Red algae (Rhodophyta) and land plants belong to the monophyletic clade Archaeplastida, and taxa of both groups are rich producers of terpene secondary metabolites. The terpene carbon skeletons of land plants are made by two types of terpene synthases: typical plant terpene synthases and microbial-type terpene synthases (MTPSLs); however, terpene biosynthesis in red algae is poorly understood. By systematic sequence analysis of seven genomes and 34 transcriptomes of red algae, homologs were identified within one genome and two transcriptomes, whereas no homolog of typical plant terpene synthase genes was found. Phylogenetic analysis showed that red algae MTPSLs group with bacterial terpene synthases. Analysis of the genome assembly and characterization of neighboring genes demonstrated red algal to be bona fide red algal genes and not microbial contaminants. genes from and were characterized via heterologous expression in and demonstrated to have sesquiterpene synthase activities. We detected a number of volatile sesquiterpenes in the headspace of and cultures, most identical to the in vitro products of the respective MTPSLs. Expression of the gene in was found to be induced by methyl jasmonate, suggesting a role for this gene in host defense. In summary, this study indicates that the formation of terpene carbon skeletons in red algae is carried out by MTPSLs that are phylogenetically unrelated to typical plant terpene synthases and most likely originated in Rhodophyta via horizontal gene transfer from bacteria.
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http://dx.doi.org/10.1104/pp.18.01413 | DOI Listing |
Photosynth Res
January 2025
Research Institute for Interdisciplinary Science and Graduate School of Natural Science and Technology, Okayama University, Okayama, 700-8530, Japan.
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View Article and Find Full Text PDFISME Commun
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State Key Laboratory of Lake Science and Environment, Nanjing Institute of Geography and Limnology, Chinese Academy of Sciences, Nanjing 210008, China.
Antarctic snow harbors diverse microorganisms, including pigmented algae and bacteria, which create colored snow patches and influence global climate and biogeochemical cycles. However, the genomic diversity and metabolic potential of colored snow remain poorly understood. We conducted a genome-resolved study of microbiomes in colored snow from 13 patches (7 green and 6 red) on the Fildes Peninsula, Antarctica.
View Article and Find Full Text PDFInt J Mol Sci
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View Article and Find Full Text PDFBiology (Basel)
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Departamento de Sistemática y Ecología Acuática, El Colegio de la Frontera Sur (ECOSUR), Av. Centenario km 5.5, Pacto Obrero, Chetumal 77014, Quintana Roo, Mexico.
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