Pedersen Søren L, Huynh Tin H, Pöschko Philipp, Fruergaard Anne Sofie, Jarlstad Olesen Morten T, Chen Yaqing, Birkedal Henrik, Subbiahdoss Guruprakash, Reimhult Erik, Thøgersen Jan, Zelikin Alexander N
Department of Chemistry, Aarhus University, Aarhus 8000, Denmark.
iNano Interdisciplinary Nanoscience Centre, Aarhus University, Aarhus 8000, Denmark.
ACS Nano. 2020 Jul 28;14(7):9145-9155. doi: 10.1021/acsnano.0c04522. Epub 2020 Jul 2.
Adaptable behavior such as triggered disintegration affords a broad scope and utility for (bio)materials in diverse applications in materials science and engineering. The impact of such materials continues to grow due to the increased importance of environmental considerations as well as the increased use of implants in medical practices. However, examples of such materials are still few. In this work, we engineer triggered liquefaction of hydrogel biomaterials in response to internal, localized heating, mediated by near-infrared light as external stimulus. This adaptable behavior is engineered into the readily available physical hydrogels based on poly(vinyl alcohol), using gold nanoparticles or an organic photothermal dye as heat generators. Upon laser light irradiation, engineered biomaterials underwent liquefaction within seconds. Pulsed laser light irradiation afforded controlled, on-demand release of the incorporated cargo, successful for small molecules as well as proteins (enzymes) in their biofunctional form.
诸如触发解体之类的适应性行为为材料科学与工程中各种应用的(生物)材料提供了广泛的范围和实用性。由于环境考量的重要性增加以及医疗实践中植入物使用的增加,此类材料的影响持续增长。然而,此类材料的实例仍然很少。在这项工作中,我们设计了水凝胶生物材料的触发液化,以响应由近红外光作为外部刺激介导的内部局部加热。这种适应性行为被设计到基于聚乙烯醇的现成物理水凝胶中,使用金纳米颗粒或有机光热染料作为发热体。在激光照射下,工程化生物材料在几秒钟内发生液化。脉冲激光照射实现了对所载货物的可控按需释放,对于小分子以及生物功能形式的蛋白质(酶)均取得成功。