Intraspecific variation in mitogenomes has provided the resolution to distinguish between morphologically indistinguishable species and highlight cryptic speciation. This level of variation is underexplored in introduced marine algae. This study evaluated the mitogenomic variability of Gracilaria vermiculophylla, one of the most invasive red algae in the Northern Hemisphere. Nine mitogenomes, comprising seven newly generated complete mitogenomes from Korea, Japan, and Morocco, plus two publicly available mitogenomes, were included in our analysis. The mitogenomes were highly conserved, ranged from 26,064 to 26,178 bp in length, and contained 52 genes comprising 25 protein-coding genes, three rRNAs, and 24 tRNAs. Nucleotide composition showed a strong AT bias (71.6%), with AT skew and GC skew values of 0.050 and 0.014-0.021, respectively. Pairwise divergences of cox2, rnl and rns rRNA were remarkably low, in a range of 0-0.06%, suggesting alternate markers for determining recent introductions. The phylogenetic relationship based on protein-coding genes revealed three shallow groups in G. vermiculophylla, which were correlated with distribution: two C groups from warm temperate sites and one T group from cold temperate sites. This result highlights mitogenomics as a new tool for the deeper understanding of phylogeography and invasion genetics of marine red algae.
Epiphytic algae are important components of marine ecosystems. Despite the importance of epiphytic algae in marine ecosystems, our knowledge of these taxa is still limited. The marine red algal genus Reinboldiella, which is distributed mainly in the northwestern Pacific region, is characterized by tiny thalli that are epiphytic on various other red algae. Six species of the genus have been reported in Japan, Taiwan, and Korea. In this study, 50 Korean Reinboldiella specimens, previously known as Reinboldiella schmitziana, were collected from 11 localities and reexamined to verify their taxonomic status. We describe a new species, Reinboldiella koreana sp. nov., based on rbcL phylogeny and morphological observations. A total of four grateloupiacean species (Pachymeniopsis lanceolata, P. elliptica, Grateloupia turuturu, and G. asiatica) were identified as host species of R. koreana sp. nov. Due to the restricted host range of R. koreana sp. nov., a phylogenetic tree was reconstructed using the cox1 marker to confirm the co-phylogenetic relationships between the epiphytic algae and their grateloupiacean hosts. Two of the four cox1 haplotypes of R. koreana were found in different host species, regardless of which haplotype they were. It indicates that there are no co-phylogenetic relationships between R. koreana and host species.
Soil cyanobacterium, FBCC-A195 were isolated from the soil underneath the Jangnak Bridge, Republic of Korea. The FBCC-A195 was studied using light microscopy (LM), transmission electron microscopy (TEM), 16S rRNA, 16S–23S ITS, and ecological data. FBCC-A195 showed the circular cross-section of the trichome, broad mucilaginous envelopes, a swirl-like pattern of thylakoids inside the cell, and the lowest length/width ratio within the genus. In the 16S rRNA phylogeny, FBCC-A195 showed a sister relationship of Hormoscilla and belonged to the family Gomontiellaceae. The p-distance of FBCC-A195 ranged from 1.7% with H. pringsheimii to 12% with Komvophoron kgarii in the family. In the secondary structure of 16S–23S ITS, D1–D1’, Box-B, and V3 helix of FBCC-A195 were distinguished from those of other taxa in the Gomontiellaceae. Based upon morphological, ecological, and molecular traits, Katagnymene terrestris proved to be a unique and novel species of the Katagnymene.
Thin filamentous cyanobacteria isolated from three collection sites in the Republic of Korea were suggested as three new species belonging to the genus Plectolyngbya, mainly according to their molecular characteristics. The species of Plectolyngbya, including the type species of P. hodgsonii, were cryptic species that were difficult to distinguish morphologically from each other, and had appeared in ecologically diverse habitats. P. terrestris and P. koreana were subaerophytes collected from certain black spots and soils between stone walls in Seoul, Republic of Korea. In addition, hypersaline species collected from a saltern, P. salina, shared the same halophytic feature as the P. hodgsonii from the littoral zone of a coastal lake in the Antarctic. The 16S rRNA gene phylogeny supported the monophyly of Plectolyngbya with solid support, 99% Maximum Likelihood, 98% Neighbor-Joining bootstrap support values, and 1.0 Bayesian posterior probability. The ITS sequences of P. terrestris, P. koreana, and P. salina were unique in length and nucleotide composition, with different secondary structures of D1–D1ʹ and Box-B helices, compared with those of P. hodgsonii. These results demonstrate that the proposed new Plectolyngbya species were unique in their molecular traits. Therefore, we suggest them as new species belonging to the genus Plectolyngbya with the names P. terrestris sp. nov., P. koreana sp. nov., and P. salina sp. nov.
Polyopes lancifolius is a species of Halymeniales, the fifth species-rich order within Rhodophyta. Using next-generation sequencing techniques, we recovered the complete mitochondrial genome of P. lancifolius, i.e. total 26,142 bp in length with 31% GC contents. A total of 49 functional genes were annotated, including 24 protein-coding, 23 transfer RNA, and 2 ribosomal RNA genes. The gene content and synteny have been highly congruent to those of the other halymenialean species, such as Grateloupia taiwanensis, G. filicina, and Grateloupia angusta. Interestingly, the cox1 intron and intronic Open Reading Frame (ORF) are absent in P. lancifolius, that are existed in the other three halymenialean species.
The marine red algal order Halymeniales currently includes two families, the Halymeniaceae and Tsengiaceae, and consist of 38 genera and about 358 species. Phylogenetic analyses on specific taxa of the order are common, but not comprehensive, leaving the many intra-ordinal relationships within the Halymeniales unresolved. To reassess the phylogeny of the Halymeniales, we conducted extensive phylogenetic analyses based on 207 rbcL sequences and multigene analyses (rbcL, psaA, psbA, cox1, and LSU) using 47 taxa from the order. The combined data set fully supports the monophyly of the Grateloupia sensu lato clade. Phylogenetic assessment of the reproductive structures in the order using the type of auxiliary cell ampullae, pericarp origin, and tetrasporangial development characters, supports a Grateloupia sensu lato clade distinct from the Halymeniaceae exemplified by the generitype Halymenia. As a result, we propose to reinstate the family Grateloupiaceae Schmitz based on the Grateloupia sensu lato clade and including Grateloupia and eight other genera: Dermocorynus, Mariaramirezia, Neorubra, Pachymeniopsis, Kintokiocolax, Phyllymenia, Prionitis, and Yonagunia. The emended Grateloupiaceae is distinguished from the Halymeniaceae by the following three characteristics; (i) simple unbranched and unilateral type of auxiliary cell ampullae, (ii) pericarp formed densely by the fusion of secondary medullary filaments from subcortical cells and lateral ampullary filaments from a fusion cell complex, (iii) tetrasporangia originating laterally from the outer cortex. The Halymeniales comprises the monophyletic Grateloupiaceae, Halymeniaceae sensu lato (which requires further study), and the Tsengiaceae.
The complete mitochondrial genome of the pavlovophycean microalga Diacronema viridis CCMP 620 was sequenced and characterized. The circular mitogenome is a total 29,282 bp in length with 39.2% GC content and contains 47 genes, including 20 protein-coding, three rRNA, and 24 tRNA genes. The gene synteny of D. viridis and D. lutheri has been highly conserved; however, the gene content (absence of introns and ORFs) and repeat regions (3.7 kbp) of D. viridis contributed to significant difference of mitogenomes within the Diacronema.
The relationships among the Aurearenophyceae, Phaeothamniophyceae, Phaeophyceae and Xanthophyceae lineages of the Heterokontophyta SI clade are not well known. By adding previously unexamined taxa related to these classes in a five gene phylogeny (SSU rRNA, atpB, psaA, psaB, rbcL), we recovered an assemblage of taxa previously unrecognized. We propose the class Phaeosacciophyceae class. nov., that includes Phaeosaccion collinsii, Phaeosaccion multiseriatum sp. nov., Phaeosaccion okellyi sp. nov., Antarctosaccion applanatum, Tetrasporopsis fuscescens, Tetrasporopsis moei sp. nov., and Psammochrysis cassiotisii gen. & sp. nov. We re-examine the literature for Chrysomeris, Nematochrysis, Chrysowaernella and the invalid name "Giraudyopsis" and conclude some taxa in previous studies are misidentified or misnamed, i.e. Chrysomeris and Chrysowaernella, respectively. We also show that Nematochrysis sessilis var. vectensis and Nematochrysis hieroglyphica may belong in the recently described class Chrysoparadoxophyceae. The phylogenetic relationships of Phaeobotrys solitaria and Pleurochloridella botrydiopsis are not clearly resolved, but they branch near the Xanthophyceae. Here we describe a new class Phaeosacciophyceae, a new order Phaeosacciales, a new family Tetrasporopsidaceae, a new genus Psammochrysis and four new species.
Cryptophytes are a ubiquitous algal group and are important primary producers in aquatic ecosystems. Identification of lineages within the group is difficult because of their simple morphology and they are often enumerated at the class level in ecological research. Despite the increasing number of molecular probes used for identification of microorganisms, rRNA genes (i.e. nuclear 18S, ITS, and 28S, and nucleomorph 18S) are the markers most commonly used to identify cryptophytes. To provide a broader choice of markers, we compared and characterised the utility of 13 plastid genes in 23 culture strains, which cover the spectrum cryptophycean lineages (Clades 1-5). The genes include 11 protein-coding (atpA, atpB, chlI, clpC, dnaK, psaA, psbA, rbcL, rpoC1, secA, and tufA) and two ribosomal RNA (plastid 16S and 23S) genes. Most of the genes were successfully amplified and sequenced using newly designed primers, and the sequences aligned with minimal indels. The protein-coding genes showed higher levels of divergence (P-distance, and synonymous and nonsynonymous substitution rates) and higher identification index than those of rRNAs. Considering divergence and phylogenetic usefulness, we selected atpB, psaA, and rbcL as the best candidates for cryptophycean clade identification and further field research.
An amendment to this paper has been published and can be accessed via the original article.
Genetic diversity patterns around the North Pacific received attention for marine organisms and have been used to infer biodiversity “hotspots” in the region. We conducted a phylogeographic study of the red alga Gloiopeltis furcata, investigating cryptic species diversity and comparing population genetic structure in the north Pacific. A phylogenetic tree and haplotype networks were constructed on the basis of 201 mitochondrial COI-5P sequences and 149 plastid rbcL sequences from G. furcata specimens. Eight distinct cryptic lineages (A–H) were identified within G. furcata. These lineages showed high genetic diversity and complex geographic distributions. All eight lineages of G. furcata sensu lato were present in the NW Pacific; however, only a single lineage (A) was present in the NE Pacific, suggesting that the NW Pacific is a center of genetic diversity for G. furcata sensu lato. Habitat discontinuities of G. furcata sensu lato in the high rocky intertidal zone may have been responsible for the high level of genetic differentiation of G. furcata sensu lato in the NW Pacific by impeding genetic exchange between adjacent populations. Our phylogenetic diversity suggests that the NW Pacific, especially Jeju Island, was a genetic diversity hotspot involving species diversity of Gloiopeltis.
We examined 12 strains representing eight species classified in the algal class Phaeothamniophyceae (Heterokontophyta). Based upon a five-gene molecular phylogeny (nuclear-encoded SSU rRNA and plastid-encoded psaA, psbA, psbC, and rbcL) and light microscopic observations, we describe five new species: Phaeoschizochlamys santosii sp. nov., Phaeoschizochlamys siveri sp. nov., Phaeothamnion wetherbeei sp. nov., Stichogloea dopii sp. nov. and Stichogloea fawleyi sp. nov. The Phaeothamniophyceae, as delimited here, form a natural group that is sister to the Aurearenophyceae. Molecular phylogenetic analyses proved more reliable than morphological characters for distinguishing species. Evolutionary trends with the SI clade of the heterokont algae are discussed.
To understand prokaryotic responses during a spring bloom in offshore shelf waters, prokaryotic parameters were measured daily at a station located in the middle of the East China Sea over a six-week period from March 25 to May 19. The site experienced a phytoplankton bloom in late April, triggering changes in prokaryotic abundance and production after a lag of approximately one week. Before the bloom, changes in prokaryotic composition were small. Both during the bloom and in the post-bloom period, successive changes among bacterial groups were apparent. A SAR11 group became more dominant during the bloom period, and diverse groups belonging to the Flavobacteriia occurred dominantly during both the bloom and post-bloom periods. However, bacterial community changes at the species level during the bloom and post-bloom periods occurred rapidly in a time scale of a few days. Especially, NS5, NS4 and Formosa bacteria belonging to Flavobacteriia and bacteria belonging to Halieaceae and Arenicellaceae families of Gammaproteobacteria showed a successive pattern with large short-term variation during the period. The changes in prokaryotic composition were found to be related to phytoplankton biomass and composition, as well as seawater temperature and variations in nutrients.
Red algae (Rhodophyta) underwent two phases of large-scale genome reduction during their early evolution. The red seaweeds did not attain genome sizes or gene inventories typical of other multicellular eukaryotes. We generated a high-quality 92.1 Mb draft genome assembly from the red seaweed Gracilariopsis chorda, including methylation and small (s)RNA data. We analyzed these and other Archaeplastida genomes to address three questions: 1) What is the role of repeats and transposable elements (TEs) in explaining Rhodophyta genome size variation, 2) what is the history of genome duplication and gene family expansion/reduction in these taxa, and 3) is there evidence for TE suppression in red algae? We find that the number of predicted genes in red algae is relatively small (4,803-13,125 genes), particularly when compared with land plants, with no evidence of polyploidization. Genome size variation is primarily explained by TE expansion with the red seaweeds having the largest genomes. Long terminal repeat elements and DNA repeats are the major contributors to genome size growth. About 8.3% of the G. chorda genome undergoes cytosine methylation among gene bodies, promoters, and TEs, and 71.5% of TEs contain methylated-DNA with 57% of these regions associated with sRNAs. These latter results suggest a role for TE-associated sRNAs in RNA-dependent DNA methylation to facilitate silencing. We postulate that the evolution of genome size in red algae is the result of the combined action of TE spread and the concomitant emergence of its epigenetic suppression, together with other important factors such as changes in population size.
The thecate filose amoeba Paulinella chromatophora is a good model organism for understanding plastid organellogenesis because its chromatophore was newly derived from an alpha-cyanobacterium. Paulinella chromatophora was the only known photosynthetic Paulinella species until recent studies that suggested a species level of diversity. Here, we described a new photosynthetic species P. micropora sp. nov. based on morphological and molecular evidence from a newly established strain KR01. The chromatophore genome of P. micropora KR01 was fully determined; the genome was 976,991bp in length, the GC content was 39.9%, and 908 genes were annotated. A pairwise comparison of chromatophore genome sequences between strains KR01 and FK01, representing two different natural populations of P. micropora, showed a 99.85% similarity. Differences between the two strains included single nucleotide polymorphisms (SNPs) in CDSs, which resulted in 357 synonymous and 280 nonsynonymous changes, along with 245 SNPs in non-coding regions. Indels (37) and microinversions (14) were also detected. Species diversity for photosynthetic Paulinella was surveyed using samples collected from around the world. We compared our new species to two photosynthetic species, P. chromatophora and P. longichromatophora. Phylogenetic analyses using four gene markers revealed three distinct lineages of photosynthetic Paulinella species including P. micropora sp. nov.
The complete mitochondrial DNA of tube-dwelling diatom, Berkeleya fennica was sequenced and characterized. The circular mitogenome contains 63 genes in 35,509 bp (29.7% GC), including 36 protein-coding, 25 tRNA, 2 rRNA genes. Most of the protein-coding (27) genes have usual ATG start codon, except 9 genes such as ATA for rps8; ATC for rps14; ATT for rps12 and orf51; GTG for nad5; TTA for cox3, nad4 and orf147; and TTG for cob. The nad11 and rrs are the only interrupted genes in the mitogenome. Gene content and synteny of B. fennica are very similar to Phaeodactylum tricoruntum (NC_016739). Absence of repeat region in B. fennica resulted in mitogenome size difference to P. tricoruntum. A new mitogenome will provide useful information for mitochondrial genome diversity and evolution of the diatoms.