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Nemeckova, A.

Publications and source records attributed to Nemeckova, A..

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Chromosome painting in cultivated banana and their wild relatives (Musa spp.) reveals differences in chromosome structure

Edible banana cultivars are diploid, triploid or tetraploid hybrids which originated by natural cross hybridization between subspecies of diploid Musa acuminata, or between M. acuminata and diploid M. balbisiana. Participation of two other wild diploid species M. schizocarpa and M. textilis was also indicated by molecular studies. Fusion of gametes with structurally different chromosome sets may give rise to progenies with structural chromosome heterozygosity and reduced fertility due to aberrant chromosome pairing and unbalanced chromosome segregation. Only a few translocations have been classified on the genomic level so far and a comprehensive molecular cytogenetic characterization of cultivars and species of the family Musaceae is still lacking. FISH with chromosome-arm specific oligo painting probes was used for comparative karyotype analysis in a set of wild Musa species and edible banana clones. The results revealed large differences in chromosome structure discriminating individual accessions. These results permitted identification of putative progenitors of cultivated clones and clarified genomic constitution and evolution of aneuploid banana clones, which seem to be common among the polyploid banana accessions. New insights into the chromosome organization and structural chromosome changes will be a valuable asset in breeding programs, particularly in selection of appropriate parents for cross hybridization. HighlightOligo painting FISH revealed chromosomal translocations in subspecies of Musa acuminata (A genome), their intra-specific hybrids as well as in M. balbisiana (B genome) and in interspecific hybrid clones originating from cross hybridization between M. acuminata and M. balbisiana

plant biology

DNA replication and chromosome positioning throughout the interphase in three-dimensional space of plant nuclei

Despite the recent progress, our understanding of the principles of plant genome organization and its dynamics in three-dimensional space of interphase nuclei remains limited. In this study, DNA replication timing and interphase chromosome positioning was analyzed in seven Poaceae species differing in genome size. A multidisciplinary approach combining newly replicated DNA labelling by EdU, nuclei sorting by flow cytometry, three-dimensional immuno-FISH, and confocal microscopy revealed similar replication timing order for telomeres and centromeres as well as for euchromatin and heterochromatin in all seven species. The Rabl configuration of chromosomes that lay parallel to each other and their centromeres and telomeres are localized at opposite nuclear poles, was observed in wheat, oat, rye and barley with large genomes, as well as in Brachypodium with a small genome. On the other hand, chromosomes of rice with a small genome and maize with relatively large genome did not assume proper Rabl configuration. In all species, the interphase chromosome positioning inferred from the location of centromeres and telomeres was stable throughout the interphase. These observations extend earlier studies indicating a more complex relation between genome size and interphase chromosome positioning, which is controlled by factors currently not known. HighlightTelomere and centromere replication timing and interphase chromosome positioning in seven grass species differing in genome size indicates a more complex relation between genome size and the chromosome positioning.

plant biology