Evidence map›Paper›PMID 39367004›Full record

ArticleScientific reports2024

Sequence-based analysis of the rice CAMTA family: haplotype and network analyses.

Nattana Thongsima, Prasit Khunsanit, Sarunkorn Navapiphat, Isabelle M Henry, Luca Comai, Teerapong Buaboocha

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Article in Scientific reports, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 2 papers.

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2citing papers in PubMed
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1 · What the graph read from it

What it found

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2 · The registry

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3 · Its place in the literature

Who cites it

2 citing papers in PubMed.

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4 · The record

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5 · Who and what money

Authors and funding

6 authors.

Nattana ThongsimaProgram in Bioinformatics and Computational Biology, Graduate School, Chulalongkorn University, Bangkok, 10330, Thailand.
Prasit KhunsanitCenter of Excellence in Molecular Crop, Department of Biochemistry, Faculty of Science, Chulalongkorn University, Bangkok, 10330, Thailand.
Sarunkorn NavapiphatCenter of Excellence in Molecular Crop, Department of Biochemistry, Faculty of Science, Chulalongkorn University, Bangkok, 10330, Thailand.
Isabelle M HenryDepartment of Plant Biology and Genome Center, University of California, Davis, Davis, CA, 95616, USA.
Luca ComaiDepartment of Plant Biology and Genome Center, University of California, Davis, Davis, CA, 95616, USA.
Teerapong BuaboochaCenter of Excellence in Molecular Crop, Department of Biochemistry, Faculty of Science, Chulalongkorn University, Bangkok, 10330, Thailand. teerapong.b@chula.ac.th.ORCID http://orcid.org/0000-0001-6011-0322

Funding

The NSRF through the Program Management Unit for Human Resources & Institutional Development, Research and Innovation B05F640097
6 · The paper itself

Abstract

The calmodulin-binding transcription activator (CAMTA) family contributes to stress responses in many plant species. The Oryza sativa ssp. japonica genome harbors seven CAMTA genes; however, intraspecific variation and functional roles of this gene family have not been determined. Here, we comprehensively evaluated the structure and characteristics of the CAMTA genes in japonica rice using bioinformatics approaches and RT-qPCR. Within the CAMTA gene and promoter sequences, 527 single nucleotide polymorphisms were retrieved from 3,024 rice accessions. The CAMTA genes could be subdivided into 5-14 haplotypes. Association analyses between haplotypes and phenotypic traits, such as grain weight and salt stress parameters, identified phenotypic differences between rice subpopulations harboring different CAMTA haplotypes. Co-expression analyses and the identification of CAMTA-specific binding motifs revealed candidate genes regulated by CAMTA. A Gene Ontology functional enrichment analysis of 690 co-expressed genes revealed that CAMTA genes have key roles in defense responses. An interaction analysis identified 30 putative CAMTA interactors. Three genes were identified in co-expression and interaction network analyses, suggesting that they are potentially regulated by CAMTAs. Based on all information obtained together with the phenotypes of the CRISPR-Cas9 knockout mutant lines of three OskCAMTA genes generated, CAMTA1 likely plays important roles in the response to salt stress in rice. Overall, our findings suggest that the CAMTA gene family is involved in development and the salt stress response and reveal candidate target genes, providing a basis for further functional characterization.

Indexed as

Gene Expression Regulation, PlantHaplotypesOryzaPlant ProteinsPolymorphism, Single NucleotideGene Regulatory NetworksMultigene FamilyPhenotypePromoter Regions, GeneticPlant ProteinsCAMTAOryza sativa ssp. japonicaSalt stressStress response

Identifiers

PMID39367004
PMCPMC11452383

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