Jung Da-Woon, Kim Woong-Hee, Seo Shinae, Oh Eunsang, Yim Soon-Ho, Ha Hyung-Ho, Chang Young-Tae, Williams Darren Reece
New Drug Targets Laboratory, School of Life Sciences, Gwangju Institute of Science and Technology, 1 Oryong-Dong, Buk-Gu, Gwangju 500-712, Republic of Korea.
College of Public Health and Welfare, Dongshin University, 185 Geonjaero, Naju, Jeonnam 520-714, Republic of Korea.
Chem Biol. 2014 Nov 20;21(11):1533-45. doi: 10.1016/j.chembiol.2014.08.017. Epub 2014 Oct 9.
Glycolytic enzymes are attractive anticancer targets. They also carry out numerous, nonglycolytic "moonlighting" functions in cells. In this study, we investigated the anticancer activity of the triazine small molecule, GAPDS, that targets the glycolytic enzyme glyceraldehyde 3-phosphate dehydrogenase (GAPDH). GAPDS showed greater toxicity against cancer cells compared to a known GAPDH enzyme inhibitor. GAPDS also selectively inhibited cell migration and invasion. Our analysis showed that GAPDS treatment reduced GAPDH levels in the cytoplasm, which would modulate the secondary, moonlighting functions of this enzyme. We then used GAPDS as a probe to demonstrate that a moonlighting function of GAPDH is tubulin regulation, which may explain its anti-invasive properties. We also observed that GAPDS has potent anticancer activity in vivo. Our study indicates that strategies to target the secondary functions of anticancer candidates may yield potent therapeutics and useful chemical probes.
糖酵解酶是颇具吸引力的抗癌靶点。它们在细胞中还执行众多非糖酵解的“兼职”功能。在本研究中,我们调查了靶向糖酵解酶甘油醛-3-磷酸脱氢酶(GAPDH)的三嗪小分子GAPDS的抗癌活性。与已知的GAPDH酶抑制剂相比,GAPDS对癌细胞显示出更强的毒性。GAPDS还能选择性地抑制细胞迁移和侵袭。我们的分析表明,GAPDS处理降低了细胞质中GAPDH的水平,这会调节该酶的次要兼职功能。然后,我们使用GAPDS作为探针来证明GAPDH的一项兼职功能是微管蛋白调节,这可能解释了其抗侵袭特性。我们还观察到GAPDS在体内具有强大的抗癌活性。我们的研究表明,针对抗癌候选物次要功能的策略可能会产生有效的治疗方法和有用的化学探针。