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Biology subjects

E, G.

Publications and source records attributed to E, G..

2 recordsLinked to original sources

Hypobaric hypoxia drives citrate cycle reprogramming to suppress tumor progression

High altitude residents present lower tumor incidence and mortality than plain residents, suggesting that hypobaric hypoxia displays protective effect against tumor development. The results of our studies showed that hypobaric hypoxia exposure significantly suppressed tumor progression in subcutaneous bearing and lung metastasis tumor models. With single-cell transcriptome analysis, we identified HIF-1 pathway was significantly downregulated in tumor tissues with high altitude hypoxia, leading to decreased glycolysis and angiogenesis and improved antitumor immune response. Mechanistically, systemic hypoxia rewired citric acid cycle, with enhanced CS and IDH2 expression and reduced OGDH and SUCLG2 expression, to induce -ketoglutarate accumulation and succinate decline in tumor microenvironment, further mediating HIF-1 pathway inhibition. Moreover, hypobaric hypoxia treatment significantly improved the antitumor effects of adjuvant therapies (including chemotherapy, anti-angiogenic therapy and immunotherapy). Our findings reveal the role and mechanism of hypobaric hypoxia for tumor regression and yield new insights into tumor therapy.

cancer biology↗

M6A reader protein YTHDF3 regulates cardiomyocyte death and atrophy by modulating the alternative splicing program

BackgroundThe functional impact of m6A modifications on RNA is governed by reader proteins that read the m6A marks and process the RNA accordingly. Recent studies have highlighted the importance of m6A reader proteins in the heart. However, the function of a reader protein Ythdf3 in the heart remains completely unknown. ObjectiveWe aim to uncover the function of Ythdf3 in the hearts. Methods& ResultsHere, we show that Ythdf3 is indispensable for the heart, and its knockdown leads to cardiac cachexia evident by cardiomyocyte atrophy, death, and less dense myofibrils visualized by electron microscopy. We also found downregulation of Ythdf3 in response to doxorubicin, and its overexpression rescues doxorubicin-induced cardiomyocyte atrophy and death. Contrary to primarily cytoplasmic localization, we found that Ythdf3 localizes in the cardiomyocyte nucleus. Furthermore, using co-immunoprecipitation coupled with LC-MS/MS, we show that Ythdf3 interacts with splicing proteins like DDX5 and HNRNPU and regulates alternative splicing in the heart. Mechanistically, we found that Ythdf3 regulates the splicing of CaMKII{delta}, and its knockdown leads to an increase in CaMKII{delta}A and CaMKII{delta}C isoforms while a decrease in CaMKII{delta}9 isoform. ConclusionCollectively, Ythdf3 knockdown in the adult heart leads to cardiac cachexia due to the alteration of the splicing program.

cell biology↗