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Mechanisms of Primary Blast-Induced Traumatic Brain Injury: Insights from Shock-Wave Research

To cite this article:
Atsuhiro Nakagawa, Geoffrey T. Manley, Alisa D. Gean, Kiyonobu Ohtani, Rocco Armonda, Akira Tsukamoto, Hiroaki Yamamoto, Kazuyoshi Takayama, and Teiji Tominaga. Journal of Neurotrauma. June 2011, 28(6): 1101-1119. doi:10.1089/neu.2010.1442.

Published in Volume: 28 Issue 6: June 20, 2011
Online Ahead of Print: May 5, 2011
Online Ahead of Editing: February 20, 2011

Author information

Atsuhiro Nakagawa,1,2,3 Geoffrey T. Manley,2,3 Alisa D. Gean,3,4 Kiyonobu Ohtani,5 Rocco Armonda,6 Akira Tsukamoto,7 Hiroaki Yamamoto,5 Kazuyoshi Takayama,5 and Teiji Tominaga1
1Department of Neurosurgery, Tohoku University Graduate School of Medicine, Sendai, Japan.
2Department of Neurological Surgery, University of California–San Francisco, San Francisco, California.
3Brain and Spinal Injury Center, University of California–San Francisco, San Francisco, California.
4Department of Radiology, University of California–San Francisco, San Francisco, California.
5Interdisciplinary Shock Wave Application Research Division, Institute of Fluid Science, Tohoku University, Tohoku, Japan.
6Department of Neurosurgery, Walter Reed Army Medical Center, Washington, D.C.
7Center for Disease Biology and Integrative Medicine, Graduate School of Medicine, The University of Tokyo, Tokyo, Japan.
Address correspondence to:
Atsuhiro Nakagawa, M.D., Ph.D.
Department of Neurosurgery
Tohoku University Graduate School of Medicine
1-1, Seiryo-machi, Aoba-ku
Sendai, Miyagi, 980-8574
Japan
E-mail:

ABSTRACT

Abstract

Traumatic brain injury caused by explosive or blast events is traditionally divided into four phases: primary, secondary, tertiary, and quaternary blast injury. These phases of blast-induced traumatic brain injury (bTBI) are biomechanically distinct and can be modeled in both in vivo and in vitro systems. The primary bTBI injury phase represents the response of brain tissue to the initial blast wave. Among the four phases of bTBI, there is a remarkable paucity of information about the cause of primary bTBI. On the other hand, 30 years of research on the medical application of shockwaves (SW) has given us insight into the mechanisms of tissue and cellular damage in bTBI, including both air-mediated and underwater SW sources. From a basic physics perspective, the typical blast wave consists of a lead SW followed by supersonic flow. The resultant tissue injury includes several features observed in bTBI, such as hemorrhage, edema, pseudoaneurysm formation, vasoconstriction, and induction of apoptosis. These are well-described pathological findings within the SW literature. Acoustic impedance mismatch, penetration of tissue by shock/bubble interaction, geometry of the skull, shear stress, tensile stress, and subsequent cavitation formation, are all important factors in determining the extent of SW-induced tissue and cellular injury. Herein we describe the requirements for the adequate experimental set-up when investigating blast-induced tissue and cellular injury; review SW physics, research, and the importance of engineering validation (visualization/pressure measurement/numerical simulation); and, based upon our findings of SW-induced injury, discuss the potential underlying mechanisms of primary bTBI.

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