Klumpers Darinka D, Smit Theo H, Mooney David J
School of Engineering and Applied Sciences, Harvard University, 29 Oxford St, Cambridge, Massachusetts, 02138, United States of America; Wyss Institute for Biologically Inspired Engineering, Harvard University, 3 Blackfan Circle, Boston, Massachusetts 02115, United States of America; Dept. Orthopedic Surgery, Research Institute MOVE, VU University Medical Center, De Boelelaan 1117, 1081 HV, Amsterdam, The Netherlands.
Dept. Orthopedic Surgery, Research Institute MOVE, VU University Medical Center, De Boelelaan 1117, 1081 HV, Amsterdam, The Netherlands.
PLoS One. 2015 Apr 27;10(4):e0124948. doi: 10.1371/journal.pone.0124948. eCollection 2015.
Embryonic skeletogenesis involves proliferation, condensation and subsequent chondrogenic differentiation of mesenchymal precursor cells, and the strains and stresses inherent to these processes have been hypothesized to influence skeletal development. The aim of this study was to determine the effect of growth-mimicking strain on the process of early skeletal development in vitro. To this end, we applied continuous uniaxial strain to embryonic skeletal precursor cells in micromass culture. Strain was applied at different times of culture to specifically address the effect of mechanical loading on the sequential stages of cellular proliferation, condensation and differentiation. We found that growth-mimicking strain at all three times did not affect proliferation or chondrogenic differentiation under the tested conditions. However, the timing of the applied strain did play a role in the density of mesenchymal condensations. This finding suggests that a mechanically dynamic environment, and specifically strain, can influence skeletal patterning. The growth-mimicking micromass model presented here may be a useful tool for further studies into the role of mechanical loading in early skeletal development.
胚胎骨骼发生涉及间充质前体细胞的增殖、凝聚以及随后的软骨形成分化,并且这些过程中固有的应变和应力被认为会影响骨骼发育。本研究的目的是确定模拟生长应变对体外早期骨骼发育过程的影响。为此,我们对微团培养中的胚胎骨骼前体细胞施加连续单轴应变。在培养的不同时间施加应变,以具体研究机械加载对细胞增殖、凝聚和分化连续阶段的影响。我们发现,在所测试的条件下,这三个时间点的模拟生长应变均未影响增殖或软骨形成分化。然而,施加应变的时间确实对间充质凝聚的密度有影响。这一发现表明,机械动态环境,特别是应变,可以影响骨骼模式形成。这里提出的模拟生长微团模型可能是进一步研究机械加载在早期骨骼发育中作用的有用工具。