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Integrating mass spectrometry with MD simulations reveals the role of lipids in Na+/H+ antiporters

机译:质谱与MD模拟的集成揭示了脂质在Na + / H + 反转运蛋白中的作用

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摘要

Na+/H+ antiporters are found in all kingdoms of life and exhibit catalysis rates that are among the fastest of all known secondary-active transporters. Here we combine ion mobility mass spectrometry and molecular dynamics simulations to study the conformational stability and lipid-binding properties of the Na+/H+ exchanger NapA from Thermus thermophilus and compare this to the prototypical antiporter NhaA from Escherichia coli and the human homologue NHA2. We find that NapA and NHA2, but not NhaA, form stable dimers and do not selectively retain membrane lipids. By comparing wild-type NapA with engineered variants, we show that the unfolding of the protein in the gas phase involves the disruption of inter-domain contacts. Lipids around the domain interface protect the native fold in the gas phase by mediating contacts between the mobile protein segments. We speculate that elevator-type antiporters such as NapA, and likely NHA2, use a subset of annular lipids as structural support to facilitate large-scale conformational changes within the membrane.
机译:Na + / H + 反向转运蛋白在生活的所有王国中都发现,并且催化速率是所有已知的次要活性转运蛋白中最快的。在这里,我们结合离子迁移质谱和分子动力学模拟来研究嗜热栖热菌的Na + / H + 交换子NapA的构象稳定性和脂质结合特性,并进行比较来自大肠杆菌的原型反转运蛋白NhaA和人类同源物NHA2。我们发现NapA和NHA2,而不是NhaA,形成稳定的二聚体并且没有选择性地保留膜脂质。通过将野生型NapA与工程变体进行比较,我们显示出蛋白质在气相中的展开涉及域间接触的破坏。结构域界面周围的脂质通过介导流动蛋白片段之间的接触来保护气相中的天然折叠。我们推测,升降机型反转运蛋白(如NapA,可能还有NHA2)使用环状脂质的子集作为结构支持,以促进膜内的大规模构象变化。

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