极地相互作用在稳定自我插入膜蛋白质的过程中胜过疏水性
Jana Broecker1, Sebastian Fiedler, Katharina Gimpl
1Molecular Biophysics, University of Kaiserslautern , Erwin-Schrödinger-Straβe 13, 67663 Kaiserslautern, Germany.
Journal of the American Chemical Society
|September 2, 2014
概括
细菌细菌蛋白质Mystic通过极性相互作用插入膜,而不是疏水性. 这一发现解释了蛋白质如何在没有疏水螺旋体的情况下结合膜,并有助于基于Mistic的蛋白质生产.
科学领域:
- 膜蛋白生物物理学 膜蛋白生物物理学
- 蛋白质-脂质相互作用
- 结构生物学是结构生物学.
背景情况:
- 整体膜蛋白通常通过疏水性跨膜螺旋体插入.
- 一些蛋白质,如Bacillus subtilis Mistic,通过非疏水机制插入膜.
- 密斯蒂克被用作用于重组蛋白生产和膜插入的融合标签.
研究的目的:
- 量化极地和非极地相互作用对Mystic折叠和插入的贡献.
- 为了了解驱动Mystic的膜协会的力量.
- 为了合理化Mystic作为融合标签的实用性.
主要方法:
- 建立了可逆的条件,两种状态的平衡状态,从使用尿素的洗剂微粒中释放出Mystic.
- 进行了类似于可溶性和β-桶蛋白的平衡展开实验.
- 研究了米斯蒂克与各种洗剂微粒组合物的相互作用.
主要成果:
- 与离子和zwitterionic头组的极性相互作用显著稳定了Mistic,而不是与小细胞核的非极性相互作用.
- 界面二极电位可能有助于Mistic的膜稳定.
- 神秘与膜模拟系统密切相关,主要是通过极力.
结论:
- 密斯蒂克的膜协会是由极性相互作用驱动的,而不是疏水性.
- 这些发现阐明了使非疏水膜蛋白插入成为可能的力量.
- 了解这些力量可以优化用于Mystic标记蛋白质应用的洗剂选择.
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