1.A loop matters for FTO substrate selection.
Zhifu HAN ; Ning HUANG ; Tianhui NIU ; Jijie CHAI
Protein & Cell 2010;1(7):616-620
Recent studies have unequivocally established the link between FTO and obesity. FTO was biochemically shown to belong to the AlkB-like family DNA/RNA demethylase. However, FTO differs from other AlkB members in that it has unique substrate specificity and contains an extended C-terminus with unknown functions. Insight into the substrate selection mechanism and a functional clue to the C-terminus of FTO were gained from recent structural and biochemical studies. These data would be valuable to design FTO-specific inhibitors that can be potentially translated into therapeutic agents for treatment of obesity or obesity-related diseases.
AlkB Homolog 1, Histone H2a Dioxygenase
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Alpha-Ketoglutarate-Dependent Dioxygenase FTO
;
Amino Acid Motifs
;
Animals
;
Catalytic Domain
;
DNA
;
metabolism
;
DNA Repair Enzymes
;
metabolism
;
Humans
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Methylation
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Obesity
;
genetics
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Proteins
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chemical synthesis
;
classification
;
genetics
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RNA
;
metabolism
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Substrate Specificity
2.The enhanced genomic 6 mA metabolism contributes to the proliferation and migration of TSCC cells.
Lei XI ; Ying YANG ; Ying XU ; Fangming ZHANG ; Jinghui LI ; Xiyang LIU ; Zhenxi ZHANG ; Quan DU
International Journal of Oral Science 2022;14(1):11-11
In contrast to the well-established genomic 5-methylcytosine (5mC), the existence of N6-methyladenine (6 mA) in eukaryotic genomes was discovered only recently. Initial studies found that it was actively regulated in cancer cells, suggesting its involvement in the process of carcinogenesis. However, the contribution of 6 mA in tongue squamous cell carcinoma (TSCC) still remains uncharacterized. In this study, a pan-cancer type analysis was first performed, which revealed enhanced 6 mA metabolism in diverse cancer types. The study was then focused on the regulation of 6 mA metabolism, as well as its effects on TSCC cells. To these aspects, genome 6 mA level was found greatly increased in TSCC tissues and cultured cells. By knocking down 6 mA methylases N6AMT1 and METTL4, the level of genomic 6 mA was decreased in TSCC cells. This led to suppressed colony formation and cell migration. By contrast, knockdown of 6 mA demethylase ALKBH1 resulted in an increased 6 mA level, enhanced colony formation, and cell migration. Further study suggested that regulation of the NF-κB pathway might contribute to the enhanced migration of TSCC cells. Therefore, in the case of TSCC, we have shown that genomic 6 mA modification is involved in the proliferation and migration of cancer cells.
AlkB Homolog 1, Histone H2a Dioxygenase/metabolism*
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Carcinoma, Squamous Cell/pathology*
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Cell Line, Tumor
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Cell Movement/genetics*
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Cell Proliferation
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Gene Expression Regulation, Neoplastic
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Humans
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Site-Specific DNA-Methyltransferase (Adenine-Specific)/metabolism*
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Tongue Neoplasms/metabolism*