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The role of growth-generated strains and pressures in cranial development.

机译:生长产生的应变和压力在颅骨发育中的作用。

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Development is regulated by intrinsic factors within cells and by inductive signals. This thesis introduces the concept that connected tissues growing at different rates necessarily generate complicated distributions of physical deformations (strains) and pressures. The hypothesis that these growth-generated strains and pressures act as inductive signals throughout development is presented, and the role of growth-generated strains and pressures in cranial development and in skeletal condensation growth is investigated.; In the first study, general theoretical techniques for estimating sutural bone deposition rate and strain magnitude during mammalian cranial development are developed. These techniques are then applied to human development. The results indicate that human sutural strain is small (approximately 0.0021 to 0.041% at 1 month of age) and decreases with increasing age.; In the second study, morphological measurements and tensile tests are performed on sagittal sutures from rats, and the strain present in the suture in vivo are estimated. The results show that sutural strains in rats (average of 0.027 +/- 0.019% for postnatal days two to sixty) are similar in magnitude to the estimate of sutural strains in young humans. In the third study, surgical experiments and finite element modeling are used to calculate the residual tensile strains present in vivo in the dura mater of rats. The results show that large residual tensile strains are present in vivo and are age dependent (average of 4.76 +/- 1.51 for immature rats vs. 0.36 +/- 0.12% for mature rats).; In the final study, growth-generated strains and pressures are correlated with in vivo gene expression during growth of a skeletal condensation. The results show that areas of tensile strain correlate with expression of osteogenic or fibrogenic genes, and areas of pressure correlate with genes associated with chondrocyte differentiation and maturation.; The findings presented in this thesis illustrate the existence and potential importance of growth-generated strains and pressures in cranial development and in skeletal condensation growth. In addition, the concepts and findings presented in this thesis suggest that a richer appreciation of the events that control early skeletal patterning and development can be gained by understanding the relationships between growth-generated strain/pressure and local tissue, cell, and molecular biology.
机译:发育受细胞内的内在因素和诱导信号的调节。本文引入了这样一种概念,即以不同速率生长的连接组织必然会产生复杂的物理变形(应变)和压力分布。提出了这些生长产生的应变和压力在整个发育过程中充当感应信号的假设,并研究了生长产生的应变和压力在颅骨发育和骨骼凝缩生长中的作用。在第一项研究中,开发了估算哺乳动物颅骨发育期间缝合骨沉积速率和应变幅度的一般理论技术。然后将这些技术应用于人类发展。结果表明,人的缝线应变很小(在1个月大时约为0.0021至0.041%),并且随着年龄的增长而降低。在第二项研究中,对来自大鼠的矢状缝线进行了形态学测量和拉伸测试,并估计了缝线中存在的体内应变。结果表明,大鼠中的缝合变形(出生后第二至六十天的平均值为0.027 +/- 0.019%)与年轻人中的缝合变形的估计值相似。在第三项研究中,外科手术实验和有限元建模被用于计算大鼠硬脑膜中体内存在的残余拉伸应变。结果表明,体内存在大量残余拉伸应变,并且它们是年龄依赖性的(未成熟大鼠的平均值为4.76 +/- 1.51,而成熟大鼠的平均值为0.36 +/- 0.12%)。在最终研究中,骨骼生成过程中,生长产生的菌株和压力与体内基因表达相关。结果表明,拉伸应变区域与成骨或纤维形成基因的表达相关,压力区域与与软骨细胞分化和成熟相关的基因相关。本文提出的发现说明了颅骨发育和骨骼凝结生长中生长产生的菌株和压力的存在及其潜在的重要性。此外,本文提出的概念和发现表明,通过了解生长产生的应变/压力与局部组织,细胞和分子生物学之间的关系,可以获得对控制早期骨骼模式和发育的事件的更丰富的理解。

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