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AFM indentation of aorta and lung reveals tissue-specific micromechanical degradation with age in a mouse model of severe Marfan syndrome

机译:AFM凹陷的主动脉和肺揭示了严重马尾综合征小鼠模型中的组织特异性微机械降解

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Marfan syndrome (MFS) is an autosomal dominant disease that causes connective tissue disorders due to mutation of the fibrillin-1 gene, FBN1. This study aimed to characterize the microelastic properties of aorta and lung tissues from wild type (WT) and age-matched FBN1-underexpressing mutant (MT) mice to identify tissue-specific biomechanical effects of aging and cardiopulmonary disease in MFS. Atomic force microscopy (AFM) was used to indent intact lung parenchyma and aortic wall tissues, using Hybrid Eshelby Decomposition (HED) analysis to extract layer-specific properties of the intima and media. The intima stiffened with age and was not different between MT and WT tissues. By contrast, the media layer of MT aorta showed progressive structural and mechanical degradation, with a modulus 50% softer than aged-matched WT media by 3.5 months old. MT lung also revealed rapid mechanical deterioration during adulthood, and was 90% softer than WT lung at 3.5 months. The findings reveal micromechanical softening of elastin-rich aorta and lung tissues in aging MT mice, providing insights into the biomechanical consequences of MFS.
机译:Marfan综合征(MFS)是一种常染色体显性疾病,导致结缔组织疾病引起的,因为FIBRILLIN-1基因FBN1的突变。本研究旨在表征来自野生型(WT)和年龄匹配的FBN1阴压突变体(MT)小鼠的主动脉和肺组织的微弹性质,以鉴定MFS中老化和心肺疾病的组织特异性生物力学作用。使用杂化eShelby分解(HED)分解用于提取内膜和培养基的层特异性,用于缩进完整的肺实质和主动脉组织的完整肺实质和主动脉壁组织。随着年龄的增长而激化的内膜在Mt和Wt组织之间并不不同。相比之下,MT主动脉的介质层表现出逐步的结构和机械降解,模量比较老化的WT培养基更柔软3.5个月。 Mt Lung还揭示了成年期间的快速机械恶化,比3.5个月的WT肺较高90%。该研究结果揭示了富含Mt小鼠的富含弹性蛋白的主动脉和肺组织的微机械软化,为MFS的生物力学后果提供了洞察力。

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