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Low-density lipoproteins investigated under high hydrostatic pressure by elastic incoherent neutron scattering

机译:弹性非相干中子散射在高静水压力下研究低密度脂蛋白

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摘要

Human low-density lipoprotein (LDL) is a highly complex nano-particle built up of various lipid classes and a single large protein moiety (apoB-100) owning essential physiological functions in the human body. Besides its vital role as a supplier of cholesterol and fat for peripheral tissues and cells, it is also a known key player in the formation of atherosclerosis. Due to these important roles in physiology and pathology the elucidation of structural and dynamical details is of great interest. In the current study we drew a broader picture of LDL dynamics using elastic incoherent neutron scattering (EINS) as a function of specified temperature and pressure points. We not only investigated a normolipidemic LDL sample, but also a triglyceride-rich and an oxidized one to mimic pathologic conditions as found under hyperlipidemic conditions or in atherosclerotic plaques, respectively. We could show that pressure has a significant effect on atomic motions in modified forms of LDL, whereas the normolipidemic sample seems to cope much better with high-pressure conditions irrespective of temperature. These findings might be explained by the altered lipid composition, which is either caused through elevated triglyceride content or modifications through lipid peroxidation.
机译:人类低密度脂蛋白(LDL)是一种高度复杂的纳米粒子,由各种脂质类别和一个在人体中具有基本生理功能的单个大蛋白质部分(apoB-100)构成。它不仅是为周围组织和细胞提供胆固醇和脂肪的重要供应商,而且还是形成动脉粥样硬化的关键参与者。由于在生理学和病理学中的这些重要作用,对结构和动力学细节的阐明引起了极大的兴趣。在当前的研究中,我们使用弹性非相干中子散射(EINS)作为指定温度和压力点的函数对LDL动力学进行了更广泛的描述。我们不仅研究了降血脂的低密度脂蛋白样本,还研究了富含甘油三酸酯和被氧化的甘油三酸酯,以分别模拟在高脂血症或动脉粥样硬化斑块中发现的病理状况。我们可以证明,压力对LDL修饰形式的原子运动有显着影响,而降血脂样品似乎可以更好地应对高压条件,而与温度无关。这些发现可能是由于脂质组成的改变所解释的,这可能是由于甘油三酸酯含量升高或脂质过氧化作用引起的。

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