Ministry of Education Key Laboratory for Membrane-less Organelles & Cellular Dynamics, Hefei National Laboratory for Physical Sciences at the Microscale, School of Life Sciences, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, China.
State Key Laboratory of Tea Plant Biology and Utilization, College of Tea and Food Science and Technology, Anhui Agricultural University, Hefei, China.
Elife. 2021 Dec 13;10:e72535. doi: 10.7554/eLife.72535.
Nature has evolved many supramolecular proteins assembled in certain, sometimes even seemingly oversophisticated, morphological manners. The rationale behind such evolutionary efforts is often poorly understood. Here, we provide atomic-resolution insights into how the dynamic building of a structurally complex enzyme with higher order symmetry offers amenability to intricate regulation. We have established the functional coupling between enzymatic activity and protein morphological states of glutamine synthetase (GS), an old multi-subunit enzyme essential for cellular nitrogen metabolism. Cryo-EM structure determination of GS in both the catalytically active and inactive assembly states allows us to reveal an unanticipated self-assembly-induced disorder-order transition paradigm, in which the remote interactions between two subcomplex entities significantly rigidify the otherwise structurally fluctuating active sites, thereby regulating activity. We further show in vivo evidences that how the enzyme morphology transitions could be modulated by cellular factors on demand. Collectively, our data present an example of how assembly status transition offers an avenue for activity modulation, and sharpens our mechanistic understanding of the complex functional and regulatory properties of supramolecular enzymes.
自然界进化出了许多通过特定方式(有时甚至看似过于复杂的方式)组装而成的超分子蛋白质。这种进化努力的背后原理通常很难理解。在这里,我们提供了原子分辨率的见解,了解具有更高阶对称性的结构复杂的酶的动态构建如何提供复杂调节的可能性。我们已经确定了谷氨酰胺合成酶 (GS) 的酶活性与其蛋白质形态状态之间的功能偶联关系,GS 是一种古老的多亚基酶,对细胞氮代谢至关重要。GS 在催化活性和非活性组装状态下的冷冻电镜结构测定使我们能够揭示一种出乎意料的自组装诱导的无序-有序转变范例,其中两个亚复合物实体之间的远程相互作用显著增强了原本结构不稳定的活性位点,从而调节了酶活性。我们进一步在体内证明了细胞因子如何根据需要调节酶的形态转变。总的来说,我们的数据提供了一个例子,说明组装状态的转变如何为活性调节提供了途径,并加深了我们对超分子酶复杂功能和调节特性的机制理解。