Usp11 maintained the survival of marginal zone B cells under ionizing radiation by deubiquitinating DLL1 and JAG2.

IF 9.6 1区 生物学 Q1 CELL BIOLOGY Cell Death & Disease Pub Date : 2025-02-04 DOI:10.1038/s41419-025-07377-7
Jiaqi Sheng, Depei Wu, Jingzhe Shang, Xiaodan Fu, He Gao, Jianjie Rong, Jun Wang, Jiancheng Hu, Xiaofei Qi
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Abstract

Efficacy of radiation therapy is compromised by hematopoietic and immune impairments, with elusive underlying causes. This study aimed to elucidate Usp11's role in radiation-induced injuries and uncover related mechanisms. Utilized ARS mouse model to observe survival rates of Usp11-/- (KO) mice post-TBI (Total Body Irradiation). Assessed lymphocyte and MZ B (Marginal Zone B) cell rates using histological analysis, single-cell sequencing, immunofluorescence (IF), immunohistochemistry (IHC), and flow cytometry (FCM). Conducted Co-IP and ubiquitination experiments for mechanism elucidation. Quantified IgM and IgG using ELISA and FC. Explored public databases for potential correlation molecules. Our findings indicated that Usp11-/- mice exhibited improved survival rates following TBI, with the spleen playing a pivotal role. HE staining revealed a wider marginal zone in the spleen of Usp11+/+ mice post-irradiation. Single-cell sequencing, IF, IHC, and FCM analyses revealed a higher survival rate of MZ B cells in Usp11-/- mice after irradiation. Furthermore, treatment with the Usp11 inhibitor, mitoxantrone, successfully targeted and inhibited Usp11, thereby alleviating the reduction in MZ B cells in the spleen following total body irradiation. Mechanistically, Usp11 sustained the survival of MZ B cells by regulating the ubiquitination of Notch's ligands, DLL1 and JAG2, thereby promoting immune cell remodeling in the spleen. In conclusion, Usp11 played a crucial role in modulating immune system damage induced by ionizing radiation, primarily through ubiquitination of Notch ligands. This study provides insights into radiation-induced immune injuries and suggests Usp11 as a potential therapeutic target.

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Usp11通过去泛素化DLL1和JAG2维持边缘区B细胞在电离辐射下的存活。
放射治疗的疗效受到造血和免疫损伤的影响,其潜在原因难以捉摸。本研究旨在阐明Usp11在辐射损伤中的作用并揭示其相关机制。采用ARS小鼠模型观察Usp11-/- (KO)小鼠tbi (Total Body Irradiation)后的存活率。利用组织学分析、单细胞测序、免疫荧光(IF)、免疫组织化学(IHC)和流式细胞术(FCM)评估淋巴细胞和MZ B(边际区B)细胞率。进行协同ip和泛素化实验,阐明其机制。ELISA和FC定量IgM和IgG。探索潜在相关分子的公共数据库。我们的研究结果表明,Usp11-/-小鼠在TBI后表现出更高的存活率,其中脾脏发挥了关键作用。HE染色显示辐照后Usp11+/+小鼠脾脏边缘区变宽。单细胞测序、IF、IHC和FCM分析显示,辐照后Usp11-/-小鼠mzb细胞存活率较高。此外,使用Usp11抑制剂米托蒽醌治疗,成功靶向并抑制了Usp11,从而减轻了全身照射后脾脏MZ B细胞的减少。机制上,Usp11通过调节Notch配体DLL1和JAG2的泛素化,从而促进脾脏免疫细胞的重塑,维持MZ B细胞的存活。综上所述,Usp11主要通过Notch配体的泛素化,在调节电离辐射引起的免疫系统损伤中发挥了重要作用。这项研究提供了对辐射诱导的免疫损伤的见解,并表明Usp11是一个潜在的治疗靶点。
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来源期刊
Cell Death & Disease
Cell Death & Disease CELL BIOLOGY-
CiteScore
15.10
自引率
2.20%
发文量
935
审稿时长
2 months
期刊介绍: Brought to readers by the editorial team of Cell Death & Differentiation, Cell Death & Disease is an online peer-reviewed journal specializing in translational cell death research. It covers a wide range of topics in experimental and internal medicine, including cancer, immunity, neuroscience, and now cancer metabolism. Cell Death & Disease seeks to encompass the breadth of translational implications of cell death, and topics of particular concentration will include, but are not limited to, the following: Experimental medicine Cancer Immunity Internal medicine Neuroscience Cancer metabolism
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