PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Euglenida”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Implications for evolution of nuclear structures of animals, plants, fungi and protoctists.

The evolutionary variations of nuclear structure of animals, plants, fungi and protoctists were studied with electron microscopy by using techniques preferentially staining ribonucleoprotein (RNP) particles and chromatin. A remarkable similarity in the general morphological features of the RNP particles and chromatin arrangement is found in animals, plants and fungi. Important variations of these features were found in protoctists. These observations suggest that major evolutionary changes in the nuclear structure predate the acquisition of plastids by the ancestors of green plants. Once evolved, the nuclear structural pattern is conserved in plants and animals. Among protoctists studied, Kinetoplastida, Cryptomonadida and Volvocida have RNP particles and chromatin arrangement resembling those of plants and animals. These similarities may indicate a common ancestor. Important differences in the nuclear structure among Euglenida, Amebida, Cryptomonadida, Volvocida and Kinetoplastida support the view that Sarcomastigophora is a polyphyletic taxon. For the same reason Kinetoplastida and Euglenida must not be grouped in a monophyletic taxon. We propose that the variations of RNP particles may be related to the initial evolution of post-transcriptional processing.

Animals↗

Evolution of energy metabolism and its compartmentation in Kinetoplastida.

Kinetoplastida are protozoan organisms that probably diverged early in evolution from other eukaryotes. They are characterized by a number of unique features with respect to their energy and carbohydrate metabolism. These organisms possess peculiar peroxisomes, called glycosomes, which play a central role in this metabolism; the organelles harbour enzymes of several catabolic and anabolic routes, including major parts of the glycolytic and pentosephosphate pathways. The kinetoplastid mitochondrion is also unusual with regard to both its structural and functional properties.In this review, we describe the unique compartmentation of metabolism in Kinetoplastida and the metabolic properties resulting from this compartmentation. We discuss the evidence for our recently proposed hypothesis that a common ancestor of Kinetoplastida and Euglenida acquired a photosynthetic alga as an endosymbiont, contrary to the earlier notion that this event occurred at a later stage of evolution, in the Euglenida lineage alone. The endosymbiont was subsequently lost from the kinetoplastid lineage but, during that process, some of its pathways of energy and carbohydrate metabolism were sequestered in the kinetoplastid peroxisomes, which consequently became glycosomes. The evolution of the kinetoplastid glycosomes and the possible selective advantages of these organelles for Kinetoplastida are discussed. We propose that the possession of glycosomes provided metabolic flexibility that has been important for the organisms to adapt easily to changing environmental conditions. It is likely that metabolic flexibility has been an important selective advantage for many kinetoplastid species during their evolution into the highly successful parasites today found in many divergent taxonomic groups.Also addressed is the evolution of the kinetoplastid mitochondrion, from a supposedly pluripotent organelle, attributed to a single endosymbiotic event that resulted in all mitochondria and hydrogenosomes of extant eukaryotes. Furthermore, indications are presented that Kinetoplastida may have acquired other enzymes of energy and carbohydrate metabolism by various lateral gene transfer events different from those that involved the algal- and alpha-proteobacterial-like endosymbionts responsible for the respective formation of the glycosomes and mitochondria.

Journal Article↗

[Various characteristics of the evolution of endoparasites].

Evolution of parasite--host systems should be treated as a specific kind of co-evolution. Although its course is in accordance with the general rules of organic world evolution, it has some peculiarities. One of them is retardation or acceleration of endoparasites' phylogenesis, as compared with the hosts' one. The second one is different speed of phylogenetic changes of endoparasites belonging to the same systematic group. These changes can be significantly limited, as well. Phylogenetic changes of Euglenida--intestinal parasites of Copepoda--are considerably limited, even in comparison with the scale of changes of such species which begin their parasitic life by infecting Copepoda eggs.

Animals↗

Amino acid sequences of Euglena viridis ferredoxin and cytochromes c.

The Order Euglenida comprises many species and perhaps 40 genera, but almost all biochemical and genetic studies have been limited to a single species. Euglena gracilis, because of its ease of growth in the laboratory. Sequence studies of chloroplast and mitochondrial proteins from E. gracilis show that they have diverged widely from other eukaryotic lines. In the present paper we report the sequences of three proteins from another euglenoid, Euglena viridis, using material isolated from a natural bloom. The mitochondrial cytochrome c shows more than 90% sequence identity with that from E. gracilis, and contains the same characteristic features. The chloroplast cytochrome c6 has diverged to a greater extent and shows only 77% identity. The chloroplast ferredoxin from E. viridis is similar in sequence to those of cyanobacteria and algal chloroplasts, with sequence identities of up to 75%. Details of the purification, analysis and sequence determination experiments on the peptides have been deposited as Supplementary Publication SUP 50163 (32 pages) at the British Library Document Supply Centre, Boston Spa, Wetherby, West Yorkshire LS23 7BQ, U.K., from whom copies can be obtained on the terms indicated in Biochem. J. (1991) 273, 5.

Amino Acid Sequence↗

Plant-like traits associated with metabolism of Trypanosoma parasites.

Trypanosomatid parasites cause serious diseases among humans, livestock, and plants. They belong to the order of the Kinetoplastida and form, together with the Euglenida, the phylum Euglenozoa. Euglenoid algae possess plastids capable of photosynthesis, but plastids are unknown in trypanosomatids. Here we present molecular evidence that trypanosomatids possessed a plastid at some point in their evolutionary history. Extant trypanosomatid parasites, such as Trypanosoma and Leishmania, contain several "plant-like" genes encoding homologs of proteins found in either chloroplasts or the cytosol of plants and algae. The data suggest that kinetoplastids and euglenoids acquired plastids by endosymbiosis before their divergence and that the former lineage subsequently lost the organelle but retained numerous genes. Several of the proteins encoded by these genes are now, in the parasites, found inside highly specialized peroxisomes, called glycosomes, absent from all other eukaryotes, including euglenoids.

Amino Acid Sequence↗

Characterization of trans-splicing in Euglenoids.

We have looked for trans-splicing of nuclear mRNAs in several Euglenoid species. In Cyclidiopsis acus, Phacus curvicauda, Rhabdomonas costata and Menoidium pellucidum we showed that several premRNAs chosen at random are matured by a transsplicing process: we identified SL-RNA genes whose 5' ends (SLs for spliced leader-sequences) were transferred to the 5' extremities of mRNAs. The SL-RNA genes are located on repeated DNA fragments which also encode 5S rRNA in P. curvicauda and C. acus. The potential secondary structures of SL-RNAs are compared to those previously characterized in two other Euglenoids: Euglena gracilis and Entosiphon sulcatum. In another Euglenoid species, Distigma proteus, since none of the mRNAs examined were trans-spliced, it is possible that trans-splicing does not occur. Phylogeny based on 5S rRNA sequences suggests that the species which have, or have had, chloroplasts (E. gracilis, P. curvicauda, C. acus) diverged early from the others.

Animals↗

Trans-splicing and cis-splicing in the colourless Euglenoid, Entosiphon sulcatum.

The colourless Euglenoid Entosiphon sulcatum is thought to have diverged before the symbiotic event which gave rise to the photosynthetic Euglenoid species as Euglena gracilis. We have isolated genes encoding spliced leader-sequence RNA (SL-RNA) and we show that pre-mRNAs are matured via a trans-splicing reaction in E. sulcatum, as in the case of E. gracilis. The 2.5-kb repeated DNA fragment which encodes the SL-RNA gene also encodes a 5S rRNA gene as well as the genes for the small nuclear (sn) RNAs U1, U2 and U5. The presence of snRNA U1 indicates that the classical cis-splicing mechanism also exists in E. sulcatum. In addition, we show that the E. sulcatum beta-tubulin gene has the intron borders GU-AG, typical of spliceosome-matured introns which have not yet been found in E. gracilis. The probable origins of trans- and cis-mechanisms in Euglenoids are discussed.

Animals↗

Astasin, a novel cytotoxic carbohydrate-conjugated ergosterol from the colorless euglenoid, Astasia longa.

A novel cytotoxic carbohydrate-conjugated ergosterol (astasin) was found in cells of the colorless euglenoid, Astasia longa. Astasin accounted for about 2.4% of the total lipid of the cells. FAB-MS spectra of astasin showed MH+, 583.3387 (M+, C35H50O7). Astasin was composed of ergosterol (1 eq.), alpha-D-xylopyranose (1 eq.), and oxalic acid (1 eq.). By the acetylation using acetic anhydride and pyridine, oxalic acid was removed from astasin, and three hydroxyl groups of the xylopyranose moiety were acetylated. The two dimensional 13C- and 1H-NMR spectra suggest the oxalic acid was esterified with hydroxyl groups at C-2 and C-3 of the xylopyranose moiety and the hydroxyl group at C-1 of the xylopyranose was glycosidically linked to the hydroxyl group at C-3' of the ergosterol moiety. From the results, the structure of astasin was identified as 2,3-oxalyl-alpha-D-xylopyranosyl (1 --> 3')ergosterol. When cells of HL 60, a human lymphoma, were cultured with astasin, 50% of the cell growth was inhibited at 5.0 micrograms astasin/ml medium, and the cell growth was inhibited completely and 50% of the initial cells was killed at 10.0 micrograms astasin/ml medium.

Animals↗

Correlating toxicities of organic compounds to select protozoa using the Abraham model.

The Abraham solvation parameter model is used to construct mathematical correlations for describing the nonspecific toxicity of organic compounds to three protozoas (Entosiphon sulcantum, Uronema parduczi and Chilomonas paramecium). The derived mathematical correlations describe the observed published toxicity data to within an overall average standard deviation of approximately 0.35 log units. The correlations can be used to estimate aquatic toxicities of organic chemicals to the three aquatic organisms studied, and to help in identifying compounds whose toxic mode of action might involve chemical specific reactivity, rather than nonpolar or polar narcosis. A principal component analysis of the correlation equations found in this work shows that no water-solvent system we have investigated is a good model for nonspecific aquatic toxicity towards the three protozoas. Furthermore, correlation equations for nonspecific aqueous toxicity towards various biological systems, that we have found in this work and in previous studies, cover such a wide range that no single water-solvent system could ever be a good model for all the biological systems.

Animals↗