Morphology and intervesicle distances in condensates of synaptic vesicles and synapsin.

IF 3.2 3区 生物学 Q2 BIOPHYSICS
Biophysical journal Pub Date : 2024-12-03 Epub Date: 2024-11-08 DOI:10.1016/j.bpj.2024.11.004
Charlotte Neuhaus, Jette Alfken, Jakob Frost, Lauren Matthews, Christian Hoffmann, Marcelo Ganzella, Dragomir Milovanovic, Tim Salditt
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引用次数: 0

Abstract

Synaptic vesicle clusters or pools are functionally important constituents of chemical synapses. In the so-called reserve and the active pools, neurotransmitter-loaded synaptic vesicles (SVs) are stored and conditioned for fusion with the synaptic membrane and subsequent neurotransmitter release during synaptic activity. Vesicle clusters can be considered as so-called membraneless compartments, which form by liquid-liquid phase separation. Synapsin as one of the most abundant synaptic proteins has been identified as a major driver of pool formation. It has been shown to induce liquid-liquid phase separation and form condensates on its own in solution, but also has been shown to integrate vesicles into condensates in vitro. In this process, the intrinsically disordered region of synapsin is believed to play a critical role. Here, we first investigate the solution structure of synapsin and SVs separately by small-angle x-ray scattering. In the limit of low momentum transfer q, the scattering curve for synapsin gives clear indication for supramolecular aggregation (condensation). We then study mixtures of SVs and synapsin-forming condensates, aiming at the morphology and intervesicle distances, i.e., the structure of the condensates in solution. To obtain the structure factor S(q) quantifying intervesicle correlation, we divide the scattering curve of condensates by that of pure SV suspensions. Analysis of S(q) in combination with numerical simulations of cluster aggregation indicates a noncompact fractal-like vesicular fluid with rather short intervesicle distances at the contact sites.

突触小泡和突触素缩聚物的形态和小泡之间的距离。
突触小泡簇或池是化学突触的重要功能成分。在所谓的储备池和活性池中,含有神经递质的突触小泡(SV)被储存起来,并在突触活动中与突触膜融合,随后释放神经递质。囊泡簇可被视为通过液-液相分离(LLPS)形成的所谓无膜隔室。突触素是最丰富的突触蛋白之一,已被确定为形成池的主要驱动因素。研究表明,它不仅能在溶液中诱导液-液相分离并形成凝聚物,还能在体外将囊泡整合到凝聚物中。在这一过程中,突触素的内在无序区被认为起着关键作用。在这里,我们首先通过小角 X 射线散射(SAXS)分别研究了突触素和 SVs 的溶液结构。在低动量传递 q 的极限条件下,突触素的散射曲线清楚地显示了超分子聚集(凝聚)。我们随后研究了 SVs 和突触素的混合物形成的凝聚物,目的是研究其形态和囊泡间的距离,即溶液中凝聚物的结构。为了获得量化囊泡间相关性的结构因子 S(q),我们将凝聚物的散射曲线除以纯 SV 悬浮液的散射曲线。结合团聚的数值模拟对 S(q)的分析表明,这是一种非紧密的分形类囊泡流体,接触点的囊泡间距离很短。
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
Biophysical journal
Biophysical journal 生物-生物物理
CiteScore
6.10
自引率
5.90%
发文量
3090
审稿时长
2 months
期刊介绍: BJ publishes original articles, letters, and perspectives on important problems in modern biophysics. The papers should be written so as to be of interest to a broad community of biophysicists. BJ welcomes experimental studies that employ quantitative physical approaches for the study of biological systems, including or spanning scales from molecule to whole organism. Experimental studies of a purely descriptive or phenomenological nature, with no theoretical or mechanistic underpinning, are not appropriate for publication in BJ. Theoretical studies should offer new insights into the understanding ofexperimental results or suggest new experimentally testable hypotheses. Articles reporting significant methodological or technological advances, which have potential to open new areas of biophysical investigation, are also suitable for publication in BJ. Papers describing improvements in accuracy or speed of existing methods or extra detail within methods described previously are not suitable for BJ.
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