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Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis

In cyanobacteria, the CO(2)-concentrating mechanism (CCM) is a vital biological process that provides effective photosynthetic CO(2) fixation by elevating the CO(2) level near the active site of Rubisco. This process enables the adaptation of cyanobacteria to various habitats, particularly in CO(2)-...

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Autores principales: Klanchui, Amornpan, Cheevadhanarak, Supapon, Prommeenate, Peerada, Meechai, Asawin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5472144/
https://www.ncbi.nlm.nih.gov/pubmed/28652895
http://dx.doi.org/10.1016/j.csbj.2017.05.001
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author Klanchui, Amornpan
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
author_facet Klanchui, Amornpan
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
author_sort Klanchui, Amornpan
collection PubMed
description In cyanobacteria, the CO(2)-concentrating mechanism (CCM) is a vital biological process that provides effective photosynthetic CO(2) fixation by elevating the CO(2) level near the active site of Rubisco. This process enables the adaptation of cyanobacteria to various habitats, particularly in CO(2)-limited environments. Although CCM of freshwater and marine cyanobacteria are well studied, there is limited information on the CCM of cyanobacteria living under alkaline environments. Here, we aimed to explore the molecular components of CCM in 12 alkaliphilic cyanobacteria through genome-based analysis. These cyanobacteria included 6 moderate alkaliphiles; Pleurocapsa sp. PCC 7327, Synechococcus spp., Cyanobacterium spp., Spirulina subsalsa PCC 9445, and 6 strong alkaliphiles (i.e. Arthrospira spp.). The results showed that both groups belong to β-cyanobacteria based on β-carboxysome shell proteins with form 1B of Rubisco. They also contained standard genes, ccmKLMNO cluster, which is essential for β-carboxysome formation. Most strains did not have the high-affinity Na(+)/HCO(3)(−) symporter SbtA and the medium-affinity ATP-dependent HCO(3)(−) transporter BCT1. Specifically, all strong alkaliphiles appeared to lack BCT1. Beside the transport systems, carboxysomal β-CA, CcaA, was absent in all alkaliphiles, except for three moderate alkaliphiles: Pleurocapsa sp. PCC 7327, Cyanobacteriumstranieri PCC 7202, and Spirulina subsalsa PCC 9445. Furthermore, comparative analysis of the CCM components among freshwater, marine, and alkaliphilic β-cyanobacteria revealed that the basic molecular components of the CCM in the alkaliphilic cyanobacteria seemed to share more degrees of similarity with freshwater than marine cyanobacteria. These findings provide a relationship between the CCM components of cyanobacteria and their habitats.
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spelling pubmed-54721442017-06-26 Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis Klanchui, Amornpan Cheevadhanarak, Supapon Prommeenate, Peerada Meechai, Asawin Comput Struct Biotechnol J Research Article In cyanobacteria, the CO(2)-concentrating mechanism (CCM) is a vital biological process that provides effective photosynthetic CO(2) fixation by elevating the CO(2) level near the active site of Rubisco. This process enables the adaptation of cyanobacteria to various habitats, particularly in CO(2)-limited environments. Although CCM of freshwater and marine cyanobacteria are well studied, there is limited information on the CCM of cyanobacteria living under alkaline environments. Here, we aimed to explore the molecular components of CCM in 12 alkaliphilic cyanobacteria through genome-based analysis. These cyanobacteria included 6 moderate alkaliphiles; Pleurocapsa sp. PCC 7327, Synechococcus spp., Cyanobacterium spp., Spirulina subsalsa PCC 9445, and 6 strong alkaliphiles (i.e. Arthrospira spp.). The results showed that both groups belong to β-cyanobacteria based on β-carboxysome shell proteins with form 1B of Rubisco. They also contained standard genes, ccmKLMNO cluster, which is essential for β-carboxysome formation. Most strains did not have the high-affinity Na(+)/HCO(3)(−) symporter SbtA and the medium-affinity ATP-dependent HCO(3)(−) transporter BCT1. Specifically, all strong alkaliphiles appeared to lack BCT1. Beside the transport systems, carboxysomal β-CA, CcaA, was absent in all alkaliphiles, except for three moderate alkaliphiles: Pleurocapsa sp. PCC 7327, Cyanobacteriumstranieri PCC 7202, and Spirulina subsalsa PCC 9445. Furthermore, comparative analysis of the CCM components among freshwater, marine, and alkaliphilic β-cyanobacteria revealed that the basic molecular components of the CCM in the alkaliphilic cyanobacteria seemed to share more degrees of similarity with freshwater than marine cyanobacteria. These findings provide a relationship between the CCM components of cyanobacteria and their habitats. Research Network of Computational and Structural Biotechnology 2017-05-25 /pmc/articles/PMC5472144/ /pubmed/28652895 http://dx.doi.org/10.1016/j.csbj.2017.05.001 Text en © 2017 Published by Elsevier B.V. on behalf of Research Network of Computational and Structural Biotechnology. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Klanchui, Amornpan
Cheevadhanarak, Supapon
Prommeenate, Peerada
Meechai, Asawin
Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title_full Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title_fullStr Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title_full_unstemmed Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title_short Exploring Components of the CO(2)-Concentrating Mechanism in Alkaliphilic Cyanobacteria Through Genome-Based Analysis
title_sort exploring components of the co(2)-concentrating mechanism in alkaliphilic cyanobacteria through genome-based analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5472144/
https://www.ncbi.nlm.nih.gov/pubmed/28652895
http://dx.doi.org/10.1016/j.csbj.2017.05.001
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