ArticleMolecular metabolism2018
Growth hormone receptor-deficient pigs resemble the pathophysiology of human Laron syndrome and reveal altered activation of signaling cascades in the liver.
Article in Molecular metabolism, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 50 papers.
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50 citing papers in PubMed, 130 citations in OpenAlex.
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- Contributions of Europeans to Xenotransplantation Research: 1. Pig Organ Xenotransplantation.Transplant international : official journal of the European Society for Organ Transplantation · 2025Review
- Decreased β-cell volume and insulin secretion but preserved glucose tolerance in a growth hormone insensitive pig model.Pituitary · 2024Article
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- What Genetic Modifications of Source Pigs Are Essential and Sufficient for Cell, Tissue, and Organ Xenotransplantation?Transplant international : official journal of the European Society for Organ Transplantation · 2024Review
- Growth hormone insensitivity and adipose tissue: tissue morphology and transcriptome analyses in pigs and humans.Pituitary · 2023Article
- Article
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- GHR-mutant pig derived from domestic pig and microminipig hybrid zygotes using CRISPR/Cas9 system.Molecular biology reports · 2023Article
- Designer pigs for xenogeneic heart transplantation and beyond.Disease models & mechanisms · 2023Article
- A zebrafish model of growth hormone insensitivity syndrome with immune dysregulation 1 (GHISID1).Cellular and molecular life sciences : CMLS · 2023Article
- Effects of GHR Deficiency and Juvenile Hypoglycemia on Immune Cells of a Porcine Model for Laron Syndrome.Biomolecules · 2023Article
- Milestones on the path to clinical pig organ xenotransplantation.American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons · 2023Review
- Cardiac xenotransplantation: from concept to clinic.Cardiovascular research · 2023Review
- Practical ethical concerns in allocation of pig kidneys to humans.Clinical kidney journal · 2022Article
- Anatomical Differences Between Human and Pig Hearts and Their Relevance for Cardiac Xenotransplantation Surgical Technique.JACC. Case reports · 2022Article
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Authors and funding
19 authors at 7 institutions in 3 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
objectiveLaron syndrome (LS) is a rare, autosomal recessive disorder in humans caused by loss-of-function mutations of the growth hormone receptor (GHR) gene. To establish a large animal model for LS, pigs with GHR knockout (KO) mutations were generated and characterized.
methodsCRISPR/Cas9 technology was applied to mutate exon 3 of the GHR gene in porcine zygotes. Two heterozygous founder sows with a 1-bp or 7-bp insertion in GHR exon 3 were obtained, and their heterozygous F1 offspring were intercrossed to produce GHR-KO, heterozygous GHR mutant, and wild-type pigs. Since the latter two groups were not significantly different in any parameter investigated, they were pooled as the GHR expressing control group. The characterization program included body and organ growth, body composition, endocrine and clinical-chemical parameters, as well as signaling studies in liver tissue.
resultsGHR-KO pigs lacked GHR and had markedly reduced serum insulin-like growth factor 1 (IGF1) levels and reduced IGF-binding protein 3 (IGFBP3) activity but increased IGFBP2 levels. Serum GH concentrations were significantly elevated compared with control pigs. GHR-KO pigs had a normal birth weight. Growth retardation became significant at the age of five weeks. At the age of six months, the body weight of GHR-KO pigs was reduced by 60% compared with controls. Most organ weights of GHR-KO pigs were reduced proportionally to body weight. However, the weights of liver, kidneys, and heart were disproportionately reduced, while the relative brain weight was almost doubled. GHR-KO pigs had a markedly increased percentage of total body fat relative to body weight and displayed transient juvenile hypoglycemia along with decreased serum triglyceride and cholesterol levels. Analysis of insulin receptor related signaling in the liver of adult fasted pigs revealed increased phosphorylation of IRS1 and PI3K. In agreement with the loss of GHR, phosphorylation of STAT5 was significantly reduced. In contrast, phosphorylation of JAK2 was significantly increased, possibly due to the increased serum leptin levels and increased hepatic leptin receptor expression and activation in GHR-KO pigs. In addition, increased mTOR phosphorylation was observed in GHR-KO liver samples, and phosphorylation studies of downstream substrates suggested the activation of mainly mTOR complex 2.
conclusionGHR-KO pigs resemble the pathophysiology of LS and are an interesting model for mechanistic studies and treatment trials.
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