Terpestacin Inhibits Tumor Angiogenesis by Targeting UQCRB of Mitochondrial Complex III and Suppressing Hypoxia-induced Reactive Oxygen Species Production and Cellular Oxygen Sensing

Hye Jin Jung(Yonsei University), Joong Sup Shim(Yonsei University), Jiyong Lee(Yonsei University), Young Mi Song(Yonsei University), Ki Cheong Park(Yonsei University), Seung Hoon Choi(Yonsei University), Nam Doo Kim(Equis (Slovakia)), Jeong Hyeon Yoon(Equis (Slovakia)), Paul T. Mungai(Northwestern University), Paul T. Schumacker(Northwestern University), Ho Jeong Kwon(Yonsei University)
Journal of Biological Chemistry
February 10, 2010
Cited by 120Open Access
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Abstract

Cellular oxygen sensing is required for hypoxia-inducible factor-1α stabilization, which is important for tumor cell survival, proliferation, and angiogenesis. Here we find that terpestacin, a small molecule previously identified in a screen of microbial extracts, binds to the 13.4-kDa subunit (UQCRB) of mitochondrial Complex III, resulting in inhibition of hypoxia-induced reactive oxygen species generation. Consequently, such inhibition blocks hypoxia-inducible factor activation and tumor angiogenesis in vivo, without inhibiting mitochondrial respiration. Overexpression of UQCRB or its suppression using RNA interference demonstrates that it plays a crucial role in the oxygen sensing mechanism that regulates responses to hypoxia. These findings provide a novel molecular basis of terpestacin targeting UQCRB of Complex III in selective suppression of tumor progression. Cellular oxygen sensing is required for hypoxia-inducible factor-1α stabilization, which is important for tumor cell survival, proliferation, and angiogenesis. Here we find that terpestacin, a small molecule previously identified in a screen of microbial extracts, binds to the 13.4-kDa subunit (UQCRB) of mitochondrial Complex III, resulting in inhibition of hypoxia-induced reactive oxygen species generation. Consequently, such inhibition blocks hypoxia-inducible factor activation and tumor angiogenesis in vivo, without inhibiting mitochondrial respiration. Overexpression of UQCRB or its suppression using RNA interference demonstrates that it plays a crucial role in the oxygen sensing mechanism that regulates responses to hypoxia. These findings provide a novel molecular basis of terpestacin targeting UQCRB of Complex III in selective suppression of tumor progression.


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