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1.
Plant Physiol ; 171(3): 1879-92, 2016 07.
Article in English | MEDLINE | ID: mdl-27208262

ABSTRACT

At variance with the starch-accumulating plants and most of the glycogen-accumulating cyanobacteria, Cyanobacterium sp. CLg1 synthesizes both glycogen and starch. We now report the selection of a starchless mutant of this cyanobacterium that retains wild-type amounts of glycogen. Unlike other mutants of this type found in plants and cyanobacteria, this mutant proved to be selectively defective for one of the two types of glycogen/starch synthase: GlgA2. This enzyme is phylogenetically related to the previously reported SSIII/SSIV starch synthase that is thought to be involved in starch granule seeding in plants. This suggests that, in addition to the selective polysaccharide debranching demonstrated to be responsible for starch rather than glycogen synthesis, the nature and properties of the elongation enzyme define a novel determinant of starch versus glycogen accumulation. We show that the phylogenies of GlgA2 and of 16S ribosomal RNA display significant congruence. This suggests that this enzyme evolved together with cyanobacteria when they diversified over 2 billion years ago. However, cyanobacteria can be ruled out as direct progenitors of the SSIII/SSIV ancestral gene found in Archaeplastida. Hence, both cyanobacteria and plants recruited similar enzymes independently to perform analogous tasks, further emphasizing the importance of convergent evolution in the appearance of starch from a preexisting glycogen metabolism network.


Subject(s)
Bacterial Proteins/metabolism , Biological Evolution , Cyanobacteria/metabolism , Glycogen/metabolism , Starch Synthase/metabolism , Bacterial Proteins/genetics , Cyanobacteria/physiology , Escherichia coli/genetics , Escherichia coli/metabolism , Genome, Bacterial , Glycogen/chemistry , Glycogen Synthase/genetics , Glycogen Synthase/metabolism , Mutation , Phylogeny , Polysaccharides, Bacterial/genetics , Polysaccharides, Bacterial/metabolism , Starch/metabolism , Starch Synthase/genetics , Synechocystis/genetics , Synechocystis/metabolism
2.
Biochim Biophys Acta ; 1847(6-7): 495-504, 2015.
Article in English | MEDLINE | ID: mdl-25687892

ABSTRACT

Plastid endosymbiosis defines a process through which a fully evolved cyanobacterial ancestor has transmitted to a eukaryotic phagotroph the hundreds of genes required to perform oxygenic photosynthesis, together with the membrane structures, and cellular compartment associated with this process. In this review, we will summarize the evidence pointing to an active role of Chlamydiales in metabolic integration of free living cyanobacteria, within the cytosol of the last common plant ancestor.


Subject(s)
Chlamydiales/physiology , Plants/microbiology , Plastids/microbiology , Symbiosis , Biological Evolution , Host-Pathogen Interactions
3.
Plant Cell ; 25(10): 3961-75, 2013 Oct.
Article in English | MEDLINE | ID: mdl-24163312

ABSTRACT

Starch, unlike hydrosoluble glycogen particles, aggregates into insoluble, semicrystalline granules. In photosynthetic eukaryotes, the transition to starch accumulation occurred after plastid endosymbiosis from a preexisting cytosolic host glycogen metabolism network. This involved the recruitment of a debranching enzyme of chlamydial pathogen origin. The latter is thought to be responsible for removing misplaced branches that would otherwise yield a water-soluble polysaccharide. We now report the implication of starch debranching enzyme in the aggregation of semicrystalline granules of single-cell cyanobacteria that accumulate both glycogen and starch-like polymers. We show that an enzyme of analogous nature to the plant debranching enzyme but of a different bacterial origin was recruited for the same purpose in these organisms. Remarkably, both the plant and cyanobacterial enzymes have evolved through convergent evolution, showing novel yet identical substrate specificities from a preexisting enzyme that originally displayed the much narrower substrate preferences required for glycogen catabolism.


Subject(s)
Biological Evolution , Cyanobacteria/enzymology , Glycogen Debranching Enzyme System/genetics , Glycogen/metabolism , Oryza/enzymology , Starch/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Cloning, Molecular , Cyanobacteria/genetics , Glycogen Debranching Enzyme System/metabolism , Mutagenesis , Oryza/genetics , Phylogeny , Plant Proteins/genetics , Plant Proteins/metabolism
4.
Nat Commun ; 4: 1941, 2013.
Article in English | MEDLINE | ID: mdl-23770768

ABSTRACT

The limited knowledge we have about red algal genomes comes from the highly specialized extremophiles, Cyanidiophyceae. Here, we describe the first genome sequence from a mesophilic, unicellular red alga, Porphyridium purpureum. The 8,355 predicted genes in P. purpureum, hundreds of which are likely to be implicated in a history of horizontal gene transfer, reside in a genome of 19.7 Mbp with 235 spliceosomal introns. Analysis of light-harvesting complex proteins reveals a nuclear-encoded phycobiliprotein in the alga. We uncover a complex set of carbohydrate-active enzymes, identify the genes required for the methylerythritol phosphate pathway of isoprenoid biosynthesis, and find evidence of sexual reproduction. Analysis of the compact, function-rich genome of P. purpureum suggests that ancestral lineages of red algae acted as mediators of horizontal gene transfer between prokaryotes and photosynthetic eukaryotes, thereby significantly enriching genomes across the tree of photosynthetic life.


Subject(s)
Genome/genetics , Porphyridium/genetics , Algal Proteins/genetics , Carbohydrate Metabolism/genetics , Cytochrome P-450 Enzyme System/metabolism , Gene Ontology , Gene Transfer, Horizontal , Glycolipids/biosynthesis , Light-Harvesting Protein Complexes/metabolism , Meiosis/genetics , Membrane Transport Proteins/metabolism , Molecular Weight , Phylogeny , Porphyridium/cytology , Porphyridium/enzymology , Reproduction/genetics , Sphingolipids/metabolism , Starch/biosynthesis
5.
Plant Cell ; 25(1): 7-21, 2013 Jan.
Article in English | MEDLINE | ID: mdl-23371946

ABSTRACT

Under the endosymbiont hypothesis, over a billion years ago a heterotrophic eukaryote entered into a symbiotic relationship with a cyanobacterium (the cyanobiont). This partnership culminated in the plastid that has spread to forms as diverse as plants and diatoms. However, why primary plastid acquisition has not been repeated multiple times remains unclear. Here, we report a possible answer to this question by showing that primary plastid endosymbiosis was likely to have been primed by the secretion in the host cytosol of effector proteins from intracellular Chlamydiales pathogens. We provide evidence suggesting that the cyanobiont might have rescued its afflicted host by feeding photosynthetic carbon into a chlamydia-controlled assimilation pathway.


Subject(s)
Bacterial Proteins/metabolism , Chlamydiales/physiology , Cyanobacteria/physiology , Plants/microbiology , Plastids/genetics , Symbiosis , Bacterial Proteins/genetics , Biological Evolution , Carbon/metabolism , Chlamydiales/enzymology , Chlamydiales/genetics , Computational Biology , Cyanobacteria/genetics , Genome, Plant/genetics , Glycogen/metabolism , Host-Pathogen Interactions , Isoamylase/genetics , Isoamylase/metabolism , Photosynthesis , Phylogeny , Plant Proteins/genetics , Plants/genetics , Plastids/enzymology
6.
Mob Genet Elements ; 2(2): 81-87, 2012 Mar 01.
Article in English | MEDLINE | ID: mdl-22934241

ABSTRACT

Lateral gene transfer (LGT) between bacteria constitutes a strong force in prokaryote evolution, transforming the hierarchical tree of life into a network of relationships between species. In contrast, only a few cases of LGT from eukaryotes to prokaryotes have been reported so far. The distal animal intestine is predominantly a bacterial ecosystem, supplying the host with energy from dietary polysaccharides through carbohydrate-active enzymes absent from its genome. It has been suggested that LGT is particularly important for the human microbiota evolution. Here we show evidence for the first eukaryotic gene identified in multiple gut bacterial genomes. We found in the genome sequence of several gut bacteria, a typically eukaryotic glycoside-hydrolase necessary for starch breakdown in plants. The distribution of this gene is patchy in gut bacteria with presence otherwise detected only in a few environmental bacteria. We speculate that the transfer of this gene to gut bacteria occurred by a sequence of two key LGT events; first, an original eukaryotic gene was transferred probably from Archaeplastida to environmental bacteria specialized in plant polysaccharides degradation and second, the gene was transferred from the environmental bacteria to gut microbes.

7.
Science ; 335(6070): 843-7, 2012 Feb 17.
Article in English | MEDLINE | ID: mdl-22344442

ABSTRACT

The primary endosymbiotic origin of the plastid in eukaryotes more than 1 billion years ago led to the evolution of algae and plants. We analyzed draft genome and transcriptome data from the basally diverging alga Cyanophora paradoxa and provide evidence for a single origin of the primary plastid in the eukaryote supergroup Plantae. C. paradoxa retains ancestral features of starch biosynthesis, fermentation, and plastid protein translocation common to plants and algae but lacks typical eukaryotic light-harvesting complex proteins. Traces of an ancient link to parasites such as Chlamydiae were found in the genomes of C. paradoxa and other Plantae. Apparently, Chlamydia-like bacteria donated genes that allow export of photosynthate from the plastid and its polymerization into storage polysaccharide in the cytosol.


Subject(s)
Cyanophora/genetics , Evolution, Molecular , Genome, Plant , Photosynthesis/genetics , Biological Evolution , Cyanobacteria/genetics , Gene Transfer, Horizontal , Genes, Bacterial , Molecular Sequence Data , Phylogeny , Symbiosis
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