Polash Shakil Ahmed, Poddar Arpita, Pyreddy Suneela, Carraro Francesco, D'Angelo Anita M, Bryant Gary, Falcaro Paolo, Shukla Ravi
Ian Potter NanoBiosensing Facility, NanoBiotechnology Research Laboratory, School of Science, RMIT University, Melbourne, Victoria 3000, Australia.
Centre for Advance Materials & Industrial Chemistry, RMIT University, Melbourne, Victoria 3000, Australia.
ACS Appl Mater Interfaces. 2025 Jan 15;17(2):3002-3012. doi: 10.1021/acsami.4c17664. Epub 2025 Jan 6.
Metal-organic frameworks (MOFs) provide diverse applications across a wide range of scientific disciplines, including drug/nucleic acid (NA) delivery. In the subclass of MOFs, zeolitic imidazolate framework-8 (ZIF-8) is well regarded due to its exceptional physicochemical properties. Biomolecules can be encapsulated and released under precise conditions within ZIF, making it an important material for materials science and biomedical applications. Different solvents and synthesis methods influence the ZIF's topologies and framework structures. The physicochemical properties of plasmid-encapsulated ZIF (plasmid@ZIF) can be controlled by tuning the precursors and biomolecular concentration. Using plasmid@ZIF, this study demonstrated that nucleic acids can be loaded precisely and released with a controlled bioactivity within cells. It was found that the ZIF phases substantially influenced both NA delivery into the cell and physicochemical properties. As a result of this study, we better understand MOFs' potential in NA delivery, and it emphasizes the importance of precisely controlling their physicochemical properties.
金属有机框架(MOF)在广泛的科学学科中有着多样的应用,包括药物/核酸(NA)递送。在MOF的子类中,沸石咪唑酯骨架-8(ZIF-8)因其优异的物理化学性质而备受关注。生物分子可以在ZIF内的精确条件下被封装和释放,这使其成为材料科学和生物医学应用中的一种重要材料。不同的溶剂和合成方法会影响ZIF的拓扑结构和框架结构。通过调整前体和生物分子浓度,可以控制质粒封装的ZIF(质粒@ZIF)的物理化学性质。利用质粒@ZIF,本研究表明核酸可以被精确加载并在细胞内以可控的生物活性释放。研究发现,ZIF相显著影响NA进入细胞以及物理化学性质。这项研究的结果使我们更好地理解了MOF在NA递送中的潜力,并强调了精确控制其物理化学性质的重要性。