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2
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Sci Rep. 2016 Sep 15;6:33079. doi: 10.1038/srep33079.
3
Myelin Water Fraction Is Transiently Reduced after a Single Mild Traumatic Brain Injury--A Prospective Cohort Study in Collegiate Hockey Players.单次轻度创伤性脑损伤后髓磷脂水含量分数短暂降低——一项针对大学曲棍球运动员的前瞻性队列研究。
PLoS One. 2016 Feb 25;11(2):e0150215. doi: 10.1371/journal.pone.0150215. eCollection 2016.
4
Synaptic Mechanisms of Blast-Induced Brain Injury.爆炸所致脑损伤的突触机制
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Callosal Function in Pediatric Traumatic Brain Injury Linked to Disrupted White Matter Integrity.小儿创伤性脑损伤中的胼胝体功能与白质完整性破坏有关。
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6
Myelin and oligodendrocyte lineage cells in white matter pathology and plasticity after traumatic brain injury.创伤性脑损伤后白质病理与可塑性中的髓磷脂和少突胶质细胞谱系细胞
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7
White matter involvement after TBI: Clues to axon and myelin repair capacity.创伤性脑损伤后的白质受累:轴突和髓鞘修复能力的线索
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9
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X射线衍射揭示了离体神经元组织纳米级结构变化的钝力加载阈值。

X-ray diffraction reveals blunt-force loading threshold for nanoscopic structural change in ex vivo neuronal tissues.

作者信息

Orgel Joseph, Madhurapantula Rama S, Eidsmore Ashley, Wang Meng, Dutov Pavel, Modrich Charles D, Antipova Olga, McDonald Jason, Satapathy Sikhanda

机构信息

Departments of Biology, Physics and Biomedical Engineering, Illinois Institute of Technology, Chicago, IL, USA.

Weapons and Materials Research Directorate, Army Research Laboratory, USA.

出版信息

J Synchrotron Radiat. 2019 Jan 1;26(Pt 1):89-95. doi: 10.1107/S1600577518015035.

DOI:10.1107/S1600577518015035
PMID:30655472
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6337887/
Abstract

An ex vivo blunt-force loading experiment is reported that may, in the future, provide insight into the molecular structural changes occurring in load-induced conditions such as traumatic brain injury (TBI). TBI appears to manifest in changes in multiple structures and elements within the brain and nervous system. Individuals with a TBI may suffer from cognitive and/or behavioral impairments which can adversely affect their quality of life. Information on the injury threshold of tissue loading for mammalian neurons is critical in the development of a quantified neuronal-level dose-response model. Such a model could aid in the discovery of enhanced methods for TBI detection, treatment and prevention. Currently, thresholds of mechanical load leading to direct force-coupled nanostructural changes in neurons are unknown. In this study, we make use of the fact that changes in the structure and periodicity of myelin may indicate neurological damage and can be detected with X-ray diffraction (XRD). XRD allows access to a nanoscopic resolution range not readily achieved by alternative methods, nor does the experimental methodology require chemical sample fixation. In this study, XRD was used to evaluate the affects of controlled mechanical loading on myelin packing structure in ex vivo optic nerve samples. By using a series of crush tests on isolated optic nerves a quantified baseline for mechanical load was found to induce changes in the packing structure of myelin. To the authors' knowledge, this is the first report of its kind.

摘要

据报道,一项体外钝性力加载实验未来可能有助于深入了解诸如创伤性脑损伤(TBI)等负荷诱导条件下发生的分子结构变化。TBI似乎表现为大脑和神经系统内多种结构和元素的变化。患有TBI的个体可能会出现认知和/或行为障碍,这会对他们的生活质量产生不利影响。关于哺乳动物神经元组织负荷损伤阈值的信息对于建立量化的神经元水平剂量反应模型至关重要。这样的模型有助于发现改进的TBI检测、治疗和预防方法。目前,导致神经元直接力耦合纳米结构变化的机械负荷阈值尚不清楚。在本研究中,我们利用髓磷脂结构和周期性的变化可能表明神经损伤且可通过X射线衍射(XRD)检测到这一事实。XRD能够达到其他方法不易实现的纳米级分辨率范围,而且该实验方法不需要化学样品固定。在本研究中,XRD被用于评估体外视神经样本中受控机械负荷对髓磷脂堆积结构的影响。通过对分离的视神经进行一系列挤压试验,发现了机械负荷诱导髓磷脂堆积结构变化的量化基线。据作者所知,这是此类报告中的首例。