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A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency

Congenital disorder of glycosylation (PMM2-CDG) results from mutations in pmm2, which encodes the phosphomannomutase (Pmm) that converts mannose-6-phosphate (M6P) to mannose-1-phosphate (M1P). Patients have wide-spectrum clinical abnormalities associated with impaired protein N-glycosylation. Althou...

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Autores principales: Cline, Abigail, Gao, Ningguo, Flanagan-Steet, Heather, Sharma, Vandana, Rosa, Sabrina, Sonon, Roberto, Azadi, Parastoo, Sadler, Kirsten C., Freeze, Hudson H., Lehrman, Mark A., Steet, Richard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3484097/
https://www.ncbi.nlm.nih.gov/pubmed/22956764
http://dx.doi.org/10.1091/mbc.E12-05-0411
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author Cline, Abigail
Gao, Ningguo
Flanagan-Steet, Heather
Sharma, Vandana
Rosa, Sabrina
Sonon, Roberto
Azadi, Parastoo
Sadler, Kirsten C.
Freeze, Hudson H.
Lehrman, Mark A.
Steet, Richard
author_facet Cline, Abigail
Gao, Ningguo
Flanagan-Steet, Heather
Sharma, Vandana
Rosa, Sabrina
Sonon, Roberto
Azadi, Parastoo
Sadler, Kirsten C.
Freeze, Hudson H.
Lehrman, Mark A.
Steet, Richard
author_sort Cline, Abigail
collection PubMed
description Congenital disorder of glycosylation (PMM2-CDG) results from mutations in pmm2, which encodes the phosphomannomutase (Pmm) that converts mannose-6-phosphate (M6P) to mannose-1-phosphate (M1P). Patients have wide-spectrum clinical abnormalities associated with impaired protein N-glycosylation. Although it has been widely proposed that Pmm2 deficiency depletes M1P, a precursor of GDP-mannose, and consequently suppresses lipid-linked oligosaccharide (LLO) levels needed for N-glycosylation, these deficiencies have not been demonstrated in patients or any animal model. Here we report a morpholino-based PMM2-CDG model in zebrafish. Morphant embryos had developmental abnormalities consistent with PMM2-CDG patients, including craniofacial defects and impaired motility associated with altered motor neurogenesis within the spinal cord. Significantly, global N-linked glycosylation and LLO levels were reduced in pmm2 morphants. Although M1P and GDP-mannose were below reliable detection/quantification limits, Pmm2 depletion unexpectedly caused accumulation of M6P, shown earlier to promote LLO cleavage in vitro. In pmm2 morphants, the free glycan by-products of LLO cleavage increased nearly twofold. Suppression of the M6P-synthesizing enzyme mannose phosphate isomerase within the pmm2 background normalized M6P levels and certain aspects of the craniofacial phenotype and abrogated pmm2-dependent LLO cleavage. In summary, we report the first zebrafish model of PMM2-CDG and uncover novel cellular insights not possible with other systems, including an M6P accumulation mechanism for underglycosylation.
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spelling pubmed-34840972013-01-16 A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency Cline, Abigail Gao, Ningguo Flanagan-Steet, Heather Sharma, Vandana Rosa, Sabrina Sonon, Roberto Azadi, Parastoo Sadler, Kirsten C. Freeze, Hudson H. Lehrman, Mark A. Steet, Richard Mol Biol Cell Articles Congenital disorder of glycosylation (PMM2-CDG) results from mutations in pmm2, which encodes the phosphomannomutase (Pmm) that converts mannose-6-phosphate (M6P) to mannose-1-phosphate (M1P). Patients have wide-spectrum clinical abnormalities associated with impaired protein N-glycosylation. Although it has been widely proposed that Pmm2 deficiency depletes M1P, a precursor of GDP-mannose, and consequently suppresses lipid-linked oligosaccharide (LLO) levels needed for N-glycosylation, these deficiencies have not been demonstrated in patients or any animal model. Here we report a morpholino-based PMM2-CDG model in zebrafish. Morphant embryos had developmental abnormalities consistent with PMM2-CDG patients, including craniofacial defects and impaired motility associated with altered motor neurogenesis within the spinal cord. Significantly, global N-linked glycosylation and LLO levels were reduced in pmm2 morphants. Although M1P and GDP-mannose were below reliable detection/quantification limits, Pmm2 depletion unexpectedly caused accumulation of M6P, shown earlier to promote LLO cleavage in vitro. In pmm2 morphants, the free glycan by-products of LLO cleavage increased nearly twofold. Suppression of the M6P-synthesizing enzyme mannose phosphate isomerase within the pmm2 background normalized M6P levels and certain aspects of the craniofacial phenotype and abrogated pmm2-dependent LLO cleavage. In summary, we report the first zebrafish model of PMM2-CDG and uncover novel cellular insights not possible with other systems, including an M6P accumulation mechanism for underglycosylation. The American Society for Cell Biology 2012-11-01 /pmc/articles/PMC3484097/ /pubmed/22956764 http://dx.doi.org/10.1091/mbc.E12-05-0411 Text en © 2012 Cline et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society of Cell BD; are registered trademarks of The American Society of Cell Biology.
spellingShingle Articles
Cline, Abigail
Gao, Ningguo
Flanagan-Steet, Heather
Sharma, Vandana
Rosa, Sabrina
Sonon, Roberto
Azadi, Parastoo
Sadler, Kirsten C.
Freeze, Hudson H.
Lehrman, Mark A.
Steet, Richard
A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title_full A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title_fullStr A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title_full_unstemmed A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title_short A zebrafish model of PMM2-CDG reveals altered neurogenesis and a substrate-accumulation mechanism for N-linked glycosylation deficiency
title_sort zebrafish model of pmm2-cdg reveals altered neurogenesis and a substrate-accumulation mechanism for n-linked glycosylation deficiency
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3484097/
https://www.ncbi.nlm.nih.gov/pubmed/22956764
http://dx.doi.org/10.1091/mbc.E12-05-0411
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