ReviewBMC genomics2024
A decade of dinoflagellate genomics illuminating an enigmatic eukaryote cell.
Review in BMC genomics, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 17 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Who cites it
17 citing papers in PubMed.
- Recent plastid replacement in Karlodinium ballantinum (Kareniaceae, Dinoflagellata) challenges the paradigms of endosymbiotic gene transfer.Molecular biology and evolution · 2026Article
- Ancient conservation of androglobin expression reveals its evolutionary link to ciliary processes.Molecular biology and evolution · 2026Article
- Dual urea utilization enzyme systems in Symbiodiniaceae coral symbionts under warming.BMC biology · 2026Article
- Molecular Mechanisms of Algicidal Bacteria in Controlling Harmful Algal Blooms: Advances in Bacteria-Algae Interactions.Environmental microbiology reports · 2026Review
- Disentangled Assembly Graphs Reveal Hidden Eukaryotic Diversity in eDNA Metagenomic Data.Molecular ecology resources · 2026Article
- Transcriptomic insights into polyketides and toxin biosynthesis genes in freshwater dinoflagellates.Scientific reports · 2026Article
- Review
- RNA-Binding Proteins in Dinoflagellates.International journal of molecular sciences · 2026Review
- Collectors, not hoarders: Complex gene structures in Amphidinium carterae revealed through nanopore sequencing.BMC genomics · 2025Article
- First genome sequences of the dinoflagellate Effrenium voratum strain isolated from the coral Hydnophora exesa in temperate Japanese region.BMC genomic data · 2025Article
- The pathogenesis ofParasitology · 2025Review
- Positive Selection of a Starch Synthesis Gene and Phenotypic Differentiation of Starch Accumulation in Symbiotic and Free-Living Coral Symbiont Dinoflagellate Species.Genome biology and evolution · 2025Article
- Some Insights into the Inventiveness of Dinoflagellates: Coming Back to the Cell Biology of These Protists.Microorganisms · 2025Review
- Broad active metabolic pathways, autophagy, and antagonistic hormones regulate dinoflagellate cyst dormancy in marine sediments.Science advances · 2025Article
- Distinct transcriptomic strategies underlie differential heat tolerance in Symbiodiniaceae symbionts.The ISME journal · 2025Article
- Holocene and contemporary marine dinoflagellate community patterns predict expansion of generalist dinoflagellate blooms in warming oceans.The ISME journal · 2025Article
- Unlocking the biotechnological potential of Baltic microorganisms.Frontiers in microbiology · 2025Review
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1 author.
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Abstract
Dinoflagellates are a remarkable group of protists, not only for their association with harmful algal blooms and coral reefs but also for their numerous characteristics deviating from the rules of eukaryotic biology. Genome research on dinoflagellates has lagged due to their immense genome sizes in most species (~ 1-250 Gbp). Nevertheless, the last decade marked a fruitful era of dinoflagellate genomics, with 27 genomes sequenced and many insights attained. This review aims to synthesize information from these genomes, along with other omic data, to reflect on where we are now in understanding dinoflagellates and where we are heading in the future. The most notable insights from the decade-long genomics work include: (1) dinoflagellate genomes have been expanded in multiple times independently, probably by a combination of rampant retroposition, accumulation of repetitive DNA, and genome duplication; (2) Symbiodiniacean genomes are highly divergent, but share about 3,445 core unigenes concentrated in 219 KEGG pathways; (3) Most dinoflagellate genes are encoded unidirectionally and are not intron-poor; (4) The dinoflagellate nucleus has undergone extreme evolutionary changes, including complete or nearly complete loss of nucleosome and histone H1, and acquisition of dinoflagellate viral nuclear protein (DVNP); (5) Major basic nuclear protein (MBNP), histone-like protein (HLP), and bacterial HU-like protein (HCc) belong to the same protein family, and MBNP can be the unifying name; (6) Dinoflagellate gene expression is regulated by poorly understood mechanisms, but microRNA and other epigenetic mechanisms are likely important; (7) Over 50% of dinoflagellate genes are "dark" and their functions remain to be deciphered using functional genetics; (8) Initial insights into the genomic basis of parasitism and mutualism have emerged. The review then highlights functionally unique and interesting genes. Future research needs to obtain a finished genome, tackle large genomes, characterize the unknown genes, and develop a quantitative molecular ecological model for addressing ecological questions.
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