bioRxiv Science⌕ Search

Biology subjects

Martinez de Morentin, P. B.

Publications and source records attributed to Martinez de Morentin, P. B..

2 recordsLinked to original sources

Mesenchymal-specific Alms1 knockout in mice recapitulates key metabolic features of Alström Syndrome

BackgroundAlstrom Syndrome (AS), a multi-system disease caused by mutations in the ALMS1 gene, includes obesity with disproportionately severe insulin resistant diabetes, dyslipidemia, and hepatosteatosis. How loss of ALMS1 causes this phenotype is poorly understood, but prior studies have circumstancially implicated impaired adipose tissue expandability. We set out to test this by comparing the metabolic effects of selective Alms1 knockout in mesenchymal cells including preadipocytes to those of global Alms1 knockout. MethodsGlobal Alms1 knockout (KO) mice were generated by crossing floxed Alms1 and CAG-Cre mice. A Pdgfr-Cre driver was used to abrogate Alms1 function selectively in mesenchymal stem cells (MSCs) and their descendants, including preadipocytes. We combined metabolic phenotyping of global and Pdgfr+ Alms1-KO mice on a 45% fat diet with measurements of body composition and food intake, and histological analysis of metabolic tissues. ResultsGlobal Alms1 KO caused hyperphagia, obesity, insulin resistance, dyslipidaemia, and fatty liver. Pdgfr-cre driven KO of Alms1 (MSC KO) recapitulated insulin resistance, fatty liver, and dyslipidaemia in both sexes. Other phenotypes were sexually dimorphic: increased fat mass was only present in female Alms1 MSC KO mice. Hyperphagia was not evident in male Alms1 MSC KO mice, but was found in MSC KO females, despite no neuronal Pdgfr expression. ConclusionsMesenchymal deletion of Alms1 recapitulates the metabolic features of AS, including severe fatty liver. This confirms a key role for Alms1 in the adipose lineage, where its loss is sufficient to cause systemic metabolic effects and damage to remote organs. AS should be regarded as a forme fruste of lipodystrophy. Therapies should prioritise targeting positive energy balance.

physiology↗

A brainstem to hypothalamic arcuate nucleus GABAergic circuit drives feeding

The obesity epidemic is principally driven by the consumption of more calories than the body requires. It is therefore essential that the mechanisms underpinning feeding behavior are defined. The brainstem nucleus of the solitary tract (NTS) receives direct information from the digestive system and projects to second order regions in the brain. Though {gamma}-Aminobutyric acid is widely expressed in the NTS (GABANTS), its function has not been defined. Characterization of GABA cells using single nucleus RNA sequencing (Nuc-Seq) identified at least 19 clusters. Here we provide insight into the function of GABANTS cells, revealing that selective activation of GABANTS neurons significantly controls food intake and body weight. Optogenetic interrogation of GABANTS circuitry identified GABANTS[->]arcuate nucleus of the hypothalamus (ARC) projections as appetite suppressive without creating aversion. Electrophysiological analysis revealed GABANTS[->]ARC stimulation inhibits hunger promoting agouti-related protein/neuropeptide Y (AgRP/NPY) neurons via GABA release. Adopting an intersectional genetics strategy, we clarify that the GABANTS[->]ARC circuit induces satiety. These data identify GABANTS as a new modulator of feeding behavior, body weight and controller of orexigenic AgRP/NPY activity, thereby providing insight into the neural underpinnings of obesity. HighlightsO_LINucleus of the solitary tract (NTS) GABA neurons are responsive to nutritional status. C_LIO_LIChemogenetic GABANTS neuron activation reduces food intake and body weight. C_LIO_LIGABANTS projections to the hypothalamic arcuate nucleus (ARC) promote satiety. C_LIO_LIOptogenetic GABANTS[->]ARC stimulation inhibits orexigenic AgRP/NPY neurons. C_LI In BriefMartinez de Morentin et al. identify GABAergic neurons in the nucleus of the solitary tract as a new player in the circuit governing feeding behavior and body weight.

neuroscience↗