Quesñay José Edwin Neciosup, Pollock Naomi L, Nagampalli Raghavendra Sashi Krishna, Lee Sarah C, Balakrishnan Vijayakumar, Dias Sandra Martha Gomes, Moraes Isabel, Dafforn Tim R, Ambrosio Andre Luis Berteli
Brazilian Biosciences National Laboratory, Center for Research in Energy and Materials, Campinas 13083-970, Brazil.
Postgraduate program in Biosciences and Technology of Bioactive Products, Institute of Biology, University of Campinas, Campinas 13083-970, Brazil.
Biology (Basel). 2020 Nov 19;9(11):407. doi: 10.3390/biology9110407.
The molecular identity of the mitochondrial pyruvate carrier (MPC) was presented in 2012, forty years after the active transport of cytosolic pyruvate into the mitochondrial matrix was first demonstrated. An impressive amount of and studies has since revealed an unexpected interplay between one, two, or even three protein subunits defining different functional MPC assemblies in a metabolic-specific context. These have clear implications in cell homeostasis and disease, and on the development of future therapies. Despite intensive efforts by different research groups using state-of-the-art computational tools and experimental techniques, MPCs' structure-based mechanism remains elusive. Here, we review the current state of knowledge concerning MPCs' molecular structures by examining both earlier and recent studies and presenting novel data to identify the regulatory, structural, and core transport activities to each of the known MPC subunits. We also discuss the potential application of cryogenic electron microscopy (cryo-EM) studies of MPC reconstituted into nanodiscs of synthetic copolymers for solving human MPC2.
线粒体丙酮酸载体(MPC)的分子身份于2012年得以明确,此时距离胞质丙酮酸向线粒体基质的主动转运首次被证实已过去了四十年。自那时起,大量的[研究内容1]和[研究内容2]研究揭示了在代谢特异性背景下,定义不同功能MPC组装体的一个、两个甚至三个蛋白质亚基之间存在意想不到的相互作用。这些发现对细胞稳态和疾病以及未来治疗方法的开发都具有明确的意义。尽管不同研究团队运用了最先进的计算工具和实验技术进行了深入研究,但MPC基于结构的机制仍然难以捉摸。在此,我们通过审视早期和近期的研究并展示新数据,来回顾关于MPC分子结构的当前知识状态,以确定已知MPC各亚基的调控、结构和核心转运活性。我们还讨论了将MPC重组到合成共聚物纳米盘中进行低温电子显微镜(cryo-EM)研究以解析人类MPC2的潜在应用。