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De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network

Moniezia expansa (M. expansa) parasitizes the small intestine of sheep and causes inhibited growth and development or even death. Being globally distributed, it causes considerable economic losses to the animal husbandry industry. Here, using Illumina, PacBio and BioNano techniques, we obtain a high...

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Autores principales: Liu, Yi, Wang, Zhengrong, Huang, Wanlong, Pang, Shuai, Qian, Lingxiao, Zhang, Yanyan, Meng, Jimeng, Xu, Mengfei, Wang, Weiyi, Wang, Yunfei, Lu, Baoyan, Zhao, Yiyue, Xian, Jinwen, Bo, Xinwen, Yue, Bisong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8291045/
https://www.ncbi.nlm.nih.gov/pubmed/34295839
http://dx.doi.org/10.3389/fcimb.2021.693914
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author Liu, Yi
Wang, Zhengrong
Huang, Wanlong
Pang, Shuai
Qian, Lingxiao
Zhang, Yanyan
Meng, Jimeng
Xu, Mengfei
Wang, Weiyi
Wang, Yunfei
Lu, Baoyan
Zhao, Yiyue
Xian, Jinwen
Bo, Xinwen
Yue, Bisong
author_facet Liu, Yi
Wang, Zhengrong
Huang, Wanlong
Pang, Shuai
Qian, Lingxiao
Zhang, Yanyan
Meng, Jimeng
Xu, Mengfei
Wang, Weiyi
Wang, Yunfei
Lu, Baoyan
Zhao, Yiyue
Xian, Jinwen
Bo, Xinwen
Yue, Bisong
author_sort Liu, Yi
collection PubMed
description Moniezia expansa (M. expansa) parasitizes the small intestine of sheep and causes inhibited growth and development or even death. Being globally distributed, it causes considerable economic losses to the animal husbandry industry. Here, using Illumina, PacBio and BioNano techniques, we obtain a high-quality genome assembly of M. expansa, which has a total length of 142 Mb, a scaffold N50 length of 7.27 Mb and 8,104 coding genes. M. expansa has a very high body fat content and a specific type of fatty acid metabolism. It cannot synthesize any lipids due to the loss of some key genes involved in fatty acid synthesis, and it may can metabolize most lipids via the relatively complete fatty acid β-oxidation pathway. The M. expansa genome encodes multiple lipid transporters and lipid binding proteins that enable the utilization of lipids in the host intestinal fluid. Although many of its systems are degraded (with the loss of homeobox genes), its reproductive system is well developed. PL10, AGO, Nanos and Pumilio compose a reproductive stem cell regulatory network. The results suggest that the high body lipid content of M. expansa provides an energy source supporting the high fecundity of this parasite. Our study provides insight into host interaction, adaptation, nutrient acquisition, strobilization, and reproduction in this parasite and this is also the first genome published in Anoplocephalidae.
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spelling pubmed-82910452021-07-21 De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network Liu, Yi Wang, Zhengrong Huang, Wanlong Pang, Shuai Qian, Lingxiao Zhang, Yanyan Meng, Jimeng Xu, Mengfei Wang, Weiyi Wang, Yunfei Lu, Baoyan Zhao, Yiyue Xian, Jinwen Bo, Xinwen Yue, Bisong Front Cell Infect Microbiol Cellular and Infection Microbiology Moniezia expansa (M. expansa) parasitizes the small intestine of sheep and causes inhibited growth and development or even death. Being globally distributed, it causes considerable economic losses to the animal husbandry industry. Here, using Illumina, PacBio and BioNano techniques, we obtain a high-quality genome assembly of M. expansa, which has a total length of 142 Mb, a scaffold N50 length of 7.27 Mb and 8,104 coding genes. M. expansa has a very high body fat content and a specific type of fatty acid metabolism. It cannot synthesize any lipids due to the loss of some key genes involved in fatty acid synthesis, and it may can metabolize most lipids via the relatively complete fatty acid β-oxidation pathway. The M. expansa genome encodes multiple lipid transporters and lipid binding proteins that enable the utilization of lipids in the host intestinal fluid. Although many of its systems are degraded (with the loss of homeobox genes), its reproductive system is well developed. PL10, AGO, Nanos and Pumilio compose a reproductive stem cell regulatory network. The results suggest that the high body lipid content of M. expansa provides an energy source supporting the high fecundity of this parasite. Our study provides insight into host interaction, adaptation, nutrient acquisition, strobilization, and reproduction in this parasite and this is also the first genome published in Anoplocephalidae. Frontiers Media S.A. 2021-07-06 /pmc/articles/PMC8291045/ /pubmed/34295839 http://dx.doi.org/10.3389/fcimb.2021.693914 Text en Copyright © 2021 Liu, Wang, Huang, Pang, Qian, Zhang, Meng, Xu, Wang, Wang, Lu, Zhao, Xian, Bo and Yue https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular and Infection Microbiology
Liu, Yi
Wang, Zhengrong
Huang, Wanlong
Pang, Shuai
Qian, Lingxiao
Zhang, Yanyan
Meng, Jimeng
Xu, Mengfei
Wang, Weiyi
Wang, Yunfei
Lu, Baoyan
Zhao, Yiyue
Xian, Jinwen
Bo, Xinwen
Yue, Bisong
De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title_full De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title_fullStr De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title_full_unstemmed De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title_short De Novo Sequencing and High-Contiguity Genome Assembly of Moniezia expansa Reveals Its Specific Fatty Acid Metabolism and Reproductive Stem Cell Regulatory Network
title_sort de novo sequencing and high-contiguity genome assembly of moniezia expansa reveals its specific fatty acid metabolism and reproductive stem cell regulatory network
topic Cellular and Infection Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8291045/
https://www.ncbi.nlm.nih.gov/pubmed/34295839
http://dx.doi.org/10.3389/fcimb.2021.693914
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