989 resultados para adaptive radiation


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Haplochrmine cichlids were the most abundant taxa in Lakes Victoria, Kyoga and Nabugabo prior to introduction of the Nile perch. As stocks of the introduced predator increased, these taxa were depleted to such an extent that they are now virtually absent from the lake. The haplochromine cichlids played an important role in the ecology of Lakes Victoria, Kyoga and Nabugabo. They occupied virtually all trophic levels in the lake and facilitated an efficient flow of energy through the ecosystem. Their depletion seem to have left much organic matter whose decomposition has contributed to accumulation of dead organic matter which may be contributing to prolonged anoxia in Lake Victoria. The haplochromines formed an important small-scale fishery. Fishermen formerly subsisting on this fishery have been driven out of business because they cannot afford the expensive nets required for Nile perch fishery. In addition to providing a cheap source of fish protein to humans, the species were an important source of Scientific material for students of genetics antd adaptive radiation.

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The ribosomal RNA molecule is an ideal model for evaluating the stability of a gene product under desiccation stress. We isolated 8 Nostoc strains that had the capacity to withstand desiccation in habitats and sequenced their 16S rRNA genes. The stabilities of 16S rRNAs secondary structures, indicated by free energy change of folding, were compared among Nostoc and other related species. The results suggested that 163 rRNA secondary structures of the desiccation-tolerant Nostoc strains were more stable than that of planktonic Nostocaceae species. The stabilizing mutations were divided into two categories: (1) those causing GC to replace other types of base pairs in stems and (2) those causing extension of stems. By mapping stabilizing mutations onto the Nostoc phylogenetic tree based on 16S rRNA gene, it was shown that most of stabilizing mutations had evolved during adaptive radiation among Nostoc spp. The evolution of 16S rRNA along the Nostoc lineage is suggested to be selectively advantageous under desiccation stress.

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Im Rahmen der vorliegenden Arbeit wurde eine detaillierte phylogenetische Analyse der Ameisenpflanzen aus der Gattung Macaranga (Euphorbiaceae) und ihres verwandtschaftlichen Umfelds mit Hilfe von AFLP-Fingerprinting („amplified fragment length polymorphisms“) sowie vergleichender Analyse von mehreren nichtkodierenden Chloroplasten-DNA-Loci vorgenommen. Anhand dieser Untersuchungen sollten im Wesentlichen die folgenden Fragen geklärt werden: (1) Wie stellen sich die Verwandtschaftsverhältnisse zwischen den myrmekophytischen Macaranga-Sektionen Pachystemon, Winklerianae und Pruinosae dar? (2) Wie sind die einzelnen Arten dieser Sektionen miteinander verwandt? (3) Wie oft ist die Lebensweise ”Myrmekophytie” unabhängig voneinander entstanden? Gibt es Hinweise auf Reversionen? (4) Wo liegt genealogisch und auch geographisch der Ursprung der Symbiose zwischen den myrmekophytischen Macaranga-Arten und ihren Partnerameisen? (5) Welche Bedeutung spielen koevolutive Entwicklungen für das Macaranga-Crematogaster-Symbiosesystem? Ist Myrmekophytie im Sinne einer Schlüsselinnovation (Givnish, 1997) als Stimulus für eine adaptive Radiation zu betrachten? (1) Für die AFLP-Analyse wurden 108 Proben aus 43 Macaranga-Arten und 5 unbeschriebenen Morphospezies in die phylogenetische Untersuchung einbezogen. Auf der Basis von 426 Merkmalen wurden Phänogramme sowie Kladogramme rekonstruiert. Zur statistischen Absicherung wurden Bootstrap-Analysen durchgeführt und im Falle der Kladogramme darüber hinaus der „consistency“-Index bestimmt. Die AFLP-Datensätze wurden zusätzlich einer Hauptkomponentenanalyse unterzogen. Mit Hilfe der verschiedenen Untersuchungsmethoden konnten weitgehend übereinstimmende Gruppierungen bzw. evolutive Linien identifiziert werden. Die Sektionen Pachystemon und Pruinosae bilden eine jeweils gut gestützte monophyletische Gruppe. Beide sind vermutlich Schwestergruppen und damit gleich alt. Für die Monophylie der nur aus zwei Arten bestehenden Sektion Winklerianae ergab sich keine Unterstützung. Die Arten der Sektion Pruinosae sind im AFLP-Baum gut aufgelöst. Die nicht myrmekophytische M. gigantea sitzt dabei an der Basis und ist Schwestergruppe zu den myrmekophytischen Arten. Innerhalb der Sektion Pachystemon wurden mit Hilfe der AFLP-Analyse vier gut gestützte Gruppen identifiziert. Für die puncticulata-Gruppe konnte hier erstmals auf molekularer Ebene eine Zugehörigkeit zur Sekt. Pachystemon nachgewiesen werden. Der von Davies (2001) vorgenommene Ausschluss von M. recurvata aus der Sekt. Pachystemon konnte bestätigt werden. Die Verwandtschaftsbeziehungen einzelner Arten zueinander sind in den AFLP-Bäumen nicht aufgelöst. (2) Für die vergleichende Chloroplasten-Sequenzierung wurden nach Maßgabe der Sequenzvariabilität in Testsequenzierungen die Bereiche atpB-rbcL und psbI-trnS für die phylogenetische Untersuchung ausgewählt. Für die Chloroplasten-Phylogenie wurden für jeden Locus mehr als 100 Sequenzen analysiert. Neben 29 Pachystemon-Arten inkl. vier unbekannter Morphospezies, acht Pruinosae-Arten inkl. eines möglichen Hybriden und den beiden Arten der Sekt. Winklerianae wurden 22 weitere Macaranga- und 10 Mallotus-Arten in die Untersuchung einbezogen. Zwischen den südostasiatischen Arten bestanden nur geringe Sequenzunterschiede. Maximum-Parsimonie-Kladogramme wurden rekonstruiert und die Sequenzen der beiden Loci wurden sowohl einzeln, als auch kombiniert ausgewertet. Indels wurden kodiert und als separate Merkmalsmatrix an die Sequenzdaten angehangen. Innerhalb von Macaranga konnten nur wenige abgesicherte Gruppen identifiziert werden. Deutlich war die Zusammengehörigkeit der afrikanischen Arten und ihr Entstehung aus den südostasiatischen Arten. Die von Davies (2001) der Sektion Pruinosae zugeordnete M. siamensis steht deutlich außerhalb dieser Sektion. Die Arten der Sektionen Pruinosae, Pachystemon und Winklerianae bilden keine statistisch gesicherten monophyletischen Gruppen. Während der Pilotstudien stellte sich heraus, dass die Chloroplastensequenzen nahe verwandter Arten der Sektion Pachystemon weniger nach den Artgrenzen, sondern vielmehr nach geographischen Kriterien gruppierten. (3) Es wurde daher zusätzlich eine phylogeographische Analyse der Chloroplasten-Sequenzen auf der Basis eines Parsimonie-Netzwerks durchgeführt. Neben dem atpB-rbcL-Spacer und einer Teilsequenze des psbI-trnS-Locus (ccmp2) wurde dafür zusätzlich der ccmp6-Locus (ein Abschnitt des ycf3-Introns) sequenziert. Die phylogeographische Untersuchung wurde mit 144 Proben aus 41 Macaranga-Arten durchgeführt. Darin enthalten waren 29 Arten (inkl. vier Morphospezies) mit 112 Proben der Sektion Pachystemon, sieben 7 Arten (inkl. eines potentiellen Hybriden) mit 22 Proben der Sekt. Pruinosae und zwei Arten mit 5 Proben der Sekt. Winklerianae. Das voll aufgelöste statistische Parsimonie-Netzwerk umfasste 88 Haplotypen. Die Sektionen Pachystemon und Pruinosae bilden jeweils eine monophyletische Gruppe. Das geographische Arrangement der Haplotypen unabhängig von der Artzugehörigkeit könnte durch Introgression und/oder „lineage sorting“ bedingt sein. Mit Hilfe der im Rahmen dieser Arbeit gewonnenen Ergebnisse kann man davon ausgehen, dass eine enge Ameisen-Pflanzen-Symbiose innerhalb der Gattung Macaranga mindestens drei-, möglicherweise viermal unabhängig voneinander entstanden ist Eine Reversion hat mindestens einmal, möglicherweise häufiger in der bancana-Gruppe stattgefunden. Ob sich die Symbiose dabei in Westmalaysia oder in Borneo entwickelt hat, kann man nicht sicher sagen; Ob und inwieweit die große Artenzahl in der bancana-Gruppe als eine Folge der Myrmekophytie anzusehen ist, bleibt zunächst offen. Wesentliche Teile der vorliegenden Arbeit liegen bereits in publizierter Form vor (AFLP-Analyse: Bänfer et al. 2004; Chloroplasten-Analyse: Vogel et al. 2003; Bänfer et al. 2006).

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Evolutionary change in New World Monkey (NWM) skulls occurred primarily along the line of least resistance defined by size (including allometric) variation (g(max)). Although the direction of evolution was aligned with this axis, it was not clear whether this macroevolutionary pattern results from the conservation of within population genetic covariance patterns (long-term constraint) or long-term selection along a size dimension, or whether both, constraints and selection, were inextricably involved. Furthermore, G-matrix stability can also be a consequence of selection, which implies that both, constraints embodied in g(max) and evolutionary changes observed on the trait averages, would be influenced by selection Here, we describe a combination of approaches that allows one to test whether any particular instance of size evolution is a correlated by-product due to constraints (g(max)) or is due to direct selection on size and apply it to NWM lineages as a case study. The approach is based on comparing the direction and amount of evolutionary change produced by two different simulated sets of net-selection gradients (beta), a size (isometric and allometric size) and a nonsize set. Using this approach it is possible to distinguish between the two hypotheses (indirect size evolution due to constraints or direct selection on size), because although both may produce an evolutionary response aligned with g(max), the amount of change produced by random selection operating through the variance/covariance patterns (constraints hypothesis) will be much smaller than that produced by selection on size (selection hypothesis). Furthermore, the alignment of simulated evolutionary changes with g(max) when selection is not on size is not as tight as when selection is actually on size, allowing a statistical test of whether a particular observed case of evolution along the line of least resistance is the result of selection along it or not. Also, with matrix diagonalization (principal components [PC]) it is possible to calculate directly the net-selection gradient on size alone (first PC [PC1]) by dividing the amount of phenotypic difference between any two populations by the amount of variation in PC1, which allows one to benchmark whether selection was on size or not

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Many of the important changes in evolution are regulatory in nature. Sequenced bacterial genomes point to flexibility in regulatory circuits but we do not know how regulation is remodeled in evolving bacteria. Here, we study the regulatory changes that emerge in populations evolving under controlled conditions during experimental evolution of Escherichia coli in a phosphate-limited chemostat culture. Genomes were sequenced from five clones with different combinations of phenotypic properties that coexisted in a population after 37 days. Each of the distinct isolates contained a different mutation in 1 of 3 highly pleiotropic regulatory genes (hfq, spoT, or rpoS). The mutations resulted in dissimilar proteomic changes, consistent with the documented effects of hfq, spoT, and rpoS mutations. The different mutations do share a common benefit, however, in that the mutations each redirect cellular resources away from stress responses that are redundant in a constant selection environment. The hfq mutation lowers several individual stress responses as well the small RNA-dependent activation of rpoS translation and hence general stress resistance. The spoT mutation reduces ppGpp levels, decreasing the stringent response as well as rpoS expression. The mutations in and upstream of rpoS resulted in partial or complete loss of general stress resistance. Our observations suggest that the degeneracy at the core of bacterial stress regulation provides alternative solutions to a common evolutionary challenge. These results can explain phenotypic divergence in a constant environment and also how evolutionary jumps and adaptive radiations involve altered gene regulation.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Pós-graduação em Biociências - FCLAS

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Il lavoro è parte integrante di un progetto di ricerca del Ministero della Salute ed è stato sviluppato presso la Fisica Sanitaria ed il reparto di Radioterapia Oncologica dell’Azienda Ospedaliero Universitaria di Modena. L’obiettivo è la realizzazione di modelli predittivi e di reti neurali per tecniche di warping in ambito clinico. Modifiche volumetrico-spaziali di organi a rischio e target tumorali, durante trattamenti tomoterapici, possono alterare la distribuzione di dose rispetto ai constraints delineati in fase di pianificazione. Metodologie radioterapiche per la valutazione di organ motion e algoritmi di registrazione ibrida permettono di generare automaticamente ROI deformate e quantificare la divergenza dal piano di trattamento iniziale. Lo studio si focalizzata sulle tecniche di Adaptive Radiation Therapy (ART) mediante la meta-analisi di 51 pazienti sottoposti a trattamento mediante Tomotherapy. Studiando il comportamento statistico del campione, sono state generate analisi predittive per quantificare in tempo reale divergenze anatomico dosimetriche dei pazienti rispetto al piano originale e prevedere la loro ripianificazione terapeutica. I modelli sono stati implementati in MATLAB, mediante Cluster Analysis e Support Vector Machines; l’analisi del dataset ha evidenziato il valore aggiunto apportabile dagli algoritmi di deformazione e dalle tecniche di ART. La specificità e sensibilità della metodica è stata validata mediante l’utilizzo di analisi ROC. Gli sviluppi del presente lavoro hanno aperto una prospettiva di ricerca e utilizzo in trattamenti multicentrici e per la valutazione di efficacia ed efficienza delle nuove tecnologie in ambito RT.

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George Gaylord Simpson famously postulated that much of life's diversity originated as adaptive radiations-more or less simultaneous divergences of numerous lines from a single ancestral adaptive type. However, identifying adaptive radiations has proven difficult due to a lack of broad-scale comparative datasets. Here, we use phylogenetic comparative data on body size and shape in a diversity of animal clades to test a key model of adaptive radiation, in which initially rapid morphological evolution is followed by relative stasis. We compared the fit of this model to both single selective peak and random walk models. We found little support for the early-burst model of adaptive radiation, whereas both other models, particularly that of selective peaks, were commonly supported. In addition, we found that the net rate of morphological evolution varied inversely with clade age. The youngest clades appear to evolve most rapidly because long-term change typically does not attain the amount of divergence predicted from rates measured over short time scales. Across our entire analysis, the dominant pattern was one of constraints shaping evolution continually through time rather than rapid evolution followed by stasis. We suggest that the classical model of adaptive radiation, where morphological evolution is initially rapid and slows through time, may be rare in comparative data.

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Among the huge radiations of haplochromine cichlid fish in Lakes Malawi and Victoria, closely related species are often reproductively isolated via female mate choice although viable fertile hybrids can be produced when females are confined only with heterospecific males. We generated F(2) hybrid males from a cross between a pair of closely related sympatric cichlid fish from Lake Malawi. Laboratory mate choice experiments using microsatellite paternity analysis demonstrated that F(2) hybrid males differed significantly in their attractiveness to females of the two parental species, indicating heritable variation in traits involved in mate choice that may contribute to reproductive isolation between these species. We found no significant correlation between male mating success and any measurement of male colour pattern. A simple quantitative genetic model of reproductive isolation suggests that there may be as few as two chromosomal regions controlling species-specific attractiveness. We propose that adaptive radiation of Lake Malawi cichlids could be facilitated by the presence of genes with major effects on mate choice and reproductive isolation.

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Central European lake whitefish (Coregonus spp.) colonized Swiss lakes following the last glacial retreat and have undergone rapid speciation and adaptive radiation. Up to six species have been shown to coexist in some lakes, and individual species occupy specific ecological niches and have distinct feeding and reproductive ecologies. We studied methylmercury (MeHg) accumulation in sympatric whitefish species from seven Swiss lakes to determine if ecological divergence has led to different rates of MeHg bioaccumulation. In four of seven lakes, sympatric species had distinctly different MeHg levels, which varied by up to a factor of two between species. Generally, species with greater MeHg levels were smaller in body size and planktivorous, and species with lower MeHg were larger and benthivorous. While modest disparities in trophic position between species might be expected a priori to explain the divergence in MeHg, δ15N of bulk tissue did not correlate with fish MeHg in five of seven lakes. Results of a nested ANCOVA analysis across all lakes indicated that only two factors (species, lake) explained substantial portions of the variance, with species accounting for more variance (52 %) than inter-lake differences (32 %). We suggest that differences in MeHg accumulation were likely caused by diverging metabolic traits between species, such as differences in energy partitioning between anabolism and catabolism, potentially interacting with species-specific prey resource utilization. These results indicate substantial variability in MeHg accumulation between closely related fish species, illustrating that ecological speciation in fish can lead to divergent MeHg accumulation patterns.

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Timing divergence events allow us to infer the conditions under which biodiversity has evolved and gain important insights into the mechanisms driving evolution. Cichlid fishes are a model system for studying speciation and adaptive radiation, yet, we have lacked reliable timescales for their evolution. Phylogenetic reconstructions are consistent with cichlid origins prior to Gondwanan landmass fragmentation 121-165 MYA, considerably earlier than the first known fossil cichlids (Eocene). We examined the timing of cichlid evolution using a relaxed molecular clock calibrated with geological estimates for the ages of 1) Gondwanan fragmentation and 2) cichlid fossils. Timescales of cichlid evolution derived from fossil-dated phylogenies of other bony fishes most closely matched those suggested by Gondwanan breakup calibrations, suggesting the Eocene origins and marine dispersal implied by the cichlid fossil record may be due to its incompleteness. Using Gondwanan calibrations, we found accumulation of genetic diversity within the radiating lineages of the African Lakes Malawi, Victoria and Barombi Mbo, and Palaeolake Makgadikgadi began around or after the time of lake basin formation. These calibrations also suggest Lake Tanganyika was colonized independently by the major radiating cichlid tribes that then began to accumulate genetic diversity thereafter. These results contrast with the widely accepted theory that diversification into major lineages took place within the Tanganyika basin. Together, this evidence suggests that ancient lake habitats have played a key role in generating and maintaining diversity within radiating lineages and also that lakes may have captured preexisting cichlid diversity from multiple sources from which adaptive radiations have evolved.

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Major environmental events that fragment populations among multiple island habitats have potential to drive large-scale episodes of speciation and adaptive radiation. A recent palaeolimnological study of sediment cores indicated that Lake Malawi underwent major climate-driven desiccation events 75 000-135 000 years ago that lowered the water level to at least 580 m below the present state and severely reduced surface area. After this period, lake levels rose and stabilized, creating multiple discontinuous littoral rocky habitats. Here, we present evidence supporting the hypothesis that establishment and expansion of isolated philopatric rock cichlid populations occurred after this rise and stabilization of lake level. We studied the Pseudotropheus (Maylandia) species complex, a group with both allopatric and sympatric populations that differ in male nuptial colour traits and tend to mate assortatively. Using coalescent analyses based on mitochondrial DNA, we found evidence that populations throughout the lake started to expand and accumulate genetic diversity after the lake level rise. Moreover, most haplotypes were geographically restricted, and the greatest genetic similarities were typically among sympatric or neighbouring populations. This is indicative of limited dispersal and establishment of assortative mating among populations following the lake level rise. Together, this evidence is compatible with a single large-scale environmental event being central to evolution of spatial patterns of genetic and species diversity in P. (Maylandia) and perhaps other Lake Malawi rock cichlids. Equivalent climate-driven pulses of habitat formation and fragmentation may similarly have contributed to observed rapid and punctuated cladogenesis in other adaptive radiations.