鉴定引起异位钙化和损伤肌肉再生的新型巨噬细胞和骨形态发生蛋白信号

IF 4.6 2区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Linan Shi , Zhifeng He , Toru Hiraga , Ziyang Liu , Teruhito Yamashita , Rina Iwamoto , Toshihide Mizoguchi , Yuko Nakamichi , Yoshiaki Kubota , Nobuyuki Udagawa , Yasuhiro Kobayashi
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引用次数: 0

摘要

异位钙化是在损伤、手术或基因突变后各种组织中发生的异常再生反应。然而,其潜在机制尚不清楚。通过比较氯钠脂质体、Csf1r中和抗体和巨噬细胞特异性Csf1r基因缺失(Csf1r cKO)三种巨噬细胞消耗方法,我们发现在诺特芬注射小鼠和bacl2注射Csf1r cKO小鼠的钙化肌肉中,F4/80(+)Csf1r(−)巨噬细胞特异性增加。机制上,骨形态发生蛋白(BMP)信号被发现有助于异位钙化。对公开单细胞测序数据的再分析和使用Cdh5creERT2小鼠的谱系追踪分析显示,内皮到间充质转化(EndoMT)也是异位钙化的关键因素,正如间充质祖细胞中EndoMT相关标记的高表达所证明的那样。值得注意的是,BMP抑制剂可以减少钙化并促进肌肉再生。因此,F4/80(+)Csf1r(−)巨噬细胞和BMP信号是预防由创伤、烧伤、感染或手术干预引发的异位钙化的有希望的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identification of novel macrophages and bone morphogenetic protein signals causing ectopic calcification and impairing muscle regeneration
Ectopic calcification is an abnormal regenerative response occurring in various tissues following injury, surgery, or genetic mutations. However, its underlying mechanisms remain unclear. By comparing three macrophage depletion methods using clodronate liposome, Csf1r neutralizing antibody, and macrophage-specific Csf1r gene deletion (Csf1r cKO), we found that F4/80(+)Csf1r(−) macrophages were specifically increased in calcified muscles in notexin-injected mice and BaCl2-injected Csf1r cKO mice. Mechanistically, bone morphogenetic protein (BMP) signaling was found to contribute to ectopic calcification. Reanalysis of public single-cell sequencing data and lineage-tracing analysis using Cdh5creERT2 mice revealed that endothelial-to-mesenchymal transition (EndoMT) is also a key contributor to ectopic calcification, as evidenced by the high expression of EndoMT-related markers in mesenchymal progenitor cells. Notably, the administration of BMP inhibitors reduced calcification and promoted muscle regeneration. Thus, F4/80(+)Csf1r(−) macrophages and BMP signals represent promising therapeutic targets for preventing ectopic calcifications triggered by trauma, burns, infections, or surgical interventions.
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来源期刊
iScience
iScience Multidisciplinary-Multidisciplinary
CiteScore
7.20
自引率
1.70%
发文量
1972
审稿时长
6 weeks
期刊介绍: Science has many big remaining questions. To address them, we will need to work collaboratively and across disciplines. The goal of iScience is to help fuel that type of interdisciplinary thinking. iScience is a new open-access journal from Cell Press that provides a platform for original research in the life, physical, and earth sciences. The primary criterion for publication in iScience is a significant contribution to a relevant field combined with robust results and underlying methodology. The advances appearing in iScience include both fundamental and applied investigations across this interdisciplinary range of topic areas. To support transparency in scientific investigation, we are happy to consider replication studies and papers that describe negative results. We know you want your work to be published quickly and to be widely visible within your community and beyond. With the strong international reputation of Cell Press behind it, publication in iScience will help your work garner the attention and recognition it merits. Like all Cell Press journals, iScience prioritizes rapid publication. Our editorial team pays special attention to high-quality author service and to efficient, clear-cut decisions based on the information available within the manuscript. iScience taps into the expertise across Cell Press journals and selected partners to inform our editorial decisions and help publish your science in a timely and seamless way.
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