老化骨骼的遗传学。

Douglas J Adams, David W Rowe, Cheryl L Ackert-Bicknell
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引用次数: 17

摘要

随着年龄的增长,骨骼会发生一些变化,包括质量的减少和基质成分的变化,从而导致脆性,最终增加骨折的风险。骨生理学的许多方面受遗传因素控制,包括峰值骨量、骨形状和组成;然而,对人类的遗传研究主要集中在临床可用的测量上,如骨矿物质密度(BMD)。啮齿类动物的遗传研究也主要集中在骨密度上;然而,对骨强度、大小和形状的直接测量也进行了调查。绝大多数,这些关于骨强度遗传学的研究已经确定了通过影响骨大小来调节强度的基因座,而这些基因座可能不会影响骨的基质材料特性。许多啮齿动物的正向遗传研究缺乏足够的定位分辨率来鉴定候选基因;然而,使用遗传图谱群体的新研究,如高级交叉和合作交叉,似乎已经克服了这个问题,并显示出未来研究的希望。迄今为止进行的大多数遗传作图研究都集中在年轻动物身上,因此对与年龄相关的骨质流失的遗传控制的理解是知识上的一个关键空白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Genetics of aging bone.

Genetics of aging bone.

Genetics of aging bone.

Genetics of aging bone.

With aging, the skeleton experiences a number of changes, which include reductions in mass and changes in matrix composition, leading to fragility and ultimately an increase of fracture risk. A number of aspects of bone physiology are controlled by genetic factors, including peak bone mass, bone shape, and composition; however, forward genetic studies in humans have largely concentrated on clinically available measures such as bone mineral density (BMD). Forward genetic studies in rodents have also heavily focused on BMD; however, investigations of direct measures of bone strength, size, and shape have also been conducted. Overwhelmingly, these studies of the genetics of bone strength have identified loci that modulate strength via influencing bone size, and may not impact the matrix material properties of bone. Many of the rodent forward genetic studies lacked sufficient mapping resolution for candidate gene identification; however, newer studies using genetic mapping populations such as Advanced Intercrosses and the Collaborative Cross appear to have overcome this issue and show promise for future studies. The majority of the genetic mapping studies conducted to date have focused on younger animals and thus an understanding of the genetic control of age-related bone loss represents a key gap in knowledge.

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