生物发光
超分子化学
氨基酸
生物发光成像
共价键
生物物理学
纳米技术
化学
生物相容性
荧光素酶
组合化学
生物化学
生物
材料科学
分子
基因
转染
有机化学
作者
Yifan Huang,Zian Yu,Jiancheng Peng,Qin Yu,Hao Xu,Miaomiao Yang,Sijie Yuan,Qianzijing Zhang,Yan-yun Yang,Jin Gao,Yue Yuan
标识
DOI:10.1002/adhm.202401244
摘要
Bioluminescence imaging (BLI) is a powerful technique for noninvasive monitoring of biological processes and cell transplantation. Nonetheless, the application of D-luciferin, which is widely employed as a bioluminescent probe, is restricted in long-term in vivo tracking due to its short half-life. This study presents a novel approach using amino acid-encoded building blocks to accumulate and preserve luciferin within tumor cells, through a supramolecular self-assembly strategy. The building block platform called Cys(SEt)-X-CBT (CXCBT, with X representing any amino acid) utilizes a covalent-noncovalent hybrid self-assembly mechanism to generate diverse luciferin-containing nanostructures in tumor cells after glutathione reduction. These nanostructures exhibit efficient tumor-targeted delivery as well as sequence-dependent well-designed morphologies and prolonged bioluminescence performance. Among the selected amino acids (X = Glu, Lys, Leu, Phe), Cys(SEt)-Lys-CBT (CKCBT) exhibits the superior long-lasting bioluminescence signal (up to 72 h) and good biocompatibility. This study demonstrates the potential of amino-acid-encoded supramolecular self-assembly as a convenient and effective method for developing BLI probes for long-term biological tracking and disease imaging.
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