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活细胞中基于DNA的纳米组装体的动态化学

Dynamic Chemistry of DNA-Based Nanoassemblies in Living Cells.

作者信息

Song Nachuan, Li Hongjin, Yao Chi, Yang Dayong

机构信息

Department of Chemistry, State Key Laboratory of Molecular Engineering of Polymers, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, College of Chemistry and Materials, Fudan University, Shanghai, 200438, P.R. China.

Frontiers Science Center for Synthetic Biology, Key Laboratory of Systems Bioengineering (MOE), School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300350, P.R. China.

出版信息

Acc Chem Res. 2024 Oct 1;57(19):2763-2774. doi: 10.1021/acs.accounts.4c00301. Epub 2024 Aug 30.

Abstract

In recent years, the controlled assembly/disassembly of exogenous chemical components inside cells has become an emerging approach to regulating cell functions. However, the construction of dynamic material chemistry systems in living cells always remains highly challenging due to the complicated intracellular microenvironment. Nucleic acid is a category of biological components that can achieve efficient molecular assembly via specific base-pairing and perform biological functions in the intracellular microenvironment. Deoxyribonucleic acid (DNA) molecules exhibit the superior performance of intracellular assembly, including sequence programmability, molecule recognition ability, and nanostructure predictability, as well as the unique biological functions that traditional synthetic polymers do not carry, showing great superiority in the construction of dynamic material chemistry systems. Moreover, the technologies of DNA synthesis are relatively mature, and the conjugation of DNA with functional small molecules can be achieved through established chemical synthesis methods, facilitating the construction of DNA-based dynamic materials with more functions. In addition, a few specific DNA molecules have been proven to show responsiveness toward different stimuli, functioning as dynamic modules.In this Account, we summarize our recent work in dynamic chemistry of DNA-based nanoassemblies in living cells from the perspective of stimulus types including enzyme, H, glutathione (GSH), adenosine triphosphate (ATP), and light. Upon the specific stimuli, DNA-based nanoassemblies undergo precise assembly in living cells, executing disassembly or aggregation, which consequently affects the functions and behaviors of living cells. In the first part, we describe the interactions between DNA-based nanoassemblies and intracellular enzymes, namely the enzymatic cleavage of intracellular enzymes on the DNA or RNA sequences. In the second part, we summarize the effects of H in lysosomes on DNA-based nanoassemblies, including the formation of a tetraplex i-motif structure and the decomposition of acid-degradable polymeric coating. In the third part, we discuss the mechanism of GSH responsiveness of DNA-based nanoassemblies, including the breaking of disulfide bonds and reduction-responsive nanoparticles. In the fourth part, we describe the ATP-mediated conformational transition for the specific release of functional RNA sequences. In the fifth part, we demonstrate the light-mediated spatiotemporally dynamic chemistry of DNA-based nanoassemblies. In summary, based on the achievements of our group in the study of dynamic chemistry of DNA-based nanoassemblies, the assembly, disassembly, and reassembly in living cells are well-controlled, the regulation of cellular functions are explored, and the new strategies for cancer therapeutics are demonstrated. We envision that our work on the dynamic chemistry of DNA-based nanoassembly is a new paradigm for constructing dynamic material chemistry systems inside living cells, and will facilitate the development of precision medicine.

摘要

近年来,细胞内源性化学成分的可控组装/拆卸已成为一种调节细胞功能的新兴方法。然而,由于细胞内微环境复杂,在活细胞中构建动态材料化学系统一直极具挑战性。核酸是一类生物成分,可通过特定碱基配对实现高效分子组装,并在细胞内微环境中发挥生物学功能。脱氧核糖核酸(DNA)分子在细胞内组装方面表现出卓越性能,包括序列可编程性、分子识别能力和纳米结构可预测性,以及传统合成聚合物所不具备的独特生物学功能,在构建动态材料化学系统方面具有巨大优势。此外,DNA合成技术相对成熟,通过既定化学合成方法可实现DNA与功能小分子的共轭,有助于构建功能更多的基于DNA的动态材料。此外,一些特定DNA分子已被证明对不同刺激有响应,可作为动态模块发挥作用。在本综述中,我们从酶、H⁺、谷胱甘肽(GSH)、三磷酸腺苷(ATP)和光等刺激类型的角度,总结了我们近期在活细胞中基于DNA的纳米组装体动态化学方面的工作。在特定刺激下,基于DNA的纳米组装体在活细胞中进行精确组装,执行拆卸或聚集,从而影响活细胞的功能和行为。在第一部分,我们描述了基于DNA的纳米组装体与细胞内酶之间的相互作用,即细胞内酶对DNA或RNA序列的酶切作用。在第二部分,我们总结了溶酶体中H⁺对基于DNA的纳米组装体的影响,包括四链体i-基序结构的形成和酸可降解聚合物涂层的分解。在第三部分,我们讨论了基于DNA的纳米组装体对GSH响应的机制,包括二硫键的断裂和还原响应性纳米颗粒。在第四部分,我们描述了ATP介导的特定功能RNA序列释放的构象转变。在第五部分,我们展示了基于DNA的纳米组装体的光介导时空动态化学。总之,基于我们团队在基于DNA的纳米组装体动态化学研究方面的成果,活细胞中的组装、拆卸和重新组装得到了很好的控制,探索了细胞功能的调控,并展示了癌症治疗的新策略。我们设想,我们在基于DNA的纳米组装体动态化学方面的工作是在活细胞内构建动态材料化学系统的新范式,并将促进精准医学的发展。

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