Novel In Vitro Platform for Studying the Cell Response to Healthy and Diseased Tendon Matrices

IF 5.4 2区 医学 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Biomaterials Science & Engineering Pub Date : 2024-04-26 DOI:10.1021/acsbiomaterials.4c00414
Subhajit Konar, Sophia Leung, Mei Lin Tay, Brendan Coleman, Nicola Dalbeth, Jillian Cornish, Dorit Naot and David S. Musson*, 
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Abstract

Current in vitro models poorly represent the healthy or diseased tendon microenvironment, limiting the translation of the findings to clinics. The present work aims to establish a physiologically relevant in vitro tendon platform that mimics biophysical aspects of a healthy and tendinopathic tendon matrix using a decellularized bovine tendon and to characterize tendon cells cultured using this platform. Bovine tendons were subjected to various decellularization techniques, with the efficacy of decellularization determined histologically. The biomechanical and architectural properties of the decellularized tendons were characterized using an atomic force microscope. Tendinopathy-mimicking matrices were prepared by treating the decellularized tendons with collagenase for 3 h or collagenase–chondroitinase (CC) for 1 h. The tendon tissue collected from healthy and tendinopathic patients was characterized using an atomic force microscope and compared to that of decellularized matrices. Healthy human tendon-derived cells (hTDCs) from the hamstring tendon were cultured on the decellularized matrices for 24 or 48 h, with cell morphology characterized using f-actin staining and gene expression characterized using real-time PCR. Tendon matrices prepared by freeze–thawing and 48 h nuclease treatment were fully decellularized, and the aligned structure and tendon stiffness (1.46 MPa) were maintained. Collagenase treatment prepared matrices with a disorganized architecture and reduced stiffness (0.75 MPa), mimicking chronic tendinopathy. Treatment with CC prepared matrices with a disorganized architecture without altering stiffness, mimicking early tendinopathy (1.52 MPa). hTDCs on a healthy tendon matrix were elongated, and the scleraxis (SCX) expression was maintained. On tendinopathic matrices, hTDCs had altered morphological characteristics and lower SCX expression. The expression of genes related to actin polymerization, matrix degradation and remodeling, and immune cell invasion were higher in hTDCs on tendinopathic matrices. Overall, the present study developed a physiological in vitro system to mimic healthy tendons and early and late tendinopathy, and it can be used to better understand tendon cell characteristics in healthy and diseased states.

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研究细胞对健康和患病肌腱基质反应的新型体外平台
目前的体外模型不能很好地代表健康或患病肌腱的微环境,从而限制了将研究结果应用于临床。本研究旨在建立一个与生理相关的体外肌腱平台,利用脱细胞牛肌腱模拟健康和肌腱病变肌腱基质的生物物理方面,并描述利用该平台培养的肌腱细胞的特征。牛肌腱采用了各种脱细胞技术,并通过组织学方法确定了脱细胞的效果。使用原子力显微镜鉴定了脱细胞肌腱的生物力学和结构特性。用胶原蛋白酶处理脱细胞肌腱3小时或用胶原蛋白酶-软骨素酶(CC)处理脱细胞肌腱1小时,制备出肌腱病模拟基质。利用原子力显微镜对从健康人和肌腱病患者身上采集的肌腱组织进行表征,并与脱细胞基质进行比较。来自腘绳肌腱的健康人肌腱衍生细胞(hTDCs)在脱细胞基质上培养 24 或 48 小时,细胞形态用 f-肌动蛋白染色法表征,基因表达用实时 PCR 法表征。通过冻融和核酸酶处理 48 小时制备的肌腱基质完全脱细胞,并保持了排列整齐的结构和肌腱硬度(1.46 兆帕)。胶原酶处理制备的基质结构混乱,硬度降低(0.75 兆帕),模拟了慢性肌腱病。健康肌腱基质上的 hTDC 拉长,硬轴(SCX)表达保持不变。在肌腱病变基质上,hTDC的形态特征发生改变,SCX表达较低。在腱鞘病变基质上,hTDCs 的肌动蛋白聚合、基质降解和重塑以及免疫细胞侵袭相关基因的表达较高。总之,本研究开发了一种生理体外系统来模拟健康肌腱以及早期和晚期肌腱病变,可用于更好地了解健康和疾病状态下肌腱细胞的特征。
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来源期刊
ACS Biomaterials Science & Engineering
ACS Biomaterials Science & Engineering Materials Science-Biomaterials
CiteScore
10.30
自引率
3.40%
发文量
413
期刊介绍: ACS Biomaterials Science & Engineering is the leading journal in the field of biomaterials, serving as an international forum for publishing cutting-edge research and innovative ideas on a broad range of topics: Applications and Health – implantable tissues and devices, prosthesis, health risks, toxicology Bio-interactions and Bio-compatibility – material-biology interactions, chemical/morphological/structural communication, mechanobiology, signaling and biological responses, immuno-engineering, calcification, coatings, corrosion and degradation of biomaterials and devices, biophysical regulation of cell functions Characterization, Synthesis, and Modification – new biomaterials, bioinspired and biomimetic approaches to biomaterials, exploiting structural hierarchy and architectural control, combinatorial strategies for biomaterials discovery, genetic biomaterials design, synthetic biology, new composite systems, bionics, polymer synthesis Controlled Release and Delivery Systems – biomaterial-based drug and gene delivery, bio-responsive delivery of regulatory molecules, pharmaceutical engineering Healthcare Advances – clinical translation, regulatory issues, patient safety, emerging trends Imaging and Diagnostics – imaging agents and probes, theranostics, biosensors, monitoring Manufacturing and Technology – 3D printing, inks, organ-on-a-chip, bioreactor/perfusion systems, microdevices, BioMEMS, optics and electronics interfaces with biomaterials, systems integration Modeling and Informatics Tools – scaling methods to guide biomaterial design, predictive algorithms for structure-function, biomechanics, integrating bioinformatics with biomaterials discovery, metabolomics in the context of biomaterials Tissue Engineering and Regenerative Medicine – basic and applied studies, cell therapies, scaffolds, vascularization, bioartificial organs, transplantation and functionality, cellular agriculture
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