Faculty of Medicine, Institute of Biochemistry I, Goethe-University Frankfurt, 60590 Frankfurt, Germany.
Faculty of Biological Sciences, Buchmann Institute for Molecular Life Sciences (BMLS), Goethe-University Frankfurt, 60438 Frankfurt, Germany.
Int J Mol Sci. 2022 May 22;23(10):5824. doi: 10.3390/ijms23105824.
Previous studies towards reduced oxygen availability have mostly focused on changes in total mRNA expression, neglecting underlying transcriptional and post-transcriptional events. Therefore, we generated a comprehensive overview of hypoxia-induced changes in total mRNA expression, global de novo transcription, and mRNA stability in monocytic THP-1 cells. Since hypoxic episodes often persist for prolonged periods, we further compared the adaptation to acute and chronic hypoxia. While total mRNA changes correlated well with enhanced transcription during short-term hypoxia, mRNA destabilization gained importance under chronic conditions. Reduced mRNA stability not only added to a compensatory attenuation of immune responses, but also, most notably, to the reduction in nuclear-encoded mRNAs associated with various mitochondrial functions. These changes may prevent the futile production of new mitochondria under conditions where mitochondria cannot exert their full metabolic function and are indeed actively removed by mitophagy. The post-transcriptional mode of regulation might further allow for the rapid recovery of mitochondrial capacities upon reoxygenation. Our results provide a comprehensive resource of functional mRNA expression dynamics and underlying transcriptional and post-transcriptional regulatory principles during the adaptation to hypoxia. Furthermore, we uncover that RNA stability regulation controls mitochondrial functions in the context of hypoxia.
先前针对缺氧可用性降低的研究主要集中在总 mRNA 表达的变化上,而忽略了潜在的转录和转录后事件。因此,我们全面概述了缺氧诱导的单核细胞 THP-1 细胞中总 mRNA 表达、全局从头转录和 mRNA 稳定性的变化。由于缺氧发作经常持续很长时间,我们进一步比较了对急性和慢性缺氧的适应。虽然总 mRNA 的变化与短期缺氧时转录增强密切相关,但在慢性条件下,mRNA 不稳定性变得更加重要。mRNA 稳定性降低不仅会导致免疫反应的代偿性减弱,而且还会导致与各种线粒体功能相关的核编码 mRNAs 的减少。这些变化可以防止在不能发挥线粒体全部代谢功能且实际上被线粒体自噬积极清除的情况下产生新的线粒体的无效生产。转录后调节模式可能进一步允许在再氧化时快速恢复线粒体的能力。我们的研究结果提供了在适应缺氧过程中功能 mRNA 表达动态及其潜在的转录和转录后调节原则的综合资源。此外,我们发现 RNA 稳定性调节在缺氧环境中控制线粒体功能。