Cargando…

Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs

Malnutrition affects millions of children in developing countries, compromising immunity and contributing to increased rates of death from infectious diseases. Rotavirus is a major etiological agent of childhood diarrhea in developing countries, where malnutrition is prevalent. However, the interact...

Descripción completa

Detalles Bibliográficos
Autores principales: Vlasova, Anastasia N., Paim, Francine C., Kandasamy, Sukumar, Alhamo, Moyasar A., Fischer, David D., Langel, Stephanie N., Deblais, Loic, Kumar, Anand, Chepngeno, Juliet, Shao, Lulu, Huang, Huang-Chi, Candelero-Rueda, Rosario A., Rajashekara, Gireesh, Saif, Linda J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5332602/
https://www.ncbi.nlm.nih.gov/pubmed/28261667
http://dx.doi.org/10.1128/mSphere.00046-17
_version_ 1782511559521599488
author Vlasova, Anastasia N.
Paim, Francine C.
Kandasamy, Sukumar
Alhamo, Moyasar A.
Fischer, David D.
Langel, Stephanie N.
Deblais, Loic
Kumar, Anand
Chepngeno, Juliet
Shao, Lulu
Huang, Huang-Chi
Candelero-Rueda, Rosario A.
Rajashekara, Gireesh
Saif, Linda J.
author_facet Vlasova, Anastasia N.
Paim, Francine C.
Kandasamy, Sukumar
Alhamo, Moyasar A.
Fischer, David D.
Langel, Stephanie N.
Deblais, Loic
Kumar, Anand
Chepngeno, Juliet
Shao, Lulu
Huang, Huang-Chi
Candelero-Rueda, Rosario A.
Rajashekara, Gireesh
Saif, Linda J.
author_sort Vlasova, Anastasia N.
collection PubMed
description Malnutrition affects millions of children in developing countries, compromising immunity and contributing to increased rates of death from infectious diseases. Rotavirus is a major etiological agent of childhood diarrhea in developing countries, where malnutrition is prevalent. However, the interactions between the two and their combined effects on immune and intestinal functions are poorly understood. In this study, we used neonatal gnotobiotic (Gn) pigs transplanted with the fecal microbiota of a healthy 2-month-old infant (HIFM) and fed protein-deficient or -sufficient bovine milk diets. Protein deficiency induced hypoproteinemia, hypoalbuminemia, hypoglycemia, stunting, and generalized edema in Gn pigs, as observed in protein-malnourished children. Irrespective of the diet, human rotavirus (HRV) infection early, at HIFM posttransplantation day 3 (PTD3), resulted in adverse health effects and higher mortality rates (45 to 75%) than later HRV infection (PTD10). Protein malnutrition exacerbated HRV infection and affected the morphology and function of the small intestinal epithelial barrier. In pigs infected with HRV at PTD10, there was a uniform decrease in the function and/or frequencies of natural killer cells, plasmacytoid dendritic cells, and CD103(+) and apoptotic mononuclear cells and altered gene expression profiles of intestinal epithelial cells (chromogranin A, mucin 2, proliferating cell nuclear antigen, SRY-Box 9, and villin). Thus, we have established the first HIFM-transplanted neonatal pig model that recapitulates major aspects of protein malnutrition in children and can be used to evaluate physiologically relevant interventions. Our findings provide an explanation of why nutrient-rich diets alone may lack efficacy in malnourished children. IMPORTANCE Malnutrition and rotavirus infection, prevalent in developing countries, individually and in combination, affect the health of millions of children, compromising their immunity and increasing the rates of death from infectious diseases. However, the interactions between the two and their combined effects on immune and intestinal functions are poorly understood. We have established the first human infant microbiota-transplanted neonatal pig model of childhood malnutrition that reproduced the impaired immune, intestinal, and other physiological functions seen in malnourished children. This model can be used to evaluate relevant dietary and other health-promoting interventions. Our findings provide an explanation of why adequate nutrition alone may lack efficacy in malnourished children.
format Online
Article
Text
id pubmed-5332602
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-53326022017-03-03 Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs Vlasova, Anastasia N. Paim, Francine C. Kandasamy, Sukumar Alhamo, Moyasar A. Fischer, David D. Langel, Stephanie N. Deblais, Loic Kumar, Anand Chepngeno, Juliet Shao, Lulu Huang, Huang-Chi Candelero-Rueda, Rosario A. Rajashekara, Gireesh Saif, Linda J. mSphere Research Article Malnutrition affects millions of children in developing countries, compromising immunity and contributing to increased rates of death from infectious diseases. Rotavirus is a major etiological agent of childhood diarrhea in developing countries, where malnutrition is prevalent. However, the interactions between the two and their combined effects on immune and intestinal functions are poorly understood. In this study, we used neonatal gnotobiotic (Gn) pigs transplanted with the fecal microbiota of a healthy 2-month-old infant (HIFM) and fed protein-deficient or -sufficient bovine milk diets. Protein deficiency induced hypoproteinemia, hypoalbuminemia, hypoglycemia, stunting, and generalized edema in Gn pigs, as observed in protein-malnourished children. Irrespective of the diet, human rotavirus (HRV) infection early, at HIFM posttransplantation day 3 (PTD3), resulted in adverse health effects and higher mortality rates (45 to 75%) than later HRV infection (PTD10). Protein malnutrition exacerbated HRV infection and affected the morphology and function of the small intestinal epithelial barrier. In pigs infected with HRV at PTD10, there was a uniform decrease in the function and/or frequencies of natural killer cells, plasmacytoid dendritic cells, and CD103(+) and apoptotic mononuclear cells and altered gene expression profiles of intestinal epithelial cells (chromogranin A, mucin 2, proliferating cell nuclear antigen, SRY-Box 9, and villin). Thus, we have established the first HIFM-transplanted neonatal pig model that recapitulates major aspects of protein malnutrition in children and can be used to evaluate physiologically relevant interventions. Our findings provide an explanation of why nutrient-rich diets alone may lack efficacy in malnourished children. IMPORTANCE Malnutrition and rotavirus infection, prevalent in developing countries, individually and in combination, affect the health of millions of children, compromising their immunity and increasing the rates of death from infectious diseases. However, the interactions between the two and their combined effects on immune and intestinal functions are poorly understood. We have established the first human infant microbiota-transplanted neonatal pig model of childhood malnutrition that reproduced the impaired immune, intestinal, and other physiological functions seen in malnourished children. This model can be used to evaluate relevant dietary and other health-promoting interventions. Our findings provide an explanation of why adequate nutrition alone may lack efficacy in malnourished children. American Society for Microbiology 2017-03-01 /pmc/articles/PMC5332602/ /pubmed/28261667 http://dx.doi.org/10.1128/mSphere.00046-17 Text en Copyright © 2017 Vlasova et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Vlasova, Anastasia N.
Paim, Francine C.
Kandasamy, Sukumar
Alhamo, Moyasar A.
Fischer, David D.
Langel, Stephanie N.
Deblais, Loic
Kumar, Anand
Chepngeno, Juliet
Shao, Lulu
Huang, Huang-Chi
Candelero-Rueda, Rosario A.
Rajashekara, Gireesh
Saif, Linda J.
Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title_full Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title_fullStr Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title_full_unstemmed Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title_short Protein Malnutrition Modifies Innate Immunity and Gene Expression by Intestinal Epithelial Cells and Human Rotavirus Infection in Neonatal Gnotobiotic Pigs
title_sort protein malnutrition modifies innate immunity and gene expression by intestinal epithelial cells and human rotavirus infection in neonatal gnotobiotic pigs
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5332602/
https://www.ncbi.nlm.nih.gov/pubmed/28261667
http://dx.doi.org/10.1128/mSphere.00046-17
work_keys_str_mv AT vlasovaanastasian proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT paimfrancinec proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT kandasamysukumar proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT alhamomoyasara proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT fischerdavidd proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT langelstephanien proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT deblaisloic proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT kumaranand proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT chepngenojuliet proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT shaolulu proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT huanghuangchi proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT candeleroruedarosarioa proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT rajashekaragireesh proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs
AT saiflindaj proteinmalnutritionmodifiesinnateimmunityandgeneexpressionbyintestinalepithelialcellsandhumanrotavirusinfectioninneonatalgnotobioticpigs