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1.
Plant Physiol ; 192(2): 789-804, 2023 05 31.
Article En | MEDLINE | ID: mdl-36960590

Photosynthetic organisms frequently experience abiotic stress that restricts their growth and development. Under such circumstances, most absorbed solar energy cannot be used for CO2 fixation and can cause the photoproduction of reactive oxygen species (ROS) that can damage the photosynthetic reaction centers of PSI and PSII, resulting in a decline in primary productivity. This work describes a biological "switch" in the green alga Chlamydomonas reinhardtii that reversibly restricts photosynthetic electron transport (PET) at the cytochrome b6f (Cyt b6f) complex when the capacity for accepting electrons downstream of PSI is severely limited. We specifically show this restriction in STARCHLESS6 (sta6) mutant cells, which cannot synthesize starch when they are limited for nitrogen (growth inhibition) and subjected to a dark-to-light transition. This restriction represents a form of photosynthetic control that causes diminished electron flow to PSI and thereby prevents PSI photodamage but does not appear to rely on a ΔpH. Furthermore, when electron flow is restricted, the plastid alternative oxidase (PTOX) becomes active, functioning as an electron valve that dissipates some excitation energy absorbed by PSII and allows the formation of a proton motive force (PMF) that would drive some ATP production (potentially sustaining PSII repair and nonphotochemical quenching [NPQ]). The restriction at the Cyt b6f complex can be gradually relieved with continued illumination. This study provides insights into how PET responds to a marked reduction in availability of downstream electron acceptors and the protective mechanisms involved.


Cytochrome b6f Complex , Electrons , Cytochrome b6f Complex/metabolism , Electron Transport , Photosynthesis/physiology , Oxidation-Reduction , Oxidants , Photosystem I Protein Complex/metabolism , Photosystem II Protein Complex/metabolism , Light
2.
Nat Genet ; 51(4): 627-635, 2019 04.
Article En | MEDLINE | ID: mdl-30886426

Photosynthetic organisms provide food and energy for nearly all life on Earth, yet half of their protein-coding genes remain uncharacterized1,2. Characterization of these genes could be greatly accelerated by new genetic resources for unicellular organisms. Here we generated a genome-wide, indexed library of mapped insertion mutants for the unicellular alga Chlamydomonas reinhardtii. The 62,389 mutants in the library, covering 83% of nuclear protein-coding genes, are available to the community. Each mutant contains unique DNA barcodes, allowing the collection to be screened as a pool. We performed a genome-wide survey of genes required for photosynthesis, which identified 303 candidate genes. Characterization of one of these genes, the conserved predicted phosphatase-encoding gene CPL3, showed that it is important for accumulation of multiple photosynthetic protein complexes. Notably, 21 of the 43 higher-confidence genes are novel, opening new opportunities for advances in understanding of this biogeochemically fundamental process. This library will accelerate the characterization of thousands of genes in algae, plants, and animals.


Chlamydomonas reinhardtii/genetics , Chlorophyta/genetics , Eukaryota/genetics , Mutation/genetics , Photosynthesis/genetics , Gene Library , Genome/genetics , Genome-Wide Association Study/methods , Genomics/methods , Sequence Analysis, DNA/methods
3.
Plant J ; 94(6): 1023-1037, 2018 06.
Article En | MEDLINE | ID: mdl-29602195

The GreenCut encompasses a suite of nucleus-encoded proteins with orthologs among green lineage organisms (plants, green algae), but that are absent or poorly conserved in non-photosynthetic/heterotrophic organisms. In Chlamydomonas reinhardtii, CPLD49 (Conserved in Plant Lineage and Diatoms49) is an uncharacterized GreenCut protein that is critical for maintaining normal photosynthetic function. We demonstrate that a cpld49 mutant has impaired photoautotrophic growth under high-light conditions. The mutant exhibits a nearly 90% reduction in the level of the cytochrome b6 f complex (Cytb6 f), which impacts linear and cyclic electron transport, but does not compromise the ability of the strain to perform state transitions. Furthermore, CPLD49 strongly associates with thylakoid membranes where it may be part of a membrane protein complex with another GreenCut protein, CPLD38; a mutant null for CPLD38 also impacts Cytb6 f complex accumulation. We investigated several potential functions of CPLD49, with some suggested by protein homology. Our findings are congruent with the hypothesis that CPLD38 and CPLD49 are part of a novel thylakoid membrane complex that primarily modulates accumulation, but also impacts the activity of the Cytb6 f complex. Based on motifs of CPLD49 and the activities of other CPLD49-like proteins, we suggest a role for this putative dehydrogenase in the synthesis of a lipophilic thylakoid membrane molecule or cofactor that influences the assembly and activity of Cytb6 f.


Algal Proteins/metabolism , Chlamydomonas reinhardtii/metabolism , Cytochrome b6f Complex/metabolism , Thylakoids/metabolism , Carotenoids/metabolism , Electron Transport , Photosynthesis
4.
Plant Cell ; 29(11): 2711-2726, 2017 Nov.
Article En | MEDLINE | ID: mdl-29084873

In land plants, linear tetrapyrrole (bilin)-based phytochrome photosensors optimize photosynthetic light capture by mediating massive reprogramming of gene expression. But, surprisingly, many green algal genomes lack phytochrome genes. Studies of the heme oxygenase mutant (hmox1) of the green alga Chlamydomonas reinhardtii suggest that bilin biosynthesis in plastids is essential for proper regulation of a nuclear gene network implicated in oxygen detoxification during dark-to-light transitions. hmox1 cannot grow photoautotrophically and photoacclimates poorly to increased illumination. We show that these phenotypes are due to reduced accumulation of photosystem I (PSI) reaction centers, the PSI electron acceptors 5'-monohydroxyphylloquinone and phylloquinone, and the loss of PSI and photosystem II antennae complexes during photoacclimation. The hmox1 mutant resembles chlorophyll biosynthesis mutants phenotypically, but can be rescued by exogenous biliverdin IXα, the bilin produced by HMOX1. This rescue is independent of photosynthesis and is strongly dependent on blue light. RNA-seq comparisons of hmox1, genetically complemented hmox1, and chemically rescued hmox1 reveal that tetrapyrrole biosynthesis and known photoreceptor and photosynthesis-related genes are not impacted in the hmox1 mutant at the transcript level. We propose that a bilin-based, blue-light-sensing system within plastids evolved together with a bilin-based retrograde signaling pathway to ensure that a robust photosynthetic apparatus is sustained in light-grown Chlamydomonas.


Bile Pigments/biosynthesis , Chlamydomonas reinhardtii/metabolism , Heme Oxygenase-1/metabolism , Plant Proteins/metabolism , Chlamydomonas reinhardtii/genetics , Chlamydomonas reinhardtii/radiation effects , Chloroplasts/genetics , Chloroplasts/metabolism , Gene Expression Regulation, Plant , Heme Oxygenase-1/genetics , Light , Mutation , Oxygen/metabolism , Photosystem I Protein Complex/genetics , Photosystem I Protein Complex/metabolism , Plant Proteins/genetics , Signal Transduction/genetics
5.
J Exp Bot ; 68(14): 3903-3913, 2017 06 01.
Article En | MEDLINE | ID: mdl-28911055

The pyrenoid of the unicellular green alga Chlamydomonas reinhardtii is a microcompartment situated in the centre of the cup-shaped chloroplast, containing up to 90% of cellular Rubisco. Traversed by a network of dense, knotted thylakoid tubules, the pyrenoid has been proposed to influence thylakoid biogenesis and ultrastructure. Mutants that are unable to assemble a pyrenoid matrix, due to expressing a vascular plant version of the Rubisco small subunit, exhibit severe growth and photosynthetic defects and have an ineffective carbon-concentrating mechanism (CCM). The present study set out to determine the cause of photosynthetic limitation in these pyrenoid-less lines. We tested whether electron transport and light use were compromised as a direct structural consequence of pyrenoid loss or as a metabolic effect downstream of lower CCM activity and resulting CO2 limitation. Thylakoid organization was unchanged in the mutants, including the retention of intrapyrenoid-type thylakoid tubules, and photosynthetic limitations associated with the absence of the pyrenoid were rescued by exposing cells to elevated CO2 levels. These results demonstrate that Rubisco aggregation in the pyrenoid functions as an essential element for CO2 delivery as part of the CCM, and does not play other roles in maintenance of photosynthetic membrane energetics.


Carbon Dioxide/metabolism , Chlamydomonas reinhardtii/metabolism , Chloroplasts/metabolism , Photosynthesis , Thylakoids/metabolism , Chlamydomonas reinhardtii/genetics
6.
Proc Natl Acad Sci U S A ; 113(10): 2774-9, 2016 Mar 08.
Article En | MEDLINE | ID: mdl-26903622

A Chlamydomonas reinhardtii mutant lacking CGL71, a thylakoid membrane protein previously shown to be involved in photosystem I (PSI) accumulation, exhibited photosensitivity and highly reduced abundance of PSI under photoheterotrophic conditions. Remarkably, the PSI content of this mutant declined to nearly undetectable levels under dark, oxic conditions, demonstrating that reduced PSI accumulation in the mutant is not strictly the result of photodamage. Furthermore, PSI returns to nearly wild-type levels when the O2 concentration in the medium is lowered. Overall, our results suggest that the accumulation of PSI in the mutant correlates with the redox state of the stroma rather than photodamage and that CGL71 functions under atmospheric O2 conditions to allow stable assembly of PSI. These findings may reflect the history of the Earth's atmosphere as it transitioned from anoxic to highly oxic (1-2 billion years ago), a change that required organisms to evolve mechanisms to assist in the assembly and stability of proteins or complexes with O2-sensitive cofactors.


Algal Proteins/metabolism , Chlamydomonas reinhardtii/metabolism , Chloroplast Proteins/metabolism , Photosystem I Protein Complex/metabolism , Thylakoid Membrane Proteins/metabolism , Algal Proteins/genetics , Chlamydomonas reinhardtii/genetics , Chloroplast Proteins/genetics , Electron Transport/genetics , Electron Transport/radiation effects , Immunoblotting , Kinetics , Light , Mutation , Oxidation-Reduction , Oxygen/metabolism , Photosynthesis/genetics , Photosynthesis/radiation effects , Photosystem I Protein Complex/genetics , Thylakoid Membrane Proteins/genetics , Thylakoids/metabolism
7.
Plant Physiol ; 170(4): 1975-88, 2016 04.
Article En | MEDLINE | ID: mdl-26858365

When photosynthetic organisms are deprived of nitrogen (N), the capacity to grow and assimilate carbon becomes limited, causing a decrease in the productive use of absorbed light energy and likely a rise in the cellular reduction state. Although there is a scarcity of N in many terrestrial and aquatic environments, a mechanistic understanding of how photosynthesis adjusts to low-N conditions and the enzymes/activities integral to these adjustments have not been described. In this work, we use biochemical and biophysical analyses of photoautotrophically grown wild-type and mutant strains of Chlamydomonas reinhardtii to determine the integration of electron transport pathways critical for maintaining active photosynthetic complexes even after exposure of cells to N deprivation for 3 d. Key to acclimation is the type II NADPH dehydrogenase, NDA2, which drives cyclic electron flow (CEF), chlororespiration, and the generation of an H(+) gradient across the thylakoid membranes. N deprivation elicited a doubling of the rate of NDA2-dependent CEF, with little contribution from PGR5/PGRL1-dependent CEF The H(+) gradient generated by CEF is essential to sustain nonphotochemical quenching, while an increase in the level of reduced plastoquinone would promote a state transition; both are necessary to down-regulate photosystem II activity. Moreover, stimulation of NDA2-dependent chlororespiration affords additional relief from the elevated reduction state associated with N deprivation through plastid terminal oxidase-dependent water synthesis. Overall, rerouting electrons through the NDA2 catalytic hub in response to photoautotrophic N deprivation sustains cell viability while promoting the dissipation of excess excitation energy through quenching and chlororespiratory processes.


Acclimatization/drug effects , Chlamydomonas reinhardtii/physiology , Chloroplasts/metabolism , NADPH Dehydrogenase/metabolism , Nitrogen/pharmacology , Photochemical Processes , Autotrophic Processes/drug effects , Autotrophic Processes/radiation effects , Cell Respiration/drug effects , Chlamydomonas reinhardtii/drug effects , Chloroplasts/drug effects , Electron Transport/drug effects , Electron Transport/radiation effects , Light , Models, Biological , NADP/metabolism , Peptides/metabolism , Photochemical Processes/drug effects , Photochemical Processes/radiation effects , Photosynthesis/drug effects , Photosynthesis/radiation effects , Photosystem II Protein Complex/metabolism , Phototrophic Processes/drug effects , Phototrophic Processes/radiation effects , Pigmentation/drug effects , Pigmentation/radiation effects , Pigments, Biological/metabolism , Plastoquinone/metabolism , Protein Subunits/metabolism , Protons
8.
Proc Natl Acad Sci U S A ; 112(48): 14978-83, 2015 Dec 01.
Article En | MEDLINE | ID: mdl-26627249

Photosynthetic microorganisms typically have multiple isoforms of the electron transfer protein ferredoxin, although we know little about their exact functions. Surprisingly, a Chlamydomonas reinhardtii mutant null for the ferredoxin-5 gene (FDX5) completely ceased growth in the dark, with both photosynthetic and respiratory functions severely compromised; growth in the light was unaffected. Thylakoid membranes in dark-maintained fdx5 mutant cells became severely disorganized concomitant with a marked decrease in the ratio of monogalactosyldiacylglycerol to digalactosyldiacylglycerol, major lipids in photosynthetic membranes, and the accumulation of triacylglycerol. Furthermore, FDX5 was shown to physically interact with the fatty acid desaturases CrΔ4FAD and CrFAD6, likely donating electrons for the desaturation of fatty acids that stabilize monogalactosyldiacylglycerol. Our results suggest that in photosynthetic organisms, specific redox reactions sustain dark metabolism, with little impact on daytime growth, likely reflecting the tailoring of electron carriers to unique intracellular metabolic circuits under these two very distinct redox conditions.


Chlamydomonas reinhardtii/enzymology , Fatty Acid Desaturases/metabolism , Ferredoxins/metabolism , Galactolipids/metabolism , Plant Proteins/metabolism , Thylakoids/metabolism , Chlamydomonas reinhardtii/genetics , Fatty Acid Desaturases/genetics , Ferredoxins/genetics , Galactolipids/genetics , Oxidation-Reduction , Plant Proteins/genetics , Thylakoids/genetics
9.
Plant Physiol ; 169(2): 1318-32, 2015 Oct.
Article En | MEDLINE | ID: mdl-26220954

To investigate the dynamics of photosynthetic pigment-protein complexes in vascular plants at high resolution in an aqueous environment, membrane-protruding oxygen-evolving complexes (OECs) associated with photosystem II (PSII) on spinach (Spinacia oleracea) grana membranes were examined using contact mode atomic force microscopy. This study represents, to our knowledge, the first use of atomic force microscopy to distinguish the putative large extrinsic loop of Photosystem II CP47 reaction center protein (CP47) from the putative oxygen-evolving enhancer proteins 1, 2, and 3 (PsbO, PsbP, and PsbQ) and large extrinsic loop of Photosystem II CP43 reaction center protein (CP43) in the PSII-OEC extrinsic domains of grana membranes under conditions resulting in the disordered arrangement of PSII-OEC particles. Moreover, we observed uncharacterized membrane particles that, based on their physical characteristics and electrophoretic analysis of the polypeptides associated with the grana samples, are hypothesized to be a domain of photosystem I that protrudes from the stromal face of single thylakoid bilayers. Our results are interpreted in the context of the results of others that were obtained using cryo-electron microscopy (and single particle analysis), negative staining and freeze-fracture electron microscopy, as well as previous atomic force microscopy studies.


Microscopy, Atomic Force/methods , Multiprotein Complexes/analysis , Photosystem II Protein Complex/analysis , Spinacia oleracea/chemistry , Image Enhancement/methods , Multiprotein Complexes/chemistry , Photosystem II Protein Complex/chemistry , Spinacia oleracea/metabolism , Thylakoids/chemistry , Thylakoids/metabolism
10.
Plant J ; 82(3): 481-503, 2015 May.
Article En | MEDLINE | ID: mdl-25752440

Chlamydomonas reinhardtii is a unicellular, soil-dwelling (and aquatic) green alga that has significant metabolic flexibility for balancing redox equivalents and generating ATP when it experiences hypoxic/anoxic conditions. The diversity of pathways available to ferment sugars is often revealed in mutants in which the activities of specific branches of fermentative metabolism have been eliminated; compensatory pathways that have little activity in parental strains under standard laboratory fermentative conditions are often activated. The ways in which these pathways are regulated and integrated have not been extensively explored. In this review, we primarily discuss the intricacies of dark anoxic metabolism in Chlamydomonas, but also discuss aspects of dark oxic metabolism, the utilization of acetate, and the relatively uncharacterized but critical interactions that link chloroplastic and mitochondrial metabolic networks.


Acetates/metabolism , Chlamydomonas reinhardtii/metabolism , Cell Hypoxia , Chlamydomonas reinhardtii/cytology , Chlamydomonas reinhardtii/physiology , Chloroplasts/metabolism , Darkness , Fermentation , Glyoxylates/metabolism , Heterotrophic Processes , Metabolic Networks and Pathways , Mitochondria/genetics , Mitochondria/metabolism , Molecular Sequence Data , Mutation , Oxidation-Reduction
11.
Plant Cell ; 26(11): 4499-518, 2014 Nov.
Article En | MEDLINE | ID: mdl-25381350

Chlamydomonas reinhardtii insertion mutants disrupted for genes encoding acetate kinases (EC 2.7.2.1) (ACK1 and ACK2) and a phosphate acetyltransferase (EC 2.3.1.8) (PAT2, but not PAT1) were isolated to characterize fermentative acetate production. ACK1 and PAT2 were localized to chloroplasts, while ACK2 and PAT1 were shown to be in mitochondria. Characterization of the mutants showed that PAT2 and ACK1 activity in chloroplasts plays a dominant role (relative to ACK2 and PAT1 in mitochondria) in producing acetate under dark, anoxic conditions and, surprisingly, also suggested that Chlamydomonas has other pathways that generate acetate in the absence of ACK activity. We identified a number of proteins associated with alternative pathways for acetate production that are encoded on the Chlamydomonas genome. Furthermore, we observed that only modest alterations in the accumulation of fermentative products occurred in the ack1, ack2, and ack1 ack2 mutants, which contrasts with the substantial metabolite alterations described in strains devoid of other key fermentation enzymes.


Acetate Kinase/metabolism , Acetates/metabolism , Chlamydomonas reinhardtii/enzymology , Chloroplasts/metabolism , Phosphate Acetyltransferase/metabolism , Acetate Kinase/genetics , Algal Proteins/genetics , Algal Proteins/metabolism , Chlamydomonas reinhardtii/genetics , Fermentation , Mitochondria/metabolism , Mutagenesis, Insertional , Phosphate Acetyltransferase/genetics
12.
Appl Environ Microbiol ; 77(22): 8114-28, 2011 Nov.
Article En | MEDLINE | ID: mdl-21948837

Microbially produced fatty acids are potential precursors to high-energy-density biofuels, including alkanes and alkyl ethyl esters, by either catalytic conversion of free fatty acids (FFAs) or enzymatic conversion of acyl-acyl carrier protein or acyl-coenzyme A intermediates. Metabolic engineering efforts aimed at overproducing FFAs in Escherichia coli have achieved less than 30% of the maximum theoretical yield on the supplied carbon source. In this work, the viability, morphology, transcript levels, and protein levels of a strain of E. coli that overproduces medium-chain-length FFAs was compared to an engineered control strain. By early stationary phase, an 85% reduction in viable cell counts and exacerbated loss of inner membrane integrity were observed in the FFA-overproducing strain. These effects were enhanced in strains endogenously producing FFAs compared to strains exposed to exogenously fed FFAs. Under two sets of cultivation conditions, long-chain unsaturated fatty acid content greatly increased, and the expression of genes and proteins required for unsaturated fatty acid biosynthesis were significantly decreased. Membrane stresses were further implicated by increased expression of genes and proteins of the phage shock response, the MarA/Rob/SoxS regulon, and the nuo and cyo operons of aerobic respiration. Gene deletion studies confirmed the importance of the phage shock proteins and Rob for maintaining cell viability; however, little to no change in FFA titer was observed after 24 h of cultivation. The results of this study serve as a baseline for future targeted attempts to improve FFA yields and titers in E. coli.


Cell Membrane/physiology , Escherichia coli/physiology , Fatty Acids, Nonesterified/biosynthesis , Stress, Physiological , Cell Membrane/drug effects , Cell Membrane/metabolism , Escherichia coli/cytology , Escherichia coli/genetics , Escherichia coli/metabolism , Escherichia coli Proteins/analysis , Gene Expression Profiling , Microbial Viability/drug effects , Organisms, Genetically Modified/genetics , Organisms, Genetically Modified/metabolism , Organisms, Genetically Modified/physiology
13.
Appl Microbiol Biotechnol ; 91(2): 435-46, 2011 Jul.
Article En | MEDLINE | ID: mdl-21643704

The predominant strategy for using algae to produce biofuels relies on the overproduction of lipids in microalgae with subsequent conversion to biodiesel (methyl-esters) or green diesel (alkanes). Conditions that both optimize algal growth and lipid accumulation rarely overlap, and differences in growth rates can lead to wild species outcompeting the desired lipid-rich strains. Here, we demonstrate an alternative strategy in which cellulose contained in the cell walls of multicellular algae is used as a feedstock for cultivating biofuel-producing microorganisms. Cellulose was extracted from an environmental sample of Cladophora glomerata-dominated periphyton that was collected from Lake Mendota, WI, USA. The resulting cellulose cake was hydrolyzed by commercial enzymes to release fermentable glucose. The hydrolysis mixture was used to formulate an undefined medium that was able to support the growth, without supplementation, of a free fatty acid (FFA)-overproducing strain of Escherichia coli (Lennen et. al 2010). To maximize free fatty acid production from glucose, an isopropyl ß-D-1-thiogalactopyranoside (IPTG)-inducible vector was constructed to express the Umbellularia californica acyl-acyl carrier protein (ACP) thioesterase. Thioesterase expression was optimized by inducing cultures with 50 µM IPTG. Cell density and FFA titers from cultures grown on algae-based media reached 50% of those (∼90 µg/mL FFA) cultures grown on rich Luria-Bertani broth supplemented with 0.2% glucose. In comparison, cultures grown in two media based on AFEX-pretreated corn stover generated tenfold less FFA than cultures grown in algae-based media. This study demonstrates that macroalgal cellulose is a potential carbon source for the production of biofuels or other microbially synthesized compounds.


Biotechnology/methods , Cellulose/metabolism , Chlorophyta/metabolism , Escherichia coli/metabolism , Fatty Acids, Nonesterified/biosynthesis , Fresh Water/microbiology , Biofuels , Culture Media , Escherichia coli/genetics , Genetic Engineering/methods , Glucose/metabolism , Thiolester Hydrolases/genetics , Thiolester Hydrolases/metabolism , Wisconsin
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