Cholesterol modulates the structural dynamics of the paddle motif loop of KvAP voltage sensor

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2024-01-01 DOI:10.1016/j.crstbi.2024.100137
Anindita Das , Arpan Bysack , H. Raghuraman
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Abstract

KvAP is a prokaryotic Kv channel, which has been widely used as a model system to understand voltage- and lipid-dependent gating mechanisms. In phospholipid membranes, the KvAP-VSD adopts the activated/‘Up’ conformation, whereas the presence of non-phospholipids in membranes favours the structural transition to resting/‘Down’ state. The S3b-S4 paddle motif loop of KvAP-VSD is functionally important as this participates in protein-protein interactions and is the target for animal toxins. In this study, we have monitored the modulatory role of cholesterol – the physiologically-relevant non-phospholipid – on the organization and dynamics of the S3b-S4 loop of the isolated KvAP-VSD in membranes by site-directed fluorescence approaches using the environmental sensitivity of 7-nitrobenz-2-oxa-1,3-diazol-4-yl-ethylenediamine (NBD) fluorescence. Our results show that cholesterol alters the dynamic nature (rotational and hydration dynamics) of S3b-S4 loop in a segmental fashion, i.e., the residues 110 to 114 and 115 to 117 behave differently in the presence of cholesterol, which is accompanied by considerable change in conformational heterogeneity. Further, quantitative depth measurements using the parallax quenching method reveal that the sensor loop is located at the shallow interfacial region of cholesterol-containing membranes, suggesting that the sensor loop organization is not directly correlated with S4 helix movement. Our results clearly show that cholesterol-induced changes in bilayer properties may not be the predominant factor for the sensor loop's altered structural dynamics, but can be attributed to the conformational change of the KvAP-VSD in cholesterol-containing membranes. Overall, these results are relevant for gating mechanisms, particularly the lipid-dependent gating, of Kv channels in membranes.

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胆固醇调节 KvAP 电压传感器桨状图案环的结构动态
KvAP 是一种原核 Kv 通道,被广泛用作了解电压和脂质依赖性门控机制的模型系统。在磷脂膜中,KvAP-VSD 采用活化/"上升 "构象,而膜中存在非磷脂则有利于其结构过渡到静止/"下降 "状态。KvAP-VSD 的 S3b-S4 paddle motif 环具有重要的功能,因为它参与了蛋白质与蛋白质之间的相互作用,并且是动物毒素的靶标。在本研究中,我们利用 7-硝基苯并-2-氧杂-1,3-二唑-4-基乙二胺(NBD)荧光的环境敏感性,通过定点荧光方法监测了胆固醇(生理上相关的非磷脂)对膜中分离的 KvAP-VSD S3b-S4 环的组织和动态的调节作用。我们的研究结果表明,胆固醇以分段方式改变了 S3b-S4 环的动态性质(旋转和水合动态),即在胆固醇存在的情况下,残基 110 至 114 和 115 至 117 的表现不同,同时伴随着构象异质性的显著变化。此外,利用视差淬火法进行的定量深度测量显示,传感器环位于含胆固醇膜的浅界面区,这表明传感器环的组织与 S4 螺旋的移动并不直接相关。我们的研究结果清楚地表明,胆固醇引起的双分子层性质变化可能不是传感器环结构动态变化的主要因素,而可能是由于 KvAP-VSD 在含胆固醇膜中的构象变化。总之,这些结果与膜中 Kv 通道的门控机制,特别是脂质依赖性门控有关。
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CiteScore
4.60
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0.00%
发文量
33
审稿时长
104 days
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