Abstract
Several independent, genome-wide association studies have identified a strong correlation between body mass index and polymorphisms in the human FTO gene. Common variants in the first intron define a risk allele predisposing to obesity, with homozygotes for the risk allele weighing approximately 3 kilograms more than homozygotes for the low risk allele. Nevertheless, the functional role of FTO in energy homeostasis remains elusive. Here we show that the loss of Fto in mice leads to postnatal growth retardation and a significant reduction in adipose tissue and lean body mass. The leanness of Fto-deficient mice develops as a consequence of increased energy expenditure and systemic sympathetic activation, despite decreased spontaneous locomotor activity and relative hyperphagia. Taken together, these experiments provide, to our knowledge, the first direct demonstration that Fto is functionally involved in energy homeostasis by the control of energy expenditure.
MeSH Terms
Adipose Tissue/metabolism
Adiposity/genetics
Alpha-Ketoglutarate-Dependent Dioxygenase FTO
Animals
Animals, Newborn
Body Weight/genetics
Brain/metabolism
Eating/physiology
Embryo, Mammalian/anatomy & histology,embryology
Energy Metabolism/genetics,physiology
Female
Growth Disorders/genetics,physiopathology
Homozygote
Hyperphagia/genetics
Insulin/metabolism
Male
Mice
Mixed Function Oxygenases
Motor Activity/genetics,physiology
Obesity/genetics,prevention & control
Oxo-Acid-Lyases/deficiency,genetics,metabolism
Phenotype
Sympathetic Nervous System/physiology
Thinness/genetics
Chemicals
Insulin
Mixed Function Oxygenases
FTO protein, mouse
Alpha-Ketoglutarate-Dependent Dioxygenase FTO
Oxo-Acid-Lyases
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Fischer Julia
Institute for Animal Developmental and Molecular Biology, Heinrich Heine University, Universitätsstr. 1, D-40225 Düsseldorf, Germany.
Koch Linda
Emmerling Christian
Vierkotten Jeanette
Peters Thomas
Brüning Jens C
Rüther Ulrich
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