The Apoptotic Effects of Escin in The H‐Ras Transformed 5RP7 Cell Line
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[1] Shuang-quan Zhang,et al. Escin Sodium Induces Apoptosis of Human Acute Leukemia Jurkat T Cells , 2011, Phytotherapy research : PTR.
[2] Yan Zhao,et al. Apoptosis of Human Cholangiocarcinoma Cell Lines induced by β‐Escin through Mitochondrial Caspase‐dependent Pathway , 2011, Phytotherapy research : PTR.
[3] Y. Qiu,et al. Synergistic effects of beta-aescin and 5-fluorouracil in human hepatocellular carcinoma SMMC-7721 cells. , 2010, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[4] Bo Xu,et al. Effect of beta-escin sodium on endothelial cells proliferation, migration and apoptosis. , 2008, Vascular pharmacology.
[5] Y. Niu,et al. Beta-aescin: A potent natural inhibitor of proliferation and inducer of apoptosis in human chronic myeloid leukemia K562 cells in vitro , 2008, Leukemia & lymphoma.
[6] H. Vidrio,et al. Endothelium protectant and contractile effects of the antivaricose principle escin in rat aorta. , 2007, Vascular pharmacology.
[7] P. Chan. Acylation with diangeloyl groups at C21-22 positions in triterpenoid saponins is essential for cytotoxicity towards tumor cells. , 2007, Biochemical pharmacology.
[8] M. Cocchi,et al. Chemical composition and characterisation of seeds from two varieties (pure and hybrid) of Aesculus hippocastanum , 2007 .
[9] C. Rao,et al. β-Escin inhibits colonic aberrant crypt foci formation in rats and regulates the cell cycle growth by inducing p21waf1/cip1 in colon cancer cells , 2006, Molecular Cancer Therapeutics.
[10] C. Rao,et al. Beta-escin inhibits colonic aberrant crypt foci formation in rats and regulates the cell cycle growth by inducing p21(waf1/cip1) in colon cancer cells. , 2006, Molecular cancer therapeutics.
[11] P. Taimen,et al. Caspase-3 is required in the apoptotic disintegration of the nuclear matrix. , 2005, Experimental cell research.
[12] A. Adjei,et al. Targeting Apoptosis Pathways in Cancer Therapy , 2005, CA: a cancer journal for clinicians.
[13] S. Fulda,et al. Targeting apoptosis pathways in cancer therapy. , 2004, Current cancer drug targets.
[14] J. van Staden,et al. Biological activities and distribution of plant saponins. , 2004, Journal of ethnopharmacology.
[15] C. Sirtori. Aescin: pharmacology, pharmacokinetics and therapeutic profile. , 2001, Pharmacological research.
[16] Y. Shoyama,et al. Isolation of the pharmacologically active saponin ginsenoside Rb1 from ginseng by immunoaffinity column chromatography. , 2000, Journal of natural products.
[17] Rao Av,et al. The bioactivity of saponins: triterpenoid and steroidal glycosides. , 2000 .
[18] Α.V. Rao,,et al. The Bioactivity of Saponins: Triterpenoid and Steroidal Glycosides , 2000, Drug metabolism and drug interactions.
[19] N. Thornberry,et al. The Caspase-3 Precursor Has a Cytosolic and Mitochondrial Distribution: Implications for Apoptotic Signaling , 1998, The Journal of cell biology.
[20] H. Matsuda,et al. Effects of escins Ia, Ib, IIa, and IIb from horse chestnut, the seeds of Aesculus hippocastanum L., on acute inflammation in animals. , 1997, Biological & pharmaceutical bulletin.
[21] C. Diehm,et al. Comparison of leg compression stocking and oral horse-chestnut seed extract therapy in patients with chronic venous insufficiency , 1996, The Lancet.