细胞外基质
脊髓损伤
胶质瘢痕
病理
脊髓
瘢痕组织
病变
再生(生物学)
化学
生物物理学
解剖
医学
细胞生物学
生物
外科
精神科
作者
Clara Manesco,Oscar Saavedra‐Villanueva,Marta Martin,Joshua de Lizaraga,Béla Varga,Thierry Cloître,Yannick N. Gerber,Florence E. Perrin,Csilla Gergely
标识
DOI:10.1016/j.nano.2023.102699
摘要
Spinal cord injury is a dramatic disease leading to severe motor, sensitive and autonomic impairments. After injury the axonal regeneration is partly inhibited by the glial scar, acting as a physical and chemical barrier. The scarring process involves microglia, astrocytes and extracellular matrix components, such as collagen, constructing the fibrotic component of the scar. To investigate the role of collagen, we used a multimodal label-free imaging approach combining multiphoton and atomic force microscopy. The second harmonic generation signal exhibited by fibrillar collagen enabled to specifically monitor it as a biomarker of the lesion. An increase in collagen density and the formation of more tortuous fibers over time after injury are observed. Nano-mechanical investigations revealed a noticeable hardening of the injured area, correlated with collagen fibers' formation. These observations indicate the concomitance of important structural and mechanical modifications during the fibrotic scar evolution.
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