Gupta Gajendra, Sun Yan, Das Abhishek, Stang Peter J, Lee Chang Yeon
Department of Energy and Chemical Engineering/Innovation Center for Chemical Engineering Incheon National University, 119 Academy-ro, Yeonsu-gu, Incheon 22012, Republic of Korea.
Department of Chemistry, University of Utah, Salt Lake City, Utah 84112, United States.
Coord Chem Rev. 2022 Feb 1;452. doi: 10.1016/j.ccr.2021.214308. Epub 2021 Nov 22.
Boron dipyrromethene, commonly known as BODIPY, based metal-organic macrocycles (MOCs) and metal-organic frameworks (MOFs) represent an interesting part of materials due to their versatile tunability of structure and functionality as well as significant physicochemical properties, thus broadening their applications in various scientific domains, especially in biomedical sciences. With increasing concern over the efficacy of cancer drugs versus quality of patient's life dilemma, scientists have been trying to fabricate novel comprehensive therapeutic strategies along with the discovery of novel safer drugs where research with BODIPY metal complexes has shown vital advancements. In this review, we have exclusively examined the articles involving studies related to light harvesting and photophysical properties of BODIPY based MOCs and MOFs, synthesized through self-assembly process, with a special focus on biomolecular interaction and its importance in anti-cancer drug research. In the end, we also emphasized the possible practical challenges involved during the synthetic process, based on our experience on dealing with BODIPY molecules and steps to overcome them along with their future potentials. This review will significantly help our fellow research groups, especially the budding researchers, to quickly and comprehensively get the near to wholesome picture of BODIPY based MOCs and MOFs and their present status in anti-cancer drug discovery.
硼二吡咯亚甲基(通常称为BODIPY)基金属有机大环化合物(MOCs)和金属有机框架(MOFs)是一类有趣的材料,因其结构和功能具有广泛的可调性以及显著的物理化学性质,从而拓宽了它们在各个科学领域的应用,尤其是在生物医学科学领域。随着对癌症药物疗效与患者生活质量困境的日益关注,科学家们一直在努力制定新的综合治疗策略,并发现新的更安全的药物,其中对BODIPY金属配合物的研究已显示出重要进展。在本综述中,我们专门研究了通过自组装过程合成的基于BODIPY的MOCs和MOFs的光捕获和光物理性质相关的研究文章,特别关注生物分子相互作用及其在抗癌药物研究中的重要性。最后,基于我们处理BODIPY分子的经验,我们还强调了合成过程中可能涉及的实际挑战、克服这些挑战的步骤及其未来潜力。本综述将极大地帮助我们的同行研究团队,特别是初出茅庐的研究人员,快速全面地了解基于BODIPY的MOCs和MOFs及其在抗癌药物发现中的现状。