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Turning gray selenium into a nanoaccelerator of tissue regeneration by PEG modification

斑马鱼 Wnt信号通路 再生(生物学) 化学 再生医学 细胞生物学 器官发生 纳米技术 生物物理学 生物 生物化学 信号转导 材料科学 细胞 基因 有机化学
作者
Jieqiong Cao,Yibo Zhang,Peiguang Zhang,Zilei Zhang,Bihui Zhang,Yanxian Feng,Zhixin Li,Yiqi Yang,Qilin Meng,He Liu,Yulin Cai,Zhenyu Wang,Jie Li,Xue Chen,Hongwei Liu,An Hong,Wenjie Zheng,Xiaojia Chen,Xiaojia Chen,Xiaojia Chen
出处
期刊:Bioactive Materials [Elsevier BV]
卷期号:15: 131-144 被引量:20
标识
DOI:10.1016/j.bioactmat.2021.12.026
摘要

Selenium (Se) is an essential trace element involved in nearly all human physiological processes but suffers from a narrow margin between benefit and toxicity. The nanoform of selenium has been proven shown to be more bioavailable and less toxic, yet significant challenges remain regarding the efficient and feasible synthesis of biologically active nanoselenium. In addition, although nanoselenium has shown a variety of biological activities, more interesting nanoselenium features are expected. In this work, hydrosoluble nanoselenium termed Nano-Se in the zero oxidation state was synthesized between gray Se and PEG. A zebrafish screen was carried out in zebrafish larvae cocultured with Nano-Se. Excitingly, Nano-Se promoted the action of the FGFR, Wnt, and VEGF signaling pathways, which play crucial roles in tissue regeneration. As expected, Nano-Se not only achieved the regeneration of zebrafish tail fins and mouse skin but also promoted the repair of skin in diabetic mice while maintaining a profitable safe profile. In brief, the Nano-Se reported here provided an efficient and feasible method for bioactive nanoselenium synthesis and not only expanded the application of nanoselenium to regenerative medicine but also likely reinvigorated efforts for discovering more peculiarunique biofunctions of nanoselenium in a great variety of human diseases.
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