975 resultados para maximum parsimony
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The pantropical family Eriocaulaceae includes ten genera and c. 1,400 species, with diversity concentrated in the New World. The last complete revision of the family was published more than 100 years ago, and until recently the generic and infrageneric relationships were poorly resolved. However, a multi-disciplinary approach over the last 30 years, using morphological and anatomical characters, has been supplemented with additional data from palynology, chemistry, embryology, population genetics, cytology and, more recently, molecular phylogenetic studies. This led to a reassessment of phylogenetic relationships within the family. In this paper we present new data for the ITS and trnL-F regions, analysed separately and in combination, using maximum parsimony and Bayesian inference. The data confirm previous results, and show that many characters traditionally used for differentiating and circumscribing the genera within the family are homoplasious. A new generic key with characters from various sources and reflecting the current taxonomic changes is presented.
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Zusammenfassung In der vorliegenden Arbeit wurden 74736 bp genomischer DNA-Sequenzder Hämoglobingen-Gruppe D aus der Chironomiden Art Chironomus tentansentschlüsselt und analysiert. Durch Datenbankrecherchen undSequenz-Vergleiche wurden 29 vollständige Hämoglobin-Geneidentifiziert und klassifiziert. Es zeigt sich, daß alle derzeitbekannten Hämoglobin-Gene der Chironomiden auch in Chironomus tentansvorhanden sind. Zusätzlich konnten in Chironomus tentans sechs neueHämoglobin-Varianten identifiziert werden, die bislang weder aufProtein- noch auf Gen-Ebene in anderen Spezies nachgewiesenwurden. Die Hämoglobin-Gene liegen in dichter Abfolge innerhalbdes Clusters, wobei durchschnittlich etwa alle 2 kb ein Gen zufinden ist. Die Abfolge der Hämoglobin-Gene innerhalb derGengruppe wird nur an einer Stelle durch ein interspergiertes Genaus der Familie der Glukosetransporter unterbrochen. Desweiterenkonnten zwei retrotransponierbare Elemente der SINE-Klasse (CP1)innerhalb des Hämoglobingen-Clusters identifiziert werden. AlleGene besitzen die für ihre Expression erforderlichenSignalsequenzen, so daß es sich höchstwahrscheinlich um aktiveGene handelt. Die abgeleiteten Aminosäure-Sequenzen weisen alleCharakteristika sauerstofftransportierender Moleküle auf. Da es sich bei den Hämoglobinen um eine sehr alte Genfamiliehandelt, kann die vergleichende Analyse derHämoglobin-Genstruktur bei Vertebraten, Invertebraten, Pflanzenund Protozoen zur Rekonstruktion der Intron-Evolution genutztwerden. Die Konservierung von Intronpositionen in homologen Genenverschiedener Taxa gilt dabei als Maß für das relativestammesgeschichtliche Alter der Introns. Eine Vielzahl derHämoglobin-Gene von Invertebraten weisen ein Intron im zentralenGenbereich auf. Auch bei einigen Chironomiden-Arten konntendiese 'zentralen Introns' nachgewiesen werden. DieHämoglobin-Gene von Chironomus tentans galten hingegen bislang als intronlos.Die vorliegende Untersuchung zeigt, daß auch zweiHämoglobin-Gene dieser Spezies je ein kurzes Intron aufweisen.Der Vergleich der Intronverteilung in den Hämoglobin-Genen derChironomiden führt zu dem Ergebnis, daß alle vorhandenen Intronsam sparsamsten (im Sinne des 'maximum parsimony'-Prinzips) durchunabhängige Insertionen in ein intronlosesVorläufer-Hämoglobin-Gen erklärt werden können. Alle bislangin Chironomiden beschriebenen Introns sind mit großerWahrscheinlichkeit nicht ortholog (Hankeln et al., 1997; dieseArbeit). Das Vorläufer-Hämoglobin-Gen in Chironomiden besaßdaher vermutlich kein 'zentrales Intron'. Die in Chironomidengefundenen Verhältnisse stellen somit die von Go (1981)formulierte Hypothese der Ursprünglichkeit des 'zentralenIntrons' in Hämoglobin-Genen in Frage. Die in Invertebraten undPflanzen beschriebenen 'zentralen Introns' sind vermutlich nichthomolog und dementsprechend auch nicht auf ein Intron imanzestralen Globin zurückzuführen. Vielmehr implizieren die inhohem Maße variablen Positionen der 'zentralen Introns' beiPflanzen und Invertebraten ihre unabhängige Insertion in diejeweiligen Globin-Gene nach der Aufspaltung der Taxa. Grundsätzlich können zwei Klassen von Hämoglobin-Genen inChironomiden unterschieden werden. Die überwiegende Mehrzahl derHämoglobine wird von Genen kodiert, die nur in einer Kopie imGenom vorliegen. Sie werden dementsprechend als 'single copy'Varianten bezeichnet. Für andere Hämoglobin-Varianten konntehingegen eine Vielzahl leicht unterschiedlicher Gene beschriebenwerden. Diese bilden sogenannte Gen-Subfamilien. In Chironomus tentans konntegezeigt werden, daß neben den 7B-Genen auch die 7A-Gene eineeigene Subfamilie bilden. Die 'single copy' Varianten zeichnensich im Interspezies-Vergleich durch ihre konservierteNukleotid-Sequenz aus: Sie unterliegen während ihrer Evolutionoffenbar einer stabilisierenden Selektion, d.h. Veränderungenihrer Protein-Sequenzen werden nur in geringem Maße toleriert.Auch ihre räumliche Anordnung innerhalb der Gengruppe istzwischenartlich konserviert. Der Vergleich der 'single copy'Varianten innerhalb einer Art zeigt, daß diese sehr deutlicheSequenz-Unterschiede zueinander aufweisen. Sie bilden somit einkonserviertes Sortiment an Hämoglobin-Genen, das weitgehend vorder Radiation der Arten entstanden ist und eine über dieArtgrenzen hinweg unveränderte 'Hämoglobin-Grundausstattung'gewährleistet. Im Gegensatz hierzu zeichnen sich die Mitglieder vonHämoglobin-Gen-Sub-familien durch eine hohe Variabilität aus:Nukleotid-Sequenz, Anzahl und Organisation der Gene innerhalb derGenfamilie weisen im zwischenartlichen Vergleich zahlreicheUnterschiede auf. Es ist daher nur selten möglich allein aufGrundlage der Nukleotid-Sequenzen orthologe Genpaare zuidentifizieren. Die orthologen Gene der 7B-Subfamilie aus Chironomus tentansund chth konnten ausschließlich anhand korrespondierenderIntergen-Sequenzen einander zugeordnet werden. Somit sind dieGen-Subfamilien präferenziell an der Entstehung einesspeziesspezifischen Gen-Repertoires beteiligt. Variationen derNukleotid-Sequenz, Gen-Anzahl und Gen-Organisation innerhalb derSubfamilie werden im Gegensatz zu den 'single copy' Varianten ineinem hohen Maße toleriert. Aufgrund der hohen Sequenz-Übereinstimmungen zwischen denMitgliedern der Gen-Subfamilien unterliegen diese einer Vielzahlvon Rearrangements, die in Gen-Duplikationen, Deletionen undSequenz-Homogenisierungen resultieren. So führten beispielsweiseGenduplikationen durch ungleiches, homologes Crossing-over mitgroßer Wahrscheinlichkeit zur Entstehung und Expansion der7A-Subfamilie. Auch die Gene Cte12-1 und Cte 12-2 sind vermutlichdas Ergebnis eines rezenten Duplika-tions-Ereignisses. DerMechanismus der Retrotransposition, der zu einer Duplika-tioneines 3`-untranslatierten Bereichs innerhalb der 7A-Subfamilieführte, scheint für die Entstehung derHämoglobin-Multiplizität in Chironomiden hingegen wenigerbedeutsam zu sein. Innerhalb der 7A-Subfamilie ist eineAngleichung der Gene durch konzertierte Sequenz-Evolution zubeobachten. Der nukleotidweise Vergleich von Gen-Sequenzen zeigtam Beispiel der Gene 7A7 und 7A8, daß die konzertierte Evolutiondieser Gen-Varianten auf dem Mechanismus der Genkonversionberuht. Auch die Gen-Subfamilie 7B unterliegt offenbar in hohemMaße einer solchen Sequenz-Homogenisierung. Im Sinne einer molekularen Uhr sollten synonyme Basenaustauscheweitgehend neutral sein und sich proportional zur Zeit in denGenen anhäufen. Der Vergleich der Hämoglobin-Gen-Sequenzenzeigt, daß große Unterschiede in der Anzahl der synonymenBasenaustausche zwischen orthologen Genen nicht zwangsläufig dasErgebnis einer frühen Trennung dieser Gene sind. Die Übertragungvon Sequenzen zwischen paralogen Genen kann die Anzahl dersynonymen Basenaustausche orthologer Gene in kürzester Zeitverändern und den tatsächlichen Zeitpunkt der Trennung zweierorthologen Gene überdecken. Werden Genkonversionen nichterkannt, weil beispielsweise nicht alle Gene der Gruppevollständig erfaßt werden konnten, führt der Vergleichorthologer Gen-Sequenzen zwangsläufig zu falschen evolutionärenGendistanzen. Da die Mitglieder der Hämoglobin-Genfamiliebesonders häufig Rekombinations-Prozessen unterliegen, sind siedaher möglicherweise weniger nützliche Kanditaten für dieErmittlung evolutionärer Distanzen zwischen den verschiedenenChironomiden-Arten. Insgesamt zeigen die Ergebnisse dieser Arbeit, daß anhanddetaillierter phylogenetischer Analysen sich die Evolution derHämoglobin-Multigenfamilie von Chironomiden umfassendbeschreiben läßt. Ob einzelne, besonders gut konservierteGen-Varianten (wie z. B. die Gene Cte 8 und Cte W) einespezifische physiologische Funktion erfüllen oder ob dieGen-Subfamilien, die ein speziesspezifisches Genrepertoirebilden, an der Einnischung der verschiedenen Arten beteiligtsind, sollte durch weiterführende Untersuchungen (z. B. derGenexpression sowie der physiologischen Eigenschaften einzelnerVarianten) ermittelt werden können.
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Die Phylogenie der Westpaläarktischen Langohren (Mammalia, Chiroptera, Plecotus) – eine molekulare Analyse Die Langohren stellen eine Fledermausgattung dar, die fast alle westpaläarktischen Habitate bist zum Polarkreis hin besiedeln und in vielerlei Hinsicht rätselhaft sind. In der Vergangenheit wurden zahlreiche Formen und Varietäten beschrieben. Trotzdem galt für lange Zeit, dass nur zwei Arten in Europa anerkannt wurden. Weitere Arten waren aus Nordafrika, den Kanaren und Asien bekannt, aber auch deren Artstatus wurde vielfach in Frage gestellt. In der vorliegenden Dissertation habe ich mittels molekularer Daten,der partiellen Sequenzierung mitochondrialer Gene (16S rRNA und ND1), sowie der mitochondrialen Kontrollregion, eine molekular Analyse der phylogenetischen Verwandtschaftsverhältnisse innerhalb und zwischen den Linien der westpaläarktischen Langohren durchgeführt. Die besten Substitutionsmodelle wurden berechnet und phylogenetische Bäume mit Hilfe vier verschiedener Methoden konstruiert: dem neighbor joining Verfahren (NJ), dem maximum likelihood Verfahren (ML), dem maximum parsimony Verfahren (MP) und dem Bayesian Verfahren. Sechs Linien der Langohren sind genetisch auf einem Artniveau differenziert: Plecotus auritus, P. austriacus, P. balensis, P. christii, P. sardus, und P. macrobullaris. Im Falle der Arten P. teneriffae, P. kolombatovici und P. begognae ist die alleinige Interpretation der genetischen Daten einzelner mitochondrialer Gene für eine Festlegung des taxonomischen Ranges nicht ausreichend. Ich beschreibe in dieser Dissertation drei neue Taxa: Plecotus sardus, P. kolombatovici gaisleri (=Plecotus teneriffae gaisleri, Benda et al. 2004) and P. macrobullaris alpinus [=Plecotus alpinus, Kiefer & Veith 2002). Morphologische Kennzeichen, insbesondere für die Erkennung im Feld, werden hier dargestellt. Drei der sieben Arten sind polytypisch: P. auritus (eine west- und ein osteuropäische Linie, eine sardische Linie und eine aktuell entdeckte kaukasische Linie, Plecotus kolombatovici (P. k. kolombatovici, P. k. gaisleri und P. k. ssp.) und P. macrobullaris (P. m. macrobullaris und P. m. alpinus). Die Verbreitungsgebiete der meisten Arten werden in dieser Arbeit erstmals ausschließlich anhand genetisch zugeordneter Tiere dargestellt.Die Untersuchung der ökologischen Einnischung der nun anerkannten Formen, insbesondere in Gebieten sympatrischer Verbreitung, bietet ein spannendes und lohnendes Feld für zukünftige Forschungen. Nicht zuletzt muss sich die Entdeckung eines beachtlichen Anteils kryptischer Diversität innerhalb der westpaläarktischen Langohren auch bei der Entwicklung spezieller Artenschutzkonzepte widerspiegeln.
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The relationship and phylogeny of the western Palearctic harvestmen family Trogulidae is investigated. The traditional system of seven genera and approximately 40 species appeared to be artificially composed but a phylogenetic approach and a comprehensive revision has long been sought after. Species are poorly characterised due to their uniform morphology and species evaluation is furthermore complicated by the variability of the few characters used for species delineation. To meet these demands a molecular genetic analysis is accomplished using the nuclear 28S rRNA gene and the mitochondrial cytochrome b gene. This analysis incorporates most genera and species of Trogulidae as well as a comprehensive set of Nemastomatidae and Dicranolasmatidae as outgroup taxa. Phylogenetic results of Bayesian analysis, Maximum Parsimony, Maximum Likelihood and Neighbor Joining are compared with distributional data, morphological characters and results of canonical discriminant analysis of morphometric characters and general congruence of these data sets is shown. To demonstrate the applicability of this method the revision of two species-groups within Trogulus is set out in detail. The Trogulus hirtus species-group and the Trogulus coriziformis species-group are revised. The former is in the central and north-western Balkan Peninsula. T. tricarinatus ssp. hirtus is raised to species level and four new species are described (T. karamanorum [man.n.], T. melitensis [man.n.], T. pharensis [man.n]; T. thaleri [man.n.]). The Trogulus coriziformis species-group is confined to the western Mediterranean area. T. coriziformis, T. aquaticus are re-described, T. cristatus and T. lusitanicus are re-established and four species are described as new (T. balearicus, T. huberi, T. prietoi, T. pyrenaicus). In both species-groups two further cryptic species probably exist but were not described. The species groups are shown to represent different phylogenetic levels and this information is used for the revisional work on the genus Trogulus as well as for the generic system of Trogulidae. Family status of Dicranolasmatidae is rejected and Dicranolasma is shown to be best incorporated within Trogulidae. Calathocratus, Platybessobius and Trogulocratus appear to be polyphyletic and are best to be united within Calathocratus, the oldest name of this set. The cryptic diversity within Trogulidae, especially in Trogulus and the composed genus Calathocratus rates to 150-235% and is thereby remarkably high for a group of the generally well researched European fauna. Genetic features of the group such as heteroplasmy, the possibility of major gene rearrangements and usability of the cytochrome b gene for phylogenetic studies in Opiliones are outlined.
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Background As predicted by theory, traits associated with reproduction often evolve at a comparatively high speed. This is especially the case for courtship behaviour which plays a central role in reproductive isolation. On the other hand, courtship behavioural traits often involve morphological and behavioural adaptations in both sexes; this suggests that their evolution might be under severe constraints, for instance irreversibility of character loss. Here, we use a recently proposed method to retrieve data on a peculiar courtship behavioural trait, i.e. antennal coiling, for 56 species of diplazontine parasitoid wasps. On the basis of a well-resolved phylogeny, we reconstruct the evolutionary history of antennal coiling and associated morphological modifications to study the mode of evolution of this complex character system. Results Our study reveals a large variation in shape, location and ultra-structure of male-specific modifications on the antennae. As for antennal coiling, we find either single-coiling, double-coiling or the absence of coiling; each state is present in multiple genera. Using a model comparison approach, we show that the possession of antennal modifications is highly correlated with antennal coiling behaviour. Ancestral state reconstruction shows that both antennal modifications and antennal coiling are highly congruent with the molecular phylogeny, implying low levels of homoplasy and a comparatively low speed of evolution. Antennal coiling is lost on two independent occasions, and never reacquired. A zero rate of regaining antennal coiling is supported by maximum parsimony, maximum likelihood and Bayesian approaches. Conclusions Our study provides the first comparative evidence for a tight correlation between male-specific antennal modifications and the use of the antennae during courtship. Antennal coiling in Diplazontinae evolved at a comparatively low rate, and was never reacquired in any of the studied taxa. This suggests that the loss of antennal coiling is irreversible on the timescale examined here, and therefore that evolutionary constraints have greatly influenced the evolution of antennal courtship in this group of parasitoid wasps. Further studies are needed to ascertain whether the loss of antennal coiling is irreversible on larger timescales, and whether evolutionary constraints have influenced courtship behavioural traits in a similar way in other groups.
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(1) A mathematical theory for computing the probabilities of various nucleotide configurations is developed, and the probability of obtaining the correct phylogenetic tree (model tree) from sequence data is evaluated for six phylogenetic tree-making methods (UPGMA, distance Wagner method, transformed distance method, Fitch-Margoliash's method, maximum parsimony method, and compatibility method). The number of nucleotides (m*) necessary to obtain the correct tree with a probability of 95% is estimated with special reference to the human, chimpanzee, and gorilla divergence. m* is at least 4,200, but the availability of outgroup species greatly reduces m* for all methods except UPGMA. m* increases if transitions occur more frequently than transversions as in the case of mitochondrial DNA. (2) A new tree-making method called the neighbor-joining method is proposed. This method is applicable either for distance data or character state data. Computer simulation has shown that the neighbor-joining method is generally better than UPGMA, Farris' method, Li's method, and modified Farris method on recovering the true topology when distance data are used. A related method, the simultaneous partitioning method, is also discussed. (3) The maximum likelihood (ML) method for phylogeny reconstruction under the assumption of both constant and varying evolutionary rates is studied, and a new algorithm for obtaining the ML tree is presented. This method gives a tree similar to that obtained by UPGMA when constant evolutionary rate is assumed, whereas it gives a tree similar to that obtained by the maximum parsimony tree and the neighbor-joining method when varying evolutionary rate is assumed. ^
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Approximately 350 base pairs (bp) of the mitochondrial 16S rRNA gene were used to study the phylogenetic relationships among 5 genera of the clawed lobster family Nephropidae (infraorder Astacidea), including Homarus, Homarinus, Metanephrops, Nephrops, and Nephropsis. Maximum-parsimony analysis, using a hermit crab, Pagurus pollicaris (infraorder Anomura), as an outgroup. produced a tree topology in which Homarus and Nephrops formed a well-supported clade that excluded Homarinus. The same tree topology was obtained from both neighbor-joining and maximum-likelihood analyses, Some morphological characters that appear synapomorphic for Nephrops and Metanephrops may be due to convergence rather than symplesiomorphy. The current taxonomy, therefore, does not reflect the phylogeny of this group as suggested by the molecular data. More molecular data and studies using homologous morphological characters me needed to reach a better understanding of the phylogenetic history of clawed lobsters.
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Academic and industrial research in the late 90s have brought about an exponential explosion of DNA sequence data. Automated expert systems are being created to help biologists to extract patterns, trends and links from this ever-deepening ocean of information. Two such systems aimed on retrieving and subsequently utilizing phylogenetically relevant information have been developed in this dissertation, the major objective of which was to automate the often difficult and confusing phylogenetic reconstruction process. ^ Popular phylogenetic reconstruction methods, such as distance-based methods, attempt to find an optimal tree topology (that reflects the relationships among related sequences and their evolutionary history) by searching through the topology space. Various compromises between the fast (but incomplete) and exhaustive (but computationally prohibitive) search heuristics have been suggested. An intelligent compromise algorithm that relies on a flexible “beam” search principle from the Artificial Intelligence domain and uses the pre-computed local topology reliability information to adjust the beam search space continuously is described in the second chapter of this dissertation. ^ However, sometimes even a (virtually) complete distance-based method is inferior to the significantly more elaborate (and computationally expensive) maximum likelihood (ML) method. In fact, depending on the nature of the sequence data in question either method might prove to be superior. Therefore, it is difficult (even for an expert) to tell a priori which phylogenetic reconstruction method—distance-based, ML or maybe maximum parsimony (MP)—should be chosen for any particular data set. ^ A number of factors, often hidden, influence the performance of a method. For example, it is generally understood that for a phylogenetically “difficult” data set more sophisticated methods (e.g., ML) tend to be more effective and thus should be chosen. However, it is the interplay of many factors that one needs to consider in order to avoid choosing an inferior method (potentially a costly mistake, both in terms of computational expenses and in terms of reconstruction accuracy.) ^ Chapter III of this dissertation details a phylogenetic reconstruction expert system that selects a superior proper method automatically. It uses a classifier (a Decision Tree-inducing algorithm) to map a new data set to the proper phylogenetic reconstruction method. ^
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In the maximum parsimony (MP) and minimum evolution (ME) methods of phylogenetic inference, evolutionary trees are constructed by searching for the topology that shows the minimum number of mutational changes required (M) and the smallest sum of branch lengths (S), respectively, whereas in the maximum likelihood (ML) method the topology showing the highest maximum likelihood (A) of observing a given data set is chosen. However, the theoretical basis of the optimization principle remains unclear. We therefore examined the relationships of M, S, and A for the MP, ME, and ML trees with those for the true tree by using computer simulation. The results show that M and S are generally greater for the true tree than for the MP and ME trees when the number of nucleotides examined (n) is relatively small, whereas A is generally lower for the true tree than for the ML tree. This finding indicates that the optimization principle tends to give incorrect topologies when n is small. To deal with this disturbing property of the optimization principle, we suggest that more attention should be given to testing the statistical reliability of an estimated tree rather than to finding the optimal tree with excessive efforts. When a reliability test is conducted, simplified MP, ME, and ML algorithms such as the neighbor-joining method generally give conclusions about phylogenetic inference very similar to those obtained by the more extensive tree search algorithms.
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Phylogenetic analyses are increasingly used in attempts to clarify transmission patterns of human immunodeficiency virus type 1 (HIV-1), but there is a continuing discussion about their validity because convergent evolution and transmission of minor HIV variants may obscure epidemiological patterns. Here we have studied a unique HIV-1 transmission cluster consisting of nine infected individuals, for whom the time and direction of each virus transmission was exactly known. Most of the transmissions occurred between 1981 and 1983, and a total of 13 blood samples were obtained approximately 2-12 years later. The p17 gag and env V3 regions of the HIV-1 genome were directly sequenced from uncultured lymphocytes. A true phylogenetic tree was constructed based on the knowledge about when the transmissions had occurred and when the samples were obtained. This complex, known HIV-1 transmission history was compared with reconstructed molecular trees, which were calculated from the DNA sequences by several commonly used phylogenetic inference methods [Fitch-Margoliash, neighbor-joining, minimum-evolution, maximum-likelihood, maximum-parsimony, unweighted pair group method using arithmetic averages (UPGMA), and a Fitch-Margoliash method assuming a molecular clock (KITSCH)]. A majority of the reconstructed trees were good estimates of the true phylogeny; 12 of 13 taxa were correctly positioned in the most accurate trees. The choice of gene fragment was found to be more important than the choice of phylogenetic method and substitution model. However, methods that are sensitive to unequal rates of change performed more poorly (such as UPGMA and KITSCH, which assume a constant molecular clock). The rapidly evolving V3 fragment gave better reconstructions than p17, but a combined data set of both p17 and V3 performed best. The accuracy of the phylogenetic methods justifies their use in HIV-1 research and argues against convergent evolution and selective transmission of certain virus variants.
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The origin of land vertebrates was one of the major transitions in the history of vertebrates. Yet, despite many studies that are based on either morphology or molecules, the phylogenetic relationships among tetrapods and the other two living groups of lobe-finned fishes, the coelacanth and the lungfishes, are still unresolved and debated. Knowledge of the relationships among these lineages, which originated back in the Devonian, has profound implications for the reconstruction of the evolutionary scenario of the conquest of land. We collected the largest molecular data set on this issue so far, about 3,500 base pairs from seven species of the large 28S nuclear ribosomal gene. All phylogenetic analyses (maximum parsimony, neighbor-joining, and maximum likelihood) point toward the hypothesis that lungfishes and coelacanths form a monophyletic group and are equally closely related to land vertebrates. This evolutionary hypothesis complicates the identification of morphological or physiological preadaptations that might have permitted the common ancestor of tetrapods to colonize land. This is because the reconstruction of its ancestral conditions would be hindered by the difficulty to separate uniquely derived characters from shared derived characters in the coelacanth/lungfish and tetrapod lineages. This molecular phylogeny aids in the reconstruction of morphological evolutionary steps by providing a framework; however, only paleontological evidence can determine the sequence of morphological acquisitions that allowed lobe-finned fishes to colonize land.
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The reconstruction of multitaxon trees from molecular sequences is confounded by the variety of algorithms and criteria used to evaluate trees, making it difficult to compare the results of different analyses. A global method of multitaxon phylogenetic reconstruction described here, Bootstrappers Gambit, can be used with any four-taxon algorithm, including distance, maximum likelihood, and parsimony methods. It incorporates a Bayesian-Jeffreys'-bootstrap analysis to provide a uniform probability-based criterion for comparing the results from diverse algorithms. To examine the usefulness of the method, the origin of the eukaryotes has been investigated by the analysis of ribosomal small subunit RNA sequences. Three common algorithms (paralinear distances, Jukes-Cantor distances, and Kimura distances) support the eocyte topology, whereas one (maximum parsimony) supports the archaebacterial topology, suggesting that the eocyte prokaryotes are the closest prokaryotic relatives of the eukaryotes.
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The wide range of morphological variations in the “loxurina group” makes taxa identification difficult, and despite several reviews, serious taxonomical confusion remains. We make use of DNA data in conjunction with morphological appearance and available information on species distribution to delimit the boundaries of the “loxurina” group species previously established based on morphology. A fragment of 635 base pairs within the mtDNA gene cytochrome oxidase I (COI) was analysed for seven species of the “loxurina group”. Phylogenetic relationships among the included taxa were inferred using maximum parsimony and maximum likelihood methods. Penaincisalia sigsiga (Bálint et al), P. cillutincarae (Draudt), P. atymna (Hewitson) and P. loxurina (C. Felder & R. Felder) were easily delimited as the morphological, geographic and molecular data were congruent. Penaincisalia ludovica (Bálint & Wojtusiak) and P. loxurina astillero (Johnson) represent the same entity and constitute a sub-species of P. loxurina. However, incongruence among morphological, genetic, and geographic data is shown in P. chachapoya (Bálint & Wojtusiak) and P. tegulina (Bálint et al). Our results highlight that an integrative approach is needed to clarify the taxonomy of these neotropical taxa, but more genetic and geographical studies are still required.
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Andryala (Asteraceae: Cichorieae) is a little-known Mediterranean-Macaronesian genus whose taxonomy is much in need of revision. The aim of the present biosystematic study was to elucidate species relationships within this genus based on morphological and molecular data. In this study several taxa are recognised: 17 species, 14 subspecies, and 3 hybrids. Among these, 5 species are Macaronesian endemics (A. glandulosa, A. sparsiflora, A. crithmifolia Aiton, A. pinnatifida, and A. perezii), 4 species are Northwest African endemics (A. mogadorensis, A. maroccana, A. chevallieri, and A. nigricans) and one species is endemic to Romania (A. laevitomentosa). Historical background regarding taxonomic delimitation in the genus is addressed from Linnaean to present day concepts, as well as the origin of the name Andryala. The origin of Asteraceae and the systematic position of Andryala is shortly summarised. The morphological study was based on a bibliographic review and the revision of 1066 specimens of 13 herbaria as well as additional material collected during fieldwork. The variability of the morphological characters of the genus, including both vegetative taxonomic characters (root, stem, leaf and indumentum characters) and reproductive ones (inflorescence, floret, fruit and pappus characters), is assessed. Numerical analysis of the morphological data was performed using different similarity or dissimilarity measures and coefficients, as well as ordination and clustering methods. Results support the segregation of the recognised taxa and the congruence of the several analyses in the separation of the recognised taxa (using quantitative, binary or multi-state characters). The proposed taxonomy for Andryala includes a new infra-generic classification, new taxa and new combinations and ranks, typifications and diagnostic keys (one for the species and several for subspecies). For each taxon a list of synonyms, typification comments and a detailed description are provided, just as comments on taxonomy and nomenclature, and a brief discussion on karyology. Additionally, information on ecology and conservation status as well as on distribution and a list of studied material are also presented. Phylogenetic analyses based on different nuclear and chloroplast DNA markers, using Bayesian and maximum parsimony methods of inference, were performed. Results support three main lineages: separate ones for the relict species A. agardhii and A. laevitomentosa and a third including the majority of the Andryala species that underwent a relatively rapid and recent speciation. They also suggest a single colonization event of Madeira and the Canary Islands from the Mediterranean region, followed by insular speciation. Biogeography and speciation within the genus are briefly discussed, including a proposal for the centre of origin of the genus and possible dispersal routes.
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Phylogenetic relationships within the Capsalidae (Monogenea) were examined Using large subunit ribosomal DNA sequences from 17 capsalid species (representing 7 genera, 5 subfamilies), 2 outgroup taxa (Monocotylidae) plus Udonella caligorum (Udonellidae). Trees were constructed using maximum likelihood, minimum evolution and maximum parsimony algorithms. An initial tree, generated from sequences 315 bases long, Suggests that Capsalinae, Encotyllabinae, Entobdellinae and Trochopodinae are monophyletic, but that Benedeniinae is paraphyletic. Analyses indicate that Neobenedenia, currently in the Benedeniinae, should perhaps be placed in 2 separate subfamily. An additional analysis was made which omitted 3 capsalid taxa (for which only short sequences were available) and all outgroup taxa because of alignment difficulties. Sequence length increased to 693 bases and good branch support was achieved. The Benedeniinae was again paraphyletic. Higher-level classification of the Capsalidae, evolution of the Entobdellinae and issues of species identity in Neobenedenia are discussed.