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Noncanonical Amino Acids for Hypoxia-Responsive Peptide Self-Assembly and Fluorescence

机译:缺氧响应肽自组装和荧光的非甘露糖氨基酸

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摘要

Design of endogenous stimuli-responsive amino acids allows for precisely modulating proteins or peptides under a biological microenvironment and thereby regulating their performance. Herein we report a noncanonical amino acid 2-nitroimidazol-1-yl alanine and explore its functions in creation of the nitroreductase (NTR)-responsive peptide-based supramolecular probes for efficient hypoxia imaging. On the basis of the reduction potential of the nitroimidazole unit, the amino acid was synthesized via the Mitsunobu reaction between 2-nitro-imidazole and a serine derivate. We elucidated the relationship between the NTR-responsiveness of the amino acid and the structural feature of peptides involving a series of peptides. This eventually facilitates development of aromatic peptides undergoing NTR-responsive self-assembly by rationally optimizing the sequences. Due to the intrinsic role of 2-nitroimidazole in the fluorescence quench, we created a morphology-transformable supramolecular probe for imaging hypoxic tumor cells based on NTR reduction. We found that the resulting supramolecular probes penetrated into solid tumors, thus allowing for efficient fluorescence imaging of tumor cells in hypoxic regions. Our findings demonstrate development of a readily synthesized and versatile amino acid with exemplified properties in creating fluorescent peptide nanostructures responsive to a biological microenvironment, thus providing a powerful toolkit for synthetic biology and development of novel biomaterials.
机译:内源性刺激氨基酸的设计允许精确调节生物微环境下的蛋白质或肽,从而调节它们的性能。在此,我们报告了一种非甘露酸氨基酸2-硝基咪唑-1-基丙氨酸,并探讨其在嵌合酶(NTR)的基于肽的基于肽的超分子探针中的功能,用于有效缺氧显像。在硝基咪唑单元的降低电位的基础上,通过2-硝基 - 咪唑与丝氨酸衍生物之间的Mitsunobu反应合成氨基酸。我们阐明了氨基酸的NTR反应性与涉及一系列肽的肽的结构特征之间的关系。这最终通过合理优化序列,促进了在响应性自组装接受的芳香肽的发展。由于2-硝基咪唑在荧光淬火中的内在作用,我们在基于NTR减少的情况下创造了用于成像缺氧肿瘤细胞的形态转化的超分子探针。我们发现所得的超分子探针渗透到实体肿瘤中,从而允许在缺氧区域中肿瘤细胞的有效荧光显像。我们的研究结果表明,响应于生物微环境的荧光肽纳米结构在创造荧光肽纳米结构的情况下,表明了易于合成的和通用氨基酸的发展,从而为新的生物材料的合成生物学和发育提供了强大的工具包。

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  • 来源
    《Journal of the American Chemical Society》 |2021年第34期|13854-13864|共11页
  • 作者单位

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

    Key Laboratory of Functional Polymer Materials Ministry of Education State Key Laboratory of Medicinal Chemical Biology Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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