Newman Andrew J, Hayes Sarah H, Rao Abhiram S, Allman Brian L, Manohar Senthilvelan, Ding Dalian, Stolzberg Daniel, Lobarinas Edward, Mollendorf Joseph C, Salvi Richard
Department of Mechanical and Aerospace Engineering, University at Buffalo, The State University of New York, Buffalo, NY, United States.
Center for Hearing & Deafness, Department of Communicative Disorders and Sciences, University at Buffalo, The State University of New York, Buffalo, NY, United States.
J Neurosci Methods. 2015 Mar 15;242:82-92. doi: 10.1016/j.jneumeth.2015.01.009. Epub 2015 Jan 15.
Military personnel and civilians living in areas of armed conflict have increased risk of exposure to blast overpressures that can cause significant hearing loss and/or brain injury. The equipment used to simulate comparable blast overpressures in animal models within laboratory settings is typically very large and prohibitively expensive.
To overcome the fiscal and space limitations introduced by previously reported blast wave generators, we developed a compact, low-cost blast wave generator to investigate the effects of blast exposures on the auditory system and brain.
The blast wave generator was constructed largely from off the shelf components, and reliably produced blasts with peak sound pressures of up to 198dB SPL (159.3kPa) that were qualitatively similar to those produced from muzzle blasts or explosions. Exposure of adult rats to 3 blasts of 188dB peak SPL (50.4kPa) resulted in significant loss of cochlear hair cells, reduced outer hair cell function and a decrease in neurogenesis in the hippocampus.
Existing blast wave generators are typically large, expensive, and are not commercially available. The blast wave generator reported here provides a low-cost method of generating blast waves in a typical laboratory setting.
This compact blast wave generator provides scientists with a low cost device for investigating the biological mechanisms involved in blast wave injury to the rodent cochlea and brain that may model many of the damaging effects sustained by military personnel and civilians exposed to intense blasts.
生活在武装冲突地区的军事人员和平民暴露于爆炸超压下的风险增加,这种超压可导致严重听力损失和/或脑损伤。在实验室环境中用于在动物模型中模拟类似爆炸超压的设备通常非常庞大且价格昂贵得令人望而却步。
为克服先前报道的爆炸波发生器所带来的资金和空间限制,我们开发了一种紧凑、低成本的爆炸波发生器,以研究爆炸暴露对听觉系统和大脑的影响。
该爆炸波发生器主要由现成的部件构建而成,能可靠地产生峰值声压高达198dB SPL(159.3kPa)的爆炸,其在质量上与枪口爆炸或炸药爆炸产生的爆炸相似。成年大鼠暴露于3次峰值声压为188dB SPL(50.4kPa)的爆炸中,导致耳蜗毛细胞显著损失、外毛细胞功能降低以及海马体神经发生减少。
现有的爆炸波发生器通常体积庞大、价格昂贵且无法商业化获取。此处报道的爆炸波发生器提供了一种在典型实验室环境中产生爆炸波的低成本方法。
这种紧凑的爆炸波发生器为科学家提供了一种低成本设备,用于研究啮齿动物耳蜗和大脑爆炸波损伤所涉及的生物学机制,这些机制可能模拟军事人员和平民暴露于强烈爆炸时所遭受的许多损伤效应。