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Oxidative Stress and AKT-Associated Angiogenesis in a Zebrafish Model and Its Potential Application for Withanolides

Cells 2022 19 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Jen‐Yang Tang, Yuan‐Bin Cheng, Ya-Ting Chuang, Ya-Ting Chuang, Kun‐Han Yang, Kun‐Han Yang, Fang‐Rong Chang Wangta Liu, Hsueh‐Wei Chang, Hsueh‐Wei Chang, Fang‐Rong Chang

Summary

Oxidative stress and AKT signaling pathway interactions were examined in a zebrafish model to evaluate the potential of withanolides, a class of plant compounds from the Solanaceae family, as modulators of angiogenesis. The study identifies several withanolides as candidates for anti-angiogenic applications based on their ability to suppress oxidative stress and AKT-associated vascular signaling.

Study Type In vivo

Oxidative stress and the AKT serine/threonine kinase (AKT) signaling pathway are essential regulators in cellular migration, metastasis, and angiogenesis. More than 300 withanolides were discovered from the plant family Solanaceae, exhibiting diverse functions. Notably, the relationship between oxidative stress, AKT signaling, and angiogenesis in withanolide treatments lacks comprehensive understanding. Here, we summarize connecting evidence related to oxidative stress, AKT signaling, and angiogenesis in the zebrafish model. A convenient vertebrate model monitored the in vivo effects of developmental and tumor xenograft angiogenesis using zebrafish embryos. The oxidative stress and AKT-signaling-modulating abilities of withanolides were highlighted in cancer treatments, which indicated that further assessments of their angiogenesis-modulating potential are necessary in the future. Moreover, targeting AKT for inhibiting AKT and its AKT signaling shows the potential for anti-migration and anti-angiogenesis purposes for future application to withanolides. This particularly holds for investigating the anti-angiogenetic effects mediated by the oxidative stress and AKT signaling pathways in withanolide-based cancer therapy in the future.

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