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The Progress on Sequencing and Detection of Hydroxymethylated DNA

Chao Wang

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Abstract

The recently re-discovered 5-hydroxymethylcytosine (5hmC) is established as the sixth base and found in various mammalian tissues. Although the content of 5hmC is much lower than that of the best known epigenetic mark 5-methylcytosine (5mC), 5hmC plays key roles in nuclear reprogramming, regulates the gene activity, and initiates the DNA demethylation in mammals. The formation of 5hmC results from the oxidation of 5mC in genomic DNA, which is mediated by Tet (ten eleven translocation) family dioxygenases. The Tet-mediated 5mC oxidation has just been identified. The 5hmC formation can cause DNA replication-dependent and passive DNA demethylation, meanwhile, it can also induce active DNA demethylation by further oxidation forming 5-formylcytosine (5fC) and 5-carboxylcytosine (5caC), which can be removed by base excision repair. Essentially, the discovery of 5fC and 5caC indicates the occurrence of active DNA demethylation mechanisms. The 5fC and 5caC have been detected in genomic DNA of mouse embryonic stem cells, but 5hmC has been found in various tissues. The 5hmC abundance in genomic DNA of certain tumors is found to be associated with the tumor process. However, the genome-wide distribution and sequence selectivity of 5hmC are not known yet. 5hmC cannot be dis- criminated from 5mC by the well-known bisulfite sequencing. Therefore, it is essential to develop new methods and tech- nologies for detecting and sequencing 5hmC. To this purpose, the two or more of the technologies for modification of 5hmC by glucosylation or chemical labeling, restriction enzymatic digestion, affinity capture, liquid chromatography and mass spectrometry, and bisulfite sequencing are combined. The further combination with next-generation high-throughput DNA sequencing technologies may provide genome-wide information. The single molecule real time DNA sequencing is also of choice to detect 5hmC at the gene level or the genome level. Recently, oxidative bisulfite sequencing was for the first time developed for quantitative mapping of 5hmC in genomic DNA at single base resolution. The genome-wide 5hmC sequencing at single base resolution is also reported. Here we briefly review and discuss the detection and sequencing technologies for 5hmC analysis. Keywords 5-hydroxymethylcytosine; 5-methylcytosine; DNA sequencing

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What this paper is about

The recently re-discovered 5-hydroxymethylcytosine (5hmC) is established as the sixth base and found in various mammalian tissues. Although the content of 5hmC is much lower than that of the best known epigenetic mark 5-methylcytosine (5mC), 5hmC plays key roles in nuclear reprogramming, regulates the gene activity, and initiates the DNA demethylation in mammals. The formation of 5hmC results from the oxidation of 5mC in genomic DNA, which is mediated by Tet (ten eleven translocation) family dioxygenases. The Tet-mediated 5mC oxidation has just been identified. The 5hmC formation can cause DNA replication-dependent and passive DNA demethylation, meanwhile, it can also induce active DNA demethylation by further oxidation forming 5-formylcytosine (5fC) and 5-carboxylcytosine (5caC), which can be removed by base excision repair. Essentially, the discovery of 5fC and 5caC indicates the occurrence of active DNA demethylation mechanisms. The 5fC and 5caC have been detected in genomic DNA of mouse embryonic stem cells, but 5hmC has been found in various tissues. The 5hmC abundance in genomic DNA of certain tumors is found to be associated with the tumor process. However, the genome-wide distribution and sequence selectivity of 5hmC are not known yet. 5hmC cannot be dis- criminated from 5mC by the well-known bisulfite sequencing. Therefore, it is essential to develop new methods and tech- nologies for detecting and sequencing 5hmC. To this purpose, the two or more of the technologies for modification of 5hmC by glucosylation or chemical labeling, restriction enzymatic digestion, affinity capture, liquid chromatography and mass spectrometry, and bisulfite sequencing are combined. The further combination with next-generation high-throughput DNA sequencing technologies may provide genome-wide information. The single molecule real time DNA sequencing is also of choice to detect 5hmC at the gene level or the genome level. Recently, oxidative bisulfite sequencing was for the first time developed for quantitative mapping of 5hmC in genomic DNA at single base resolution. The genome-wide 5hmC sequencing at single base resolution is also reported. Here we briefly review and discuss the detection and sequencing technologies for 5hmC analysis. Keywords 5-hydroxymethylcytosine; 5-methylcytosine; DNA sequencing

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Available abstract

The recently re-discovered 5-hydroxymethylcytosine (5hmC) is established as the sixth base and found in various mammalian tissues. Although the content of 5hmC is much lower than that of the best known epigenetic mark 5-methylcytosine (5mC), 5hmC plays key roles in nuclear reprogramming, regulates the gene activity, and initiates the DNA demethylation in mammals. The formation of 5hmC results from the oxidation of 5mC in genomic DNA, which is mediated by Tet (ten eleven translocation) family dioxygenases. The Tet-mediated 5mC oxidation has just been identified. The 5hmC formation can cause DNA replication-dependent and passive DNA demethylation, meanwhile, it can also induce active DNA demethylation by further oxidation forming 5-formylcytosine (5fC) and 5-carboxylcytosine (5caC), which can be removed by base excision repair. Essentially, the discovery of 5fC and 5caC indicates the occurrence of active DNA demethylation mechanisms. The 5fC and 5caC have been detected in genomic DNA of mouse embryonic stem cells, but 5hmC has been found in various tissues. The 5hmC abundance in genomic DNA of certain tumors is found to be associated with the tumor process. However, the genome-wide distribution and sequence selectivity of 5hmC are not known yet. 5hmC cannot be dis- criminated from 5mC by the well-known bisulfite sequencing. Therefore, it is essential to develop new methods and tech- nologies for detecting and sequencing 5hmC. To this purpose, the two or more of the technologies for modification of 5hmC by glucosylation or chemical labeling, restriction enzymatic digestion, affinity capture, liquid chromatography and mass spectrometry, and bisulfite sequencing are combined. The further combination with next-generation high-throughput DNA sequencing technologies may provide genome-wide information. The single molecule real time DNA sequencing is also of choice to detect 5hmC at the gene level or the genome level. Recently, oxidative bisulfite sequencing was for the first time developed for quantitative mapping of 5hmC in genomic DNA at single base resolution. The genome-wide 5hmC sequencing at single base resolution is also reported. Here we briefly review and discuss the detection and sequencing technologies for 5hmC analysis. Keywords 5-hydroxymethylcytosine; 5-methylcytosine; DNA sequencing

Key concepts: 5-Hydroxymethylcytosine, DNA demethylation, 5-Methylcytosine, Reprogramming, DNA, genomic DNA, Sequencing by ligation, DNA methylation

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