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Single molecule effects of osteogenesis imperfecta mutations in tropocollagen protein domains

机译:原胶原蛋白域中成骨不全突变的单分子效应

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摘要

Osteogenesis imperfecta (OI) is a genetic disease characterized by fragile bones, skeletal deformities and, in severe cases, prenatal death that affects more than 1 in 10,000 individuals. Here we show by full atomistic simulation in explicit solvent that OI mutations have a significant influence on the mechanical properties of single tropocollagen molecules, and that the severity of different forms of OI is directly correlated with the reduction of the mechanical stiffness of individual tropocollagen molecules. The reduction of molecular stiffness provides insight into the molecular-scale mechanisms of the disease. The analysis of the molecular mechanisms reveals that physical parameters of side-chain volume and hydropathy index of the mutated residue control the loss of mechanical stiffness of individual tropocollagen molecules. We propose a model that enables us to predict the loss of stiffness based on these physical characteristics of mutations. This finding provides an atomistic-level mechanistic understanding of the role of OI mutations in defining the properties of the basic protein constituents, which could eventually lead to new strategies for diagnosis and treatment the disease. The focus on material properties and their role in genetic diseases is an important, yet so far only little explored, aspect in studying the mechanisms that lead to pathological conditions. The consideration of how material properties change in diseases could lead to a new paradigm that may expand beyond the focus on biochemical readings alone and include a characterization of material properties in diagnosis and treatment, an effort referred to as materiomics.
机译:成骨不全症(OI)是一种遗传性疾病,其特征是骨骼脆弱,骨骼畸形,在严重的情况下,产前死亡会影响10,000个人中的1个人。在这里,我们通过在显式溶剂中进行的完整原子模拟表明,OI突变对单个原胶原蛋白分子的机械性能具有重大影响,并且不同形式的OI的严重性与单个原胶原蛋白分子的机械刚度的降低直接相关。分子刚度的降低提供了对该疾病的分子尺度机制的了解。分子机制的分析表明,突变残基的侧链体积和亲水指数的物理参数控制着各个原胶原蛋白分子的机械刚度损失。我们提出了一个模型,使我们能够基于突变的这些物理特征来预测刚度的损失。这一发现提供了对OI突变在定义基本蛋白质成分特性中的作用的原子级机制理解,这最终可能导致诊断和治疗该疾病的新策略。物质特性及其在遗传疾病中的作用是研究重要的方面,但迄今为止,在研究导致病理状况的机理方面只有很少的探索。对疾病的物质特性如何变化的考虑可能会导致一个新的范例,这种范式可能会扩展到不再只关注生化读数,还包括对诊断和治疗中的物质特性进行表征,这就是所谓的雄激素学。

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