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13
result(s) for
"volvocine green algae"
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Repeated evolution and reversibility of self-fertilization in the volvocine green algae
by
Hanschen, Erik R.
,
Michod, Richard E.
,
Wiens, John J.
in
Algae
,
Aquatic plants
,
Biological Evolution
2018
Outcrossing and self-fertilization are fundamental strategies of sexual reproduction, each with different evolutionary costs and benefits. Self-fertilization is thought to be an evolutionary “dead-end” strategy, beneficial in the short term but costly in the long term, resulting in self-fertilizing species that occupy only the tips of phylogenetic trees. Here, we use volvocine green algae to investigate the evolution of self-fertilization. We use ancestral-state reconstructions to show that self-fertilization has repeatedly evolved from outcrossing ancestors and that multiple reversals from selfing to outcrossing have occurred. We use three phylogenetic metrics to show that self-fertilization is not restricted to the tips of the phylogenetic tree, a finding inconsistent with the view of self-fertilization as a dead-end strategy. We also find no evidence for higher extinction rates or lower speciation rates in selfing lineages. We find that self-fertilizing species have significantly larger colonies than outcrossing species, suggesting the benefits of selfing may counteract the costs of increased size. We speculate that our macroevolutionary results on self-fertilization (i.e., non-tippy distribution, no decreased diversification rates) may be explained by the haploid-dominant life cycle that occurs in volvocine algae, which may alter the costs and benefits of selfing.
Journal Article
Multicellularity Drives the Evolution of Sexual Traits
by
Hanschen, Erik R.
,
Michod, Richard E.
,
Wiens, John J.
in
Algae
,
Aquatic plants
,
Biological Evolution
2018
From the male peacock’s tail plumage to the floral displays of flowering plants, traits related to sexual reproduction are often complex and exaggerated. Why has sexual reproduction become so complicated? Why have such exaggerated sexual traits evolved? Early work posited a connection between multicellularity and sexual traits such as anisogamy (i.e., the evolution of small sperm and large eggs). Anisogamy then drives the evolution of other forms of sexual dimorphism. Yet the relationship between multicellularity and the evolution of sexual traits has not been empirically tested. Given their extensive variation in both multicellular complexity and sexual systems, the volvocine green algae offer a tractable system for understanding the interrelationship of multicellular complexity and sex. Here we show that species with greater multicellular complexity have a significantly larger number of derived sexual traits, including anisogamy, internal fertilization, and secondary sexual dimorphism. Our results demonstrate that anisogamy repeatedly evolved from isogamous multicellular ancestors and that anisogamous species are larger and produce larger zygotes than isogamous species. In the volvocine algae, the evolution of multicellularity likely drives the evolution of anisogamy, and anisogamy subsequently drives secondary sexual dimorphism. Multicellularity may set the stage for the overall diversity of sexual complexity throughout the Tree of Life.
Journal Article
Cryopreservation of two species of the multicellular volvocine green algal genus Astrephomene
by
Matsuzaki, Ryo
,
Nozaki, Hisayoshi
,
Mori, Fumi
in
Analysis
,
Asexual cycle, Astrephomene, Cryopreservation, Cryoprotectant, Culture collection, Volvocine green algae
,
Biological Microscopy
2023
Background
Astrephomene
is an interesting green algal genus that, together with
Volvox
, shows convergent evolution of spheroidal multicellular bodies with somatic cells of the colonial or multicellular volvocine lineage. A recent whole-genome analysis of
A. gubernaculifera
resolved the molecular-genetic basis of such convergent evolution, and two species of
Astrephomene
were described. However, maintenance of culture strains of
Astrephomene
requires rapid inoculation of living cultures, and cryopreserved culture strains have not been established in public culture collections.
Results
To establish cryopreserved culture strains of two species of
Astrephomene
, conditions for cryopreservation of the two species were investigated using immature and mature vegetative colonies and two cryoprotectants: N,N-dimethylformamide (DMF) and hydroxyacetone (HA). Rates of cell survival of the
A. gubernaculifera
or
A. perforata
strain after two-step cooling and freezing in liquid nitrogen were compared between different concentrations (3 and 6%) of DMF and HA and two types of colonies: immature colonies (small colonies newly released from the parent) and mature colonies (large colonies just before daughter colony formation). The highest rate of survival [11 ± 13% (0.36–33%) by the most probable number (MPN) method] of
A. gubernaculifera
strain NIES-4017 (established in 2014) was obtained when culture samples of immature colonies were subjected to cryogenic treatment with 6% DMF. In contrast, culture samples of mature colonies subjected to 3% HA cryogenic treatment showed the highest “MPN survival” [5.5 ± 5.9% (0.12–12%)] in
A. perforata
. Using the optimized cryopreservation conditions for each species, survival after freezing in liquid nitrogen was examined for six other strains of
A. gubernaculifera
(established from 1962 to 1981) and another
A. perforata
strain maintained in the Microbial Culture Collection at the National Institute for Environmental Studies (MCC-NIES). We obtained ≥0.1% MPN survival of the
A. perforata
strain. However, only two of the six strains of
A. gubernaculifera
showed ≥0.1% MPN survival. By using the optimal cryopreserved conditions obtained for each species, five cryopreserved strains of two species of
Astrephomene
were established and deposited in the MCC-NIES.
Conclusions
The optimal cryopreservation conditions differed between the two species of
Astrephomene
. Cryopreservation of long-term-maintained strains of
A. gubernaculifera
may be difficult; further studies of cryopreservation of these strains are needed.
Journal Article
Whole-genome sequencing analysis of volvocine green algae reveals the molecular genetic basis for the diversity and evolution of sex
by
YAMAMOTO, Kayoko
,
TAKAHASHI, Kohei
,
NOZAKI, Hisayoshi
in
20th century
,
Algae
,
Artificial chromosomes
2024
This review describes the development of evolutionary studies of sex based on the volvocine lineage of green algae, which was facilitated by whole-genome analyses of both model and non-model species. Volvocine algae, which include Chlamydomonas and Volvox species, have long been considered a model group for experimental studies investigating the evolution of sex. Thus, whole-genomic information on the sex-determining regions of volvocine algal sex chromosomes has been sought to elucidate the molecular genetic basis of sex evolution. By 2010, whole genomes were published for two model species in this group, Chlamydomonas reinhardtii and Volvox carteri. Recent improvements in sequencing technology, particularly next-generation sequencing, allowed our studies to obtain complete genomes for non-model, but evolutionary important, volvocine algal species. These genomes have provided critical details about sex-determining regions that will contribute to our understanding of the diversity and evolution of sex.
Journal Article
Embryogenesis of flattened colonies implies the innovation required for the evolution of spheroidal colonies in volvocine green algae
by
Yamashita, Shota
,
Nozaki, Hisayoshi
in
Algae
,
Animal Systematics/Taxonomy/Biogeography
,
Aquatic plants
2019
Background
Volvocine algae provide a suitable model for investigation of the evolution of multicellular organisms. Within this group, evolution of the body plan from flattened to spheroidal colonies is thought to have occurred independently in two different lineages, Volvocaceae and
Astrephomene
. Volvocacean species undergo inversion to form a spheroidal cell layer following successive cell divisions during embryogenesis. During inversion, the daughter protoplasts change their shape and develop acute chloroplast ends (opposite to basal bodies). By contrast,
Astrephomene
does not undergo inversion; rather, its daughter protoplasts rotate during successive cell divisions to form a spheroidal colony. However, the evolutionary pathways of these cellular events involved in the two tactics for formation of spheroidal colony are unclear, since the embryogenesis of extant volvocine genera with ancestral flattened colonies, such as
Gonium
and
Tetrabaena
, has not previously been investigated in detail.
Results
We conducted time-lapse imaging by light microscopy and indirect immunofluorescence microscopy with staining of basal bodies, nuclei, and microtubules to observe embryogenesis in
G. pectorale
and
T. socialis
, which form 16-celled or 4-celled flattened colonies, respectively. In
G. pectorale
, a cup-shaped cell layer of the 16-celled embryo underwent gradual expansion after successive cell divisions, with the apical ends (position of basal bodies) of the square embryo’s peripheral protoplasts separated from each other. In
T. socialis
, on the other hand, there was no apparent expansion of the daughter protoplasts in 4-celled embryos after successive cell divisions, however the two pairs of diagonally opposed daughter protoplasts shifted slightly and flattened after hatching. Neither of these two species exhibited rotation of daughter protoplasts during successive cell divisions as in
Astrephomene
or the formation of acute chloroplast ends of daughter protoplasts as in volvocacean inversion.
Conclusions
The present results indicate that the ancestor of
Astrephomene
might have newly acquired the rotation of daughter protoplasts after it diverged from the ancestor of
Gonium
, while the ancestor of Volvocaceae might have newly acquired the formation of acute chloroplast ends to complete inversion after divergence from the ancestor of Goniaceae (
Gonium
and
Astrephomene
).
Journal Article
Phylotranscriptomics points to multiple independent origins of multicellularity and cellular differentiation in the volvocine algae
2021
Background
The volvocine algae, which include the single-celled species
Chlamydomonas reinhardtii
and the colonial species
Volvox carteri
, serve as a model in which to study the evolution of multicellularity and cellular differentiation. Studies reconstructing the history of this group have by and large relied on datasets of one to a few genes for phylogenetic inference and ancestral character state reconstruction. As a result, volvocine phylogenies lack concordance depending on the number and/or type of genes (i.e., chloroplast vs nuclear) chosen for phylogenetic inference. While multiple studies suggest that multicellularity evolved only once in the volvocine algae, that each of its three colonial families is monophyletic, and that there have been at least three independent origins of cellular differentiation in the group, other studies call into question one or more of these conclusions. An accurate assessment of the evolutionary history of the volvocine algae requires inference of a more robust phylogeny.
Results
We performed RNA sequencing (RNA-seq) on 55 strains representing 47 volvocine algal species and obtained similar data from curated databases on 13 additional strains. We then compiled a dataset consisting of transcripts for 40 single-copy, protein-coding, nuclear genes and subjected the predicted amino acid sequences of these genes to maximum likelihood, Bayesian inference, and coalescent-based analyses. These analyses show that multicellularity independently evolved at least twice in the volvocine algae and that the colonial family Goniaceae is not monophyletic. Our data further indicate that cellular differentiation arose independently at least four, and possibly as many as six times, within the volvocine algae.
Conclusions
Altogether, our results demonstrate that multicellularity and cellular differentiation are evolutionarily labile in the volvocine algae, affirming the importance of this group as a model system for the study of major transitions in the history of life.
Journal Article
Identification of cell-type specific alternative transcripts in the multicellular alga Volvox carteri
by
Umen, James
,
Gao, Minglu
,
Balasubramanian, Ravi Nicholas
in
Algae
,
Alternative splicing
,
Analysis
2023
Background
Cell type specialization is a hallmark of complex multicellular organisms and is usually established through implementation of cell-type-specific gene expression programs. The multicellular green alga
Volvox carteri
has just two cell types, germ and soma, that have previously been shown to have very different transcriptome compositions which match their specialized roles. Here we interrogated another potential mechanism for differentiation in
V. carteri
, cell type specific alternative transcript isoforms (CTSAI).
Methods
We used pre-existing predictions of alternative transcripts and de novo transcript assembly with HISAT2 and Ballgown software to compile a list of loci with two or more transcript isoforms, identified a small subset that were candidates for CTSAI, and manually curated this subset of genes to remove false positives. We experimentally verified three candidates using semi-quantitative RT-PCR to assess relative isoform abundance in each cell type.
Results
Of the 1978 loci with two or more predicted transcript isoforms 67 of these also showed cell type isoform expression biases. After curation 15 strong candidates for CTSAI were identified, three of which were experimentally verified, and their predicted gene product functions were evaluated in light of potential cell type specific roles. A comparison of genes with predicted alternative splicing from
Chlamydomonas reinhardtii
, a unicellular relative of
V. carteri
, identified little overlap between ortholog pairs with alternative splicing in both species. Finally, we interrogated cell type expression patterns of 126 V
. carteri
predicted RNA binding protein (RBP) encoding genes and found 40 that showed either somatic or germ cell expression bias. These RBPs are potential mediators of CTSAI in
V. carteri
and suggest possible pre-adaptation for cell type specific RNA processing and a potential path for generating CTSAI in the early ancestors of metazoans and plants.
Conclusions
We predicted numerous instances of alternative transcript isoforms in Volvox, only a small subset of which showed cell type specific isoform expression bias. However, the validated examples of CTSAI supported existing hypotheses about cell type specialization in
V. carteri,
and also suggested new hypotheses about mechanisms of functional specialization for their gene products. Our data imply that CTSAI operates as a minor but important component of
V. carteri
cellular differentiation and could be used as a model for how alternative isoforms emerge and co-evolve with cell type specialization.
Journal Article
Whole transcriptome RNA-Seq analysis reveals extensive cell type-specific compartmentalization in Volvox carteri
by
Klein, Benjamin
,
Wibberg, Daniel
,
Hallmann, Armin
in
Biological Evolution
,
Biomedical and Life Sciences
,
Cell differentiation
2017
Background
One of evolution’s most important achievements is the development and radiation of multicellular organisms with different types of cells. Complex multicellularity has evolved several times in eukaryotes; yet, in most lineages, an investigation of its molecular background is considerably challenging since the transition occurred too far in the past and, in addition, these lineages evolved a large number of cell types. However, for volvocine green algae, such as
Volvox carteri
, multicellularity is a relatively recent innovation. Furthermore,
V. carteri
shows a complete division of labor between only two cell types – small, flagellated somatic cells and large, immotile reproductive cells. Thus,
V. carteri
provides a unique opportunity to study multicellularity and cellular differentiation at the molecular level.
Results
This study provides a whole transcriptome RNA-Seq analysis of separated cell types of the multicellular green alga
V. carteri
f.
nagariensis
to reveal cell type-specific components and functions. To this end, 246 million quality filtered reads were mapped to the genome and valid expression data were obtained for 93% of the 14,247 gene loci. In the subsequent search for protein domains with assigned molecular function, we identified 9435 previously classified domains in 44% of all gene loci. Furthermore, in 43% of all gene loci we identified 15,254 domains that are involved in biological processes. All identified domains were investigated regarding cell type-specific expression. Moreover, we provide further insight into the expression pattern of previously described gene families (e.g., pherophorin, extracellular matrix metalloprotease, and
VARL
families). Our results demonstrate an extensive compartmentalization of the transcriptome between cell types: More than half of all genes show a clear difference in expression between somatic and reproductive cells.
Conclusions
This study constitutes the first transcriptome-wide RNA-Seq analysis of separated cell types of
V. carteri
focusing on gene expression. The high degree of differential expression indicates a strong differentiation of cell types despite the fact that
V. carteri
diverged relatively recently from its unicellular relatives. Our expression dataset and the bioinformatic analyses provide the opportunity to further investigate and understand the mechanisms of cell type-specific expression and its transcriptional regulation.
Journal Article
Stable nuclear transformation of Pandorina morum
2014
Background
Volvocine green algae like
Pandorina morum
represent one of the most recent inventions of multicellularity diverged from their unicellular relatives. The 8–16 celled
P. morum
alga and its close multicellular relatives constitute a model lineage for research into cellular differentiation, morphogenesis and epithelial folding, sexual reproduction and evolution of multicellularity.
Pandorina
is the largest and most complex organism in the volvocine lineage that still exhibits isogamous sexual reproduction. So far, molecular-biological investigations in
P. morum
were constricted due to the absence of methods for transformation of this species, which is a prerequisite for introduction of reporter genes and (modified) genes of interest.
Results
Stable nuclear transformation of
P. morum
was achieved using chimeric constructs with a selectable marker, a reporter gene, promoters and upstream and downstream flanking sequences from heterologous sources. DNA was introduced into the cells by particle bombardment with plasmid-coated gold particles. The aminoglycoside 3′-phosphotransferase VIII (
aph
VIII) gene of
Streptomyces rimosus
under control of an artificial, heterologous promoter was used as the selectable marker. The artificial promoter contained a tandem arrangement of the promoter of both the heat shock protein 70A (
hsp
70A) and the ribulose-1,5-bisphosphat-carboxylase/-oxygenase S3 (
rbc
S3) gene of
Volvox carteri
. Due to the expression of
aph
VIII, transformants gained up to 333-fold higher resistance to paromomycin in comparison to the parent wild-type strain.
The heterologous luciferase (
gluc
) gene of
Gaussia princeps
, which was previously genetically engineered to match the nuclear codon usage of
Chlamydomonas reinhardtii
, was used as a co-transformed, unselectable reporter gene. The expression of the co-bombarded
gluc
gene in transformants and the induction of
gluc
by heat shock were demonstrated through bioluminescence assays.
Conclusion
Stable nuclear transformation of
P. morum
using the particle bombardment technique is now feasible. Functional expression of heterologous genes is achieved using heterologous flanking sequences from
Volvox carteri
and
Chlamydomonas reinhardtii
. The
aph
VIII gene of the actinobacterium
S. rimosus
can be used as a selectable marker for transformation experiments in the green alga
P. morum
. The
gluc
gene of the marine copepod
G. princeps
, expressed under control of heterologous promoter elements, represents a suitable reporter gene for monitoring gene expression or for other applications in
P. morum
.
Journal Article
The inducible nitA promoter provides a powerful molecular switch for transgene expression in Volvox carteri
2015
Background
The multicellular green alga
Volvox carteri
represents an attractive model system to study various aspects of multicellularity like cellular differentiation, morphogenesis, epithelial folding and ECM biogenesis. However, functional and molecular analyses of such processes require a wide array of molecular tools for genetic engineering. So far there are only a limited number of molecular tools available in
Volvox
.
Results
Here, we show that the promoter of the
V. carteri
nitrate reductase gene (
nitA
) is a powerful molecular switch for induction of transgene expression. Strong expression is triggered by simply changing the nitrogen source from ammonium to nitrate. We also show that the luciferase (
g-luc
) gene from the marine copepod
Gaussia princeps
, which previously was engineered to match the codon usage of the unicellular alga
Chlamydomonas reinhardtii
, is a suitable reporter gene in
V. carteri
. Emitted light of the chemiluminescent reaction can be easily detected and quantified with a luminometer. Long-term stability of inducible expression of the chimeric
nitA
/
g-luc
transgenes after stable nuclear transformation was demonstrated by transcription analysis and bioluminescence assays.
Conclusion
Two novel molecular tools for genetic engineering of
Volvox
are now available: the nitrate-inducible
nitA
promoter of
V. carteri
and the codon-adapted luciferase reporter gene of
G. princeps
. These novel tools will be useful for future molecular research in
V. carteri
.
Journal Article