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Engineering responsive supramolecular biomaterials: Toward smart therapeutics

机译:工程响应性超分子生物材料:迈向智能疗法

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摘要

Engineering materials using supramolecular principles enables generalizable and modular platforms that have tunable chemical, mechanical, and biological properties. Applying this bottom‐up, molecular engineering‐based approach to therapeutic design affords unmatched control of emergent properties and functionalities. In preparing responsive materials for biomedical applications, the dynamic character of typical supramolecular interactions facilitates systems that can more rapidly sense and respond to specific stimuli through a fundamental change in material properties or characteristics, as compared to cases where covalent bonds must be overcome. Several supramolecular motifs have been evaluated toward the preparation of “smart” materials capable of sensing and responding to stimuli. Triggers of interest in designing materials for therapeutic use include applied external fields, environmental changes, biological actuators, applied mechanical loading, and modulation of relative binding affinities. In addition, multistimuli‐responsive routes can be realized that capture combinations of triggers for increased functionality. In sum, supramolecular engineering offers a highly functional strategy to prepare responsive materials. Future development and refinement of these approaches will improve precision in material formation and responsiveness, seek dynamic reciprocity in interactions with living biological systems, and improve spatiotemporal sensing of disease for better therapeutic deployment.
机译:使用超分子原理的工程材料可实现具有可调节的化学,机械和生物学特性的通用化和模块化平台。将这种基于分子工程的自下而上的方法应用于治疗设计,可提供无与伦比的紧急特性和功能控制。与必须克服共价键的情况相比,在制备用于生物医学应用的反应性材料时,典型的超分子相互作用的动力学特性促进了系统能够通过材料性质或特性的根本变化而更快速地感测并对特定刺激作出反应。为了制备能够感知和响应刺激的“智能”材料,已经评估了几种超分子基序。在设计用于治疗用途的材料时,感兴趣的触发因素包括施加的外部电场,环境变化,生物致动器,施加的机械负载以及相对结合亲和力的调节。此外,可以实现多刺激响应路线,该路线可以捕获触发器组合以增强功能。总之,超分子工程学为制备响应材料提供了一种功能强大的策略。这些方法的未来发展和完善将提高材料形成和响应的准确性,在与活的生物系统相互作用中寻求动态的互惠性,并改善疾病的时空感知,以便更好地进行治疗。

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