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映射丝状肌球蛋白 2 与神经元特异性 drebrin A 之间的分子相互作用界面

Mapping Molecular Interaction Interface Between Diaphanous Formin-2 and Neuron-Specific Drebrin A.

机构信息

Department of Chemistry and Biochemistry, California State University, Long Beach (CSULB), Long Beach, CA 90840, USA.

Department of Chemistry and Biochemistry, University of California, Los Angeles (UCLA), Los Angeles, CA 90095, USA; Sydney Mass Spectrometry, The University of Sydney (USyd), Sydney, New South Wales 2006, Australia.

出版信息

J Mol Biol. 2023 Dec 15;435(24):168334. doi: 10.1016/j.jmb.2023.168334. Epub 2023 Oct 26.

Abstract

Actin cytoskeleton is critical for neuronal shape and function. Drebrin and formins are key regulators of neuronal actin networks. Neuron-specific drebrin A is highly enriched in dendritic spines (postsynaptic terminals) of mature excitatory neurons. Decreased levels of drebrin in dendritic spines is a hallmark of Alzheimer's disease, epilepsy, and other complex disorders, which calls for better understanding of its regulatory functions. Drebrin A was previously shown to inhibit actin nucleation and bundling by the diaphanous formin-2 (mDia2) - an actin nucleator that is involved in the initiation of dendritic spines. Characterization of the molecular binding interface between mDia2 and drebrin is necessary to better understand the functional consequences of this interaction and its biological relevance. Prior work suggested a multi-pronged interface between mDia2 and drebrin, which involves both N-terminal and C-terminal regions of the drebrin molecule. Here we used mass spectrometry analysis, deletion mutagenesis, and an array of synthetic peptides of neuronal drebrin A to map its formin-binding interface. The mDia2-interacting interface on drebrin was narrowed down to three highly conserved 9-16 residue sequences that were used to identify some of the key residues involved in this interaction. Deletion of the C-terminal region of drebrin greatly reduces its binding to mDia2 and the extent of its inhibition of formin-driven actin assembly. Moreover, our experiments with formins from different subfamilies showed that drebrin is a specific rather than general inhibitor of these proteins. This work contributes to a molecular level understanding of the formin-drebrin interaction and will help to unravel its biological significance.

摘要

肌动蛋白细胞骨架对于神经元的形状和功能至关重要。韧蛋白和形成蛋白是神经元肌动蛋白网络的关键调节因子。神经元特异性韧蛋白 A 在成熟兴奋性神经元的树突棘(突触后末端)中高度富集。树突棘中韧蛋白的水平降低是阿尔茨海默病、癫痫和其他复杂疾病的标志,这需要更好地理解其调节功能。先前的研究表明,韧蛋白 A 通过丝状形成蛋白-2(mDia2)抑制肌动蛋白成核和束集,mDia2 是一种参与树突棘起始的肌动蛋白成核因子。为了更好地理解这种相互作用的功能后果及其生物学相关性,有必要对 mDia2 和韧蛋白之间的分子结合界面进行特征描述。先前的工作表明,mDia2 和韧蛋白之间存在多方面的界面,涉及韧蛋白分子的 N 端和 C 端区域。在这里,我们使用质谱分析、缺失突变和神经元韧蛋白 A 的一系列合成肽来绘制其形成蛋白结合界面。mDia2 与韧蛋白相互作用的界面缩小到三个高度保守的 9-16 残基序列,用于鉴定该相互作用涉及的一些关键残基。韧蛋白 C 端区域的缺失大大降低了其与 mDia2 的结合及其对形成蛋白驱动的肌动蛋白组装的抑制程度。此外,我们对来自不同亚家族的形成蛋白的实验表明,韧蛋白是这些蛋白的特异性而非一般性抑制剂。这项工作有助于深入了解形成蛋白-韧蛋白相互作用的分子水平,并有助于揭示其生物学意义。

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