NIH Center for Macromolecular Modeling and Bioinformatics, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, United States.
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, United States.
Sci Rep. 2019 Dec 20;9(1):19479. doi: 10.1038/s41598-019-55722-6.
Secondary active transporters use electrochemical gradient of ions to fuel the "uphill" translocation of the substrate following the alternating-access model. The coupling of ions to conformational dynamics of the protein remains one of the least characterized aspects of the transporter function. We employ extended molecular dynamics (MD) simulations to examine the Na-binding effects on the structure and dynamics of a LeuT-fold, Na-coupled secondary transporter (Mhp1) in its major conformational states, i.e., the outward-facing (OF) and inward-facing (IF) states, as well as on the OF ↔ IF state transition. Microsecond-long, unbiased MD simulations illustrate that Na stabilizes an OF conformation favorable for substrate association, by binding to a highly conserved site at the interface between the two helical bundles and restraining their relative position and motion. Furthermore, a special-protocol biased simulation for state transition suggests that Na binding hinders the OF ↔ IF transition. These synergistic Na-binding effects allosterically couple the ion and substrate binding sites and modify the kinetics of state transition, collectively increasing the lifetime of an OF conformation with high substrate affinity, thereby facilitating substrate recruitment from a low-concentration environment. Based on the similarity between our findings for Mhp1 and experimental reports on LeuT, we propose that this model may represent a general Na-coupling mechanism among LeuT-fold transporters.
次级主动转运蛋白利用离子电化学梯度为底物的“上坡”转运提供动力,遵循交替访问模型。离子与蛋白质构象动力学的偶联仍然是转运蛋白功能中研究最少的方面之一。我们采用扩展分子动力学(MD)模拟来研究 Na 结合对 LeuT 折叠、Na 偶联的次级转运体(Mhp1)在其主要构象状态(即外向构象(OF)和内向构象(IF))中的结构和动力学的影响,以及 OF ⇌ IF 状态转变。微秒级的无偏 MD 模拟表明,Na 通过结合到两个螺旋束之间界面上高度保守的位点并限制它们的相对位置和运动,稳定有利于底物结合的 OF 构象。此外,针对状态转变的特殊协议偏向性模拟表明,Na 结合阻碍了 OF ⇌ IF 转变。这些协同的 Na 结合效应变构偶联离子和底物结合位点,并改变状态转变的动力学,共同增加具有高底物亲和力的 OF 构象的寿命,从而促进底物从低浓度环境中的募集。基于我们对 Mhp1 的发现与 LeuT 的实验报告之间的相似性,我们提出该模型可能代表 LeuT 折叠转运蛋白中的一种普遍的 Na 偶联机制。