Cao Yipeng, Yang Rui, Sun Jiana, Zhang Wenwen, Lee Imshik, Wang Wei, Meng Xiangfei
Tianjin Medical University Cancer Institute and Hospital, National Clinical Research Center for Cancer, Key Laboratory of Cancer Prevention and Therapy, Tianjin's Clinical Research Center for Cancer, Tianjin, China.
National Supercomputer Center in Tianjin, TEDA - Tianjin Economic-Technological Development Area, Tianjin, China.
Proteins. 2021 Apr;89(4):427-435. doi: 10.1002/prot.26028. Epub 2020 Dec 13.
Sarcolipin (SLN) is an important transmembrane (TM) protein encoded by long noncoding RNA. SLN is expressed in the sarcoplasmic reticulum and regulates cardiac and skeletal muscle contractions. SLN forms a pentameric hydrophobic ligand-gated ion channel. The protonation of Glu7 (protonated SLN, pSLN) and mutation of Thr18 to Ala18 (T18A) have been reported to exert a significant influence on the permeability of the channel. In this study, the altered permeability of both the pSLN and T18A pentameric channels was simulated. Combined with molecular dynamics simulation, the free-energy landscape for single ions, computational electrophysiology, diffusion coefficient, and pore geometrical characteristic analyses were performed to further understand the properties of amino acid modifications in the SLN pentameric channel. The results suggest that both the pSLN and T18A pentameric channels form stable hydrophobic ligand-gated channels. The TM voltage has a positive effect on the permeability of water molecules and ions. By using pSLN and T18A, our study provides helpful information on the pore-forming mechanism of SLN and furthers our understanding of the regulatory mechanisms underlying the permeation of ions and water molecules in the pentameric SLN channel.
肌浆网素(SLN)是一种由长链非编码RNA编码的重要跨膜(TM)蛋白。SLN在肌浆网中表达,调节心肌和骨骼肌收缩。SLN形成五聚体疏水配体门控离子通道。据报道,Glu7的质子化(质子化的SLN,pSLN)以及Thr18突变为Ala18(T18A)对通道的通透性有显著影响。在本研究中,模拟了pSLN和T18A五聚体通道通透性的改变。结合分子动力学模拟,进行了单离子自由能景观、计算电生理学、扩散系数和孔几何特征分析,以进一步了解SLN五聚体通道中氨基酸修饰的特性。结果表明,pSLN和T18A五聚体通道均形成稳定的疏水配体门控通道。跨膜电压对水分子和离子的通透性有积极影响。通过使用pSLN和T18A,我们的研究为SLN的成孔机制提供了有用信息,并加深了我们对五聚体SLN通道中离子和水分子渗透的调节机制的理解。