School of Chemistry and Chemical Engineering, Chemistry and Biomedicine Innovation Center (ChemBIC), Nanjing University, Nanjing 210023, China.
Nanjing Vazyme Biotechnology Company, Nanjing 210034, China.
J Phys Chem B. 2024 Apr 18;128(15):3643-3651. doi: 10.1021/acs.jpcb.3c07600. Epub 2024 Apr 8.
Ionizable lipid-containing lipid nanoparticles (LNPs) are regarded as promising nonviral vectors for gene therapy delivery systems. Rationale design of the ionizable lipid structure based on initial screening of ionizable lipid molecule libraries combined with systematic comparison and analysis on the physical chemical parameters related to delivery efficiency greatly accelerated the discovery of novel LNP candidates for delivering various nucleic acid therapeutics like mRNAs (mRNAs). Based on the copper-catalyzed azide-alkyne click reaction, which is highly efficient and biocompatible, we were able to obtain the lipid molecule library containing a common triazole moiety between different lipid tails and various substituents as hydrophilic head groups. Herein, we systematically investigated the change of p values of different ionizable lipid molecules with different substituents as head groups in the click-based lipid library, mapping the p value change to different steps in the process of the LNP assembly and mRNA delivery. Systematic analyses on the data including the p value of the ionized lipids and the encapsulation and delivery efficiency of mRNA in LNPs with these ionized lipids provided the possibility of rational design on the head and tail structure for the triazole containing ionized lipids to realize highly efficient delivery of different mRNAs.
带正电荷的脂质纳米颗粒(LNPs)被认为是很有前途的非病毒基因治疗载体。基于对可离子化脂质分子文库的初步筛选,并结合与输送效率相关的物理化学参数的系统比较和分析,对可离子化脂质结构进行合理设计,大大加快了新型 LNP 候选物的发现,这些候选物可用于输送各种核酸治疗药物,如 mRNA(mRNA)。基于高效且生物相容的铜催化叠氮-炔点击反应,我们能够获得含有常见三唑基团的脂质分子文库,其不同的脂质尾部和各种取代基作为亲水头部基团。在此,我们系统地研究了点击型脂质库中不同带正电荷的脂质分子的 p 值随头部取代基的变化,将 p 值的变化映射到 LNP 组装和 mRNA 输送过程的不同步骤。对包括带正电荷的脂质的 p 值以及带正电荷的脂质的 LNPs 中 mRNA 的包封和输送效率在内的数据进行系统分析,为含有三唑的带正电荷的脂质的头和尾结构的合理设计提供了可能性,以实现不同 mRNA 的高效输送。