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Australian Journal of Botany Australian Journal of Botany Society
Southern hemisphere botanical ecosystems
RESEARCH ARTICLE

Cytological study of Polystichum (Dryopteridaceae) species from southern South America

Rita E. Morero A B D , Franco E. Chiarini A , Juan Urdampilleta A , Gloria E. Barboza A B and David S. Barrington C
+ Author Affiliations
- Author Affiliations

A Instituto Multidisciplinario de Biología Vegetal (IMBIV-CONICET), and Universidad Nacional de Córdoba CC 495, CP 5000, Córdoba, Argentina.

B Facultad de Ciencias Químicas, Universidad Nacional de Córdoba, Haya de la Torre y Medina Allende, Córdoba, Argentina.

C University of Vermont, Pringle Herbarium, Torrey Hall, 27 Colchester Avenue, Burlington, VT 05405, USA.

D Corresponding author. Email: ritamorero@gmail.com

Australian Journal of Botany 63(5) 403-414 https://doi.org/10.1071/BT14287
Submitted: 24 October 2014  Accepted: 25 February 2015   Published: 18 May 2015

Abstract

Polystichum is one of the most diverse genera of ferns, with 360–400 species distributed worldwide. South America harbors ~40 species, clustered in three centres of diversity, namely, the Northern and Central Andes Center (NCC), the Brazilian Center (BC) and the Southern South America Center (SSC). To increase our understanding of the systematic relationships within Polystichum, mitotic chromosomes and spore features were studied in nine species from Argentina and Chile. All species presented the basic number x = 41, with different ploidy levels (2x, 4x and 8x). In general, chromosomes were homogeneous in size (average length 2.50–5.75 µm) and mostly subtelocentric; centromeres were inconspicuous and secondary constrictions were frequently observed. All species presented 64 spores per sporangium, suggesting normal sexual reproduction. Significant differences in spore size were found among species and it was positively correlated with ploidy level. A relationship between sum total chromosome length and ploidy level was observed. However, there was also a reduction in single-chromosome length in the polyploids, pointing to genome downsizing. Our results agree with previous records, with diploids being frequent among NCC species and absent among SSC species. In addition to sharing very specific morphological characters, SSC species are cytologically characterised by being polyploids (4x and 8x). A literature survey covering 116 species of Polystichum revealed that Australian and New Zealand Polystichum species exhibit similarly high frequencies of polyploidy. In the case of P. tetragonum (2n = 164), endemic to the Juan Fernandez archipelago, our data suggested that it was originated by transoceanic migration from a South American ancestor, probably also tetraploid.

Additional keywords: chromosome number, polyploidy, spore size.


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