Literature DB >> 20883784

Autophagy in acute brain injury: feast, famine, or folly?

Craig M Smith1, Yaming Chen, Mara L Sullivan, Patrick M Kochanek, Robert S B Clark.   

Abstract

In the central nervous system, increased autophagy has now been reported after traumatic brain and spinal cord injury, cerebral ischemia, intracerebral hemorrhage, and seizures. This increase in autophagy could be physiologic, converting damaged or dysfunctional proteins, lipids, and/or organelles to their amino acid and fatty acid components for recycling. On the other hand, this increase in autophagy could be supraphysiologic, perhaps consuming and eliminating functional proteins, lipids, and/or organelles as well. Whether an increase in autophagy is beneficial (feast) or detrimental (famine) in brain likely depends on both the burden of intracellular substrate targeted for autophagy and the capacity of the cell's autophagic machinery. Of course, increased autophagy observed after brain injury could also simply be an epiphenomenon (folly). These divergent possibilities have clear ramifications for designing therapeutic strategies targeting autophagy after acute brain injury and are the subject of this review. This article is part of a Special Issue entitled "Autophagy and protein degradation in neurological diseases."
Copyright © 2010 Elsevier Inc. All rights reserved.

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Year:  2010        PMID: 20883784      PMCID: PMC3046326          DOI: 10.1016/j.nbd.2010.09.014

Source DB:  PubMed          Journal:  Neurobiol Dis        ISSN: 0969-9961            Impact factor:   5.996


  54 in total

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6.  Postischemic treatment of neonatal cerebral ischemia should target autophagy.

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7.  Experimental model of pediatric asphyxial cardiopulmonary arrest in rats.

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Review 8.  Guidelines for the use and interpretation of assays for monitoring autophagy in higher eukaryotes.

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Journal:  Autophagy       Date:  2007-11-21       Impact factor: 16.016

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Authors:  Masaaki Komatsu; Satoshi Waguri; Takashi Ueno; Junichi Iwata; Shigeo Murata; Isei Tanida; Junji Ezaki; Noboru Mizushima; Yoshinori Ohsumi; Yasuo Uchiyama; Eiki Kominami; Keiji Tanaka; Tomoki Chiba
Journal:  J Cell Biol       Date:  2005-05-02       Impact factor: 10.539

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Authors:  Xiaopeng Zhang; Yaming Chen; Larry W Jenkins; Patrick M Kochanek; Robert S B Clark
Journal:  Crit Care       Date:  2004-09-03       Impact factor: 9.097

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  48 in total

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2.  Apelin-13 attenuates traumatic brain injury-induced damage by suppressing autophagy.

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4.  Vulnerability to a Metabolic Challenge Following Perinatal Asphyxia Evaluated by Organotypic Cultures: Neonatal Nicotinamide Treatment.

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5.  Cardiolipin-Dependent Mitophagy Guides Outcome after Traumatic Brain Injury.

Authors:  Honglu Chao; Chao Lin; Qiang Zuo; Yinlong Liu; Mengqing Xiao; Xiupeng Xu; Zheng Li; Zhongyuan Bao; Huimei Chen; Yongping You; Patrick M Kochanek; Huiyong Yin; Ning Liu; Valerian E Kagan; Hülya Bayır; Jing Ji
Journal:  J Neurosci       Date:  2019-01-09       Impact factor: 6.167

Review 6.  The role of autophagy in acute brain injury: A state of flux?

Authors:  Michael S Wolf; Hülya Bayır; Patrick M Kochanek; Robert S B Clark
Journal:  Neurobiol Dis       Date:  2018-04-26       Impact factor: 5.996

7.  Activation of Autophagy Contributes to the Angiotensin II-Triggered Apoptosis in a Dopaminergic Neuronal Cell Line.

Authors:  Qing Gao; Teng Jiang; Hong-Rui Zhao; Liang Wu; You-Yong Tian; Zhou Ou; Li Zhang; Yang Pan; Jie Lu; Ying-Dong Zhang
Journal:  Mol Neurobiol       Date:  2015-04-23       Impact factor: 5.590

8.  AMP-activated protein kinase-dependent induction of autophagy by erythropoietin protects against spinal cord injury in rats.

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Review 9.  An introduction to the pathophysiology of aneurysmal subarachnoid hemorrhage.

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10.  Rapamycin ameliorates neuropathic pain by activating autophagy and inhibiting interleukin-1β in the rat spinal cord.

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