Ishaqat Aman, Hahmann Johannes, Lin Cheng, Zhang Xiaofeng, He Chuanjiang, Rath Wolfgang H, Habib Pardes, Sahnoun Sabri E M, Rahimi Khosrow, Vinokur Rostislav, Mottaghy Felix M, Göstl Robert, Bartneck Matthias, Herrmann Andreas
Institute of Technical and Macromolecular Chemistry, RWTH Aachen University, Worringerweg 2, 52074, Aachen, Germany.
DWI - Leibniz Institute for Interactive Materials, Forckenbeckstraße 50, 52074, Aachen, Germany.
Adv Mater. 2024 Aug;36(32):e2403752. doi: 10.1002/adma.202403752. Epub 2024 Jun 4.
Polymer mechanochemistry utilizes mechanical force to activate latent functionalities in macromolecules and widely relies on ultrasonication techniques. Fundamental constraints of frequency and power intensity have prohibited the application of the polymer mechanochemistry principles in a biomedical context up to now, although medical ultrasound is a clinically established modality. Here, a universal polynucleotide framework is presented that allows the binding and release of therapeutic oligonucleotides, both DNA- and RNA-based, as cargo by biocompatible medical imaging ultrasound. It is shown that the high molar mass, colloidal assembly, and a distinct mechanochemical mechanism enable the force-induced release of cargo and subsequent activation of biological function in vitro and in vivo. Thereby, this work introduces a platform for the exploration of biological questions and therapeutics development steered by mechanical force.
聚合物机械化学利用机械力激活大分子中的潜在功能,并且广泛依赖于超声技术。尽管医学超声是一种临床认可的技术手段,但频率和功率强度的基本限制迄今阻碍了聚合物机械化学原理在生物医学领域的应用。在此,我们提出了一种通用的多核苷酸框架,该框架可通过生物相容性医学成像超声实现基于DNA和RNA的治疗性寡核苷酸作为货物的结合与释放。结果表明,高摩尔质量、胶体组装以及独特的机械化学机制能够实现货物的力诱导释放,并在体外和体内随后激活生物学功能。因此,这项工作引入了一个由机械力驱动的用于探索生物学问题和开发治疗方法的平台。