapeutic target for cancer. More than a dozen different proteins, as well as several smaller molecules, have been identified as angiogenic meaning that they are released by tumors as signals for angiogenesis. Inhibitors of angiogenesis (antiangiogenics) are currently the focus of intense cancer research.As well as its detrimental effects in tumor growth and inflammatory disorders, the generation of new blood vessels is a vital process in the context of stroke, cardiovascular disease and diabetes. Many of the pathologies associated with diabetes, such diabetic neuropathy, reduced wound healing and diabetic ulcers, are caused by a reduced blood supply to the downstream tissue. Therefore, promoting angiogenesis in diabetic patients may represent an important strategy in reducing morbidity. Recent work using adenovirus-mediated transfer of VEGF165 showed that promoting angiogenesis significantly accelerated wound healing.

Angiogenesis Products Targets

Products for Angiogenesis - Page 8

  1. Cat.No. Product Name Information/Activity
  2. BCC7953 PTIQ 1032822-42-6 PTIQ chemical structure
  3. BCC6977 DMPQ dihydrochloride 1123491-15-5 DMPQ dihydrochloride chemical structure
  4. BCC1115 Imatinib Mesylate (STI571) Imatinib Mesylate (STI571 Mesylate) is a tyrosine kinases inhibitor that inhibits c-Kit, Bcr-Abl, and PDGFR (IC50=100 nM) tyrosine kinases. Imatinib Mesylate (STI571) chemical structure
  5. BCC7639 SU 16f SU16f is a potent and selective PDGFRβ inhibitor with IC50s of 10 nM, 140 nM, 2.29 μM for PDGFRβ, PDGFR1, PDGFR2, respectively. Neutralization of PDGFRβ receptor by SU16f blocks the promoting role of GC-MSCs (gastric cancer-derived mesenchymal stem cells) conditioned medium in gastric cancer cell proliferation and migration. SU 16f chemical structure
  6. BCC3664 Sunitinib malate Sunitinib Malate (SU 11248 Malate) is a multi-targeted receptor tyrosine kinase inhibitor with IC50s of 80 nM and 2 nM for VEGFR2 and PDGFRβ, respectively. Sunitinib Malate, an ATP-competitive inhibitor, effectively inhibits autophosphorylation of Ire1α by inhibiting autophosphorylation and consequent RNase activation. Sunitinib malate chemical structure
  7. BCC2005 Toceranib Toceranib phosphate (SU11654 phosphate) is an orally active receptor tyrosine kinase (RTK) inhibitor, and it potently inhibits PDGFR, VEGFR, and Kit with Kis of 5 and 6 nM for PDGFRβ and Flk-1/KDR, respectively. Toceranib phosphate (SU11654 phosphate) has antitumor and antiangiogenic activity, and used in the treatment of canine mast cell tumors. Toceranib chemical structure
  8. BCC7538 Rp-8-Br-PET-cGMPS 185246-32-6 Rp-8-Br-PET-cGMPS chemical structure
  9. BCC8084 cGMP Dependent Kinase Inhibitor Peptide 82801-73-8 cGMP Dependent Kinase Inhibitor Peptide chemical structure
  10. BCC7006 KT 5823 KT5823, a selective the cGMP-dependent protein kinase (PKG) inhibitor with an Ki value of 0.23 μM, it also inhibits PKA and PKC with Ki values of 10 μM and 4 μM, respectively. KT5823 is a staurosporine-related protein kinase inhibitor, increases thyroid-stimulating hormone-induced (Na+/I- symporter) NIS expression, and iodide uptake in thyroid cells. KT5823 arrests cells after the G0/G1 boundary and causes increases in the levels of apoptotic DNA fragmentation. KT 5823 chemical structure
  11. BCC3729 Axitinib (AG 013736) Axitinib is a multi-targeted tyrosine kinase inhibitor with IC50s of 0.1, 0.2, 0.1-0.3, 1.6 nM for VEGFR1, VEGFR2, VEGFR3 and PDGFRβ, respectively. Axitinib (AG 013736) chemical structure

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