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用于环境触发治疗递送的工程模块化生物材料逻辑门。

Engineered modular biomaterial logic gates for environmentally triggered therapeutic delivery.

机构信息

Department of Chemical Engineering, University of Washington, Seattle, WA 98195, USA.

Department of Bioengineering, University of Washington, Seattle, WA 98105, USA.

出版信息

Nat Chem. 2018 Mar;10(3):251-258. doi: 10.1038/nchem.2917. Epub 2018 Jan 15.

Abstract

The successful transport of drug- and cell-based therapeutics to diseased sites represents a major barrier in the development of clinical therapies. Targeted delivery can be mediated through degradable biomaterial vehicles that utilize disease biomarkers to trigger payload release. Here, we report a modular chemical framework for imparting hydrogels with precise degradative responsiveness by using multiple environmental cues to trigger reactions that operate user-programmable Boolean logic. By specifying the molecular architecture and connectivity of orthogonal stimuli-labile moieties within material cross-linkers, we show selective control over gel dissolution and therapeutic delivery. To illustrate the versatility of this methodology, we synthesized 17 distinct stimuli-responsive materials that collectively yielded all possible YES/OR/AND logic outputs from input combinations involving enzyme, reductant and light. Using these hydrogels we demonstrate the first sequential and environmentally stimulated release of multiple cell lines in well-defined combinations from a material. We expect these platforms will find utility in several diverse fields including drug delivery, diagnostics and regenerative medicine.

摘要

药物和细胞治疗剂向病变部位的成功输送是临床治疗发展的主要障碍。靶向输送可以通过可降解生物材料载体来介导,该载体利用疾病生物标志物触发有效载荷释放。在这里,我们报告了一种模块化的化学框架,通过使用多种环境线索来触发反应,从而对水凝胶进行精确的降解响应,这些反应可以执行用户可编程的布尔逻辑。通过指定分子结构和材料交联剂中正交刺激敏感部分的连接性,我们展示了对凝胶溶解和治疗剂输送的选择性控制。为了说明这种方法的多功能性,我们合成了 17 种不同的刺激响应材料,它们共同从涉及酶、还原剂和光的输入组合中产生了所有可能的 YES/OR/AND 逻辑输出。我们使用这些水凝胶证明了材料中多种细胞系以定义明确的组合进行顺序和环境刺激释放的首例。我们预计这些平台将在包括药物输送、诊断和再生医学在内的几个不同领域得到应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/be1a/5822735/10546d285da6/nihms921333f1.jpg

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