Cornelissen N V, Mineikaitė R, Erguven M, Muthmann N, Peters A, Bartels A, Rentmeister A
University of Münster, Department of Chemistry, Institute of Biochemistry Corrensstr. 36 48149 Münster Germany
University of Münster, Cells in Motion Interfaculty Centre Waldeyerstr. 15 48149 Münster Germany.
Chem Sci. 2023 Sep 18;14(39):10962-10970. doi: 10.1039/d3sc03822j. eCollection 2023 Oct 11.
mRNAs are emerging modalities for vaccination and protein replacement therapy. Increasing the amount of protein produced by stabilizing the transcript or enhancing translation without eliciting a strong immune response are major steps towards overcoming the present limitations and improving their therapeutic potential. The 5' cap is a hallmark of mRNAs and non-natural modifications can alter the properties of the entire transcript selectively. Here, we developed a versatile enzymatic cascade for regioselective benzylation of various biomolecules and applied it for post-synthetic modification of mRNA at the 5' cap to demonstrate its potential. Starting from six synthetic methionine analogues bearing (hetero-)benzyl groups, -adenosyl-l-methionine analogues are formed and utilized for N7G-cap modification of mRNAs. This post-synthetic enzymatic modification exclusively modifies mRNAs at the terminal N7G, producing mRNAs with functional 5' caps. It avoids the wrong orientation of the 5' cap-a problem in common co-transcriptional capping. In the case of the 4-chlorobenzyl group, protein production was increased to 139% during translation and to 128-150% in four different cell lines. This 5' cap modification did not activate cytosolic pathogen recognition receptors TLR3, TLR7 or TLR8 significantly more than control mRNAs, underlining its potential to contribute to the development of future mRNA therapeutics.
信使核糖核酸(mRNAs)正成为疫苗接种和蛋白质替代疗法的新兴方式。通过稳定转录本或增强翻译来增加蛋白质产量,同时不引发强烈免疫反应,是克服当前局限性并提高其治疗潜力的主要步骤。5' 帽是信使核糖核酸的一个标志,非天然修饰可以选择性地改变整个转录本的性质。在此,我们开发了一种用于各种生物分子区域选择性苄基化的通用酶促级联反应,并将其应用于信使核糖核酸5' 帽的合成后修饰以展示其潜力。从六种带有(杂)苄基的合成甲硫氨酸类似物开始,形成 -腺苷-L-甲硫氨酸类似物并用于信使核糖核酸的N7G帽修饰。这种合成后酶促修饰仅在末端N7G处修饰信使核糖核酸,产生具有功能性5' 帽的信使核糖核酸。它避免了5' 帽的错误定向——这是共转录加帽中常见的问题。在4-氯苄基的情况下,蛋白质产量在翻译过程中提高到139%,在四种不同细胞系中提高到128 - 150%。这种5' 帽修饰对胞质病原体识别受体TLR3、TLR7或TLR8的激活作用并不比对照信使核糖核酸显著更强,这突出了其对未来信使核糖核酸疗法发展的潜在贡献。