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三聚物甜菜碱转运蛋白 BetP 中束螺旋在调控串扰中的作用。

Role of bundle helices in a regulatory crosstalk in the trimeric betaine transporter BetP.

机构信息

Department of Structural Biology, Max-Planck Institute of Biophysics, Max-von-Laue Strasse 3, 60438 Frankfurt am Main, Germany.

出版信息

J Mol Biol. 2011 Dec 2;414(3):327-36. doi: 10.1016/j.jmb.2011.10.013. Epub 2011 Oct 15.

Abstract

The Na(+)-coupled betaine symporter BetP regulates transport activity in response to hyperosmotic stress only in its trimeric state, suggesting a regulatory crosstalk between individual protomers. BetP shares the overall fold of two inverted structurally related five-transmembrane (TM) helix repeats with the sequence-unrelated Na(+)-coupled symporters LeuT, vSGLT, and Mhp1, which are neither trimeric nor regulated in transport activity. Conformational changes characteristic for this transporter fold involve the two first helices of each repeat, which form a four-TM-helix bundle. Here, we identify two ionic networks in BetP located on both sides of the membrane that might be responsible for BetP's unique regulatory behavior by restricting the conformational flexibility of the four-TM-helix bundle. The cytoplasmic ionic interaction network links both first helices of each repeat in one protomer to the osmosensing C-terminal domain of the adjacent protomer. Moreover, the periplasmic ionic interaction network conformationally locks the four-TM-helix bundle between the same neighbor protomers. By a combination of site-directed mutagenesis, cross-linking, and betaine uptake measurements, we demonstrate how conformational changes in individual bundle helices are transduced to the entire bundle by specific inter-helical interactions. We suggest that one purpose of bundle networking is to assist crosstalk between protomers during transport regulation by specifically modulating the transition from outward-facing to inward-facing state.

摘要

钠离子偶联甜菜碱转运蛋白 BetP 仅在三聚体状态下响应高渗胁迫调节转运活性,这表明单体间存在调控串扰。BetP 与序列无相关性的钠离子偶联转运蛋白 LeuT、vSGLT 和 Mhp1 共享整体折叠,这两个转运蛋白均不是三聚体,且转运活性不受调控。该转运蛋白折叠的特征构象变化涉及每个重复的前两个螺旋,形成四螺旋束。在此,我们鉴定了 BetP 中位于膜两侧的两个离子网络,这些网络可能通过限制四螺旋束的构象灵活性来解释 BetP 独特的调控行为。细胞质离子相互作用网络将每个单体的第一对螺旋连接到相邻单体的渗透压感应 C 末端结构域。此外,周质离子相互作用网络的构象将四螺旋束锁定在相同的相邻单体之间。通过定点突变、交联和甜菜碱摄取测量的组合,我们证明了单个束螺旋的构象变化如何通过特定的螺旋间相互作用传递到整个束。我们认为,束网络的一个目的是通过特异性调节外向到内向状态的转变,在转运调控过程中协助单体间的串扰。

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