TL;DR: The present investigation was undertaken as a cytological survey of a group of closely related species with particular reference to apogamy, when it was noted in a revision of Pellaea section Pellaea Tryon (1957) that the relationships of several entities in the group were complicated by Apogamy and apparently hybridization.
Abstract: Apogamy in ferns involving the premeiotic doubling of the chromosome number has recently been reported by Manton (1950) to occur in several unrelated species including Pellaea atropurpurea. A second report was made of apogamy in Pellaea, in a floristic survey of the chromosome numbers of ferns of eastern North America, by Britton (1953) in P. glabella var. glabella. The present investigation was undertaken as a cytological survey of a group of closely related species with particular reference to apogamy, when it was noted in a revision of Pellaea section Pellaea Tryon (1957) that the relationships of several entities in the group were complicated by apogamy and apparently hybridization. The genus Pellaea belongs to the tribe Cheilantheae of the Polypodiaceae and the fifteen species included in section Pellaea are predominately Cordilleran, growing in dry, rocky habitats, under semi-deAert conditions quite unlike that usually associated with ferns.
TL;DR: The results suggest that the widely accepted premise that ferns are not limited by dispersal or establishment should be reconsidered, as such limitations are the only likely explanation for empty available and suitable habitat.
Abstract: In Canada, as in many countries, a relatively large number of fern species occur in specialized habitats and have low numbers of known populations containing few individuals. It has been suggested that the distribution of ferns is mostly determined by factors of climate and habitat due to relatively low limitations in ferns for dispersal and establishment. Here, we attempt to explain whether the local patchy distribution of three calcicole fern species rare in Canada (Asplenium ruta-muraria, Pellaea atropurpurea and Woodsia obtusa) is due to a lack of available habitat. Analyses based on micro-scale differences between sites occupied by the ferns and nearby, unoccupied sites did not reveal any significant differences, thereby indicating that the rarity of these species is not entirely driven by the rarity of their microhabitat at a local scale. Our results suggest that the widely accepted premise that ferns are not limited by dispersal or establishment should be reconsidered, as such limitations are the only likely explanation for empty available and suitable habitat.
TL;DR: In this article, a model for analyzing changes in the composition, richness, and distribution of fern and lycopod species by elevation in the Barranca de Metztitlan Biosphere Reserve, in the state of Hidalgo in central Mexico.
Abstract: In Mexico, little is known about species richness and distribution patterns of ferns and lycopods (Pteridophytes) in dry climates, since both groups have been studied mainly in wet environments. The Barranca de Metztitlan Biosphere Reserve, in the state of Hidalgo in central Mexico, is covered mostly with xerophytic vegetation and has a rugged landscape with contrasting climate areas. It was selected for this study as an appropriate model for analyzing changes in the composition, richness, and distribution of fern and lycopod species by elevation. To establish the relationship between species composition and richness along the elevation gradient, simple and multivariate correlation techniques were used (TWISPAN and detrended correspondence analysis). From a total of 464 specimens collected, 69 fern species and two hybrids, and eight lycopod species were identified. Three of the species had not previously been recorded for the state of Hidalgo: Pellaea atropurpurea, Thelypteris hispidula, and Sel...
TL;DR: In this investigation the following questions were of interest: Are there different enzyme genotypes, either within populations or between populations from different parts of the distribution area?
Abstract: When we study apomictic taxa two basic questions are of special relevance. The first is the question of their phylogenetic and/or geographic origin, the second is that of their genetic composition (variability or uniformity). There exists a variety of allozyme studies in apomictic angiosperms (Asker & Jerling, 1992; Battjes et al., 1992) which allows insights into the genetic patterns of apomicts and their evolution. In apomictic plants various genetic structures are observed. For example, the populations of apomictic species are sometimes multiclonal and the genetic differences between populations may often be relatively high (Ellstrand & Roose, 1987). According to Walker (1984) about 10% of all ferns are agamosporous. In the last decade a few investigations on apomictic (agamosporous) ferns using isozyme methods were published. In contrast to the earlier opinion, that agamosporous species are exclusively of hybrid origin (Walker, 1984), it was shown that in some examples, for instance Pellaea andromedifolia (Gastony & Gottieb, 1985), the Pellaea glabella complex (Gastony, 1988), and in Dryopteris sparsa (Darnaedi et al., 1990b), autopolyploidy may play an important role in the formation of apomicts. The apomictic species Pellaea atropurpurea (Gastony & Windham, 1989), Asplenium unilaterale (Watano & Iwatsuki, 1988), Pteris cretica (Suzuki & Iwatsuki, 1990), and Dryopteris yakusilvicola (Darnaedi et al., 1990a), on the other hand seem to have originated through hybridization events between different species. Agamospory in D. remota was first described by Fischer (1909). It was Dopp (1932) who worked out the detailed cytological background of the agamospory in this fern. Dopp's findings are valid for most of the agamosporous fern species (Walker, 1979). Dryopteris remota is triploid and appears to be strictly agamosporous (Fraser-Jenkins & Reichstein, 1984). This European species is distributed from the eastern Pyrenees to the Caucasus but is everywhere rare. Dryopteris remota usually grows as single individuals or forms small stands of a few to sometimes about 50 individuals. The populations are isolated from each other, sometimes by large distances. The largest population known so far was described by Benl & Eschelmiller (1973). About 130 individuals were found in one site (2000 x 300 m2) in Bavaria. In terms of morphological characteristics, D. remota seems to be quite uniform (except for characters most likely due to phenotypic plasticity) (Fraser-Jenkins & Reichstein, 1984). In our investigation the following questions were of interest: Are there different enzyme genotypes, either within populations or between populations from different parts of the distribution area? Do enzyme data point to a unique, or a multiple origin of the species? MATERIALS AND METHODS