Centre for BioNano Interactions, School of Chemistry, University College Dublin, Belfield, Dublin 4, Ireland.
UCD Conway Institute of Biomolecular and Biomedical Research, School of Biomolecular and Biomedical Science, University College Dublin, Belfield, Dublin 4, Ireland.
Bioconjug Chem. 2022 Mar 16;33(3):429-443. doi: 10.1021/acs.bioconjchem.1c00546. Epub 2022 Feb 15.
The progress achieved over the last three decades in the field of bioconjugation has enabled the preparation of sophisticated nanomaterial-biomolecule conjugates, referred to herein as bionanoconstructs, for a multitude of applications including biosensing, diagnostics, and therapeutics. However, the development of bionanoconstructs for the active targeting of cells and cellular compartments, both and , is challenged by the lack of understanding of the mechanisms governing nanoscale recognition. In this review, we highlight fundamental obstacles in designing a successful bionanoconstruct, considering findings in the field of bionanointeractions. We argue that the biological recognition of bionanoconstructs is modulated not only by their molecular composition but also by the collective architecture presented upon their surface, and we discuss fundamental aspects of this surface architecture that are central to successful recognition, such as the mode of biomolecule conjugation and nanomaterial passivation. We also emphasize the need for thorough characterization of engineered bionanoconstructs and highlight the significance of population heterogeneity, which too presents a significant challenge in the interpretation of and results. Consideration of such issues together will better define the arena in which bioconjugation, in the future, will deliver functional and clinically relevant bionanoconstructs.
过去三十年来,在生物共轭领域取得的进展使得能够制备复杂的纳米材料-生物分子缀合物,在此称为生物纳米构建体,用于包括生物传感、诊断和治疗在内的多种应用。然而,由于缺乏对纳米尺度识别机制的理解,用于主动靶向细胞和细胞区室的生物纳米构建体的开发仍然具有挑战性。在这篇综述中,我们强调了在设计成功的生物纳米构建体时面临的基本障碍,同时考虑了生物纳米相互作用领域的发现。我们认为,生物纳米构建体的生物识别不仅受到其分子组成的调节,还受到其表面呈现的集体结构的调节,我们讨论了这种表面结构的基本方面,这些方面对于成功的识别至关重要,例如生物分子缀合的方式和纳米材料的钝化。我们还强调了对工程生物纳米构建体进行彻底表征的必要性,并强调了群体异质性的重要性,这在解释和结果中也是一个重大挑战。一起考虑这些问题将更好地定义生物共轭在未来将提供功能和临床相关的生物纳米构建体的领域。