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Determination of Oxidation Products of 5-Methylcytosine in Plants by Chemical Derivatization Coupled with Liquid Chromatography/Tandem Mass Spectrometry Analysis

机译:化学衍生化-液相色谱/串联质谱分析法测定植物中5-甲基胞嘧啶的氧化产物

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Cytosine methylation (5-methylcytosine, 5-mC) in DNA is an important epigenetic mark that has regulatory roles in various biological processes. In plants, active DNA demethylation can be achieved through direct cleavage by DNA glycosylases, followed by replacement of 5-mC with cytosine by base excision repair (BER) machinery. Recent studies in mammals have demonstrated 5-mC can be sequentially oxidized to 5-hydroxymethylcytosine (5-hmC), 5-formylcytosine (5-foC), and 5-carboxylcytosine (5-caC) by Ten-eleven translocation (TET) proteins. The consecutive oxidations of 5-mC constitute the active DNA demethylation pathway in mammals, which raised the possible presence of oxidation products of 5-mC (5-hmC, 5-foC, and 5-caC) in plant genomes. However, there is no definitive evidence supporting the presence of these modified bases in plant genomic DNA, especially for 5-foC and 5-caC. Here we developed a chemical derivatization strategy combined with liquid chromatography--electrospray ionization tandem mass spectrometry (LC/ESI-MS/MS) method to determine 5-formyl-2'-deoxycytidine (5-fodC) and 5-carboxyl-2'-deoxycytidine (5-cadC). Derivatization of 5-fodC and 5-cadC by Girard's reagents (GirD, GirT, and GirP) significantly increased the detection sensitivities of 5-fodC and 5-cadC by 52-260-fold. Using this method, we demonstrated the widespread existence of 5-fodC and 5-cadC in genomic DNA of various plant tissues, indicating that active DNA demethylation in plants may go through an alternative pathway similar to mammals besides the pathway of direct DNA glycosylases cleavage combined with BER. Moreover, we found that environmental stresses of drought and salinity can change the contents of 5-fodC and 5-cadC in plant genomes, suggesting the functional roles of 5-fodC and 5-cadC in response to environmental stresses.
机译:DNA中的胞嘧啶甲基化(5-methylcytosine,5-mC)是重要的表观遗传标记,在各种生物过程中均具有调节作用。在植物中,可以通过直接通过DNA糖基化酶切割,然后通过碱基切除修复(BER)机器将5 mC替换为胞嘧啶来实现活性DNA脱甲基。最近在哺乳动物中进行的研究表明,十-十一易位(TET)蛋白可以将5-mC依次氧化为5-羟甲基胞嘧啶(5-hmC),5-甲酰基胞嘧啶(5-foC)和5-羧胞嘧啶(5-caC) 。 5-mC的连续氧化构成哺乳动物中的活性DNA脱甲基途径,这增加了植物基因组中5-mC氧化产物(5-hmC,5-foC和5-caC)的可能存在。但是,没有确凿的证据支持这些修饰碱基在植物基因组DNA中的存在,尤其是对于5-foC和5-caC。在这里,我们开发了一种化学衍生化策略,并结合了液相色谱-电喷雾电离串联质谱(LC / ESI-MS / MS)方法来测定5-甲酰基-2'-脱氧胞苷(5-fodC)和5-羧基-2' -脱氧胞苷(5-cadC)。通过吉拉德试剂(GirD,GirT和GirP)衍生化5-fodC和5-cadC,可将5-fodC和5-cadC的检测灵敏度显着提高52-260倍。使用这种方法,我们证明了在各种植物组织的基因组DNA中普遍存在5-fodC和5-cadC,这表明除直接DNA糖基化酶裂解途径组合外,植物中的活性DNA去甲基化可能会通过类似于哺乳动物的替代途径。与BER。此外,我们发现干旱和盐分的环境胁迫可以改变植物基因组中5-fodC和5-cadC的含量,表明5-fodC和5-cadC在应对环境胁迫中的功能作用。

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