Filonov V L, Khomutov M A, Sergeev A V, Khandazhinskaya A L, Kochetkov S N, Gromova E S, Khomutov A R
Engelhardt Institute of Molecular Biology, Russian Academy of Sciences, Moscow, 119991 Russia.
Chemical Faculty, Moscow State University, Moscow, 119991 Russia.
Mol Biol (Mosk). 2023 Jul-Aug;57(4):717-725.
Enzymatic methyltransferase reactions are of crucial importance for cell metabolism. S-Adenosyl-L-methionine (AdoMet) is a main donor of the methyl group. DNA, RNA, proteins, and low-molecular-weight compounds are substrates of methyltransferases. In mammals, DNA methyltransferase Dnmt3a de novo methylates the C5 position of cytosine residues in CpG sequences in DNA. The methylation pattern is one of the factors that determine the epigenetic regulation of gene expression. Here, interactions with the catalytic domain of Dnmt3a was for the first time studied for phosphonous and phosphonic analogs of AdoMet and S-adenosyl-L-homocysteine (AdoHcy), in which the carboxyl group was substituted for respective phosphorus-containing group. These AdoMet analogs were shown to be substrates of Dnmt3a, and the methylation efficiency was only halved as compared with that of natural AdoMet. Both phosphorus-containing analogs of AdoHcy, which is a natural methyltransferase inhibitor, showed similar inhibitory activities toward Dnmt3a and were approximately four times less active than AdoHcy. The finding that the phosphonous and phosphonic analogs are similar in activity was quite unexpected because the geometry and charge of their phosphorus-containing groups differ substantially. The phosphorus-containing analogs of AdoMet and AdoHcy are discussed as promising tools for investigation of methyltransferases.
酶促甲基转移酶反应对细胞代谢至关重要。S-腺苷-L-甲硫氨酸(AdoMet)是甲基的主要供体。DNA、RNA、蛋白质和低分子量化合物是甲基转移酶的底物。在哺乳动物中,DNA甲基转移酶Dnmt3a可对DNA中CpG序列中胞嘧啶残基的C5位置进行从头甲基化。甲基化模式是决定基因表达表观遗传调控的因素之一。在此,首次研究了AdoMet和S-腺苷-L-高半胱氨酸(AdoHcy)的亚膦酸和膦酸类似物与Dnmt3a催化结构域的相互作用,其中羧基被相应的含磷基团取代。这些AdoMet类似物被证明是Dnmt3a的底物,与天然AdoMet相比,甲基化效率仅减半。作为天然甲基转移酶抑制剂的AdoHcy的两种含磷类似物对Dnmt3a表现出相似的抑制活性,其活性比AdoHcy低约四倍。亚膦酸和膦酸类似物在活性上相似这一发现相当出乎意料,因为它们含磷基团的几何形状和电荷有很大差异。AdoMet和AdoHcy的含磷类似物被认为是研究甲基转移酶的有前途的工具。