聚氟烷基标签装饰使 PTK7 靶向拟合物的肿瘤穿透能力显著增强

IF 4 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Yingying Li, Chi Zhang, Ting Fu, Xue-Qiang Wang* and Weihong Tan*, 
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引用次数: 0

摘要

适配体是靶向治疗中广泛使用的分子识别工具,但它们能否有效地深入实体瘤仍然是一个重大挑战,导致治疗效果不理想。在这里,我们开发了一种多氟烷基(PFA)装饰策略,以增强适配体的识别、细胞内化和实体瘤穿透能力。我们的研究结果表明,含有约 11 个氟原子的 PFA 在体外和体内环境中都能显著改善适配体的内化。不过,我们也观察到,在对照细胞系中,使用含有 19 和 23 个氟原子的 PFA 标记会导致非特异性细胞锚定,从而影响适配体的特异性。总之,我们发现使用化学修饰策略可以增强适配体的肿瘤深层穿透能力,并验证其在体内的有效性。这种方法在癌症靶向给药治疗中具有重要的实际应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Polyfluoroalkyl Tag Decoration Enables Significantly Enhanced Tumor Penetration Ability of a PTK7 Targeting Aptamer

Polyfluoroalkyl Tag Decoration Enables Significantly Enhanced Tumor Penetration Ability of a PTK7 Targeting Aptamer

Polyfluoroalkyl Tag Decoration Enables Significantly Enhanced Tumor Penetration Ability of a PTK7 Targeting Aptamer

Aptamers are widely used molecular recognition tools in targeted therapy, but their ability to effectively penetrate deep into solid tumors remains a significant challenge, leading to suboptimal treatment efficacy. Here, we developed a polyfluoroalkyl (PFA) decoration strategy to enhance aptamer recognition, cell internalization, and solid tumor penetration. Our results indicate that PFA with around 11 fluorine atoms significantly improves aptamer internalization both in vitro and in vivo settings. However, we also observed that the use of PFA tags containing 19 and 23 fluorine atoms on aptamers resulted in nonspecific cell anchoring in control cell lines, affecting the specificity of aptamers. Overall, we found that using a chemical modification strategy could enhance the deep tumor penetration ability of aptamers and validate their effectiveness in vivo. This approach has significant practical applications in targeted drug delivery for cancer treatment.

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来源期刊
CiteScore
9.00
自引率
2.10%
发文量
236
审稿时长
1.4 months
期刊介绍: Bioconjugate Chemistry invites original contributions on all research at the interface between man-made and biological materials. The mission of the journal is to communicate to advances in fields including therapeutic delivery, imaging, bionanotechnology, and synthetic biology. Bioconjugate Chemistry is intended to provide a forum for presentation of research relevant to all aspects of bioconjugates, including the preparation, properties and applications of biomolecular conjugates.
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