Department of Biomedical Engineering, Duke University, Durham, NC, 27708, USA.
Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC, 27708, USA.
Nat Commun. 2020 Mar 12;11(1):1342. doi: 10.1038/s41467-020-15128-9.
The controllable production of microparticles with complex geometries is useful for a variety of applications in materials science and bioengineering. The formation of intricate microarchitectures typically requires sophisticated fabrication techniques such as flow lithography or multiple-emulsion microfluidics. By harnessing the molecular interactions of a set of artificial intrinsically disordered proteins (IDPs), we have created complex microparticle geometries, including porous particles, core-shell and hollow shell structures, and a unique 'fruits-on-a-vine' arrangement, by exploiting the metastable region of the phase diagram of thermally responsive IDPs within microdroplets. Through multi-site unnatural amino acid (UAA) incorporation, these protein microparticles can also be photo-crosslinked and stably extracted to an all-aqueous environment. This work expands the functional utility of artificial IDPs as well as the available microarchitectures of this class of biocompatible IDPs, with potential applications in drug delivery and tissue engineering.
可控地生产具有复杂几何形状的微粒对于材料科学和生物工程中的各种应用非常有用。复杂微结构的形成通常需要复杂的制造技术,如流延光刻或多重乳液微流控。通过利用一组人工内在无序蛋白质 (IDP) 的分子相互作用,我们在微滴内利用热响应 IDP 相图的亚稳区,创造了复杂的微粒几何形状,包括多孔颗粒、核壳和空心壳结构,以及独特的“葡萄串”排列。通过多位置非天然氨基酸 (UAA) 掺入,这些蛋白质微粒也可以光交联并稳定地提取到全水相环境中。这项工作扩展了人工 IDP 的功能实用性以及此类生物相容 IDP 的可用微结构,在药物输送和组织工程中有潜在的应用。