Liu Zhenhe, Qiu Haolong, Jiang Yucong, Mo Yuxi, Lu Linlin, Wang Yan, Hu Dandan, Song Xingju
Guangxi Key Laboratory of Animal Breeding, Disease Control and Prevention, College of Animal Science and Technology, Guangxi University, Nanning 530004, China.
Shizhong District Animal Disease Prevention and Control Center, Leshan 614000, China.
Microorganisms. 2025 May 25;13(6):1203. doi: 10.3390/microorganisms13061203.
, an obligate intracellular protozoan parasite infecting nucleated cells of warm-blooded vertebrates, causes severe complications in immunocompromised hosts. Current therapies remain limited by suboptimal efficacy and toxicity, necessitating novel anti-toxoplasmic agents. Piceatannol (PIC), a natural stilbenoid, demonstrates multifaceted bioactivity including antimicrobial and anti-parasitic effects, suggesting therapeutic potential against . Our previous study revealed PIC's potent anti-parasitic activity, selectively inhibiting proliferation and altering parasite morphology without host cytotoxicity. In this study, mechanistic analyses indicated that PIC disrupts mitochondrial integrity in tachyzoites, reducing mitochondrial membrane potential and ATP production while elevating ROS levels. Transcriptomic profiling identified significant suppression of oxidative phosphorylation-related genes, consistent with mitochondrial dysfunction. These findings establish PIC as a promising candidate targeting through the mechanism of mitochondrial impairment.
作为一种专性细胞内原生动物寄生虫,感染温血脊椎动物的有核细胞,在免疫功能低下的宿主中会引发严重并发症。目前的治疗方法仍受疗效欠佳和毒性的限制,因此需要新型抗弓形虫药物。白皮杉醇(PIC)是一种天然的芪类化合物,具有多方面的生物活性,包括抗菌和抗寄生虫作用,提示其对[弓形虫]具有治疗潜力。我们之前的研究揭示了PIC强大的抗寄生虫活性,能选择性抑制[弓形虫]增殖并改变寄生虫形态,且对宿主无细胞毒性。在本研究中,机制分析表明PIC破坏速殖子中的线粒体完整性,降低线粒体膜电位和ATP生成,同时提高ROS水平。转录组分析确定氧化磷酸化相关基因受到显著抑制,这与线粒体功能障碍一致。这些发现确立了PIC作为通过线粒体损伤机制靶向[弓形虫]的有前景候选药物。