Severe acute hypoxic stress is a major contributor to the pathology of human diseases, including ischemic disorders. Current treatments focus on managing consequences of hypoxia, with few addressing cellular adaptation to low-oxygen environments. Here, we investigate whether accelerating hypoxia adaptation could provide a strategy to alleviate acute hypoxic stress. We develop a high-content phenotypic screening platform to identify compounds that fast-track adaptation to hypoxic stress. Our platform captures a high-dimensional phenotypic hypoxia response trajectory consisting of normoxic, acutely stressed, and chronically adapted cell states. Leveraging this trajectory, we identify compounds that phenotypically shift cells from the acutely stressed state towards the adapted state, revealing mTOR/PI3K or BET inhibition as strategies to induce this phenotypic shift. Importantly, our compound hits promote the survival of liver cells exposed to ischemia-like stress, and rescue cardiomyocytes from hypoxic stress. Our "phenopushing" platform offers a general, target-agnostic approach to identify compounds and targets that accelerate cellular adaptation, applicable across various stress conditions.
A phenopushing platform to identify compounds that alleviate acute hypoxic stress by fast-tracking cellular adaptation.
表型推进平台,用于识别能够通过加速细胞适应来缓解急性缺氧应激的化合物
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作者:Li Li, Hammerlindl Heinz, Shen Susan Q, Bao Feng, Hammerlindl Sabrina, Altschuler Steven J, Wu Lani F
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Mar 18; 16(1):2684 |
| doi: | 10.1038/s41467-025-57754-1 | 研究方向: | 细胞生物学 |
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