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The role of epigenetic regulation in immunity is emerging, especially for RNA N6-methyladenosine (m6A) modification. However, little is known about the role of m6A in the regulation of the immune microenvironment of periodontitis. Thus, we aim to investigate the impact of m6A modification in periodontitis immune microenvironment. The RNA modification patterns mediated by 23 m6A-regulators were systematically evaluated in 310 periodontitis samples. The impact of m6A modification on immune microenvironment characteristics was explored, including infiltrating immunocytes, immune reaction gene-sets and HLAs (human leukocyte antigen) gene. m6A phenotype-related immune genes were also identified. 17 m6A regulators were dysregulated and a 15-m6A regulator signature can well distinguish periodontitis and control samples. ALKBH5 and FMR1 are closely related to infiltrating monocyte abundance. ELAVL1 and CBLL1 are significant regulators in immune reaction of TNF_Family_Members_Receptors and Cytokine. The expression of HLA-B and HLA-DOA is affected by ALKBH5 and LRPPRC. 3 distinct RNA modification patterns mediated by 23 m6A regulators were identified. They differ from immunocyte abundance, immune reaction and HLA gene. 1631 m6A phenotype-related genes and 70 m6A-mediated immune genes were identified, and the biological functions of these were explored. Our finding demonstrated the m6A modification plays a crucial role in the diversity and complexity of the immune microenvironment of periodontitis.  相似文献   

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Accumulating evidence has revealed that m6A modification, the predominant RNA modification in eukaryotes, adds a novel layer of regulation to the gene expression. Dynamic and reversible m6A modification implements sophisticated and crucial functions in RNA metabolism, including generation, splicing, stability, and translation in messenger RNAs (mRNAs) and non-coding RNAs (ncRNAs). Furthermore, m6A modification plays a determining role in producing various m6A-labeling RNA outcomes, thereby affecting several functional processes, including tumorigenesis and progression. Herein, we highlighted current advances in m6A modification and the regulatory mechanisms underlying mRNAs and ncRNAs in distinct cancer stages. Meanwhile, we also focused on the therapeutic significance of m6A regulators in clinical cancer treatment.  相似文献   

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N6-methyladenosine (m6A) is one of the most widespread and highly conserved chemical modifications in cellular RNAs of eukaryotic genomes. Owing to the development of high-throughput m6A sequencing, the functions and mechanisms of m6A modification in development and diseases have been revealed. Recent studies have shown that RNA m6A methylation plays a critical role in skeletal muscle development, which regulates myoblast proliferation and differentiation, and muscle regeneration. Exploration of the functions of m6A modification and its regulators provides a deeper understanding of the regulatory mechanisms underlying skeletal muscle development. In the present review, we aim to summarize recent breakthroughs concerning the global landscape of m6A modification in mammals and examine the biological functions and mechanisms of enzymes regulating m6A RNA methylation. We describe the interplay between m6A and other epigenetic modifications and highlight the regulatory roles of m6A in development, especially that of skeletal muscle. m6A and its regulators are expected to be targets for the treatment of human muscle-related diseases and novel epigenetic markers for animal breeding in meat production.  相似文献   

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N6-methyladenosine (m6A), the most prevalent and reversible modification of mRNA in mammalian cells, has recently been extensively studied in epigenetic regulation. YTH family proteins, whose YTH domain can recognize and bind m6A-containing RNA, are the main “readers” of m6A modification. YTH family proteins perform different functions to determine the metabolic fate of m6A-modified RNA. The crystal structure of the YTH domain has been completely resolved, highlighting the important roles of several conserved residues of the YTH domain in the specific recognition of m6A-modified RNAs. Upstream and downstream targets have been successively revealed in different cancer types and the role of YTH family proteins has been emphasized in m6A research. This review describes the regulation of RNAs by YTH family proteins, the structural features of the YTH domain, and the connections of YTH family proteins with human cancers.Subject terms: Cancer, Epigenetics  相似文献   

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环状RNA(circular RNA,circRNA)是一种具有新型环状结构的RNA分子,广泛存在于多种生物体中,具有结构稳定、进化保守、高度丰富和组织特异性等特征。同时,它可通过充当微小RNA(microRNA,miRNA)分子海绵、调控基因转录、结合蛋白质和参与蛋白质翻译等方式发挥生物学功能。且随着高通量测序技术和生物信息学的迅速发展,越来越多的circRNA被发现与肿瘤的发生有关。N6-甲基腺嘌呤(N6-methyladenosine,m6A)修饰是真核生物最常见的一种RNA修饰,它是由m6A甲基转移酶、去甲基化酶和m6A识别蛋白质共同参与的动态可逆的调节过程,广泛参与RNA的核输出、剪接、稳定性、翻译和降解等过程的调控。m6A修饰在多种人类疾病中发挥关键作用,例如癌症和心血管疾病等。近年来,在一些circRNA中也发现了m6A修饰,并报道了其在宫颈癌、结直肠癌、肝细胞癌、非小细胞肺癌和胃低分化腺癌等多种恶性肿瘤发生发展中的作用。本文总结了RNA m6A修饰机制、m6A修饰对circRNA的调控作用,以及circRNA的m6A修饰在肿瘤中的作用,也讨论了m6A修饰的circRNA的潜在临床应用价值,以期为肿瘤的早期诊断、临床治疗和预后判断提供新的思路与途径。  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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Cancer stemness, mainly consisting of chemo-resistance, radio-resistance, tumorigenesis, metastasis, tumor self-renewal, cancer metabolism reprogramming, and tumor immuno-microenvironment remodeling, play crucial roles in the cancer progression process and has become the hotspot of cancer research field in recent years. Nowadays, the exact molecular mechanisms of cancer stemness have not been fully understood. Extensive studies have recently implicated that non-coding RNA (ncRNA) plays vital roles in modulating cancer stemness. Notably, N6-methyladenosine (m6A) modification is of crucial importance for RNAs to exert their biological functions, including RNA splicing, stability, translation, degradation, and export. Emerging evidence has revealed that m6A modification can govern the expressions and functions of ncRNAs, consequently controlling cancer stemness properties. However, the interaction mechanisms between ncRNAs and m6A modification in cancer stemness modulation are rarely investigated. In this review, we elucidate the recent findings on the relationships of m6A modification, ncRNAs, and cancer stemness. We also focus on some key signaling pathways such as Wnt/β-catenin signaling, MAPK signaling, Hippo signaling, and JAK/STAT3 signaling to illustrate the underlying interplay mechanisms between m6A modification and ncRNAs in cancer stemness. In particular, we briefly highlight the clinical potential of ncRNAs and m6A modifiers as promising biomarkers and therapeutic targets for indicating cancer stemness properties and improving the diagnostic precision for a wide variety of cancers.  相似文献   

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Epigenetics has long been a hot topic in the field of scientific research. The scope of epigenetics usually includes chromatin remodelling, DNA methylation, histone modifications, non‐coding RNAs and RNA modifications. In recent years, RNA modifications have emerged as important regulators in a variety of physiological processes and in disease progression, especially in human cancers. Among the various RNA modifications, m6A is the most common. The function of m6A modifications is mainly regulated by 3 types of proteins: m6A methyltransferases (writers), m6A demethylases (erasers) and m6A‐binding proteins (readers). In this review, we focus on RNA m6A modification and its relationship with urological cancers, particularly focusing on its roles and potential clinical applications.  相似文献   

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Using a microarray that tiles all known yeast non-coding RNAs, we compared RNA from wild-type cells with RNA from mutants encoding known and putative RNA modifying enzymes. We show that at least five types of RNA modification (dihydrouridine, m1G, m2(2)G, m1A and m6(2)A) catalyzed by 10 different enzymes (Trm1p, Trm5, Trm10p, Dus1p-Dus4p, Dim1p, Gcd10p and Gcd14p) can be detected by virtue of differential hybridization to oligonucleotides on the array that are complementary to the modified sites. Using this approach, we identified a previously undetected m1A modification in GlnCTG tRNA, the formation of which is catalyzed by the Gcd10/Gcd14 complex. complex.  相似文献   

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Micro RNAs(mi RNAs) are vital regulators that repress gene expression in the cytoplasm in two main ways: m RNA degradation and translational inhibition. Several animal studies have shown that mi RNAs also target promoters, thereby activating expression.Whether this mi RNA action also occurs in plants is unknown. In this study, we demonstrated that several mi RNAs regulate target promoters in Arabidopsis thaliana. For example, mi R5658 was predominantly present in the nucleus and activated the expression of AT3 G25290 directly by binding to its promoter. Our observations suggest that this mode of action may be a general feature of plant mi RNAs, and thus provide insight into the vital roles of plant mi RNAs in the nucleus.  相似文献   

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李语丽于军  宋述慧 《遗传》2013,35(12):1340-1351
RNA酶促共价修饰研究, 尤其是m6A(6-甲基腺嘌呤), 是RNA生物学研究的一个新兴领域。m6A是真核生物mRNA内部序列中最常见的一种转录后修饰形式, 由包含3个独立组分的复合物mRNA: m6A甲基转移酶催化生成。最新研究发现肥胖相关蛋白FTO可以脱掉m6A上的甲基, 表明该甲基化过程是可逆的。抑制或敲除m6A甲基转移酶会引起重要的表型变化, 但是由于过去的检测方法受限, m6A确切的作用机制目前为止还不甚清楚。二代测序技术结合免疫沉淀方法为大规模检测m6A修饰并研究其作用机制提供了可能。文章主要综述了m6A的发现史、生成机制、组织和基因组分布、检测方法、生物学功能等及其最新研究进展, 并通过比较3种IP-seq技术和数据分析的异同及优缺点, 对m6A这种RNA表观修饰研究中尚未解决的问题进行了讨论。  相似文献   

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蓬勃发展的表观转录组学   总被引:1,自引:0,他引:1  
迄今为止,研究者们在RNA上已经发现了百余种不同种类的化学修饰,这些修饰大都分布在丰度较高的非编码RNA中,并对非编码RNA功能的维持具有重要作用.近年来,得益于高分辨率质谱的应用以及全转录组测序技术的开发,越来越多的mRNA上的修饰被发现、精确定量和定位,包括N6-甲基腺嘌呤(m6A)、N6,2-O-二甲基腺嘌呤(m...  相似文献   

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RNA methylation modifications have been found for decades of years, which occur at different RNA types of numerous species, and their distribution is species-specific. However, people rarely know their biological functions. There are several identified methylation modifications in eukaryotic messenger RNA (mRNA), such as NT-methylguanosine (mVG) at the cap, Nr-methyl-2'-O-methyladenosine (m6Am), 2'-O-methylation (Nm) within the cap and the internal positions, and internal N6-methyladenosine (m6A) and 5-methylcytosine (mSC). Among them, mTG cap was studied more clearly and found to have vital roles in several important mRNA processes like mRNA translation, stability and nuclear export, m6A as the most abundant modification in mRNA was found in the 1970s and has been proposed to function in mRNA splicing, translation, stability, transport and so on. mrA has been discovered as the first RNA reversible modification which is demethylated directly by human fat mass and obesity associated protein (FRO) and its homolog protein, alkylation repair ho- molog 5 (ALKBH5). b-TO has a special demethylation mechanism that demethylases m6A to A through two over-oxidative intermediate states: N6-hydroxymethyladenosine (hm6A) and Nr-formyladenosine (frA). The two newly discovered m6A demethylases, bTO and ALKBH5, significantly control energy homeostasis and spermatogenesis, respectively, indicating that the dynamic and reversible mrA, analogous to DNA and histone modifications, plays broad roles in biological kingdoms and brings us an emerging field "RNA Epige- netics". 5-methylcytosine (5mC) as an epigenetic mark in DNA has been studied widely, but mSC in mRNA is seldom explored. The bisulfide sequencing showed mSC is another abundant modification in mRNA, suggesting that it might be another RNA epigenetic mark. This review focuses on the main methylation modifications in mRNA to describe their formation, distribution, function and demethylation from the current knowledge and to provide future 19erspectives on functional studies.  相似文献   

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The human pseudouridine synthase PUS7 is a versatile RNA modification enzyme targeting many RNAs thereby playing a critical role in development and brain function. Whereas all target RNAs of PUS7 share a consensus sequence, additional recognition elements are likely required, and the structural basis for RNA binding by PUS7 is unknown. Here, we characterize the structure–function relationship of human PUS7 reporting its X-ray crystal structure at 2.26 Å resolution. Compared to its bacterial homolog, human PUS7 possesses two additional subdomains, and structural modeling studies suggest that these subdomains contribute to tRNA recognition through increased interactions along the tRNA substrate. Consistent with our modeling, we find that all structural elements of tRNA are required for productive interaction with PUS7 as the consensus sequence of target RNA alone is not sufficient for pseudouridylation by human PUS7. Moreover, PUS7 binds several, non-modifiable RNAs with medium affinity which likely enables PUS7 to screen for productive RNA substrates. Following tRNA modification, the product tRNA has a significantly lower affinity for PUS7 facilitating its dissociation. Taken together our studies suggest a combination of structure-specific and sequence-specific RNA recognition by PUS7 and provide mechanistic insight into its function.  相似文献   

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