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Optical metrics of the extracellular matrix predict compositional and mechanical changes after myocardial infarction

机译:胞外基质的光学指标可预测心肌梗塞后的成分和机械变化

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摘要

Understanding the organization and mechanical function of the extracellular matrix (ECM) is critical for the development of therapeutic strategies that regulate wound healing following disease or injury. However, these relationships are challenging to elucidate during remodeling following myocardial infarction (MI) due to rapid changes in cellularity and an inability to characterize both ECM microstructure and function non-destructively. In this study, we overcome those challenges through whole organ decellularization and non-linear optical microscopy to directly relate the microstructure and mechanical properties of myocardial ECM. We non-destructively quantify collagen organization, content, and cross-linking within decellularized healthy and infarcted myocardium using second harmonic generation (SHG) and two photon excited autofluorescence. Tensile mechanical testing and compositional analysis reveal that the cumulative SHG intensity within each image volume and the average collagen autofluorescence are significantly correlated with collagen content and elastic modulus of the ECM, respectively. Compared to healthy ECM, infarcted tissues demonstrate a significant increase in collagen content and fiber alignment, and a decrease in cross-linking and elastic modulus. These findings indicate that cross-linking plays a key role in stiffness at the collagen fiber level following infarction, and highlight how this non-destructive approach to assessing remodeling can be used to understand ECM structure-function relationships.
机译:了解细胞外基质(ECM)的组织和机械功能对于制定调节疾病或损伤后伤口愈合的治疗策略至关重要。但是,由于细胞数量的快速变化以及无法表征ECM的微观结构和功能,因此在心肌梗死(MI)重构期间难以阐明这些关系。在这项研究中,我们通过全器官脱细胞和非线性光学显微镜克服了这些挑战,从而直接关联了心肌ECM的微观结构和力学性能。我们使用二次谐波产生(SHG)和两个光子激发的自发荧光非破坏性地量化了脱细胞的健康和梗死心肌中的胶原组织,含量和交联。拉伸机械测试和成分分析表明,每个图像体积内的累积SHG强度和平均胶原自发荧光分别与ECM的胶原含量和弹性模量显着相关。与健康的ECM相比,梗塞组织的胶原蛋白含量和纤维排列明显增加,交联和弹性模量降低。这些发现表明,交联在梗塞后胶原纤维水平上的硬度中起着关键作用,并强调了这种评估重构的非破坏性方法如何可用于理解ECM结构与功能的关系。

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