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磷脂酸——一种具有多种特性的简单磷脂。

Phosphatidic acid - a simple phospholipid with multiple faces.

作者信息

Zegarlińska Jolanta, Piaścik Magda, Sikorski Aleksander F, Czogalla Aleksander

机构信息

Laboratory of Cytobiochemistry, Faculty of Biotechnology, University of Wrocław, Wrocław, Poland.

出版信息

Acta Biochim Pol. 2018;65(2):163-171. doi: 10.18388/abp.2018_2592. Epub 2018 Jun 18.

Abstract

Phosphatidic acid (PA) is the simplest glycerophospholipid naturally occurring in living organisms, and even though its content among other cellular lipids is minor, it is drawing more and more attention due to its multiple biological functions. PA is a precursor for other phospholipids, acts as a lipid second messenger and, due to its structural properties, is also a modulator of membrane shape. Although much is known about interaction of PA with its effectors, the molecular mechanisms remain unresolved to a large degree. Throughout many of the well-characterized PA cellular sensors, no conserved binding domain can be recognized. Moreover, not much is known about the cellular dynamics of PA and how it is distributed among subcellular compartments. Remarkably, PA can play distinct roles within each of these compartments. For example, in the nucleus it behaves as a mitogen, influencing gene expression regulation, and in the Golgi membrane it plays a role in membrane trafficking. Here, we discuss how a biophysical experimental approach enabled PA behavior to be described in the context of a lipid bilayer and to what extent various physicochemical conditions may modulate the functional properties of this lipid. Understanding these aspects would help to unravel specific mechanisms of PA-driven membrane transformations and protein recruitment and thus would lead to a clearer picture of the biological role of PA.

摘要

磷脂酸(PA)是生物体中天然存在的最简单的甘油磷脂。尽管其在其他细胞脂质中的含量较少,但由于其多种生物学功能,正受到越来越多的关注。PA是其他磷脂的前体,作为脂质第二信使,并且由于其结构特性,也是膜形状的调节剂。尽管对PA与其效应器的相互作用了解很多,但分子机制在很大程度上仍未得到解决。在许多已充分表征的PA细胞传感器中,无法识别出保守的结合结构域。此外,关于PA的细胞动力学以及它如何在亚细胞区室之间分布,人们了解得并不多。值得注意的是,PA在这些区室中的每一个中都可以发挥不同的作用。例如,在细胞核中它作为有丝分裂原,影响基因表达调控,而在高尔基体膜中它在膜运输中起作用。在这里,我们讨论生物物理实验方法如何能够在脂质双层的背景下描述PA的行为,以及各种物理化学条件在多大程度上可能调节这种脂质的功能特性。理解这些方面将有助于揭示PA驱动的膜转化和蛋白质募集的具体机制,从而更清楚地了解PA的生物学作用。

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