化学
间质细胞
谷氨酰胺
尿素
体内
渗透(战争)
癌症治疗
膀胱癌
癌症研究
尿素酶
谷氨酰胺合成酶
氨
内化
生物相容性材料
癌症治疗
酶
生物化学
肿瘤微环境
癌细胞
毒性
药理学
作者
Hao Tian,Juanfeng Ou,Yong Wang,Jia Sun,Junbin Gao,Yicheng Ye,Ruotian Zhang,Bin Chen,Fei Wang,Wei‐Chang Huang,Huaan Li,Lu Liu,Chuxiao Shao,Zhili Xu,Fei Peng,Yingfeng Tu
标识
DOI:10.1016/j.apsb.2023.02.016
摘要
Enzyme-driven micro/nanomotors consuming in situ chemical fuels have attracted lots of attention for biomedical applications. However, motor systems composed by organism-derived organics that maximize the therapeutic efficacy of enzymatic products remain challenging. Herein, swimming proteomotors based on biocompatible urease and human serum albumin are constructed for enhanced antitumor therapy via active motion and ammonia amplification. By decomposing urea into carbon dioxide and ammonia, the designed proteomotors are endowed with self-propulsive capability, which leads to improved internalization and enhanced penetration in vitro. As a glutamine synthetase inhibitor, the loaded l-methionine sulfoximine further prevents the conversion of toxic ammonia into non-toxic glutamine in both tumor and stromal cells, resulting in local ammonia amplification. After intravesical instillation, the proteomotors achieve longer bladder retention and thus significantly inhibit the growth of orthotopic bladder tumor in vivo without adverse effects. We envision that the as-developed swimming proteomotors with amplification of the product toxicity may be a potential platform for active cancer treatment.
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