Wang Shunjuan, Xu Qiying, Liu Wenjing, Zhang Na, Qi Yuelin, Tang Feng, Ge Rili
Research Center for High Altitude Medicine, Qinghai University, Xining 810016, China.
Key Laboratory of the Ministry of High Altitude Medicine, Qinghai University, Xining 810016, China.
Int J Mol Sci. 2025 Jan 17;26(2):762. doi: 10.3390/ijms26020762.
The hypoxia-inducible factor (HIF) pathway has been demonstrated to play a pivotal role in the process of high-altitude adaptation. PHD2, a key regulator of the HIF pathway, has been found to be associated with erythropoiesis. However, the relationship between changes in Phd2 abundance and erythroid differentiation under hypoxic conditions remains to be elucidated. A hemin-induced K562 erythroid differentiation model was used to explore the effects of PHD2 knockdown under hypoxia. Erythroid differentiation was assessed by flow cytometry and immunofluorescence. HIF-1α's regulation of PHD2 was examined using luciferase assays and ChIP-seq. CRISPR/Cas9 was applied to knock out and , and a fluorescent reporter system was developed to track PHD2 expression. PHD2 knockdown enhanced erythroid differentiation, evident by increased CD71 and CD235a expression. Reporter assays and ChIP-seq identified an HIF-1α binding site in the 5' UTR, confirming HIF-1α as a regulator of PHD2 expression. The fluorescent reporter system provided real-time monitoring of endogenous PHD2 expression, showing that HIF-1α significantly modulates PHD2 levels under hypoxic conditions. PHD2 influences erythropoiesis under hypoxia, with HIF-1α regulating its expression. This feedback loop between HIF-1α and PHD2 sheds light on mechanisms driving erythroid differentiation under low-oxygen conditions.
缺氧诱导因子(HIF)通路已被证明在高原适应过程中起关键作用。PHD2作为HIF通路的关键调节因子,已被发现与红细胞生成有关。然而,在缺氧条件下,Phd2丰度变化与红系分化之间的关系仍有待阐明。利用血红素诱导的K562红系分化模型来探究缺氧条件下PHD2基因敲低的影响。通过流式细胞术和免疫荧光评估红系分化。使用荧光素酶测定和ChIP-seq检测HIF-1α对PHD2的调控。应用CRISPR/Cas9敲除 和 ,并开发了一种荧光报告系统来追踪PHD2的表达。PHD2基因敲低增强了红系分化,CD71和CD235a表达增加表明了这一点。报告基因检测和ChIP-seq在 5' UTR中鉴定出一个HIF-1α结合位点,证实HIF-1α是PHD2表达的调节因子。荧光报告系统提供了对内源性PHD2表达的实时监测,表明HIF-1α在缺氧条件下显著调节PHD2水平。PHD2在缺氧条件下影响红细胞生成,HIF-1α调节其表达。HIF-1α与PHD2之间的这种反馈环揭示了低氧条件下驱动红系分化的机制。