氧化应激
体内
医学
抗氧化剂
药理学
超氧化物歧化酶
平衡
发病机制
活性氧
钙
细胞凋亡
钙代谢
超氧化物
化学
后代
内生
不利影响
内科学
内分泌学
体外
癌症研究
一氧化氮
心肌细胞
氧化还原
氧化磷酸化
子宫内
动物研究
作者
Yige Tang,Yufeng Cheng,Hongmei Zhuo,Hongmei Wang,Yuying Mu,Jianxiang Zhang,Hongbo Qi,Juan Cheng
摘要
Preterm birth (PTB), defined as delivery between 28 and 37 weeks of gestation, is a leading cause of global neonatal mortality. Its pathogenesis is primarily driven by oxidative stress and inflammation, synergistically inducing calcium ion influx into uterine smooth muscle cells, triggering aberrant contractions and PTB. Current therapies primarily offer only symptom suppression without addressing the underlying etiology, highlighting an urgent need for targeted interventions. Herein, we develop TPT, a multi-bioactive, amphiphilic conjugate, which is synthesized through stepwise covalent conjugation of hydrophilic polyethylene glycol, a superoxide dismutase mimetic, and a hydrogen peroxide-scavenging/anti-inflammatory generating unit onto a molecular skeleton. TPT can self-assemble into a multifunctional nanotherapy (designated as TPT NP). In both in vitro and in vivo lipopolysaccharide-induced PTB models, TPT NP treatment significantly mitigates oxidative/inflammatory cascades, reduces calcium influx and apoptosis in uterine smooth muscle cells, and suppresses myometrial contractions, thereby effectively delaying PTB. Mechanistically, TPT NP restores redox homeostasis in lipopolysaccharide-induced PTB by reducing oxidative damage products and bolstering endogenous antioxidant defenses, while concurrently improving uteroplacental hemodynamics and attenuating uterine hypercontractility. Critically, in vivo evaluations demonstrate excellent safety profiles of TPT NP, with no adverse effects on maternal health and offspring development, underscoring its significant clinical translational potential.
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