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在生理条件下介孔聚(异丙基丙烯酰胺)微凝胶的冷却触发释放。

Cooling-Triggered Release from Mesoporous Poly(-isopropylacrylamide) Microgels at Physiological Conditions.

机构信息

Fraunhofer Institute for Cell Therapy and Immunology, Branch Bioanalytics and Bioprocesses, Am Mühlenberg 13, Golm, Potsdam 14476, Germany.

School of Science and Technology, Nottingham Trent University, Clifton Lane, Nottingham NG11 8NS, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2020 Dec 23;12(51):57401-57409. doi: 10.1021/acsami.0c15370. Epub 2020 Dec 8.

Abstract

Poly(-isopropylacrylamide) (pNIPAM) hydrogels have broad potential applications as drug delivery vehicles because of their thermoresponsive behavior. pNIPAM loading/release performances are directly affected by the gel network structure. Therefore, there is a need with the approaches for accurate design of 3D pNIPAM assemblies with the structure ordered at the nanoscale. This study demonstrates size-selective spontaneous loading of macromolecules (dextrans 10-500 kDa) into pNIPAM microgels by microgel heating from 22 to 35 °C (microgels collapse and trap dextrans) followed by the dextran release upon further cooling down to 22 °C (microgels swell back) . This temperature-mediated behavior is fully reversible. The structure of pNIPAM microgels was tailored via hard templating and cross-linking of the hydrogel using sacrificial mesoporous cores of vaterite CaCO microcrystals. In addition, the fabrication of hollow thermoresponsive pNIPAM microshells has been demonstrated, utilizing vaterite microcrystals that had narrower pores. The proposed approach for heating-triggered encapsulation and cooling-triggered release into/from pNIPAM microgels may pave the ways for applications of pNIPAM hydrogels for skin and transdermal cooling-responsive drug delivery in the future.

摘要

聚(异丙基丙烯酰胺)(pNIPAM)水凝胶由于其温度响应行为而具有作为药物输送载体的广泛应用潜力。pNIPAM 的加载/释放性能直接受到凝胶网络结构的影响。因此,需要采用方法来准确设计具有纳米尺度有序结构的 3D pNIPAM 组装体。本研究通过将 pNIPAM 微凝胶从 22°C 加热至 35°C(微凝胶收缩并捕获葡聚糖),然后在进一步冷却至 22°C 时释放葡聚糖(微凝胶溶胀回),展示了对大分子(10-500 kDa 的葡聚糖)的尺寸选择性自发加载。这种温度介导的行为是完全可逆的。通过硬模板法和牺牲介孔核心的 Vaterite CaCO3 微晶的水凝胶交联来定制 pNIPAM 微凝胶的结构。此外,还展示了利用具有较窄孔的 Vaterite 微晶制造空心热敏 pNIPAM 微壳的方法。该加热触发封装和冷却触发 pNIPAM 微凝胶内/外释放的方法可能为未来 pNIPAM 水凝胶在皮肤和经皮冷却响应性药物输送中的应用铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e83f/7760096/fd8f346e9974/am0c15370_0001.jpg

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