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将膜电荷和膜电位引入T细胞信号传导。

Introducing Membrane Charge and Membrane Potential to T Cell Signaling.

作者信息

Ma Yuanqing, Poole Kate, Goyette Jesse, Gaus Katharina

机构信息

EMBL Australia Node in Single Molecule Science, School of Medical Sciences, University of New South Wales, Sydney, NSW, Australia.

ARC Centre of Excellence in Advanced Molecular Imaging, University of New South Wales, Sydney, NSW, Australia.

出版信息

Front Immunol. 2017 Nov 9;8:1513. doi: 10.3389/fimmu.2017.01513. eCollection 2017.

Abstract

While membrane models now include the heterogeneous distribution of lipids, the impact of membrane charges on regulating the association of proteins with the plasma membrane is often overlooked. Charged lipids are asymmetrically distributed between the two leaflets of the plasma membrane, resulting in the inner leaflet being negatively charged and a surface potential that attracts and binds positively charged ions, proteins, and peptide motifs. These interactions not only create a transmembrane potential but they can also facilitate the formation of charged membrane domains. Here, we reference fields outside of immunology in which consequences of membrane charge are better characterized to highlight important mechanisms. We then focus on T cell receptor (TCR) signaling, reviewing the evidence that membrane charges and membrane-associated calcium regulate phosphorylation of the TCR-CD3 complex and discuss how the immunological synapse exhibits distinct patterns of membrane charge distribution. We propose that charged lipids, ions in solution, and transient protein interactions form a dynamic equilibrium during T cell activation.

摘要

虽然现在的膜模型包含了脂质的异质分布,但膜电荷对调节蛋白质与质膜结合的影响常常被忽视。带电脂质在质膜的两个小叶之间不对称分布,导致内膜小叶带负电荷,并产生一个吸引和结合带正电荷的离子、蛋白质和肽基序的表面电位。这些相互作用不仅产生跨膜电位,还能促进带电膜结构域的形成。在这里,我们参考免疫学以外的领域,其中膜电荷的后果得到了更好的表征,以突出重要机制。然后我们聚焦于T细胞受体(TCR)信号传导,回顾膜电荷和膜相关钙调节TCR-CD3复合物磷酸化的证据,并讨论免疫突触如何呈现不同的膜电荷分布模式。我们提出,带电脂质、溶液中的离子和瞬时蛋白质相互作用在T细胞激活过程中形成动态平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/edc0/5684113/f49e779772bb/fimmu-08-01513-g001.jpg

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