蛋白质是分析物质结构以预防创伤性脑损伤的新分子标记

H vonHolst, P. Purhonen, D Lanner, Ramakrishnan B. Kumar, H. Hebert
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摘要

预防外伤性脑损伤的新产品的开发大多基于力学研究。然而,需要对分子水平进行新的更复杂的分析,以改进防护设备。最近,我们对成熟蛋白层粘连蛋白LN521进行了评估,以了解动态和半静态冲击的后果,发现层粘连蛋白结构存在大量的断裂和聚集。本文采用变性电泳和电镜两种不同的力学方法对高分子材料的减冲效果进行了评价。因此,在不使用高分子材料和使用高分子材料进行动态碰撞后,结果显示力和平移加速度显著降低,最高可达50%以上。此外,在本实验室研究中,采用动态碰撞后的成熟层粘连蛋白,以确定该分子是否可以作为寻找最佳保护材料时机械方法的补充分析仪。结果表明,通过变性电泳和电子显微镜分析,聚合物材料具有保存层粘连蛋白结构的能力。因此,蛋白质可以补充今天的计算模拟和力学研究,以寻找改进的头骨和脑组织保护系统。本研究结果表明,层粘连蛋白结构可能成为在分子水平上进一步鉴定新结构的一种有价值的方法,可用于在体育锻炼和事故中寻找更好的脑组织保护材料。
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Proteins are New Molecular Markers When Analyzing Material Structures to Prevent Traumatic Brain Injuries
Development of new products for the prevention of traumatic brain injuries are mostly based on mechanical investigations. However, there is a demand for new and more sophisticated analyzes focusing on molecular levels to improve protective equipment. Recently we evaluated the mature protein laminin LN521 to find out the consequences to dynamic and semi-static impact and found substantial fragmentation and aggregation of the laminin structures. In the present study the effect of polymer materials used for reducing impacts were evaluated by using two different mechanical methods, denatured electrophoresis and electron microscopy. Thus, following dynamic impacts without and with the polymer materials the results showed a significant reduction of the force as well as the translational acceleration with up to over 50%. Also, in the present laboratory investigation the mature laminin was used following dynamic impact to find out if this molecule can serve as a complementary analyzer to mechanical methods when searching for optimal protective materials. The results showed that the polymer materials had the capacity to save the laminin structures from both fragmentation and aggregation as evaluated with denatured electrophoresis and electron microscopy. Therefore, proteins may complement today ́s calculation simulations and mechanical investigations in the search for improved protective systems to the skull bone and brain tissue. The present result shows that laminin structures may become a valuable method to further identify new structures on a molecular level in the search for improved protective materials to the brain tissue at physical exercise and at accidents.
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