Mechanistic exploration of ubiquitination-mediated pathways in cerebral ischemic injury.

IF 2.6 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Biology Reports Pub Date : 2024-11-28 DOI:10.1007/s11033-024-10123-5
Supriya Khanra, Shareen Singh, Thakur Gurjeet Singh
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Abstract

The ubiquitin-proteasome system (UPS) plays a pivotal role in regulating protein homeostasis and cellular processes, including protein degradation, trafficking, DNA repair, and cell signaling. During cerebral ischemia, ischemic conditions profoundly disrupt UPS activity, leading to proteasomal dysfunction and the accumulation of abnormal proteins. This imbalance contributes to neuronal injury and cell death observed in ischemic stroke. The UPS is intricately linked to various signaling pathways crucial for neuronal survival, inflammation, and cellular stress response, such as NF-κB, TRIM, TRIP, JAK-STAT, PI3K/Akt, and ERK1/2. Alterations in the ubiquitination process can significantly impact the activation and regulation of these pathways, exacerbating ischemic brain injury. Therapeutic approaches targeting the UPS in cerebral ischemia aim to rebalance protein levels, reduce proteotoxic stress, and mitigate neuronal injury. Strategies include proteasome inhibition, targeting specific ubiquitin ligases and deubiquitinating enzymes, and modulating ubiquitination-mediated regulation of key signaling pathways implicated in ischemia-induced pathophysiology. Therefore, the present review discusses the molecular mechanisms underlying UPS dysfunction in ischemic stroke is crucial for developing effective therapeutic interventions. Modulating ubiquitination-mediated pathways through therapeutic interventions targeting specific UPS components holds significant promise for mitigating ischemic brain injury and promoting neuroprotection and functional recovery in patients with cerebral ischemia.

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泛素化介导的脑缺血损伤机制探索
泛素-蛋白酶体系统(UPS)在调节蛋白质平衡和细胞过程(包括蛋白质降解、转运、DNA 修复和细胞信号传导)中发挥着关键作用。在脑缺血期间,缺血条件会严重破坏 UPS 的活性,导致蛋白酶体功能障碍和异常蛋白质的积累。这种失衡导致了缺血性中风中观察到的神经元损伤和细胞死亡。UPS 与对神经元存活、炎症和细胞应激反应至关重要的各种信号通路(如 NF-κB、TRIM、TRIP、JAK-STAT、PI3K/Akt 和 ERK1/2)有着错综复杂的联系。泛素化过程的改变会严重影响这些通路的激活和调节,从而加剧缺血性脑损伤。针对脑缺血中泛素化过程的治疗方法旨在重新平衡蛋白质水平,减少蛋白毒性压力,减轻神经元损伤。这些策略包括抑制蛋白酶体、靶向特定泛素连接酶和去泛素化酶,以及调节泛素化介导的与缺血诱导的病理生理学有关的关键信号通路。因此,本综述讨论缺血性脑卒中 UPS 功能障碍的分子机制对于开发有效的治疗干预措施至关重要。通过针对特定 UPS 成分的治疗干预来调节泛素化介导的通路,对于减轻缺血性脑损伤、促进脑缺血患者的神经保护和功能恢复大有希望。
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来源期刊
Molecular Biology Reports
Molecular Biology Reports 生物-生化与分子生物学
CiteScore
5.00
自引率
0.00%
发文量
1048
审稿时长
5.6 months
期刊介绍: Molecular Biology Reports publishes original research papers and review articles that demonstrate novel molecular and cellular findings in both eukaryotes (animals, plants, algae, funghi) and prokaryotes (bacteria and archaea).The journal publishes results of both fundamental and translational research as well as new techniques that advance experimental progress in the field and presents original research papers, short communications and (mini-) reviews.
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