RNase L通过改变先天免疫信号抑制毛囊再生。

IF 13.6 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Journal of Clinical Investigation Pub Date : 2025-02-04 DOI:10.1172/JCI172595
Charles S Kirby, Nasif Islam, Eric Wier, Martin P Alphonse, Evan Sweren, Gaofeng Wang, Haiyun Liu, Dongwon Kim, Ang Li, Sam S Lee, Andrew M Overmiller, Yingchao Xue, Sashank Reddy, Nathan K Archer, Lloyd S Miller, Jianshi Yu, Weiliang Huang, Jace W Jones, Sooah Kim, Maureen A Kane, Robert H Silverman, Luis A Garza
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引用次数: 0

摘要

哺乳动物损伤反应的主要特征是纤维化和瘢痕形成,而不是功能性再生。哺乳动物的这种有限的再生能力可能反映了促再生程序的丧失或类似肿瘤抑制基因功能的主动抑制。为了揭示控制哺乳动物再生的程序,我们筛选了激光再生治疗后人类受试者的转录本,并将其与伤口诱导毛发新生(WIHN)增强的小鼠进行比较,WIHN是哺乳动物器官发生的罕见例子。我们发现Rnasel-/-小鼠表现出增加的再生能力,通过增强IL-36α提高WIHN。与RNase L刺激caspase-1的已知作用一致,我们发现caspase的药理抑制以IL-36依赖的方式促进了多种上皮组织的再生。我们发现了一个负反馈回路,其中RNase L激活的caspase-1通过切割toll样接头蛋白TRIF抑制促再生dsRNA-TLR3信号级联。通过整合单细胞RNA测序和空间转录组学分析,我们证实Oas和Il36基因在损伤部位高表达,并在Rnasel-/-小鼠伤口中升高。这项研究表明,RNase L作为一种再生抑制基因,在一种功能权衡中,以抑制再生为代价,在病毒感染期间缓和免疫过度激活。
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RNase L represses hair follicle regeneration through altered innate immune signaling.

Mammalian injury responses are predominantly characterized by fibrosis and scarring rather than functional regeneration. This limited regenerative capacity in mammals could reflect a loss of proregeneration programs or active suppression by genes functioning akin to tumor suppressors. To uncover programs governing regeneration in mammals, we screened transcripts in human participants following laser rejuvenation treatment and compared them with mice with enhanced wound-induced hair neogenesis (WIHN), a rare example of mammalian organogenesis. We found that Rnasel-/- mice exhibit an increased regenerative capacity, with elevated WIHN through enhanced IL-36α. Consistent with RNase L's known role to stimulate caspase-1, we found that pharmacologic inhibition of caspases promoted regeneration in an IL-36-dependent manner in multiple epithelial tissues. We identified a negative feedback loop, where RNase L-activated caspase-1 restrains the proregenerative dsRNA-TLR3 signaling cascade through the cleavage of toll-like adaptor protein TRIF. Through integrated single-cell RNA-seq and spatial transcriptomic profiling, we confirmed OAS & IL-36 genes to be highly expressed at the site of wounding and elevated in Rnasel-/- mouse wounds. This work suggests that RNase L functions as a regeneration repressor gene, in a functional trade off that tempers immune hyperactivation during viral infection at the cost of inhibiting regeneration.

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来源期刊
Journal of Clinical Investigation
Journal of Clinical Investigation 医学-医学:研究与实验
CiteScore
24.50
自引率
1.30%
发文量
1034
审稿时长
2 months
期刊介绍: The Journal of Clinical Investigation, established in 1924 by the ASCI, is a prestigious publication that focuses on breakthroughs in basic and clinical biomedical science, with the goal of advancing the field of medicine. With an impressive Impact Factor of 15.9 in 2022, it is recognized as one of the leading journals in the "Medicine, Research & Experimental" category of the Web of Science. The journal attracts a diverse readership from various medical disciplines and sectors. It publishes a wide range of research articles encompassing all biomedical specialties, including Autoimmunity, Gastroenterology, Immunology, Metabolism, Nephrology, Neuroscience, Oncology, Pulmonology, Vascular Biology, and many others. The Editorial Board consists of esteemed academic editors who possess extensive expertise in their respective fields. They are actively involved in research, ensuring the journal's high standards of publication and scientific rigor.
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