<p>During placenta development, trophoblasts dynamically adapt to hypoxic microenvironments to orchestrate physiological functions and morphogenesis. Early gestation establishes a transient hypoxic niche essential for trophoblast stem cell (TSC) proliferation and differentiation. This niche undergoes a transition to physiological reoxygenation following the remodeling of uterine spiral arteries during gestational weeks 10 to 12, establishing a spatiotemporal oxygen gradient critical for placental development. Disrupted hypoxia sensing—exemplified by deficient hypoxia-inducible factor (HIF) signaling—leads to placental maldevelopment, while sustained HIF activation drives preeclampsia-like pathology, underscoring the delicate equilibrium of oxygen-responsive mechanisms. Emerging evidence highlights hypoxia-centered signaling cascades, epigenetic reprogramming, and metabolic plasticity as pivotal regulators of trophoblast adaptation. Deciphering these molecular networks not only elucidates the pathogenesis of gestational complications but also holds potential for efficient therapies to restore placental homeostasis.</p>

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Trophoblast adaptation to hypoxia: balance and dysfunction

  • Qian Li,
  • Xiaowei Wei,
  • Yunqing Zhang,
  • Weihong Zeng,
  • Yi Lin

摘要

During placenta development, trophoblasts dynamically adapt to hypoxic microenvironments to orchestrate physiological functions and morphogenesis. Early gestation establishes a transient hypoxic niche essential for trophoblast stem cell (TSC) proliferation and differentiation. This niche undergoes a transition to physiological reoxygenation following the remodeling of uterine spiral arteries during gestational weeks 10 to 12, establishing a spatiotemporal oxygen gradient critical for placental development. Disrupted hypoxia sensing—exemplified by deficient hypoxia-inducible factor (HIF) signaling—leads to placental maldevelopment, while sustained HIF activation drives preeclampsia-like pathology, underscoring the delicate equilibrium of oxygen-responsive mechanisms. Emerging evidence highlights hypoxia-centered signaling cascades, epigenetic reprogramming, and metabolic plasticity as pivotal regulators of trophoblast adaptation. Deciphering these molecular networks not only elucidates the pathogenesis of gestational complications but also holds potential for efficient therapies to restore placental homeostasis.