DNAJB6b抑制淀粉样蛋白形成的能力取决于伴侣聚合状态

IF 4.1 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Chemical Neuroscience Pub Date : 2024-04-19 DOI:10.1021/acschemneuro.4c00120
Andreas Carlsson*, Emil Axell, Cecilia Emanuelsson, Ulf Olsson and Sara Linse, 
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引用次数: 0

摘要

对于许多伴侣体来说,自组装倾向与功能相关。据报道,高效的淀粉样蛋白抑制伴侣 DNAJB6b 可以寡聚。一个关键问题是,DNAJB6b 的自组装或其亚基是否是抑制淀粉样蛋白形成的活性单元。在这里,我们使用一种非修饰的伴侣蛋白来解决这个问题。我们使用淀粉样β 42肽(Aβ42)的成熟聚集动力学作为淀粉样抑制效率的读数。实验装置依赖于 DNAJB6b 组装在稀释时的缓慢解离。我们发现,伴侣组装体的解离与其抑制纤维形成的能力相关。因此,数据表明 DNAJB6b 集合体的亚基而不是大的寡聚体是抑制淀粉样蛋白的活性形式。我们的研究结果提供了关于 DNAJB6b 如何作为伴侣运行的见解,并说明了建立装配平衡和解离率对于设计动力学实验的重要性。
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The Ability of DNAJB6b to Suppress Amyloid Formation Depends on the Chaperone Aggregation State

For many chaperones, a propensity to self-assemble correlates with function. The highly efficient amyloid suppressing chaperone DNAJB6b has been reported to oligomerize. A key question is whether the DNAJB6b self-assemblies or their subunits are active units in the suppression of amyloid formation. Here, we address this question using a nonmodified chaperone. We use the well-established aggregation kinetics of the amyloid β 42 peptide (Aβ42) as a readout of the amyloid suppression efficiency. The experimental setup relies on the slow dissociation of DNAJB6b assemblies upon dilution. We find that the dissociation of the chaperone assemblies correlates with its ability to suppress fibril formation. Thus, the data show that the subunits of DNAJB6b assemblies rather than the large oligomers are the active forms in amyloid suppression. Our results provide insights into how DNAJB6b operates as a chaperone and illustrate the importance of established assembly equilibria and dissociation rates for the design of kinetic experiments.

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来源期刊
ACS Chemical Neuroscience
ACS Chemical Neuroscience BIOCHEMISTRY & MOLECULAR BIOLOGY-CHEMISTRY, MEDICINAL
CiteScore
9.20
自引率
4.00%
发文量
323
审稿时长
1 months
期刊介绍: ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following: Neurotransmitters and receptors Neuropharmaceuticals and therapeutics Neural development—Plasticity, and degeneration Chemical, physical, and computational methods in neuroscience Neuronal diseases—basis, detection, and treatment Mechanism of aging, learning, memory and behavior Pain and sensory processing Neurotoxins Neuroscience-inspired bioengineering Development of methods in chemical neurobiology Neuroimaging agents and technologies Animal models for central nervous system diseases Behavioral research
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