UCHL1通过HSPA8的去泛素化,促进伴侣介导的自噬,拮抗自噬依赖性铁凋亡,从而减轻髓核细胞衰老。

IF 14.3
Zhouwei Wu, Shu Yang, Zhichen Jiang, Yuxuan Zhu, Haibo Liang, Yifeng Shi, Sunlong Li, Shuhao Zhang, Yining Xu, Chenglong Hong, Juntao Ying, Chenggui Wang, Xiangyang Wang
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引用次数: 0

摘要

伴侣介导的自噬(CMA)是一种依赖溶酶体的蛋白质降解途径,在细胞衰老相关的退行性疾病中起着关键作用,但人们对其知之甚少。我们的研究揭示了一种新的机制,即UCHL1通过激活CMA来对抗自噬依赖性铁下垂,在减轻髓核细胞(NPC)衰老和椎间盘退变(IVDD)中起关键作用。通过对人类样本的测序分析,我们确定UCHL1是影响椎间盘退变的潜在因素。进一步的研究表明,UCHL1通过去泛素化稳定HSPA8来激活CMA。反过来,HSPA8通过CMA途径识别并促进HPCAL1的降解,通过结合其“KFERQ”基序,最终缓解NPC衰老。重要的是,我们证明了工程外泌体传递过表达uchl1的质粒有效地缓解了鼻咽癌的衰老,并显著减缓了IVDD的进展。这一发现强调了cma通过UCHL1调节在IVDD中调节铁下垂的重要性,并作为改善慢性疼痛和IVDD进展的有希望的靶点。AAV:腺相关病毒;AB: Alcian Blue;ACSL4:酰基辅酶a合成酶长链家族成员4;ALP:自噬-溶酶体途径;Baf-A1:巴霉素A1;CHX:环己酰亚胺;CMA:伴侣介导的自噬;Co-IP: co-immunoprecipitation;DUBs:去泛素酶;eMI:内体微自噬;Evs:细胞外囊泡;挂式:外来体;GPX4:谷胱甘肽过氧化物酶4;H&E:苏木精和伊红;hsnpc:人类npc;如果:免疫荧光;包含IHC:免疫组织化学;IP-MS:免疫沉淀质谱法;IVDD:椎间盘退变;IVDs:椎间盘;LBP:腰痛;LDP:腰椎间盘突出;MRI:磁共振成像;N/L: NH4Cl和lepeptin;NP:髓核;npc:髓核细胞;PCA:主成分分析;qRT-PCR:实时定量PCR;RnBMSCs:大鼠骨髓间充质干细胞;rnnpc:老鼠npc;ROS:活性氧;SA-GLB1/β-gal:衰老相关半乳糖苷酶β 1;SASP:衰老相关分泌表型;SD: Sprague-Dawley;SO: Safranin O-Fast Green;thbhp:过氧化叔丁基;UCHL1:泛素c端水解酶L1;UPS:泛素-蛋白酶体系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
UCHL1 alleviates nucleus pulposus cell senescence by promoting chaperone-mediated autophagy antagonizing autophagy-dependent ferroptosis through deubiquitination of HSPA8.

Chaperone-mediated autophagy (CMA), a lysosome-dependent protein degradation pathway, plays a pivotal yet poorly understood role in cellular senescence-related degenerative diseases. Our study sheds light on a novel mechanism whereby UCHL1 plays a crucial role in mitigating nucleus pulposus cell (NPC) senescence and intervertebral disc degeneration (IVDD) by activating CMA to counteract autophagy-dependent ferroptosis. Through sequencing analysis of human samples, we identified UCHL1 as a potential factor influencing disc degeneration. Further research revealed that UCHL1 activates CMA by stabilizing HSPA8 through deubiquitination. HSPA8, in turn, recognizes and promotes the degradation of HPCAL1 via the CMA pathway by binding to its "KFERQ" motif, ultimately alleviating NPC senescence. Importantly, we demonstrated that engineered exosomes delivering UCHL1-overexpressing plasmids effectively alleviated NPC senescence and significantly mitigated the progression of IVDD. This finding underscores the significance of CMA-regulated ferroptosis in IVDD through UCHL1 modulation and as a promising target for improving chronic pain and IVDD progression.Abbreviations: AAV: adeno-associated virus; AB: Alcian Blue; ACSL4: acyl-CoA synthetase long chain family member 4; ALP: autophagy-lysosome pathway; Baf-A1: bafilomycin A1; CHX: cycloheximide; CMA: chaperone-mediated autophagy; Co-IP: co-immunoprecipitation; DUBs: deubiquitinating enzymes; eMI: endosomal microautophagy; Evs: extracellular vesicles; Exo: exosome; GPX4: glutathione peroxidase 4; H&E: hematoxylin and eosin; HsNPCs: Human NPCs; IF: immunofluorescence; IHC: immunohistochemistry; IP-MS: immunoprecipitation mass spectrometry; IVDD: intervertebral disc degeneration; IVDs: intervertebral discs; LBP: low back pain; LDP: lumbar disc prolapse; MRI: magnetic resonance imaging; N/L: NH4Cl and leupeptin; NP: nucleus pulposus; NPCs: nucleus pulposus cells; PCA: principal component analysis; qRT-PCR: quantitative real-time PCR; RnBMSCs: rat bone marrow mesenchymal stem cells; RnNPCs: rat NPCs; ROS: reactive oxygen species; SA-GLB1/β-gal: senescence-associated galactosidase beta 1; SASP: senescence-associated secretory phenotype; SD: Sprague-Dawley; SO: Safranin O-Fast Green; TBHP: tert-butyl hydroperoxide; UCHL1: ubiquitin C-terminal hydrolase L1; UPS: ubiquitin-proteasome system.

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