Sodium glucose cotransporter 2 inhibitor canagliflozin attenuates liver cancer cell growth and angiogenic activity by inhibiting glucose uptake

卡格列净 血管生成 癌细胞 医学 癌症研究 内科学 肾葡萄糖重吸收 内分泌学 细胞生长 化学 癌症 药理学 生物化学 糖尿病 2型糖尿病
作者
Kosuke Kaji,Norihisa Nishimura,Kenichiro Seki,Shinya Sato,Soichiro Saikawa,Keisuke Nakanishi,Masanori Furukawa,Hideto Kawaratani,Mitsuteru Kitade,Kei Moriya,Tadashi Namisaki,Hitoshi Yoshiji
出处
期刊:International Journal of Cancer [Wiley]
卷期号:142 (8): 1712-1722 被引量:169
标识
DOI:10.1002/ijc.31193
摘要

Sodium‐glucose cotransporter 2 inhibitors (SGLT2‐Is) comprise a new class of antidiabetic agents that inhibit glucose reabsorption in the renal proximal tubules. Although a recent report demonstrated the potential ability of SGLT2‐Is to attenuate cancer growth of SGLT2‐expressing cancer cells, little is known about the effects of SGLT2‐Is on hepatocellular carcinoma (HCC). Here, we investigate the anti‐cancer properties of a SGLT2‐I, canagliflozin, against human liver cancer cells. SGTL2 mRNA and protein expression were detected in Huh7 and HepG2 cells, although not in HLE as well as primary human hepatocytes and hepatic stellate cells. Canagliflozin exerted antiproliferative effects on SGLT2‐expressing Huh7 and HepG2 cells in a dose‐dependent manner by inhibiting glycolytic metabolism including glucose uptake, lactate and intracellular ATP production. This agent also induced G2/M arrest and apoptosis with inhibited phosphorylation of ERK, p38 and AKT and cleavage of caspase3. Xenograft tumor growth assay showed that oral administration of canagliflozin (10 mg/kg/day) significantly reduced subcutaneous tumor burdens in a glycemic status‐independent manner, and attenuated intratumor vascularization in Huh7‐ and HepG2‐derived xenograft tumors in BALB/c nude mice. In vitro , canagliflozin suppressed the increased human umbilical vein endothelial cell (HUVEC) proliferation and tubular formation which were observed in Huh7 or HepG2 co‐cultures. By contrast, canagliflozin had no effect on tumor growth and intratumor angiogenesis in SGLT2‐null HLE‐derived xenograft models. These results indicate that SGLT2‐I therapy is a potential new strategy for the treatment of HCC.
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