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2.
Nat Commun ; 11(1): 3320, 2020 07 03.
Article in English | MEDLINE | ID: mdl-32620776

ABSTRACT

Benthic diatoms are the main primary producers in shallow freshwater and coastal environments, fulfilling important ecological functions such as nutrient cycling and sediment stabilization. However, little is known about their evolutionary adaptations to these highly structured but heterogeneous environments. Here, we report a reference genome for the marine biofilm-forming diatom Seminavis robusta, showing that gene family expansions are responsible for a quarter of all 36,254 protein-coding genes. Tandem duplications play a key role in extending the repertoire of specific gene functions, including light and oxygen sensing, which are probably central for its adaptation to benthic habitats. Genes differentially expressed during interactions with bacteria are strongly conserved in other benthic diatoms while many species-specific genes are strongly upregulated during sexual reproduction. Combined with re-sequencing data from 48 strains, our results offer insights into the genetic diversity and gene functions in benthic diatoms.


Subject(s)
Adaptation, Physiological/genetics , Diatoms/genetics , Ecosystem , Evolution, Molecular , Genome/genetics , Diatoms/classification , Diatoms/metabolism , Fresh Water , Genome Size , Genomics/methods , Polymorphism, Single Nucleotide , Seawater , Species Specificity , Transcriptome/genetics
3.
Nature ; 530(7590): 331-5, 2016 Feb 18.
Article in English | MEDLINE | ID: mdl-26814964

ABSTRACT

Seagrasses colonized the sea on at least three independent occasions to form the basis of one of the most productive and widespread coastal ecosystems on the planet. Here we report the genome of Zostera marina (L.), the first, to our knowledge, marine angiosperm to be fully sequenced. This reveals unique insights into the genomic losses and gains involved in achieving the structural and physiological adaptations required for its marine lifestyle, arguably the most severe habitat shift ever accomplished by flowering plants. Key angiosperm innovations that were lost include the entire repertoire of stomatal genes, genes involved in the synthesis of terpenoids and ethylene signalling, and genes for ultraviolet protection and phytochromes for far-red sensing. Seagrasses have also regained functions enabling them to adjust to full salinity. Their cell walls contain all of the polysaccharides typical of land plants, but also contain polyanionic, low-methylated pectins and sulfated galactans, a feature shared with the cell walls of all macroalgae and that is important for ion homoeostasis, nutrient uptake and O2/CO2 exchange through leaf epidermal cells. The Z. marina genome resource will markedly advance a wide range of functional ecological studies from adaptation of marine ecosystems under climate warming, to unravelling the mechanisms of osmoregulation under high salinities that may further inform our understanding of the evolution of salt tolerance in crop plants.


Subject(s)
Adaptation, Physiological/genetics , Evolution, Molecular , Genome, Plant/genetics , Seawater , Zosteraceae/genetics , Acclimatization/genetics , Cell Wall/chemistry , Ethylenes/biosynthesis , Gene Duplication , Genes, Plant/genetics , Metabolic Networks and Pathways , Molecular Sequence Data , Oceans and Seas , Osmoregulation/genetics , Phylogeny , Plant Leaves/metabolism , Plant Stomata/genetics , Pollen/metabolism , Salinity , Salt Tolerance/genetics , Seaweed/genetics , Terpenes/metabolism
4.
BMC Genomics ; 15: 1103, 2014 Dec 13.
Article in English | MEDLINE | ID: mdl-25494611

ABSTRACT

BACKGROUND: Cost effective next generation sequencing technologies now enable the production of genomic datasets for many novel planktonic eukaryotes, representing an understudied reservoir of genetic diversity. O. tauri is the smallest free-living photosynthetic eukaryote known to date, a coccoid green alga that was first isolated in 1995 in a lagoon by the Mediterranean sea. Its simple features, ease of culture and the sequencing of its 13 Mb haploid nuclear genome have promoted this microalga as a new model organism for cell biology. Here, we investigated the quality of genome assemblies of Illumina GAIIx 75 bp paired-end reads from Ostreococcus tauri, thereby also improving the existing assembly and showing the genome to be stably maintained in culture. RESULTS: The 3 assemblers used, ABySS, CLCBio and Velvet, produced 95% complete genomes in 1402 to 2080 scaffolds with a very low rate of misassembly. Reciprocally, these assemblies improved the original genome assembly by filling in 930 gaps. Combined with additional analysis of raw reads and PCR sequencing effort, 1194 gaps have been solved in total adding up to 460 kb of sequence. Mapping of RNAseq Illumina data on this updated genome led to a twofold reduction in the proportion of multi-exon protein coding genes, representing 19% of the total 7699 protein coding genes. The comparison of the DNA extracted in 2001 and 2009 revealed the fixation of 8 single nucleotide substitutions and 2 deletions during the approximately 6000 generations in the lab. The deletions either knocked out or truncated two predicted transmembrane proteins, including a glutamate-receptor like gene. CONCLUSION: High coverage (>80 fold) paired-end Illumina sequencing enables a high quality 95% complete genome assembly of a compact ~13 Mb haploid eukaryote. This genome sequence has remained stable for 6000 generations of lab culture.


Subject(s)
Chlorophyta/genetics , Genome, Plant , Genomics , Computational Biology , Evolution, Molecular , Genetic Variation , High-Throughput Nucleotide Sequencing , Molecular Sequence Annotation , Molecular Sequence Data
5.
Genome Biol Evol ; 5(12): 2393-401, 2013.
Article in English | MEDLINE | ID: mdl-24273312

ABSTRACT

Genes in pieces and spliceosomal introns are a landmark of eukaryotes, with intron invasion usually assumed to have happened early on in evolution. Here, we analyze the intron landscape of Micromonas, a unicellular green alga in the Mamiellophyceae lineage, demonstrating the coexistence of several classes of introns and the occurrence of recent massive intron invasion. This study focuses on two strains, CCMP1545 and RCC299, and their related individuals from ocean samplings, showing that they not only harbor different classes of introns depending on their location in the genome, as for other Mamiellophyceae, but also uniquely carry several classes of repeat introns. These introns, dubbed introner elements (IEs), are found at novel positions in genes and have conserved sequences, contrary to canonical introns. This IE invasion has a huge impact on the genome, doubling the number of introns in the CCMP1545 strain. We hypothesize that each IE class originated from a single ancestral IE that has been colonizing the genome after strain divergence by inserting copies of itself into genes by intron transposition, likely involving reverse splicing. Along with similar cases recently observed in other organisms, our observations in Micromonas strains shed a new light on the evolution of introns, suggesting that intron gain is more widespread than previously thought.


Subject(s)
Chlorophyta/genetics , DNA Transposable Elements/genetics , Evolution, Molecular , Introns/genetics , Arabidopsis/genetics , Biological Evolution , Chlamydomonas reinhardtii/genetics , Chlorophyta/classification , Conserved Sequence/genetics , Genetic Variation , Genome, Plant/genetics , Phylogeny , Spliceosomes/genetics
6.
Environ Microbiol ; 15(8): 2147-53, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23826978

ABSTRACT

With the advent of next generation genome sequencing, the number of sequenced algal genomes and transcriptomes is rapidly growing. Although a few genome portals exist to browse individual genome sequences, exploring complete genome information from multiple species for the analysis of user-defined sequences or gene lists remains a major challenge. pico-PLAZA is a web-based resource (http://bioinformatics.psb.ugent.be/pico-plaza/) for algal genomics that combines different data types with intuitive tools to explore genomic diversity, perform integrative evolutionary sequence analysis and study gene functions. Apart from homologous gene families, multiple sequence alignments, phylogenetic trees, Gene Ontology, InterPro and text-mining functional annotations, different interactive viewers are available to study genome organization using gene collinearity and synteny information. Different search functions, documentation pages, export functions and an extensive glossary are available to guide non-expert scientists. To illustrate the versatility of the platform, different case studies are presented demonstrating how pico-PLAZA can be used to functionally characterize large-scale EST/RNA-Seq data sets and to perform environmental genomics. Functional enrichments analysis of 16 Phaeodactylum tricornutum transcriptome libraries offers a molecular view on diatom adaptation to different environments of ecological relevance. Furthermore, we show how complementary genomic data sources can easily be combined to identify marker genes to study the diversity and distribution of algal species, for example in metagenomes, or to quantify intraspecific diversity from environmental strains.


Subject(s)
Databases, Genetic/standards , Databases, Genetic/trends , Eukaryota/genetics , Genomics , Chlorophyta/genetics , DNA Barcoding, Taxonomic , Diatoms/genetics , Genetic Variation , Genome, Plant/genetics
7.
Genome Biol ; 13(8): R74, 2012 Aug 24.
Article in English | MEDLINE | ID: mdl-22925495

ABSTRACT

BACKGROUND: Bathycoccus prasinos is an extremely small cosmopolitan marine green alga whose cells are covered with intricate spider's web patterned scales that develop within the Golgi cisternae before their transport to the cell surface. The objective of this work is to sequence and analyze its genome, and to present a comparative analysis with other known genomes of the green lineage. RESEARCH: Its small genome of 15 Mb consists of 19 chromosomes and lacks transposons. Although 70% of all B. prasinos genes share similarities with other Viridiplantae genes, up to 428 genes were probably acquired by horizontal gene transfer, mainly from other eukaryotes. Two chromosomes, one big and one small, are atypical, an unusual synapomorphic feature within the Mamiellales. Genes on these atypical outlier chromosomes show lower GC content and a significant fraction of putative horizontal gene transfer genes. Whereas the small outlier chromosome lacks colinearity with other Mamiellales and contains many unknown genes without homologs in other species, the big outlier shows a higher intron content, increased expression levels and a unique clustering pattern of housekeeping functionalities. Four gene families are highly expanded in B. prasinos, including sialyltransferases, sialidases, ankyrin repeats and zinc ion-binding genes, and we hypothesize that these genes are associated with the process of scale biogenesis. CONCLUSION: The minimal genomes of the Mamiellophyceae provide a baseline for evolutionary and functional analyses of metabolic processes in green plants.


Subject(s)
Chlorophyta/genetics , Chromosomes, Plant/genetics , Genome, Plant/genetics , Base Composition , Chlorophyta/classification , Evolution, Molecular , Gene Order , Gene Transfer, Horizontal , Genomics , Introns , N-Acetylneuraminic Acid/metabolism , Phylogeny , Sequence Analysis, DNA
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