The biology of FTO: from nucleic acid demethylase to amino acid sensor

被引:39
|
作者
Gulati, Pawan [1 ,2 ]
Yeo, Giles S. H. [1 ,2 ]
机构
[1] Univ Cambridge, MRC Metab Dis Unit, Wellcome Trust MRC Inst Metab Sci, Addenbrookes Hosp,Metab Res Labs, Cambridge CB2 0QQ, England
[2] Addenbrookes Hosp, NIHR Cambridge Biomed Res Ctr, Cambridge, England
基金
英国医学研究理事会;
关键词
Demethylation; Food intake; Genetics; Growth; GWAS; mTOR; Nutrients; Obesity; Review; Translation; BODY-MASS INDEX; TRANSFER-RNA SYNTHETASES; EARLY-ONSET OBESITY; ENERGY-INTAKE; FOOD-INTAKE; GENETIC-VARIANTS; FAT MASS; WAIST CIRCUMFERENCE; FRAMESHIFT MUTATION; NEUROTROPHIC FACTOR;
D O I
10.1007/s00125-013-2999-5
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Genome-wide association studies have revealed that single-nucleotide polymorphisms in the first intron of the gene encoding fat mass and obesity-associated protein (FTO) are robustly associated with BMI and obesity. Subsequently, this association with body weight, which is replicable across multiple populations and different age groups, has been unequivocally linked to increased food intake. Although evidence from a number of animal models with perturbed FTO expression indicates a role for FTO in energy homeostasis, to date, no conclusive link has been made between the risk alleles and FTO expression or its physiological role. FTO is a nucleic acid demethylase, and a deficiency in FTO leads to a complex phenotype highlighted by postnatal growth retardation, pointing to some fundamental developmental role. Recent emerging data now points to a role for FTO in the sensing of nutrients and the regulation of translation and growth. In this review, we explore the in vivo and in vitro evidence detailing the complex biology of FTO and discuss how these might link to the regulation of body weight.
引用
收藏
页码:2113 / 2121
页数:9
相关论文
共 50 条
  • [21] Nucleic Acid Templated Reactions for Chemical Biology
    Di Pisa, Margherita
    Seitz, Oliver
    CHEMMEDCHEM, 2017, 12 (12) : 872 - 882
  • [22] PROGRESS IN NUCLEIC ACID RESEARCH AND MOLECULAR BIOLOGY
    DAGLEY, S
    CHEMISTRY IN BRITAIN, 1966, 2 (01) : 30 - &
  • [23] Nucleic acid crystallography: A view from the nucleic acid database
    Berman, HM
    Gelbin, A
    Westbrook, J
    PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1996, 66 (03): : 255 - +
  • [24] Amino acid sensor conserved from bacteria to humans
    Gumerov, Vadim M.
    Andrianova, Ekaterina P.
    Matilla, Miguel A.
    Page, Karen M.
    Monteagudo-Cascales, Elizabet
    Dolphin, Annette C.
    Krell, Tino
    Zhulin, Igor B.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2022, 119 (10)
  • [25] Excitatory amino acid receptors: From molecular biology to therapeutics
    Besnard, F
    Carter, C
    Avenet, P
    Leonardon, J
    Benavides, J
    Graham, D
    Depoortere, H
    Scatton, B
    Langer, SZ
    PRECLINICAL AND CLINICAL STRATEGIES FOR THE TREATMENT OF NEURODEGENERATIVE, CEREBROVASCULAR AND MENTAL DISORDERS, 1996, 11 : 76 - 88
  • [26] A NEW FACTOR INVOLVED IN AMINO ACID INCORPORATION AND NUCLEIC ACID SYNTHESIS
    GALE, EF
    RECUEIL DES TRAVAUX CHIMIQUES DES PAYS-BAS-JOURNAL OF THE ROYAL NETHERLANDS CHEMICAL SOCIETY, 1958, 77 (07): : 602 - 610
  • [27] Study on nucleic acid probe sensor.
    Chen, YH
    Song, JD
    Li, DW
    PROGRESS IN BIOCHEMISTRY AND BIOPHYSICS, 1996, 23 (06) : 527 - 531
  • [28] RAGE is a cell surface nucleic acid sensor
    Bertheloot, Damien
    Sirois, Cherilyn M.
    Miller, Allison L.
    Jin, Tengchuan
    Garbi, Natalio
    Xiao, T. Sam
    Latz, Eicke
    CYTOKINE, 2014, 70 (01) : 30 - 30
  • [29] An ultra-sensitive nucleic acid sensor?
    Meeghan Sinclair
    Nature Biotechnology, 2001, 19 (1) : 9 - 9
  • [30] Between objectivity and whim: Nucleic acid structural biology
    Williams, LD
    DNA BINDERS AND RELATED SUBJECTS, 2005, 253 : 77 - 88