López-Laguna Hèctor, Sánchez Julieta M, Carratalá José Vicente, Rojas-Peña Mauricio, Sánchez-García Laura, Parladé Eloi, Sánchez-Chardi Alejandro, Voltà-Durán Eric, Serna Naroa, Cano-Garrido Olivia, Flores Sandra, Ferrer-Miralles Neus, Nolan Verónica, de Marco Ario, Roher Nerea, Unzueta Ugutz, Vazquez Esther, Villaverde Antonio
Institut de Biotecnologia i de Biomedicina, Universitat Autònoma de Barcelona, Bellaterra, Barcelona 08193, Spain.
Departament de Genètica i de Microbiologia, Universitat Autònoma de Barcelona, Bellaterra, Barcelona 08193, Spain.
ACS Sustain Chem Eng. 2021 Sep 13;9(36):12341-12354. doi: 10.1021/acssuschemeng.1c04256. Epub 2021 Aug 30.
We have developed a simple, robust, and fully transversal approach for the fabrication of functional multimeric nanoparticles with potential biomedical applications, validated here by a set of diverse and unrelated polypeptides. The proposed concept is based on the controlled coordination between Zn ions and His residues in His-tagged proteins. This approach results in a spontaneous and reproducible protein assembly as nanoscale oligomers that keep the original functionalities of the protein building blocks. The assembly of these materials is not linked to particular polypeptide features, and it is based on an environmentally friendly and sustainable approach. The resulting nanoparticles, with dimensions ranging between 10 and 15 nm, are regular in size, are architecturally stable, are fully functional, and serve as intermediates in a more complex assembly process, resulting in the formation of microscale protein materials. Since most of the recombinant proteins produced by biochemical and biotechnological industries and intended for biomedical research are His-tagged, the green biofabrication procedure proposed here can be straightforwardly applied to a huge spectrum of protein species for their conversion into their respective nanostructured formats.
我们开发了一种简单、稳健且完全横向的方法来制造具有潜在生物医学应用的功能性多聚体纳米颗粒,这里通过一组多样且不相关的多肽进行了验证。所提出的概念基于锌离子与带有His标签的蛋白质中His残基之间的可控配位。这种方法导致蛋白质自发且可重复地组装成纳米级低聚物,保留了蛋白质构建块的原始功能。这些材料的组装与特定的多肽特征无关,并且基于一种环境友好且可持续的方法。所得的纳米颗粒尺寸在10至15纳米之间,大小规则,结构稳定,功能齐全,并在更复杂的组装过程中作为中间体,导致形成微米级蛋白质材料。由于生化和生物技术行业生产的、用于生物医学研究的大多数重组蛋白都带有His标签,这里提出的绿色生物制造程序可以直接应用于大量蛋白质物种,将它们转化为各自的纳米结构形式。