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通过底物与锌的配位作用实现转录因子的变构调节。

Transcription factor allosteric regulation through substrate coordination to zinc.

作者信息

Almeida Beatriz C, Kaczmarek Jennifer A, Figueiredo Pedro R, Prather Kristala L J, Carvalho Alexandra T P

机构信息

CNC-Center for Neuroscience and Cell Biology, Institute for Interdisciplinary Research (IIIUC), University of Coimbra, 3004-504 Coimbra, Portugal.

MIT-Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

NAR Genom Bioinform. 2021 May 3;3(2):lqab033. doi: 10.1093/nargab/lqab033. eCollection 2021 Jun.

Abstract

The development of new synthetic biology circuits for biotechnology and medicine requires deeper mechanistic insight into allosteric transcription factors (aTFs). Here we studied the aTF UxuR, a homodimer of two domains connected by a highly flexible linker region. To explore how ligand binding to UxuR affects protein dynamics we performed molecular dynamics simulations in the free protein, the aTF bound to the inducer D-fructuronate or the structural isomer D-glucuronate. We then validated our results by constructing a sensor plasmid for D-fructuronate in and performed site-directed mutagenesis. Our results show that zinc coordination is necessary for UxuR function since mutation to alanines prevents expression de-repression by D-fructuronate. Analyzing the different complexes, we found that the disordered linker regions allow the N-terminal domains to display fast and large movements. When the inducer is bound, UxuR can sample an open conformation with a more pronounced negative charge at the surface of the N-terminal DNA binding domains. In opposition, in the free and D-glucuronate bond forms the protein samples closed conformations, with a more positive character at the surface of the DNA binding regions. These molecular insights provide a new basis to harness these systems for biological systems engineering.

摘要

为生物技术和医学开发新的合成生物学电路需要对变构转录因子(aTFs)有更深入的机制性认识。在这里,我们研究了aTF UxuR,它是由一个高度灵活的连接区域连接的两个结构域的同二聚体。为了探索配体与UxuR的结合如何影响蛋白质动力学,我们对游离蛋白质、与诱导剂D-果糖醛酸或结构异构体D-葡萄糖醛酸结合的aTF进行了分子动力学模拟。然后,我们通过构建用于D-果糖醛酸的传感器质粒并进行定点诱变来验证我们的结果。我们的结果表明,锌配位对于UxuR功能是必要的,因为突变为丙氨酸会阻止D-果糖醛酸解除表达抑制。分析不同的复合物时,我们发现无序的连接区域允许N端结构域进行快速且大幅度的移动。当诱导剂结合时,UxuR可以采样到一种开放构象,在N端DNA结合结构域的表面带有更明显的负电荷。相反,在游离和D-葡萄糖醛酸结合形式中,蛋白质采样到封闭构象,在DNA结合区域的表面具有更多的正电荷特征。这些分子见解为利用这些系统进行生物系统工程提供了新的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c6d/8092373/fce67586ac82/lqab033fig1.jpg

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