Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates

IntroductionSome cyanobacteria can use far-red light (FRL) to drive oxygenic photosynthesis, a phenomenon known as Far-Red Light Photoacclimation (FaRLiP). It can expand photosynthetically active radiation beyond the visible light (VL) range. Therefore, it holds promise for biotechnological applicat...

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Published in:Frontiers in Microbiology
Main Authors: Giorgia di Stefano, Mariano Battistuzzi, Nicoletta La Rocca, Vera M. Selinger, Dennis J. Nürnberg, Daniela Billi
Format: Article
Language:English
Published: Frontiers Media S.A. 2024-09-01
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Online Access:https://www.frontiersin.org/articles/10.3389/fmicb.2024.1450575/full
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author Giorgia di Stefano
Giorgia di Stefano
Mariano Battistuzzi
Mariano Battistuzzi
Mariano Battistuzzi
Nicoletta La Rocca
Nicoletta La Rocca
Vera M. Selinger
Vera M. Selinger
Dennis J. Nürnberg
Dennis J. Nürnberg
Daniela Billi
author_facet Giorgia di Stefano
Giorgia di Stefano
Mariano Battistuzzi
Mariano Battistuzzi
Mariano Battistuzzi
Nicoletta La Rocca
Nicoletta La Rocca
Vera M. Selinger
Vera M. Selinger
Dennis J. Nürnberg
Dennis J. Nürnberg
Daniela Billi
author_sort Giorgia di Stefano
collection DOAJ
container_title Frontiers in Microbiology
description IntroductionSome cyanobacteria can use far-red light (FRL) to drive oxygenic photosynthesis, a phenomenon known as Far-Red Light Photoacclimation (FaRLiP). It can expand photosynthetically active radiation beyond the visible light (VL) range. Therefore, it holds promise for biotechnological applications and may prove useful for the future human exploration of outer space. Typically, FaRLiP relies on a cluster of ~20 genes, encoding paralogs of the standard photosynthetic machinery. One of them, a highly divergent D1 gene known as chlF (or psbA4), is the synthase responsible for the formation of the FRL-absorbing chlorophyll f (Chl f) that is essential for FaRLiP. The minimum gene set required for this phenotype is unclear. The desert cyanobacterium Chroococcidiopsis sp. CCMEE 010 is unusual in being capable of FaRLiP with a reduced gene cluster (15 genes), and it lacks most of the genes encoding FR-Photosystem I.MethodsHere we investigated whether the reduced gene cluster of Chroococcidiopsis sp. CCMEE 010 is transcriptionally regulated by FRL and characterized the spectral changes that occur during the FaRLiP response of Chroococcidiopsis sp. CCMEE 010. In addition, the heterologous expression of the Chl f synthase from CCMEE 010 was attempted in three closely related desert strains of Chroococcidiopsis.ResultsAll 15 genes of the FaRLiP cluster were preferentially expressed under FRL, accompanied by a progressive red-shift of the photosynthetic absorption spectrum. The Chl f synthase from CCMEE 010 was successfully expressed in two desert strains of Chroococcidiopsis and transformants could be selected in both VL and FRL.DiscussionIn Chroococcidiopsis sp. CCME 010, all the far-red genes of the unusually reduced FaRLiP cluster, are transcriptionally regulated by FRL and two closely related desert strains heterologously expressing the chlF010 gene could grow in FRL. Since the transformation hosts had been reported to survive outer space conditions, such an achievement lays the foundation toward novel cyanobacteria-based technologies to support human space exploration.
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spelling doaj-art-e7c2583256ff4b57a0f9bf70aa9fbf3e2025-08-20T00:32:03ZengFrontiers Media S.A.Frontiers in Microbiology1664-302X2024-09-011510.3389/fmicb.2024.14505751450575Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolatesGiorgia di Stefano0Giorgia di Stefano1Mariano Battistuzzi2Mariano Battistuzzi3Mariano Battistuzzi4Nicoletta La Rocca5Nicoletta La Rocca6Vera M. Selinger7Vera M. Selinger8Dennis J. Nürnberg9Dennis J. Nürnberg10Daniela Billi11Department of Biology, University of Rome Tor Vergata, Rome, ItalyPh.D. Program in Cellular and Molecular Biology, Department of Biology, University of Rome Tor Vergata, Rome, ItalyDepartment of Biology, University of Padua, Padua, ItalyNational Council of Research of Italy, Institute for Photonics and Nanotechnologies (CNR-IFN), Padua, ItalyGiuseppe Colombo University Center for Studies and Activities, University of Padua, Padua, ItalyDepartment of Biology, University of Padua, Padua, ItalyNational Council of Research of Italy, Institute for Photonics and Nanotechnologies (CNR-IFN), Padua, ItalyInstitute of Experimental Physics, Freie Universität Berlin, Berlin, GermanyDahlem Centre of Plant Sciences, Freie Universität Berlin, Berlin, GermanyInstitute of Experimental Physics, Freie Universität Berlin, Berlin, GermanyDahlem Centre of Plant Sciences, Freie Universität Berlin, Berlin, GermanyDepartment of Biology, University of Rome Tor Vergata, Rome, ItalyIntroductionSome cyanobacteria can use far-red light (FRL) to drive oxygenic photosynthesis, a phenomenon known as Far-Red Light Photoacclimation (FaRLiP). It can expand photosynthetically active radiation beyond the visible light (VL) range. Therefore, it holds promise for biotechnological applications and may prove useful for the future human exploration of outer space. Typically, FaRLiP relies on a cluster of ~20 genes, encoding paralogs of the standard photosynthetic machinery. One of them, a highly divergent D1 gene known as chlF (or psbA4), is the synthase responsible for the formation of the FRL-absorbing chlorophyll f (Chl f) that is essential for FaRLiP. The minimum gene set required for this phenotype is unclear. The desert cyanobacterium Chroococcidiopsis sp. CCMEE 010 is unusual in being capable of FaRLiP with a reduced gene cluster (15 genes), and it lacks most of the genes encoding FR-Photosystem I.MethodsHere we investigated whether the reduced gene cluster of Chroococcidiopsis sp. CCMEE 010 is transcriptionally regulated by FRL and characterized the spectral changes that occur during the FaRLiP response of Chroococcidiopsis sp. CCMEE 010. In addition, the heterologous expression of the Chl f synthase from CCMEE 010 was attempted in three closely related desert strains of Chroococcidiopsis.ResultsAll 15 genes of the FaRLiP cluster were preferentially expressed under FRL, accompanied by a progressive red-shift of the photosynthetic absorption spectrum. The Chl f synthase from CCMEE 010 was successfully expressed in two desert strains of Chroococcidiopsis and transformants could be selected in both VL and FRL.DiscussionIn Chroococcidiopsis sp. CCME 010, all the far-red genes of the unusually reduced FaRLiP cluster, are transcriptionally regulated by FRL and two closely related desert strains heterologously expressing the chlF010 gene could grow in FRL. Since the transformation hosts had been reported to survive outer space conditions, such an achievement lays the foundation toward novel cyanobacteria-based technologies to support human space exploration.https://www.frontiersin.org/articles/10.3389/fmicb.2024.1450575/fullChroococcidiopsisFaRLiPspace explorationChl f synthasegenetic manipulation
spellingShingle Giorgia di Stefano
Giorgia di Stefano
Mariano Battistuzzi
Mariano Battistuzzi
Mariano Battistuzzi
Nicoletta La Rocca
Nicoletta La Rocca
Vera M. Selinger
Vera M. Selinger
Dennis J. Nürnberg
Dennis J. Nürnberg
Daniela Billi
Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
Chroococcidiopsis
FaRLiP
space exploration
Chl f synthase
genetic manipulation
title Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
title_full Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
title_fullStr Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
title_full_unstemmed Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
title_short Far-red light photoacclimation in a desert Chroococcidiopsis strain with a reduced FaRLiP gene cluster and expression of its chlorophyll f synthase in space-resistant isolates
title_sort far red light photoacclimation in a desert chroococcidiopsis strain with a reduced farlip gene cluster and expression of its chlorophyll f synthase in space resistant isolates
topic Chroococcidiopsis
FaRLiP
space exploration
Chl f synthase
genetic manipulation
url https://www.frontiersin.org/articles/10.3389/fmicb.2024.1450575/full
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