Differential effect of frequency and duration of mechanical loading on fetal chick cartilage and bone development.

IF 3.1 3区 医学 Q3 CELL & TISSUE ENGINEERING
N Khatib, C Parisi, N C Nowlan
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引用次数: 8

Abstract

Developmental engineering strategies aim to recapitulate aspects of development in vitro as a means of forming functional engineered tissues, including cartilage and bone, for tissue repair and regeneration. Biophysical stimuli arising from fetal movements are critical for guiding skeletogenesis, but there have been few investigations of the biomechanical parameters which optimally promote cartilage and bone development events in in vitro explants. The effect of applied flexion-extension movement frequencies (0.33 and 0.67 Hz) and durations (2 h periods, 1, 2 or 3 × per day) on knee (stifle) joint cartilage shape, chondrogenesis and diaphyseal mineralisation of fetal chick hindlimbs, cultured in a mechanostimulation bioreactor, were assessed both quantitatively and qualitatively. It was hypothesised that increasing frequency and duration of movements would synergistically promote cartilage and bone formation in a dose-dependent manner. Increasing loading duration promoted cartilage growth, shape development and mineralisation of the femoral condyles and tibiotarsus. While increasing frequency had a significant positive effect on mineralisation, hyaline cartilage growth and joint shape were unaffected by frequency change within the ranges assessed, and there were limited statistical interactions between the effects of movement frequency and duration on cartilage or bone formation. Increased glycosaminoglycan deposition and cell proliferation may have contributed to the accelerated cartilage growth and shape change under increasing loading duration. The results demonstrated that frequencies and durations of applied biomechanical stimulation differentially promoted cartilage and bone formation, with implications for developmentally inspired tissue engineering strategies aiming to modulate tissue construct properties.

机械载荷频率和持续时间对胎鸡软骨和骨发育的差异影响。
发育工程策略旨在概括体外发育的各个方面,作为形成功能性工程组织的手段,包括软骨和骨,用于组织修复和再生。胎儿运动引起的生物物理刺激对指导骨骼形成至关重要,但对体外外植体中促进软骨和骨骼发育事件的生物力学参数的研究很少。应用屈伸运动频率(0.33和0.67 Hz)和持续时间(2小时周期,每天1次、2次或3次)对机械刺激生物反应器中培养的胎鸡后肢膝关节软骨形状、软骨形成和骨干矿化的影响进行了定量和定性评估。据推测,增加运动的频率和持续时间会以剂量依赖的方式协同促进软骨和骨的形成。增加载荷时间促进了股骨髁和胫跗骨的软骨生长、形状发育和矿化。虽然增加频率对矿化有显著的积极作用,但在评估范围内,频率变化不影响透明软骨生长和关节形状,并且运动频率和持续时间对软骨或骨形成的影响之间存在有限的统计相互作用。增加的糖胺聚糖沉积和细胞增殖可能促进了软骨生长和形状变化的加速。结果表明,应用生物力学刺激的频率和持续时间对软骨和骨的形成有不同的促进作用,这对旨在调节组织结构特性的发育启发组织工程策略具有重要意义。
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来源期刊
European cells & materials
European cells & materials 生物-材料科学:生物材料
CiteScore
6.00
自引率
6.50%
发文量
55
审稿时长
1.5 months
期刊介绍: eCM provides an interdisciplinary forum for publication of preclinical research in the musculoskeletal field (Trauma, Maxillofacial (including dental), Spine and Orthopaedics). The clinical relevance of the work must be briefly mentioned within the abstract, and in more detail in the paper. Poor abstracts which do not concisely cover the paper contents will not be sent for review. Incremental steps in research will not be entertained by eCM journal.Cross-disciplinary papers that go across our scope areas are welcomed.
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