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球形环三亚甲基三硝胺(RDX)炸药单次和多次初级爆炸压力波对神经元和海马切片的影响。

Effects on Neurons and Hippocampal Slices by Single and Multiple Primary Blast Pressure Waves From Detonating Spherical Cyclotrimethylenetrinitramine (RDX) Explosive Charges.

作者信息

Piehler Thuvan, Zander Nicole, Banton Rohan, Smith Marquitta, Romine Heather, Benjamin Richard, Byrnes Kimberly, Duckworth Josh, Bahr Ben A

机构信息

US Army Research Laboratory, Weapons and Materials Research Directorate, Building 1119 B, Aberdeen Proving Ground, MD 21005-5425.

Biotechnology Research and Training Center, University of North Carolina - Pembroke, Pembroke, NC 28372.

出版信息

Mil Med. 2018 Mar 1;183(suppl_1):269-275. doi: 10.1093/milmed/usx158.

DOI:10.1093/milmed/usx158
PMID:29635567
Abstract

Threshold shock-impulse levels required to induce cellular injury and cumulative effects upon single and/or multiple exposures are not well characterized. Currently, there are few in vitro experimental models with blast pressure waves generated by using real explosives in the laboratory for investigating the effects of primary blast-induced traumatic brain injury. An in vitro indoor experimental platform is developed using real military explosive charges to accurately represent battlefield blast exposure and to probe the effects of primary explosive blast on dissociated neurons and tissue slices. Preliminary results indicate that physical insults altered membrane permeability, impacted cellular viability, created axonal beadings, and led to synaptic protein loss in hippocampal slice cultures. Injuries from blast under the conditions that were examined did not appear to cause immediate or sustained damage to the cells. Three consecutive primary blasts failed to disrupt the overall cellular integrity in the hippocampal slice cultures and produced a unique type of pathology comprised with distinct reduction in synaptic proteins before cellular deterioration set in. These observed changes might add to the challenges in regard to enhancing our understanding of the complex biochemical and molecular mechanisms caused by primary blast-induced injury.

摘要

诱导细胞损伤所需的阈值冲击脉冲水平以及单次和/或多次暴露后的累积效应尚未得到充分表征。目前,在实验室中使用实弹炸药产生爆炸压力波的体外实验模型很少,用于研究原发性爆炸所致创伤性脑损伤的影响。利用实弹军事炸药研制了一种体外室内实验平台,以准确模拟战场爆炸暴露,并探究原发性炸药爆炸对解离神经元和组织切片的影响。初步结果表明,物理损伤改变了膜通透性,影响了细胞活力,产生了轴突串珠,并导致海马切片培养物中突触蛋白丢失。在所检测的条件下,爆炸造成的损伤似乎并未对细胞造成即时或持续性损害。连续三次原发性爆炸未能破坏海马切片培养物中的整体细胞完整性,并产生了一种独特的病理学类型,即在细胞恶化开始之前,突触蛋白明显减少。这些观察到的变化可能会增加我们在增强对原发性爆炸所致损伤的复杂生化和分子机制理解方面的挑战。

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引用本文的文献

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Understanding Primary Blast Injury: High Frequency Pressure Acutely Disrupts Neuronal Network Dynamics in Cerebral Organoids.理解原发性爆炸伤:高频压力急性破坏脑类器官中的神经元网络动力学。
J Neurotrauma. 2022 Nov;39(21-22):1575-1590. doi: 10.1089/neu.2022.0044.
2
Localizing Clinical Patterns of Blast Traumatic Brain Injury Through Computational Modeling and Simulation.通过计算建模与仿真定位爆炸所致创伤性脑损伤的临床模式
Front Neurol. 2021 May 20;12:547655. doi: 10.3389/fneur.2021.547655. eCollection 2021.
3
Axonopathy precedes cell death in ocular damage mediated by blast exposure.
在爆炸暴露介导的眼部损伤中,轴突变性先于细胞死亡。
Sci Rep. 2021 Jun 3;11(1):11774. doi: 10.1038/s41598-021-90412-2.