Acetylation-ubiquitination crosstalk of DJ-1 mediates microcalcification formation in diabetic plaques via collagen-matrix vesicles interaction

IF 10.2 1区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS Cardiovascular Research Pub Date : 2024-12-30 DOI:10.1093/cvr/cvae263
Zhen Sun, Lihua Li, Yao Wu, Lili Zhang, Guangyao Zang, Yongjiang Qian, Haipeng Yao, Xiang Mao, Zhongqun Wang
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Abstract

Aim Microcalcification increases the vulnerability of plaques and has become an important driver of acute cardiovascular events in diabetic patients. However, the regulatory mechanisms remain unclear. DJ-1, a multifunctional protein, may play a potential role in the development of diabetic complications. Therefore, this study aims to explore the relationship between DJ-1 and microcalcification in diabetic plaques and investigate the mechanisms. Methods and results The regulatory relationship between DJ-1 and diabetic vascular microcalcification was determined in anterior tibial arteries from diabetic foot amputated patients, a diabetic apolipoprotein E-deficient (ApoE-/-) mouse model, and a vascular smooth muscle cell (VSMC) model. The ubiquitination and acetylation levels of DJ-1 were detected, and the acetylation-ubiquitination crosstalk was explored. Then, the regulatory effects of DJ-1 on receptor for advanced glycation end products (RAGE) were clarified. Further, the role of DJ-1 in collagen- matrix vesicles (MVs) interaction in diabetic microenvironment was observed. The collagen interacting surface protein of MVs was verified with proteomics and the biomimetic MVs model. In clinical samples, the number of microcalcification nodules in anterior tibial artery plaques was negatively correlated with DJ-1 expression. In diabetic ApoE-/- mice and VSMCs models, knocking down DJ-1 significantly increased the number of microcalcified nodules. N-acetyltransferase 10 (NAT10) was an acetyltransferase of DJ-1. NAT10 could crosstalk the ubiquitination of DJ-1 and enhance the ubiquitination of DJ-1 by E3 ubiquitin ligase tripartite motif-containing protein 32 (TRIM32). Besides, the knockdown of DJ-1 activated signal transducer and activator of transcription 1 (STAT1), and then STAT1 could bind to RAGE promoter, thus upregulating RAGE. Furthermore, the knockdown of DJ-1 significantly promoted collagen-MVs interaction in diabetic microenvironment. Milk fat globule epidermal growth factor 8 (MFGE8) may serve as a collagen-interacting protein. The coating of MFGE8 protein could increase the interaction between collagen and biomimetic MVs. Conclusion In the diabetic microenvironment, DJ-1 was a protective factor for vascular microcalcification. NAT10- and TRIM32-mediated acetylation-ubiquitination crosstalk resulted in the degradation of DJ-1. The decrease of DJ-1 could activate DJ-1/STAT1/RAGE microcalcification signal. Further, under the stimulation of DJ-1-mediated microcalcification signal, VSMCs released MVs with high abundance of MFGE8. MFGE8 promoted collagen-MVs interaction and finally accelerated the formation of microcalcification.
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j -1乙酰化-泛素化串扰通过胶原-基质囊泡相互作用介导糖尿病斑块的微钙化形成
目的微钙化增加了斑块的易损性,已成为糖尿病患者急性心血管事件的重要驱动因素。然而,监管机制仍不清楚。DJ-1是一种多功能蛋白,可能在糖尿病并发症的发生中发挥潜在作用。因此,本研究旨在探讨DJ-1与糖尿病斑块微钙化的关系并探讨其机制。方法和结果在糖尿病足截肢患者胫骨前动脉、糖尿病载脂蛋白e缺乏(ApoE-/-)小鼠模型和血管平滑肌细胞(VSMC)模型中,研究了DJ-1与糖尿病血管微钙化的调控关系。检测DJ-1的泛素化和乙酰化水平,并探讨乙酰化-泛素化串扰。阐明了DJ-1对晚期糖基化终产物受体(RAGE)的调控作用。进一步观察了DJ-1在糖尿病微环境中胶原-基质囊泡(MVs)相互作用中的作用。通过蛋白质组学和仿生mv模型验证了胶原蛋白与mv表面蛋白的相互作用。在临床样本中,胫骨前动脉斑块中微钙化结节的数量与DJ-1的表达呈负相关。在糖尿病ApoE-/-小鼠和VSMCs模型中,敲除DJ-1可显著增加微钙化结节的数量。n -乙酰转移酶10 (NAT10)是DJ-1的乙酰转移酶。NAT10可以串扰DJ-1的泛素化,并通过E3泛素连接酶三方基序蛋白32 (TRIM32)增强DJ-1的泛素化。此外,DJ-1基因的敲低激活了转录信号转导因子和激活因子1 (STAT1), STAT1可以结合RAGE启动子,从而上调RAGE。此外,在糖尿病微环境中,敲低DJ-1显著促进胶原- mvs的相互作用。乳脂球表皮生长因子8 (MFGE8)可能是一种胶原相互作用蛋白。MFGE8蛋白包被可增强胶原与仿生mv之间的相互作用。结论糖尿病微环境中,DJ-1是血管微钙化的保护因子。NAT10-和trim32介导的乙酰化泛素化串扰导致DJ-1的降解。DJ-1的减少可激活DJ-1/STAT1/RAGE微钙化信号。此外,在dj -1介导的微钙化信号刺激下,VSMCs释放出MFGE8丰度较高的mv。MFGE8促进胶原- mv相互作用,最终加速微钙化的形成。
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来源期刊
Cardiovascular Research
Cardiovascular Research 医学-心血管系统
CiteScore
21.50
自引率
3.70%
发文量
547
审稿时长
1 months
期刊介绍: Cardiovascular Research Journal Overview: International journal of the European Society of Cardiology Focuses on basic and translational research in cardiology and cardiovascular biology Aims to enhance insight into cardiovascular disease mechanisms and innovation prospects Submission Criteria: Welcomes papers covering molecular, sub-cellular, cellular, organ, and organism levels Accepts clinical proof-of-concept and translational studies Manuscripts expected to provide significant contribution to cardiovascular biology and diseases
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