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Breeding System Evolution and Pollination Success in the Wind-Pollinated Herb <i>Plantago maritima</i>Nilsson, Emil January 2005 (has links)
<p>In this thesis, I examined variation in sex expression and mating patterns in the sexually polymorphic, wind-pollinated herb <i>Plantago maritima</i>. With a combination of field studies, greenhouse experiments, and genetic analyses, I (a) examined factors influencing sex ratio variation in gynodioecious plants (in which hermaphrodites and females coexist), (b) discovered variation in breeding system, (c) investigated density-dependence of seed production, and (d) documented genetic variation within and among populations close to the northern range margin in Europe. </p><p>In a survey of 104 <i>P. maritima</i> populations, I documented considerable variation in sex ratio (range 0-70% females, median 6.3% females). As predicted, females were more frequently missing from small than from large populations, and the variance in sex ratio increased with decreasing population size. Among twelve populations sampled for seed production, the frequency of females was positively related to relative fecundity of females and negatively related to population size. The results suggest that the local sex ratio is influenced both by the relative fecundity of females and hermaphrodites, and by stochastic processes in small populations.</p><p>A comparative field study showed that plant fecundity decreased with increasing distance to nearest pollen donor both within and among populations in an archipelago in southern Sweden, where self-incompatibility was confirmed in controlled crosses. In contrast, plant fecundity was overall higher and was not density-dependent in the Skeppsvik archipelago in northern Sweden, where controlled crosses showed that plants are self-compatible. The results were consistent with the prediction that evolution of self-fertility should reduce density-dependence of pollination success.</p><p>I quantified the genetic structure within and among populations from eastern Sweden and western Finland based on variation at four polymorphic microsatellite loci. The genetic diversity was low in northern Sweden, which may be the result of a history of small population sizes and periods of frequent self-fertilization.</p>
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Breeding System Evolution and Pollination Success in the Wind-Pollinated Herb Plantago maritimaNilsson, Emil January 2005 (has links)
In this thesis, I examined variation in sex expression and mating patterns in the sexually polymorphic, wind-pollinated herb Plantago maritima. With a combination of field studies, greenhouse experiments, and genetic analyses, I (a) examined factors influencing sex ratio variation in gynodioecious plants (in which hermaphrodites and females coexist), (b) discovered variation in breeding system, (c) investigated density-dependence of seed production, and (d) documented genetic variation within and among populations close to the northern range margin in Europe. In a survey of 104 P. maritima populations, I documented considerable variation in sex ratio (range 0-70% females, median 6.3% females). As predicted, females were more frequently missing from small than from large populations, and the variance in sex ratio increased with decreasing population size. Among twelve populations sampled for seed production, the frequency of females was positively related to relative fecundity of females and negatively related to population size. The results suggest that the local sex ratio is influenced both by the relative fecundity of females and hermaphrodites, and by stochastic processes in small populations. A comparative field study showed that plant fecundity decreased with increasing distance to nearest pollen donor both within and among populations in an archipelago in southern Sweden, where self-incompatibility was confirmed in controlled crosses. In contrast, plant fecundity was overall higher and was not density-dependent in the Skeppsvik archipelago in northern Sweden, where controlled crosses showed that plants are self-compatible. The results were consistent with the prediction that evolution of self-fertility should reduce density-dependence of pollination success. I quantified the genetic structure within and among populations from eastern Sweden and western Finland based on variation at four polymorphic microsatellite loci. The genetic diversity was low in northern Sweden, which may be the result of a history of small population sizes and periods of frequent self-fertilization.
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Analysis of Selection and Genetic Drift in a Dioecious Plant : Spatial Genetic Structure and Selection in Phenotypic Traits in a Young Island Population of Silene dioicaAndersson, Bea Angelica January 2014 (has links)
Selection and genetic drift are often competing forces in shaping genetic structure in populations. Genetic drift will often effectively cancel out the effect of selection when population sizes are small, such as in colonizing island populations. On a small island in the Skeppsvik Archipelago in northern Sweden, a newly founded population of Silene dioica has been monitored since it first established around 1993. Though inhabiting an area of merely 173 m2, the population has been shown to exhibit a genetically differentiated patch structure where closely related individuals are tightly grouped, distanced from other family groups. In this study, the effect of selection was evaluated as compared to that of genetic drift. Variation in phenotypic traits in flowers, leaves and stalks were compared to that of neutral markers, in the form of PST and FST measures, to assess a measure of what proportion of differentiation among patches in phenotypic traits could not be attributed to genetic drift. Males and females were analysed separately to obtain measures of sex specific selection. Signs of divergent and stabilizing selection were found in several traits in both males and females despite the small spatial scale and short time since colonization. Further analysis is needed to assess explanations for trait divergence among patches and direction of selection.
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Human genetic diversity in genes related to host-pathogen interactionsFerrer i Admetlla, Anna 07 January 2009 (has links)
La tesi que teniu a les mans recull quatre treballs amb un objectiu comú; determinar si els patògens (virus, bacteris, paràsits.) han exercit pressions selectives sobre els genomes dels seus hostes (com per exemple els humans).Sabent que la detecció de l'empremta de la selecció permet identificar aquelles regions del genoma que han estat rellevants al llarg de l'evolució d'una espècie, ja que a nivell local és la variació funcional qui acaba essent objecte de la selecció, ens hem disposat a estudiar els possibles senyals de selecció en gens relacionats amb la interacció hoste-patògen. En concret, hem analitzat gens que codifiquen per: a) components del sistema immunitari innat i, b) enzims de glicosilació, la majoria dels quals s'inclouen en quatre de les principals rutes biosintètiques de glicans, en diferents poblacions humanes.Com a conclusió principal; ambdós conjunts de gens mostren clars senyals de selecció. A més hem vist que segons el context biològic on és troben certs gens és veuen més afectats per l'acció de la selecció natural. / The present thesis includes four studies with a common objective: determining whether pathogens (virus, bacteria, parasites.) have exerted selective pressures on the genome of their hosts (for example, humans).Detecting signatures of positive selection is a useful tool to identify functionally relevant genomic regions since selection locally shapes the functional variation. Based on this premise, we have studied the possible signatures of selection in genes related to host-pathogen interactions. Specifically, we have analyzed those genes encoding: a) components of the innate immunity response; and ii) glycosylation enzymes most of them involved in four major glycan biosynthesis pathways, in different human populations.The main conclusion obtained from these studies is that both studied gene categories show clear signatures of selection. Moreover, we have determined that according to their biological context certain genes are more prone to the action of selection.
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