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Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers

Broiler ascites syndrome (AS), also called pulmonary artery hypertension, is a metabolic disorder that has been observed worldwide in fast-growing broilers. Pulmonary arterial remodeling is a key step in the development of AS. The precise relationship between mRNA and SNP of the pulmonary artery in...

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Autores principales: Cheng, Sufang, Liu, Xin, Liu, Pei, Li, Guyue, Guo, Xiaoquan, Hu, Guoliang, Li, Lin, Wu, Cong, Xu, Zheng, Zhou, Qi, Jiang, Jialin, Luo, Shixian, Huang, Huajun, Ping Liu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7936122/
https://www.ncbi.nlm.nih.gov/pubmed/33518352
http://dx.doi.org/10.1016/j.psj.2020.11.054
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author Cheng, Sufang
Liu, Xin
Liu, Pei
Li, Guyue
Guo, Xiaoquan
Hu, Guoliang
Li, Lin
Wu, Cong
Xu, Zheng
Zhou, Qi
Jiang, Jialin
Luo, Shixian
Huang, Huajun
Ping Liu
author_facet Cheng, Sufang
Liu, Xin
Liu, Pei
Li, Guyue
Guo, Xiaoquan
Hu, Guoliang
Li, Lin
Wu, Cong
Xu, Zheng
Zhou, Qi
Jiang, Jialin
Luo, Shixian
Huang, Huajun
Ping Liu
author_sort Cheng, Sufang
collection PubMed
description Broiler ascites syndrome (AS), also called pulmonary artery hypertension, is a metabolic disorder that has been observed worldwide in fast-growing broilers. Pulmonary arterial remodeling is a key step in the development of AS. The precise relationship between mRNA and SNP of the pulmonary artery in regulating AS progression remains unclear. In this study, we obtained pulmonary artery tissues from broilers with AS to perform pathologic section and pathologic anatomic observation. SNP, InDel, and mRNA data analysis were carried out using GATK and ANNOVAR software to study the SNP loci of 985 previously reported genes (437 upregulated and 458 downregulated). The pathology results showed that there was a lot of yellow fluid in the abdominal cavity and pericardium, that the ascites cardiac index and hematocrit changed significantly, and that the pulmonary artery had remodeled and become thicker in the disease group. Myocardial sections showed vacuolar degeneration of myocytes and rupture of muscle fibers. In addition, ALDH7A1, IRG1, GGT5, IGSF1, DHX58, USP36, TREML2, SPAG1, CD34, and PLEKHA7 were found to be closely associated with the pathogenesis of pulmonary artery remodeling in AS progression. Taken together, our present study further illuminates the molecular mechanism of pulmonary artery remodeling underlying AS progression.
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spelling pubmed-79361222021-03-15 Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers Cheng, Sufang Liu, Xin Liu, Pei Li, Guyue Guo, Xiaoquan Hu, Guoliang Li, Lin Wu, Cong Xu, Zheng Zhou, Qi Jiang, Jialin Luo, Shixian Huang, Huajun Ping Liu Poult Sci Immunology, Health and Disease Broiler ascites syndrome (AS), also called pulmonary artery hypertension, is a metabolic disorder that has been observed worldwide in fast-growing broilers. Pulmonary arterial remodeling is a key step in the development of AS. The precise relationship between mRNA and SNP of the pulmonary artery in regulating AS progression remains unclear. In this study, we obtained pulmonary artery tissues from broilers with AS to perform pathologic section and pathologic anatomic observation. SNP, InDel, and mRNA data analysis were carried out using GATK and ANNOVAR software to study the SNP loci of 985 previously reported genes (437 upregulated and 458 downregulated). The pathology results showed that there was a lot of yellow fluid in the abdominal cavity and pericardium, that the ascites cardiac index and hematocrit changed significantly, and that the pulmonary artery had remodeled and become thicker in the disease group. Myocardial sections showed vacuolar degeneration of myocytes and rupture of muscle fibers. In addition, ALDH7A1, IRG1, GGT5, IGSF1, DHX58, USP36, TREML2, SPAG1, CD34, and PLEKHA7 were found to be closely associated with the pathogenesis of pulmonary artery remodeling in AS progression. Taken together, our present study further illuminates the molecular mechanism of pulmonary artery remodeling underlying AS progression. Elsevier 2020-11-28 /pmc/articles/PMC7936122/ /pubmed/33518352 http://dx.doi.org/10.1016/j.psj.2020.11.054 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Immunology, Health and Disease
Cheng, Sufang
Liu, Xin
Liu, Pei
Li, Guyue
Guo, Xiaoquan
Hu, Guoliang
Li, Lin
Wu, Cong
Xu, Zheng
Zhou, Qi
Jiang, Jialin
Luo, Shixian
Huang, Huajun
Ping Liu
Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title_full Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title_fullStr Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title_full_unstemmed Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title_short Dysregulated expression of mRNA and SNP in pulmonary artery remodeling in ascites syndrome in broilers
title_sort dysregulated expression of mrna and snp in pulmonary artery remodeling in ascites syndrome in broilers
topic Immunology, Health and Disease
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7936122/
https://www.ncbi.nlm.nih.gov/pubmed/33518352
http://dx.doi.org/10.1016/j.psj.2020.11.054
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