Torpid 13-lined ground squirrel liver mitochondria resist anoxia-reoxygenation despite high levels of protein damage.

IF 1.7 3区 生物学 Q4 PHYSIOLOGY
Brynne M Duffy, Leah Hayward, James F Staples
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引用次数: 0

Abstract

Hibernation confers resistance to ischemia-reperfusion injury in tissue, but the underlying mechanisms remain unclear. Suppression of mitochondrial respiration during torpor may contribute to this tolerance. To explore this concept, we subjected isolated liver mitochondria from torpid, interbout euthermic (IBE) and summer 13-lined ground squirrels (Ictidomys tridecemlineatus) to 5 min of anoxia, followed by reoxygenation (A/R). We also included rat liver mitochondria as a non-hibernating comparison group. Maximum respiration rates of mitochondria from torpid ground squirrels were not affected by A/R, but in IBE and summer, these rates decreased by 50% following A/R and in rats they decreased by 80%. Comparing net ROS production rates among groups, revealed seasonal differences; mitochondria from IBE and torpor produced 75% less ROS than summer ground squirrels and rats. Measurements of oxidative damage to these mitochondria, both freshly isolated, as well as pre- and post-A/R, demonstrated elevated damage to protein, but not lipids, in all groups. Hibernation likely generates oxidative stress, as freshly isolated mitochondria had greater protein damage in torpor and IBE than in summer and rats. When comparing markers of damage pre- and post-A/R, we found that when RET was active, rat macromolecules were more damaged than when RET is inhibited, but in TLGS markers of damage were similar. This result suggests that suppression of RET during hibernation, both in torpor and IBE, lessens oxidative stress produced during arousal. Taken together our study suggests that ischemia-reperfusion tolerance at the mitochondrial level is associated with metabolically suppressed oxidative phosphorylation during hibernation.

Abstract Image

尽管有高水平的蛋白质损伤,但硬13线的地松鼠肝线粒体仍能抵抗缺氧-复氧。
冬眠使组织对缺血再灌注损伤具有抵抗力,但其潜在机制尚不清楚。迟钝时线粒体呼吸的抑制可能有助于这种耐受性。为了探索这一概念,我们对来自迟钝、中间组(IBE)和夏季13线地松鼠(Ictidomys tridecemlineatus)的分离的肝线粒体进行了5分钟的缺氧,然后再进行复氧(A/R)。我们还将大鼠肝线粒体作为非冬眠对照组。迟钝的地松鼠线粒体的最大呼吸速率不受A/R的影响,但在IBE和夏季,A/R后这些速率降低了50%,而在大鼠中,它们降低了80%。比较各组间ROS的净产生率,发现季节差异;IBE和torpor的线粒体产生的ROS比夏季地松鼠和大鼠少75%。对这些线粒体的氧化损伤的测量,无论是新分离的,还是A/R前和后的,都表明在所有组中,对蛋白质的损伤都增加了,但对脂质的损伤没有增加。冬眠可能会产生氧化应激,因为与夏季和大鼠相比,新分离的线粒体在麻痹症和IBE中的蛋白质损伤更大。当比较A/R前后的损伤标志物时,我们发现当RET活性时,大鼠大分子的损伤比RET被抑制时更大,但在TLGS中,损伤标志物相似。这一结果表明,冬眠期间RET的抑制,无论是在迟钝还是IBE中,都可以减轻唤醒过程中产生的氧化应激。总之,我们的研究表明,线粒体水平的缺血再灌注耐受与冬眠期间代谢抑制的氧化磷酸化有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.90
自引率
0.00%
发文量
51
审稿时长
3.5 months
期刊介绍: The Journal of Comparative Physiology B publishes peer-reviewed original articles and reviews on the comparative physiology of invertebrate and vertebrate animals. Special emphasis is placed on integrative studies that elucidate mechanisms at the whole-animal, organ, tissue, cellular and/or molecular levels. Review papers report on the current state of knowledge in an area of comparative physiology, and directions in which future research is needed.
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