Distinct origin and region-dependent contribution of stromal fibroblasts to fibrosis following traumatic injury in mice

IF 21.2 1区 医学 Q1 NEUROSCIENCES Nature neuroscience Pub Date : 2024-06-07 DOI:10.1038/s41593-024-01678-4
Daniel Holl, Wing Fung Hau, Anais Julien, Shervin Banitalebi, Jannis Kalkitsas, Soniya Savant, Enric Llorens-Bobadilla, Yann Herault, Guillaume Pavlovic, Mahmood Amiry-Moghaddam, David Oliveira Dias, Christian Göritz
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Abstract

Fibrotic scar tissue formation occurs in humans and mice. The fibrotic scar impairs tissue regeneration and functional recovery. However, the origin of scar-forming fibroblasts is unclear. Here, we show that stromal fibroblasts forming the fibrotic scar derive from two populations of perivascular cells after spinal cord injury (SCI) in adult mice of both sexes. We anatomically and transcriptionally identify the two cell populations as pericytes and perivascular fibroblasts. Fibroblasts and pericytes are enriched in the white and gray matter regions of the spinal cord, respectively. Both cell populations are recruited in response to SCI and inflammation. However, their contribution to fibrotic scar tissue depends on the location of the lesion. Upon injury, pericytes and perivascular fibroblasts become activated and transcriptionally converge on the generation of stromal myofibroblasts. Our results show that pericytes and perivascular fibroblasts contribute to the fibrotic scar in a region-dependent manner. The origin and composition of stromal fibroblasts in the fibrotic CNS scar are unclear. Here, the authors demonstrate that pericytes and perivascular fibroblasts contribute to fibrotic scarring following spinal cord injury in mice in a region-dependent manner.

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基质成纤维细胞对小鼠创伤后纤维化的不同起源和区域依赖性贡献
人和小鼠体内都会形成纤维化疤痕组织。纤维化疤痕会影响组织再生和功能恢复。然而,疤痕形成成纤维细胞的来源尚不清楚。在这里,我们发现在成年雌雄小鼠脊髓损伤(SCI)后,形成纤维化瘢痕的基质成纤维细胞来自两个血管周围细胞群。我们在解剖学和转录学上确定这两个细胞群为周细胞和血管周围成纤维细胞。成纤维细胞和周细胞分别富集在脊髓的白质和灰质区域。这两种细胞群在脊髓损伤和炎症时都会被招募。然而,它们对纤维化瘢痕组织的贡献取决于病变的位置。损伤后,周细胞和血管周围成纤维细胞被激活并转录为基质肌成纤维细胞。我们的研究结果表明,周细胞和血管周围成纤维细胞对纤维化瘢痕的形成具有区域依赖性。
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来源期刊
Nature neuroscience
Nature neuroscience 医学-神经科学
CiteScore
38.60
自引率
1.20%
发文量
212
审稿时长
1 months
期刊介绍: Nature Neuroscience, a multidisciplinary journal, publishes papers of the utmost quality and significance across all realms of neuroscience. The editors welcome contributions spanning molecular, cellular, systems, and cognitive neuroscience, along with psychophysics, computational modeling, and nervous system disorders. While no area is off-limits, studies offering fundamental insights into nervous system function receive priority. The journal offers high visibility to both readers and authors, fostering interdisciplinary communication and accessibility to a broad audience. It maintains high standards of copy editing and production, rigorous peer review, rapid publication, and operates independently from academic societies and other vested interests. In addition to primary research, Nature Neuroscience features news and views, reviews, editorials, commentaries, perspectives, book reviews, and correspondence, aiming to serve as the voice of the global neuroscience community.
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