Cao Jiangfan, Zaremba Orysia T, Lei Qi, Ploetz Evelyn, Wuttke Stefan, Zhu Wei
MOE International Joint Research Laboratory on Synthetic Biology and Medicines, School of Biology and Biological Engineering, South China University of Technology, Guangzhou 510006, China.
Basque Center for Materials, UPV/EHU Science Park, Leioa 48940, Spain.
ACS Nano. 2021 Mar 23;15(3):3900-3926. doi: 10.1021/acsnano.0c10144. Epub 2021 Mar 3.
The synergistic union of nanomaterials with biomaterials has revolutionized synthetic chemistry, enabling the creation of nanomaterial-based biohybrids with distinct properties for biomedical applications. This class of materials has drawn significant scientific interest from the perspective of functional extension controllable coupling of synthetic and biomaterial components, resulting in enhancement of the chemical, physical, and biological properties of the obtained biohybrids. In this review, we highlight the forefront materials for the combination with biomacromolecules and living organisms and their advantageous properties as well as recent advances in the rational design and synthesis of artificial biohybrids. We further illustrate the incredible diversity of biomedical applications stemming from artificially bioaugmented characteristics of the nanomaterial-based biohybrids. Eventually, we aim to inspire scientists with the application horizons of the exciting field of synthetic augmented biohybrids.
纳米材料与生物材料的协同结合彻底改变了合成化学,使得能够制造出具有独特性质的基于纳米材料的生物杂交体,用于生物医学应用。从功能扩展、合成和生物材料组分的可控偶联角度来看,这类材料引起了科学界的极大兴趣,从而增强了所得生物杂交体的化学、物理和生物学性质。在本综述中,我们重点介绍了与生物大分子和活生物体结合的前沿材料及其优势特性,以及人工生物杂交体合理设计与合成方面的最新进展。我们还阐述了基于纳米材料的生物杂交体人工生物增强特性所带来的生物医学应用的惊人多样性。最后,我们旨在激发科学家们对合成增强生物杂交体这一令人兴奋领域的应用前景的兴趣。