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1.
BMC Biol ; 22(1): 221, 2024 Sep 30.
Article in English | MEDLINE | ID: mdl-39343875

ABSTRACT

BACKGROUND: The growth factor receptor bound protein 7 (Grb7) family of signalling adaptor proteins comprises Grb7, Grb10 and Grb14. Each can interact with the insulin receptor and other receptor tyrosine kinases, where Grb10 and Grb14 inhibit insulin receptor activity. In cell culture studies they mediate functions including cell survival, proliferation, and migration. Mouse knockout (KO) studies have revealed physiological roles for Grb10 and Grb14 in glucose-regulated energy homeostasis. Both Grb10 KO and Grb14 KO mice exhibit increased insulin signalling in peripheral tissues, with increased glucose and insulin sensitivity and a modestly increased ability to clear a glucose load. In addition, Grb10 strongly inhibits fetal growth such that at birth Grb10 KO mice are 30% larger by weight than wild type littermates. RESULTS: Here, we generate a Grb7 KO mouse model. We show that during fetal development the expression patterns of Grb7 and Grb14 each overlap with that of Grb10. Despite this, Grb7 and Grb14 did not have a major role in influencing fetal growth, either alone or in combination with Grb10. At birth, in most respects both Grb7 KO and Grb14 KO single mutants were indistinguishable from wild type, while Grb7:Grb10 double knockout (DKO) were near identical to Grb10 KO single mutants and Grb10:Grb14 DKO mutants were slightly smaller than Grb10 KO single mutants. In the developing kidney Grb7 had a subtle positive influence on growth. An initial characterisation of Grb7 KO adult mice revealed sexually dimorphic effects on energy homeostasis, with females having a significantly smaller renal white adipose tissue depot and an enhanced ability to clear glucose from the circulation, compared to wild type littermates. Males had elevated fasted glucose levels with a trend towards smaller white adipose depots, without improved glucose clearance. CONCLUSIONS: Grb7 and Grb14 do not have significant roles as inhibitors of fetal growth, unlike Grb10, and instead Grb7 may promote growth of the developing kidney. In adulthood, Grb7 contributes subtly to glucose mediated energy homeostasis, raising the possibility of redundancy between all three adaptors in physiological regulation of insulin signalling and glucose handling.


Subject(s)
Fetal Development , GRB10 Adaptor Protein , GRB7 Adaptor Protein , Glucose , Animals , Female , Male , Mice , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Fetal Development/genetics , Glucose/metabolism , GRB10 Adaptor Protein/genetics , GRB10 Adaptor Protein/metabolism , GRB7 Adaptor Protein/metabolism , GRB7 Adaptor Protein/genetics , Mice, Knockout , Signal Transduction
2.
BMC Biol ; 22(1): 127, 2024 May 30.
Article in English | MEDLINE | ID: mdl-38816743

ABSTRACT

BACKGROUND: Optimal size at birth dictates perinatal survival and long-term risk of developing common disorders such as obesity, type 2 diabetes and cardiovascular disease. The imprinted Grb10 gene encodes a signalling adaptor protein capable of inhibiting receptor tyrosine kinases, including the insulin receptor (Insr) and insulin-like growth factor type 1 receptor (Igf1r). Grb10 restricts fetal growth such that Grb10 knockout (KO) mice are at birth some 25-35% larger than wild type. Using a mouse genetic approach, we test the widely held assumption that Grb10 influences growth through interaction with Igf1r, which has a highly conserved growth promoting role. RESULTS: Should Grb10 interact with Igf1r to regulate growth Grb10:Igf1r double mutant mice should be indistinguishable from Igf1r KO single mutants, which are around half normal size at birth. Instead, Grb10:Igf1r double mutants were intermediate in size between Grb10 KO and Igf1r KO single mutants, indicating additive effects of the two signalling proteins having opposite actions in separate pathways. Some organs examined followed a similar pattern, though Grb10 KO neonates exhibited sparing of the brain and kidneys, whereas the influence of Igf1r extended to all organs. An interaction between Grb10 and Insr was similarly investigated. While there was no general evidence for a major interaction for fetal growth regulation, the liver was an exception. The liver in Grb10 KO mutants was disproportionately overgrown with evidence of excess lipid storage in hepatocytes, whereas Grb10:Insr double mutants were indistinguishable from Insr single mutants or wild types. CONCLUSIONS: Grb10 acts largely independently of Igf1r or Insr to control fetal growth and has a more variable influence on individual organs. Only the disproportionate overgrowth and excess lipid storage seen in the Grb10 KO neonatal liver can be explained through an interaction between Grb10 and the Insr. Our findings are important for understanding how positive and negative influences on fetal growth dictate size and tissue proportions at birth.


Subject(s)
Fetal Development , GRB10 Adaptor Protein , Mice, Knockout , Receptor, IGF Type 1 , Receptor, Insulin , Animals , GRB10 Adaptor Protein/genetics , GRB10 Adaptor Protein/metabolism , Receptor, IGF Type 1/genetics , Receptor, IGF Type 1/metabolism , Mice , Receptor, Insulin/genetics , Receptor, Insulin/metabolism , Fetal Development/genetics , Genomic Imprinting , Female , Male , Insulin-Like Peptides
3.
Nature ; 469(7331): 534-8, 2011 Jan 27.
Article in English | MEDLINE | ID: mdl-21270893

ABSTRACT

Imprinted genes, defined by their preferential expression of a single parental allele, represent a subset of the mammalian genome and often have key roles in embryonic development, but also postnatal functions including energy homeostasis and behaviour. When the two parental alleles are unequally represented within a social group (when there is sex bias in dispersal and/or variance in reproductive success), imprinted genes may evolve to modulate social behaviour, although so far no such instance is known. Predominantly expressed from the maternal allele during embryogenesis, Grb10 encodes an intracellular adaptor protein that can interact with several receptor tyrosine kinases and downstream signalling molecules. Here we demonstrate that within the brain Grb10 is expressed from the paternal allele from fetal life into adulthood and that ablation of this expression engenders increased social dominance specifically among other aspects of social behaviour, a finding supported by the observed increase in allogrooming by paternal Grb10-deficient animals. Grb10 is, therefore, the first example of an imprinted gene that regulates social behaviour. It is also currently alone in exhibiting imprinted expression from each of the parental alleles in a tissue-specific manner, as loss of the peripherally expressed maternal allele leads to significant fetal and placental overgrowth. Thus Grb10 is, so far, a unique imprinted gene, able to influence distinct physiological processes, fetal growth and adult behaviour, owing to actions of the two parental alleles in different tissues.


Subject(s)
Alleles , Behavior, Animal/physiology , GRB10 Adaptor Protein/genetics , GRB10 Adaptor Protein/metabolism , Genomic Imprinting/genetics , Animals , Central Nervous System/embryology , Female , Gene Expression Regulation, Developmental , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Mutation , Social Dominance
4.
Dev Biol ; 337(1): 1-8, 2010 Jan 01.
Article in English | MEDLINE | ID: mdl-19833122

ABSTRACT

The control of foetal growth is poorly understood and yet it is critically important that at birth the body has attained appropriate size and proportions. Growth and survival of the mammalian foetus is dependent upon a functional placenta throughout most of gestation. A few genes are known that influence both foetal and placental growth and might therefore coordinate growth of the conceptus, including the imprinted Igf2 and Grb10 genes. Grb10 encodes a signalling adapter protein, is expressed predominantly from the maternally-inherited allele and acts to restrict foetal and placental growth. Here, we show that following disruption of the maternal allele in mice, the labyrinthine volume was increased in a manner consistent with a cell-autonomous function of Grb10 and the enlarged placenta was more efficient in supporting foetal growth. Thus, Grb10 is the first example of a gene that acts to limit placental size and efficiency. In addition, we found that females inheriting a mutant Grb10 allele from their mother had larger litters and smaller offspring than those inheriting a mutant allele from their father. This grandparental effect suggests Grb10 can influence reproductive strategy through the allocation of maternal resources such that offspring number is offset against size.


Subject(s)
GRB10 Adaptor Protein/physiology , Placenta/physiology , Alleles , Animals , Endothelium/metabolism , Female , GRB10 Adaptor Protein/analysis , GRB10 Adaptor Protein/genetics , Genomic Imprinting , Immunohistochemistry , Mice , Mice, Inbred C57BL , Mice, Inbred CBA , Placenta/pathology , Pregnancy
5.
Mol Cell Biol ; 27(16): 5871-86, 2007 Aug.
Article in English | MEDLINE | ID: mdl-17562854

ABSTRACT

The Grb10 adapter protein is capable of interacting with a variety of receptor tyrosine kinases, including, notably, the insulin receptor. Biochemical and cell culture experiments have indicated that Grb10 might act as an inhibitor of insulin signaling. We have used mice with a disruption of the Grb10 gene (Grb10Delta2-4 mice) to assess whether Grb10 might influence insulin signaling and glucose homeostasis in vivo. Adult Grb10Delta2-4 mice were found to have improved whole-body glucose tolerance and insulin sensitivity, as well as increased muscle mass and reduced adiposity. Tissue-specific changes in insulin receptor tyrosine phosphorylation were consistent with a model in which Grb10, like the closely related Grb14 adapter protein, prevents specific protein tyrosine phosphatases from accessing phosphorylated tyrosines within the kinase activation loop. Furthermore, insulin-induced IRS-1 tyrosine phosphorylation was enhanced in Grb10Delta2-4 mutant animals, supporting a role for Grb10 in attenuation of signal transmission from the insulin receptor to IRS-1. We have previously shown that Grb10 strongly influences growth of the fetus and placenta. Thus, Grb10 forms a link between fetal growth and glucose-regulated metabolism in postnatal life and is a candidate for involvement in the process of fetal programming of adult metabolic health.


Subject(s)
Body Composition , GRB10 Adaptor Protein/genetics , Genomic Imprinting/genetics , Glucose/metabolism , Homeostasis , Insulin/metabolism , Mutation/genetics , Adipose Tissue, White/metabolism , Adiposity , Animals , Animals, Newborn , Body Weight , Enzyme Activation , Feeding Behavior , Glucose/analysis , Insulin/blood , Leptin/blood , Male , Mice , Muscle, Skeletal/metabolism , Phosphotyrosine/metabolism , Proto-Oncogene Proteins c-akt/metabolism , Receptor, IGF Type 1/metabolism , Receptor, Insulin/metabolism , Signal Transduction
6.
Proc Natl Acad Sci U S A ; 100(14): 8292-7, 2003 Jul 08.
Article in English | MEDLINE | ID: mdl-12829789

ABSTRACT

To investigate the function of the Grb10 adapter protein, we have generated mice in which the Grb10 gene was disrupted by a gene-trap insertion. Our experiments confirm that Grb10 is subject to genomic imprinting with the majority of Grb10 expression arising from the maternally inherited allele. Consistent with this, disruption of the maternal allele results in overgrowth of both the embryo and placenta such that mutant mice are at birth approximately 30% larger than normal. This observation establishes that Grb10 is a potent growth inhibitor. In humans, GRB10 is located at chromosome 7p11.2-p12 and has been associated with Silver-Russell syndrome, in which approximately 10% of those affected inherit both copies of chromosome 7 from their mother. Our results indicate that changes in GRB10 dosage could, in at least some cases, account for the severe growth retardation that is characteristic of Silver-Russell syndrome. Because Grb10 is a signaling protein capable of interacting with tyrosine kinase receptors, we tested genetically whether Grb10 might act downstream of insulin-like growth factor 2, a paternally expressed growth-promoting gene. The result indicates that Grb10 action is essentially independent of insulin-like growth factor 2, providing evidence that imprinting acts on at least two major fetal growth axes in a manner consistent with parent-offspring conflict theory.


Subject(s)
Embryonic and Fetal Development/genetics , Fetal Macrosomia/genetics , Genomic Imprinting , Growth Inhibitors/physiology , Placenta/abnormalities , Proteins/physiology , Alleles , Alternative Splicing , Animals , Cell Line , Chimera , Crosses, Genetic , Female , GRB10 Adaptor Protein , Gene Dosage , Gene Targeting , Genes, Reporter , Genes, Synthetic , Growth Inhibitors/chemistry , Growth Inhibitors/deficiency , Growth Inhibitors/genetics , Insulin-Like Growth Factor II/physiology , Lac Operon , Liver/embryology , Liver/pathology , Lung/abnormalities , Lung/embryology , Male , Mice , Mice, Inbred C57BL , Mice, Inbred CBA , Models, Biological , Organ Specificity , Proteins/chemistry , Proteins/genetics , RNA, Messenger/biosynthesis , Sequence Deletion , Signal Transduction , Stem Cells/cytology
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