Proteostatic Remodeling of Small Heat Shock Chaperones─Crystallins by Ran-Binding Protein 2─and the Peptidyl-Prolyl cis–trans Isomerase and Chaperone Activities of Its Cyclophilin Domain

IF 4.1 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY ACS Chemical Neuroscience Pub Date : 2024-04-24 DOI:10.1021/acschemneuro.3c00792
Hemangi Patil, Haiqing Yi, Kyoung-in Cho and Paulo A. Ferreira*, 
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Abstract

Disturbances in protein phase transitions promote protein aggregation─a neurodegeneration hallmark. The modular Ran-binding protein 2 (Ranbp2) is a cytosolic molecular hub for rate-limiting steps of phase transitions of Ran-GTP-bound protein ensembles exiting nuclear pores. Chaperones also regulate phase transitions and proteostasis by suppressing protein aggregation. Ranbp2 haploinsufficiency promotes the age-dependent neuroprotection of the chorioretina against phototoxicity by proteostatic regulations of neuroprotective substrates of Ranbp2 and by suppressing the buildup of polyubiquitylated substrates. Losses of peptidyl-prolyl cis–trans isomerase (PPIase) and chaperone activities of the cyclophilin domain (CY) of Ranbp2 recapitulate molecular effects of Ranbp2 haploinsufficiency. These CY impairments also stimulate deubiquitylation activities and phase transitions of 19S cap subunits of the 26S proteasome that associates with Ranbp2. However, links between CY moonlighting activity, substrate ubiquitylation, and proteostasis remain incomplete. Here, we reveal the Ranbp2 regulation of small heat shock chaperones─crystallins in the chorioretina by proteomics of mice with total or selective modular deficits of Ranbp2. Specifically, loss of CY PPIase of Ranbp2 upregulates αA-Crystallin, which is repressed in adult nonlenticular tissues. Conversely, impairment of CY’s chaperone activity opposite to the PPIase pocket downregulates a subset of αA-Crystallin’s substrates, γ-crystallins. These CY-dependent effects cause age-dependent and chorioretinal-selective declines of ubiquitylated substrates without affecting the chorioretinal morphology. A model emerges whereby inhibition of Ranbp2’s CY PPIase remodels crystallins’ expressions, subdues molecular aging, and preordains the chorioretina to neuroprotection by augmenting the chaperone capacity and the degradation of polyubiquitylated substrates against proteostatic impairments. Further, the druggable Ranbp2 CY holds pan-therapeutic potential against proteotoxicity and neurodegeneration.

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Ran 结合蛋白 2 对小型热休克伴侣-结晶素的蛋白质重塑及其环嗜蛋白结构域的肽基-脯氨酰顺反异构酶和伴侣活性。
蛋白质相变紊乱会促进蛋白质聚集--神经变性的标志。模块化的Ran结合蛋白2(Ranbp2)是一个细胞膜分子枢纽,负责Ran-GTP结合的蛋白质集合体从核孔流出时相变的限速步骤。伴侣蛋白还通过抑制蛋白质聚集来调节相变和蛋白稳态。Ranbp2单倍体缺陷通过对Ranbp2神经保护底物的蛋白稳态调节和抑制多泛素化底物的积累,促进脉络膜对光毒性的年龄依赖性神经保护。肽基-脯氨酰-顺反异构酶(PPIase)和Ranbp2的环纤蛋白结构域(CY)的伴侣活性的丧失再现了Ranbp2单倍体缺乏症的分子效应。这些 CY 损伤还刺激了与 Ranbp2 相关联的 26S 蛋白酶体的 19S 帽亚基的去泛素化活性和相变。然而,CY月光活动、底物泛素化和蛋白稳态之间的联系仍不完整。在这里,我们通过对完全或选择性模块化缺失 Ranbp2 的小鼠进行蛋白质组学研究,揭示了 Ranbp2 对脉络膜中的小型热休克伴侣─晶体蛋白的调控。具体来说,Ranbp2 的 CY PPIase 缺失会上调αA-结晶素,而αA-结晶素在成年非晶状体组织中受到抑制。相反,CY 与 PPIase 口袋相反的伴侣活性受损会下调 αA-Crystallin 底物的一个子集,即 γ-结晶素。这些依赖于 CY 的效应会导致泛素化底物的年龄依赖性和脉络膜选择性下降,但不会影响脉络膜形态。根据这一模型,抑制 Ranbp2 的 CY PPIase 可重塑晶体蛋白的表达,抑制分子老化,并通过增强多泛素化底物的伴侣能力和降解来防止蛋白静态损伤,从而预先为脉络膜提供神经保护。此外,可药用的 Ranbp2 CY 具有抗蛋白毒性和神经变性的泛治疗潜力。
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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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