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mRNA上能发生100多种化学修饰,其中N~6-腺嘌呤(m~6A)是mRNA修饰中最广泛的表观修饰方式之一。在细胞分化、胚胎发育和应激等生物学过程中,特定的mRNA会发生包括N~1-腺嘌呤甲基化、N~5-胞嘧啶甲基化、假尿嘧啶以及N`6-腺嘌呤甲基化等修饰,它们共同形成了mRNA转录后调控的表观修饰转录组,实现对mRNA翻译成蛋白质过程的精确时空调控,特别是m~6A修饰能通过调控mRNA的代谢和翻译等进而调控细胞的一系列生物学过程。文中主要综述mRNA的表观修饰类型和特点,特别是m~6A修饰参与调控mRNA和细胞生物学功能的最新研究进展,并展望了将来m~6A表观修饰的研究重点和方向。  相似文献   

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Kinetic analysis of methyl group transfer from S-adenosyl-L-methionine (SAM) to the GATC recognition site catalyzed by the phage T4 DNA-[N6-adenine]-methyltransferase (MTase) [EC 2.1.1.72] showed that the reverse reaction is at least 500 times slower than the direct one. The overall pattern of product inhibition corresponds to an ordered steady-state mechanism following the sequence SAMDNAmetDNASAH (S-adenosyl-L-homocysteine). Pronounced inhibition was observed at high concentrations of the 20-meric substrate duplex, which may be attributed to formation of a dead-end complex MTase–SAH–DNA. In contrast, high SAM concentrations proportionally accelerated the reaction. Thus, the reaction may include a stage whereby the binding of SAM and the release of SAH are united into one concerted event. Computer fitting of alternative kinetic schemes to the aggregate of experimental data revealed that the most plausible mechanism involves isomerization of the enzyme.  相似文献   

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Abstract: The role of cap structures in the translation of brain mRNA was examined by measuring protein biosynthesis in vitro in wheat germ and reticulocyte systems programmed by mRNA that was either untreated or oxidized by periodate or from which 5'-terminal 7-methylguanosine (m7G) was removed by oxidation and β -elimination. In another series of reactions, amino acid incorporation into polypeptides was measured in the absence and in the presence of varying concentrations of the cap analogue 7-methylguanosine 5'-triphosphate (pppm7G). The results indicated that any of the above treatments interfered with brain mRNA translation, the degree of inhibition depending on the translation system used, the concentration of mRNA, and the source of initiation factors. Homologous brain initiation factors were superior to reticulocyte factors in providing a partial relief from inhibition of translation caused by these treatments. It was also found that synthesis of the brain-specific protein S-100 was inhibited by β -elimination of mRNA, by pppm7G, or by the presence of capped globin mRNA, indicating that the mRNA for this protein was probably capped.  相似文献   

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N6-methyladenosine (m6A), as the most abundant RNA epigenetic modifications, has been shown to play critical roles in various biological functions. Research about enzymes that can catalyze and remove m6A have revealed its comprehensive roles in messenger RNA (mRNA) metabolism and other physiological processes. The “readers” including YTH domain-containing proteins, hnRNPC, hnRNPG, hnRNPA2B1, IGF2BP1, IGF2BP2, and IGF2BP3, which can affect the fates of mRNA in an m6A-dependent manner. In this review, we focus on recent advances in the research of the m6A modifications, especially about the latest functions of its writers, erasers, readers in RNA metabolism, cancer, and lipid metabolism. In the end, we provide insights into the underlying molecular mechanisms of m6A modifications.  相似文献   

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N6‐methyladenosine (m6A) is a highly dynamic RNA modification that has recently emerged as a key regulator of gene expression. While many m6A modifications are installed by the METTL3–METTL14 complex, others appear to be introduced independently, implying that additional human m6A methyltransferases remain to be identified. Using crosslinking and analysis of cDNA (CRAC), we reveal that the putative human m6A “writer” protein METTL16 binds to the U6 snRNA and other ncRNAs as well as numerous lncRNAs and pre‐mRNAs. We demonstrate that METTL16 is responsible for N6‐methylation of A43 of the U6 snRNA and identify the early U6 biogenesis factors La, LARP7 and the methylphosphate capping enzyme MEPCE as METTL16 interaction partners. Interestingly, A43 lies within an essential ACAGAGA box of U6 that base pairs with 5′ splice sites of pre‐mRNAs during splicing, suggesting that METTL16‐mediated modification of this site plays an important role in splicing regulation. The identification of METTL16 as an active m6A methyltransferase in human cells expands our understanding of the mechanisms by which the m6A landscape is installed on cellular RNAs.  相似文献   

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mRNA结构及其稳定性的关系   总被引:3,自引:0,他引:3  
mRNA结构与mRNA稳定性关系密切,mRNA稳定性与基因表达调控之间也有着紧密的联系。现从mRNA结构中所含的5'端帽结构、3'端poly(A)尾、5'非翻译区、3'非翻译区、编码区、富AU元件等方面综述了mRNA结构与mRNA稳定性之间的关系,为深入了解基因表达调控的分子机制提供理论基础。  相似文献   

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N6-甲基腺嘌呤(N6-methyladenosine,m6A)是真核生物信使RNA(messenger RNA,mRNA)含量最多的化学修饰之一。m6A修饰主要由m6A甲基转移酶(methyltransferase)催化,m6A去甲基酶(demethylase)去除,并由m6A结合蛋白(binding protein)识别。它广泛参与调控mRNA剪接、加工、翻译和降解等生命周期的各个阶段,且与肥胖和肿瘤等多种疾病及异常的生理功能相关。近年的研究发现,肿瘤中m6A相关蛋白质(METTL3/14、WTAP、FTO、ALKBH5、YTHDFs)的异常表达,引发m6A甲基化的失调,调控致癌基因和抑癌基因的表达参与肿瘤的发生与发展,并与患者预后不良密切相关。随着RNA免疫沉淀测序技术与高通量测序技术和液相色谱等检测技术的快速发展,有关m6A在肿瘤发生发展中的作用机制研究的进展迅猛,靶向m6A也成为肿瘤临床治疗的新方向。本文重点对m6A RNA甲基化相关因子在癌症发生发展中的作用及机制进行综述,总结m6A RNA甲基化检测技术的最新进展,梳理现有文献报道的脱甲基酶抑制剂大黄酸、甲氯芬那酸2(meclofenamic acid2,MA2)和右旋羟戊二酸(R-2-hydroxyglutarate,R-2HG)等在肿瘤靶向治疗中的运用,为以m6A RNA甲基化为切入点的肿瘤防治研究提供思路与理论参考。  相似文献   

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帽结构是所有RNA 聚合酶Ⅱ转录产物的特征性结构,它在m RNA 的功能和代谢的很多方面起作用. 在这些过程中还离不开相关蛋白质对它的识别和粘附,作为它行使功能的媒介,这些蛋白质就称为帽结合蛋白(Cap-Binding Protein,CBP). 该文主要讨论了帽结构与胞质中的CBP-eIF4E(eukaryotic initiation factor 4E,真核起始因子4E)的相互作用在m RNA 指导的翻译起始中的作用机制,以及帽结构与核内发现的另一种CBP复合体相互作用在m RNA 加工中的作用.  相似文献   

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m6A modification is the most prevalent RNA modification in eukaryotes. As the critical N6-methyladenosine (m6A) methyltransferase, the roles of methyltransferase like 3 (METTL3) in colorectal cancer (CRC) are controversial. Here, we confirmed that METTL3, a critical m6A methyltransferase, could facilitate CRC progression in vitro and in vivo. Further, we found METTL3 promoted CRC cell proliferation by methylating the m6A site in 3′-untranslated region (UTR) of CCNE1 mRNA to stabilize it. Moreover, we found butyrate, a classical intestinal microbial metabolite, could down-regulate the expression of METTL3 and related cyclin E1 to inhibit CRC development. METTL3 promotes CRC proliferation by stabilizing CCNE1 mRNA in an m6A-dependent manner, representing a promising therapeutic strategy for the treatment of CRC.  相似文献   

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N6-甲基腺嘌呤(N6-methyladenosine, m6A)是发生在腺嘌呤N6位的甲基化修饰,它是真核生物信使RNA(messenger RNA, mRNA)中最丰富的转录后修饰。m6A修饰是由甲基化酶、去甲基化酶以及结合蛋白质共同调控的动态可逆的过程,并且影响mRNA的生命周期各个阶段,包括稳定性、剪接、核输出、翻译和降解。近年来,有研究报道m6A连续动态调节在心血管疾病中发挥着重要的作用,包括动脉粥样硬化、心肌缺血再灌注损伤、心肌肥厚、心力衰竭、高血压以及腹主动脉瘤等。本文主要对m6A RNA甲基化修饰的作用机制及其在心血管疾病中的最新研究进展进行概述,此外,同时介绍了m6A 单核苷酸多态性(m6A-associated single-nucleotide polymorphisms, m6A-SNPs)在心血管疾病中的应用,以期为心血管疾病的预防及治疗提供新的思路和途径。  相似文献   

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N6-methyl-adenosine (m6A) methylation is one of the most common and abundant modifications of RNA molecules in eukaryotes. Although various biological roles of m6A methylation have been elucidated, its role in embryonic development is still unclear. In this review, we focused on the function and expression patterns of m6A-related genes in mammalian embryonic development and the role of m6A modification in the embryonic epigenetic reprogramming process. The modification of m6A is regulated by the combined activities of methyltransferases, demethylases, and m6A-binding proteins. m6A-related genes act synergistically to form a dynamic, reversible m6A pattern, which exists in several physiological processes in various stages of embryonic development. The lack of one of these enzymes affects embryonic m6A levels, leading to abnormal embryonic development and even death. Moreover, m6A is a positive regulator of reprogramming to pluripotency and can affect embryo reprogramming by affecting activation of the maternal-to-zygotic transition. In conclusion, m6A is involved in the regulation of gene expression during embryonic development and the metabolic processes of RNA and plays an important role in the epigenetic modification of embryos.  相似文献   

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