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NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology

The rare lysosomal storage disorder Niemann-Pick disease type C1 (NPC1) arises from mutation of NPC1, which encodes a lysosomal transmembrane protein essential for normal transport and trafficking of cholesterol and sphingolipids. NPC1 is highly heterogeneous in both clinical phenotypes and age of o...

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Autores principales: Rodriguez-Gil, Jorge L., Watkins-Chow, Dawn E., Baxter, Laura L., Yokoyama, Tadafumi, Zerfas, Patricia M., Starost, Matthew F., Gahl, William A., Malicdan, May Christine V., Porter, Forbes D., Platt, Frances M., Pavan, William J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7019814/
https://www.ncbi.nlm.nih.gov/pubmed/31861571
http://dx.doi.org/10.3390/jcm9010012
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author Rodriguez-Gil, Jorge L.
Watkins-Chow, Dawn E.
Baxter, Laura L.
Yokoyama, Tadafumi
Zerfas, Patricia M.
Starost, Matthew F.
Gahl, William A.
Malicdan, May Christine V.
Porter, Forbes D.
Platt, Frances M.
Pavan, William J.
author_facet Rodriguez-Gil, Jorge L.
Watkins-Chow, Dawn E.
Baxter, Laura L.
Yokoyama, Tadafumi
Zerfas, Patricia M.
Starost, Matthew F.
Gahl, William A.
Malicdan, May Christine V.
Porter, Forbes D.
Platt, Frances M.
Pavan, William J.
author_sort Rodriguez-Gil, Jorge L.
collection PubMed
description The rare lysosomal storage disorder Niemann-Pick disease type C1 (NPC1) arises from mutation of NPC1, which encodes a lysosomal transmembrane protein essential for normal transport and trafficking of cholesterol and sphingolipids. NPC1 is highly heterogeneous in both clinical phenotypes and age of onset. Previous studies have reported sub-Mendelian survival rates for mice homozygous for various Npc1 mutant alleles but have not studied the potential mechanisms underlying this phenotype. We performed the first developmental analysis of a Npc1 mouse model, Npc1(em1Pav), and discovered significant fetal growth restriction in homozygous mutants beginning at E16.5. Npc1(em1Pav/em1Pav) mice also exhibited cyanosis, increased respiratory effort, and over 50% lethality at birth. Analysis of neonatal lung tissues revealed lipid accumulation, notable abnormalities in surfactant, and enlarged alveolar macrophages, suggesting that lung abnormalities may be associated with neonatal lethality in Npc1(em1Pav/em1Pav) mice. The phenotypic severity of the Npc1(em1Pav) model facilitated this first analysis of perinatal lethality and lung pathology in an NPC1 model organism, and this model may serve as a useful resource for developing treatments for respiratory complications seen in NPC1 patients.
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spelling pubmed-70198142020-03-09 NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology Rodriguez-Gil, Jorge L. Watkins-Chow, Dawn E. Baxter, Laura L. Yokoyama, Tadafumi Zerfas, Patricia M. Starost, Matthew F. Gahl, William A. Malicdan, May Christine V. Porter, Forbes D. Platt, Frances M. Pavan, William J. J Clin Med Article The rare lysosomal storage disorder Niemann-Pick disease type C1 (NPC1) arises from mutation of NPC1, which encodes a lysosomal transmembrane protein essential for normal transport and trafficking of cholesterol and sphingolipids. NPC1 is highly heterogeneous in both clinical phenotypes and age of onset. Previous studies have reported sub-Mendelian survival rates for mice homozygous for various Npc1 mutant alleles but have not studied the potential mechanisms underlying this phenotype. We performed the first developmental analysis of a Npc1 mouse model, Npc1(em1Pav), and discovered significant fetal growth restriction in homozygous mutants beginning at E16.5. Npc1(em1Pav/em1Pav) mice also exhibited cyanosis, increased respiratory effort, and over 50% lethality at birth. Analysis of neonatal lung tissues revealed lipid accumulation, notable abnormalities in surfactant, and enlarged alveolar macrophages, suggesting that lung abnormalities may be associated with neonatal lethality in Npc1(em1Pav/em1Pav) mice. The phenotypic severity of the Npc1(em1Pav) model facilitated this first analysis of perinatal lethality and lung pathology in an NPC1 model organism, and this model may serve as a useful resource for developing treatments for respiratory complications seen in NPC1 patients. MDPI 2019-12-19 /pmc/articles/PMC7019814/ /pubmed/31861571 http://dx.doi.org/10.3390/jcm9010012 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rodriguez-Gil, Jorge L.
Watkins-Chow, Dawn E.
Baxter, Laura L.
Yokoyama, Tadafumi
Zerfas, Patricia M.
Starost, Matthew F.
Gahl, William A.
Malicdan, May Christine V.
Porter, Forbes D.
Platt, Frances M.
Pavan, William J.
NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title_full NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title_fullStr NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title_full_unstemmed NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title_short NPC1 Deficiency in Mice is Associated with Fetal Growth Restriction, Neonatal Lethality and Abnormal Lung Pathology
title_sort npc1 deficiency in mice is associated with fetal growth restriction, neonatal lethality and abnormal lung pathology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7019814/
https://www.ncbi.nlm.nih.gov/pubmed/31861571
http://dx.doi.org/10.3390/jcm9010012
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