Genome analysis of the rice coral Montipora capitata

Corals comprise a biomineralizing cnidarian, dinoflagellate algal symbionts, and associated microbiome of prokaryotes and viruses. Ongoing efforts to conserve coral reefs by identifying the major stress response pathways and thereby laying the foundation to select resistant genotypes rely on a robus...

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Published in:Scientific reports Vol. 9; no. 1; p. 2571
Main Authors: Shumaker, Alexander, Putnam, Hollie M., Qiu, Huan, Price, Dana C., Zelzion, Ehud, Harel, Arye, Wagner, Nicole E., Gates, Ruth D., Yoon, Hwan Su, Bhattacharya, Debashish
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Language:English
Published: London Nature Publishing Group UK 22-02-2019
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Abstract Corals comprise a biomineralizing cnidarian, dinoflagellate algal symbionts, and associated microbiome of prokaryotes and viruses. Ongoing efforts to conserve coral reefs by identifying the major stress response pathways and thereby laying the foundation to select resistant genotypes rely on a robust genomic foundation. Here we generated and analyzed a high quality long-read based ~886 Mbp nuclear genome assembly and transcriptome data from the dominant rice coral, Montipora capitata from Hawai’i. Our work provides insights into the architecture of coral genomes and shows how they differ in size and gene inventory, putatively due to population size variation. We describe a recent example of foreign gene acquisition via a bacterial gene transfer agent and illustrate the major pathways of stress response that can be used to predict regulatory components of the transcriptional networks in M . capitata . These genomic resources provide insights into the adaptive potential of these sessile, long-lived species in both natural and human influenced environments and facilitate functional and population genomic studies aimed at Hawaiian reef restoration and conservation.
AbstractList Corals comprise a biomineralizing cnidarian, dinoflagellate algal symbionts, and associated microbiome of prokaryotes and viruses. Ongoing efforts to conserve coral reefs by identifying the major stress response pathways and thereby laying the foundation to select resistant genotypes rely on a robust genomic foundation. Here we generated and analyzed a high quality long-read based ~886 Mbp nuclear genome assembly and transcriptome data from the dominant rice coral, Montipora capitata from Hawai’i. Our work provides insights into the architecture of coral genomes and shows how they differ in size and gene inventory, putatively due to population size variation. We describe a recent example of foreign gene acquisition via a bacterial gene transfer agent and illustrate the major pathways of stress response that can be used to predict regulatory components of the transcriptional networks in M . capitata . These genomic resources provide insights into the adaptive potential of these sessile, long-lived species in both natural and human influenced environments and facilitate functional and population genomic studies aimed at Hawaiian reef restoration and conservation.
Corals comprise a biomineralizing cnidarian, dinoflagellate algal symbionts, and associated microbiome of prokaryotes and viruses. Ongoing efforts to conserve coral reefs by identifying the major stress response pathways and thereby laying the foundation to select resistant genotypes rely on a robust genomic foundation. Here we generated and analyzed a high quality long-read based ~886 Mbp nuclear genome assembly and transcriptome data from the dominant rice coral, Montipora capitata from Hawai’i. Our work provides insights into the architecture of coral genomes and shows how they differ in size and gene inventory, putatively due to population size variation. We describe a recent example of foreign gene acquisition via a bacterial gene transfer agent and illustrate the major pathways of stress response that can be used to predict regulatory components of the transcriptional networks in M. capitata. These genomic resources provide insights into the adaptive potential of these sessile, long-lived species in both natural and human influenced environments and facilitate functional and population genomic studies aimed at Hawaiian reef restoration and conservation.
ArticleNumber 2571
Author Wagner, Nicole E.
Yoon, Hwan Su
Gates, Ruth D.
Bhattacharya, Debashish
Zelzion, Ehud
Shumaker, Alexander
Putnam, Hollie M.
Qiu, Huan
Price, Dana C.
Harel, Arye
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  givenname: Alexander
  surname: Shumaker
  fullname: Shumaker, Alexander
  organization: Department of Biochemistry and Microbiology, Rutgers University
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  givenname: Hollie M.
  surname: Putnam
  fullname: Putnam, Hollie M.
  organization: Department of Biological Sciences, University of Rhode Island
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  givenname: Huan
  surname: Qiu
  fullname: Qiu, Huan
  organization: Department of Ecology, Evolution and Natural Resources, Rutgers University
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  givenname: Dana C.
  surname: Price
  fullname: Price, Dana C.
  organization: Department of Plant Biology, Rutgers University
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  givenname: Ehud
  surname: Zelzion
  fullname: Zelzion, Ehud
  organization: Department of Ecology, Evolution and Natural Resources, Rutgers University
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  surname: Harel
  fullname: Harel, Arye
  organization: Department of Vegetable and Field Crop Research, Institute of Plant Sciences
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  givenname: Nicole E.
  surname: Wagner
  fullname: Wagner, Nicole E.
  organization: Department of Ecology, Evolution and Natural Resources, Rutgers University
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  givenname: Ruth D.
  surname: Gates
  fullname: Gates, Ruth D.
  organization: Hawai’i Institute of Marine Biology
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  givenname: Hwan Su
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  fullname: Yoon, Hwan Su
  organization: Department of Biological Sciences, Sungkyunkwan University
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  givenname: Debashish
  surname: Bhattacharya
  fullname: Bhattacharya, Debashish
  email: d.bhattacharya@rutgers.edu
  organization: Department of Biochemistry and Microbiology, Rutgers University
BackLink https://www.ncbi.nlm.nih.gov/pubmed/30796282$$D View this record in MEDLINE/PubMed
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SSID ssj0000529419
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Snippet Corals comprise a biomineralizing cnidarian, dinoflagellate algal symbionts, and associated microbiome of prokaryotes and viruses. Ongoing efforts to conserve...
SourceID pubmedcentral
proquest
crossref
pubmed
springer
SourceType Open Access Repository
Aggregation Database
Index Database
Publisher
StartPage 2571
SubjectTerms 45
45/23
45/91
631/181/735
631/208/212/2304
Algae
Cellular stress response
Coral reefs
Corals
Gene transfer
Genomes
Genomics
Genotypes
Humanities and Social Sciences
Microbiomes
Montipora capitata
multidisciplinary
Oryza
Population number
Population studies
Prokaryotes
Science
Science (multidisciplinary)
Stress response
Symbionts
Transcription
Title Genome analysis of the rice coral Montipora capitata
URI https://link.springer.com/article/10.1038/s41598-019-39274-3
https://www.ncbi.nlm.nih.gov/pubmed/30796282
https://www.proquest.com/docview/2185065205
https://search.proquest.com/docview/2185566520
https://pubmed.ncbi.nlm.nih.gov/PMC6385260
Volume 9
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