Puertas-Bartolomé María, Venegas-Bustos Desiré, Acosta Sergio, Rodríguez-Cabello José Carlos
Technical Proteins Nanobiotechnology, S.L. (TPNBT), Valladolid, Spain.
Bioforge Lab (Group for Advanced Materials and Nanobiotechnology), CIBER's Bioengineering, Biomaterials and Nanomedicine (CIBER-BBN), Edificio LUCIA, Universidad de Valladolid, Valladolid, Spain.
Front Bioeng Biotechnol. 2024 Apr 8;12:1363865. doi: 10.3389/fbioe.2024.1363865. eCollection 2024.
Developing models that accurately mimic the microenvironment of biological structures or processes holds substantial promise for gaining insights into specific biological functions. In the field of tissue engineering and regenerative medicine, models able to capture the precise structural, topographical, and functional complexity of living tissues, prove to be valuable tools for comprehending disease mechanisms, assessing drug responses, and serving as alternatives or complements to animal testing. The choice of the right biomaterial and fabrication technique for the development of these models plays an important role in their functionality. In this sense, elastin-like recombinamers (ELRs) have emerged as an important tool for the fabrication of models overcoming the challenges encountered in natural and synthetic materials due to their intrinsic properties, such as phase transition behavior, tunable biological properties, viscoelasticity, and easy processability. In this review article, we will delve into the use of ELRs for molecular models of intrinsically disordered proteins (IDPs), as well as for the development of 3D models for regenerative medicine. The easy processability of the ELRs and their rational design has allowed their use for the development of spheroids and organoids, or bioinks for 3D bioprinting. Thus, incorporating ELRs into the toolkit of biomaterials used for the fabrication of models, represents a transformative step forward in improving the accuracy, efficiency, and functionality of these models, and opening up a wide range of possibilities in combination with advanced biofabrication techniques that remains to be explored.
开发能够准确模拟生物结构或过程微环境的模型,对于深入了解特定生物功能具有巨大潜力。在组织工程和再生医学领域,能够捕捉活组织精确结构、地形和功能复杂性的模型,被证明是理解疾病机制、评估药物反应以及作为动物试验替代或补充的有价值工具。选择合适的生物材料和制造技术来开发这些模型,对其功能起着重要作用。从这个意义上说,弹性蛋白样重组蛋白(ELRs)已成为制造模型的重要工具,因其固有特性,如相变行为、可调节的生物学特性、粘弹性和易于加工性,克服了天然和合成材料中遇到的挑战。在这篇综述文章中,我们将深入探讨ELRs在内在无序蛋白(IDPs)分子模型中的应用,以及在再生医学3D模型开发中的应用。ELRs的易于加工性及其合理设计使其可用于开发球体和类器官,或用于3D生物打印的生物墨水。因此,将ELRs纳入用于制造模型的生物材料工具包,代表了在提高这些模型的准确性、效率和功能方面向前迈出的变革性一步,并与先进的生物制造技术相结合开辟了广泛的可能性,有待探索。