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Targeted mutation in beta1,4-galactosyltransferase leads to pituitary insufficiency and neonatal lethality
1Department of Biochemistry and Molecular Biology, M.D. Anderson Cancer Center, Houston, Texas 77030, USA.
Abstract:
Despite much attention, the function of oligosaccharide chains on glycoproteins and glycolipids remains largely unknown. Our understanding of oligosaccharide function in vivo has been limited to the use of reagents and targeted mutations that eliminate entire classes of oligosaccharide chains. However, most biological functions for oligosaccharides have been attributed to specific terminal sequences on these glycoside chains; yet, there have been few studies that examine the consequences of modifying terminal oligosaccharide structures in vivo. To address this issue, mice were created bearing a targeted mutation in beta1,4-galactosyltransferase (GalTase), an enzyme responsible for elaboration of many of the proposed biologically active carbohydrate epitopes. Most GalTase-null mice died within the first few weeks after birth and were characterized by stunted growth, thin skin, sparse hair, and dehydration. In addition, spermatogenesis was delayed, the lungs were poorly developed, and the adrenal cortices were poorly stratified. The few surviving adults had puffy skin (myxedema) and difficulty delivering pups at birth (dystocia) and failed to lactate (agalactosis). All of these defects are consistent with endocrine insufficiency, which was confirmed by markedly decreased levels of serum thyroxine. The polyglandular nature of the endocrine insufficiency is indicative of a failure of the anterior pituitary gland to stimulate the target endocrine organs. Previous in vitro studies have suggested that incomplete glycosylation of anterior pituitary hormones leads to the creation of hormone antagonists, which down-regulate subsequent endocrine function, producing polyglandular endocrine insufficiency. In GalTase-null mice, the anterior pituitary acquired a normal secretory phenotype during neonatal development indicative of normal glycoprotein hormone synthesis and secretion. However, as expected, the gland was devoid of GalTase activity. These results support a requirement for terminal oligosaccharide sequences for anterior pituitary hormone function. The fact that approximately 10% of the GalTase-null mice survive the neonatal period indicates the presence of a previously unrecognized compensatory pathway for glycoprotein hormone glycosylation and/or action.
Insights
Altering terminal oligosaccharide structures in mice lacking beta1,4-galactosyltransferase (GalTase) caused severe endocrine insufficiency, highlighting the importance of these sugar chains for hormone function.
Area of Science:
- Glycobiology
- Endocrinology
- Developmental Biology
Background:
- The precise in vivo functions of oligosaccharide chains on glycoproteins and glycolipids are not well understood.
- Previous research has primarily focused on eliminating entire classes of oligosaccharides, rather than modifying specific terminal structures.
- Most proposed biological roles for oligosaccharides are linked to their terminal sequences.
Purpose of the Study:
- To investigate the in vivo consequences of modifying terminal oligosaccharide structures.
- To examine the role of beta1,4-galactosyltransferase (GalTase) in glycoprotein and glycolipid function.
- To determine the impact of GalTase deficiency on endocrine regulation.
Main Methods:
- Generation of mice with a targeted mutation in the beta1,4-galactosyltransferase (GalTase) gene.
- Phenotypic analysis of GalTase-null mice, including growth, organ development, and reproductive function.
- Assessment of endocrine function, including serum thyroxine levels and anterior pituitary hormone status.
Main Results:
- GalTase-null mice exhibited severe developmental defects, including stunted growth, dehydration, and organ underdevelopment.
- Surviving GalTase-null adults displayed symptoms of polyglandular endocrine insufficiency, such as myxedema and agalactosis, linked to low thyroxine levels.
- Anterior pituitary glands in GalTase-null mice showed normal glycoprotein hormone synthesis and secretion but lacked GalTase activity, supporting the role of terminal structures in hormone function.
Conclusions:
- Terminal oligosaccharide sequences are essential for proper anterior pituitary hormone function.
- GalTase deficiency leads to polyglandular endocrine insufficiency due to impaired glycoprotein hormone activity.
- The survival of a subset of GalTase-null mice suggests a compensatory mechanism for glycoprotein hormone glycosylation or action.