Phospholipase D1-generated phosphatidic acid modulates secretory granule trafficking from biogenesis to compensatory endocytosis in neuroendocrine cells

Q1 Biochemistry, Genetics and Molecular Biology
Emeline Tanguy, Alexander Wolf, Qili Wang, Sylvette Chasserot-Golaz, Stéphane Ory, Stéphane Gasman, Nicolas Vitale
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引用次数: 2

Abstract

Calcium-regulated exocytosis is a multi-step process that allows specialized secretory cells to release informative molecules such as neurotransmitters, neuropeptides, and hormones for intercellular communication. The biogenesis of secretory vesicles from the Golgi cisternae is followed by their transport towards the cell periphery and their docking and fusion to the exocytic sites of the plasma membrane allowing release of vesicular content. Subsequent compensatory endocytosis of the protein and lipidic constituents of the vesicles maintains cell homeostasis. Despite the fact that lipids represent the majority of membrane constituents, little is known about their contribution to these processes. Using a combination of electrochemical measurement of single chromaffin cell catecholamine secretion and electron microscopy of roof-top membrane sheets associated with genetic, silencing and pharmacological approaches, we recently reported that diverse phosphatidic acid (PA) species regulates catecholamine release efficiency by controlling granule docking and fusion kinetics. The enzyme phospholipase D1 (PLD1), producing PA from phosphatidylcholine, seems to be the major responsible of these effects in this model. Here, we extended this work using spinning disk confocal microscopy showing that inhibition of PLD activity also reduced the velocity of granules undergoing a directed motion. Furthermore, a dopamine β-hydroxylase (DβH) internalization assay revealed that PA produced by PLD is required for an optimal recovery of vesicular membrane content by compensatory endocytosis. Thus, among numerous roles that have been attributed to PA our work gives core to the key regulatory role in secretion that has been proposed in different cell models. Few leads to explain these multiple functions of PA along the secretory pathway are discussed.

磷脂酶d1产生的磷脂酸调节神经内分泌细胞从生物发生到代偿性内吞的分泌颗粒运输
钙调节的胞吐作用是一个多步骤的过程,它允许专门的分泌细胞释放信息分子,如神经递质、神经肽和细胞间通讯的激素。从高尔基池分泌囊泡的生物发生之后,它们被运输到细胞周围,并与质膜的胞外部位对接和融合,从而释放囊泡内容物。随后囊泡的蛋白质和脂质成分的代偿性内吞维持细胞稳态。尽管脂质代表了大部分的膜成分,但人们对它们在这些过程中的作用知之甚少。利用电化学测量单个染色质细胞儿茶酚胺分泌和与遗传、沉默和药物学方法相关的屋顶膜片的电子显微镜相结合,我们最近报道了不同磷脂酸(PA)物种通过控制颗粒对接和融合动力学来调节儿茶酚胺的释放效率。从磷脂酰胆碱中产生PA的磷脂酶D1 (PLD1)似乎是该模型中这些作用的主要原因。在这里,我们使用旋转盘共聚焦显微镜扩展了这项工作,显示抑制PLD活性也降低了颗粒进行定向运动的速度。此外,多巴胺β-羟化酶(DβH)内化实验显示,PLD产生的PA是通过代偿性内吞作用恢复泡膜含量的最佳条件。因此,在归因于PA的众多作用中,我们的工作以在不同细胞模型中提出的分泌中的关键调节作用为核心。很少有线索可以解释PA在分泌途径上的这些多种功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in biological regulation
Advances in biological regulation Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
8.90
自引率
0.00%
发文量
41
审稿时长
17 days
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