4.7 Article

Altered Proteome biology of cardiac mitochondria under stress conditions

期刊

JOURNAL OF PROTEOME RESEARCH
卷 7, 期 6, 页码 2204-2214

出版社

AMER CHEMICAL SOC
DOI: 10.1021/pr070371f

关键词

proteome biology; ischemia injury; cardiac mitochondria; reversible injury; irreversible injury

资金

  1. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [F32HL078109, R37HL063901, R01HL063901, R01HL065431, R01HL080691, P01HL080111] Funding Source: NIH RePORTER
  2. NHLBI NIH HHS [R01 HL065431-02, R01 HL080691-02, R01 HL063901-08, HL-65431, HL-80111, HL-63901, R01 HL065431, R37 HL063901, HL-78109, F32 HL078109-03, P01 HL080111-010002, HL-80691, F32 HL078109, R01 HL080691, R01 HL063901, P01 HL080111] Funding Source: Medline
  3. PHS HHS [SRR 022371-01] Funding Source: Medline

向作者/读者索取更多资源

Myocardial ischemia-reperfusion induces mitochondrial dysfunction and, depending upon the degree of injury, may lead to cardiac cell death. However, our ability to understand mitochondrial dysfunction has been hindered by an absence of molecular markers defining the various degrees of injury. To address this paucity of knowledge, we sought to characterize the impact of ischemic damage on mitochondrial proteome biology. We hypothesized that ischemic injury induces differential alterations in various mitochondrial subcompartments, that these proteomic changes are specific to the severity of injury, and that they are important to subsequent cellular adaptations to myocardial ischemic injury. Accordingly, an in vitro model of cardiac mitochondria injury in mice was established to examine two stress conditions: reversible injury (induced by mild calcium overload) and irreversible injury (induced by hypotonic stimuli). Both forms of injury had a drastic impact on the proteome biology of cardiac mitochondria. Altered mitochondrial function was concomitant with significant protein loss/shedding from the injured organelles. In the setting of mild calcium overload, mitochondria retained functionality despite the release of numerous proteins, and the majority of mitochondria remained intact. In contrast, hypotonic stimuli caused severe damage to mitochondrial structure and function, induced increased oxidative modification of mitochondrial proteins, and brought about detrimental changes to the subproteomes of the inner mitochondrial membrane and matrix. Using an established in vivo murine model of regional myocardial ischemic injury, we validated key observations made by the in vitro model. This preclinical investigation provides function and suborganelle location information on a repertoire of cardiac mitochondrial proteins sensitive to ischemia reperfusion stress and highlights protein clusters potentially involved in mitochondrial dysfunction in the setting of ischemic injury.

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