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Horakova, L.

Publications and source records attributed to Horakova, L..

5 recordsLinked to original sources

Cytogenomic signatures of hybridisation in the genus Carpobrotus reveal biased parental dominance

O_LIHybridisation is frequently associated with plant invasions; however, its consequences for genome organisation and chromosome evolution remain poorly understood in invasive species. We investigated the extent of hybridisation in the invasive Carpobrotus edulis--acinaciformis hybrid complex and determined the cytogenomic contribution of parental species in hybrid accessions. C_LIO_LIWe combined whole-genome sequencing, population genomic analyses, genome size estimation, repeatome characterisation, chromosome counting and fluorescence in situ hybridisation to compare parental species and hybrid accessions from South Africa and the Mediterranean Basin. C_LIO_LIPopulation genomic analyses revealed widespread hybridisation and introgression, with most invasive accessions showing admixed ancestries. Pattersons D-statistic supported asymmetric allele sharing towards C. edulis. Hybrid accessions displayed genome sizes indistinguishable from C. edulis, whereas C. acinaciformis possessed significantly larger genomes. Repeatome analyses identified marked differences in repetitive DNA composition, particularly in satellite DNA abundance and chromosomal distribution. A newly identified satellite repeat (CarpoSat) showed contrasting chromosomal patterns between parental species, whereas hybrids resembled C. edulis satellite pattern. C_LIO_LIOur results demonstrate that Carpobrotus hybrid accessions are a swarm of later-generation hybrids and backcrosses showing a strong bias towards C. edulis, indicating asymmetric introgression. These findings highlight the value of integrating cytogenetic and genomic approaches to understand genome evolution in invasive hybrid complexes. C_LI

plant biology↗

Sex chromosome pairing and multivalent associations during meiosis in diploid and polyploid Silene latifolia

Sex chromosomes undergo various modifications that affect their synapsis during meiosis. While most of the genome achieves full synapsis by the end of pachytene, the non-recombining regions of XY (or ZW) chromosomes often remain asynaptic, and fail to form physical associations at metaphase I. Despite significant progress in animal models, the meiotic behaviour dynamics of plant sex chromosomes remain largely unexplored. In this study, we employed super-resolution microscopy to analyse 3D chromosome organization and the localization of key meiotic proteins. Namely, we studied the dynamics of ASY1, ZYP1, and HEI10, across the leptotene to pachytene stages, and compared sex chromosome behaviour in dioecious Silene latifolia with related gynodioecious S. vulgaris. Our findings show that both exhibits a class I crossover (CO) frequency comparable to mammals, indicating moderate COs per bivalent and their similar genetic determinants. We document variation in sex chromosome configurations, from rod bivalents in diploids to open-ring tetravalents in autopolyploids, and characterize Y chromosome behaviour across XXY, XXXY, and XXYY karyotypes. These results reveal pronounced variation in pairing and synaptic patterns, even within a shared genetic background. We discuss how these patterns reflect the evolutionary trajectory of the non-recombining region and provide the most detailed cytogenetic analysis of sex chromosome pairing in a plant with evolutionary young sex chromosomes.

cell biology↗

Contrasting patterns of subtelomeric satellite superfamily in the Cannabaceae family

Satellite DNA (satDNA) is a rapidly evolving component of plant genomes, often found in centromeric, telomeric, and heterochromatic regions. Due to their variability and species- or population-specific distribution, satDNA serves as valuable cytogenetic markers for studying chromosomal rearrangements and karyotype evolution in closely related species. In dioecious species Cannabis sativa, Humulus lupulus, and Humulus japonicus, previous studies have identified species-specific subtelomeric repeats CS-1, HSR1, and HJSR. While these satellites have been used to differentiate sex chromosomes from autosomes, their evolutionary origins, sequence variation and pattern of conservation among related species remain largely unexplored. In this study, we combine bioinformatics analysis with molecular cloning to analyze sequence similarity among these shared satellites and determine their inter-specific chromosomal localization using fluorescence in situ hybridization (FISH). Our results reveal that HSR1 and HJSR satellites are shared among all studied species suggested oaring from a common ancestor. In contrast, CS-1 satellite exhibit higher sequence divergence. Although all satellites are predominantly localized in subtelomeric regions, CS-1 in H. lupulus and HSR in C. sativa are localized in pericentromeric regions. These findings provide new insight into the evolutionary dynamics of satDNA in Cannabaceae family and its role in genome organization.

plant biology↗

Evolution and functioning of an X-A balance sex determination system in hops

Chromosomal sex determining systems with male heterogamety include actively male-determining-Y and X-A balance systems, both of which are found in animals and plants. The sex-determining genes have been identified in several active-Y plant systems, but the evolution and functioning of X-A balance systems remains mysterious. To study this, we sequenced and compared the genomes of two hop species. The evolution of the hop X-A balance system involved an ancient recombination suppression event across a large X chromosome region shared by both species. In one species, an autosome fused to this ancestral sex chromosome, and recombination was subsequently suppressed again. The two evolutionary strata created in this neo-X have degenerated to different degrees, and evolved correspondingly different dosage compensation levels that correlate with histone modification patterns. Finally, we identified an X-specific ETR1-like ethylene receptor in the ancestral X region. Its dosage may affect sex determination, as part of the counting mechanism of this X-A balance system. One sentence summaryBased on whole genome sequences of the cultivated hop, Humulus lupulus, and its wild relative H. japonicus, we describe the evolution of sex chromosomal regions, three of which that evolved region-specific dosage compensation, and identify a candidate gene involved in their X-A balance sex determining system.

evolutionary biology↗

Centromeric repeat diversity underlies non-Mendelian segregation pattern in hop (Humulus lupulus)

Aberrant meiosis in plants often leads to aneuploidy, genetic instability, and sterility. This can occur due to several factors, including chromosome misalignment, defective synapsis or environmental factors that may result in unusual genetic combinations in the offsprings. Unusual chromosome behavior during male meiosis in Humulus lupulus is linked to irregular chromosome segregation and genome instability. However, the origin of meiotic instability remains unclear. We analyzed the centromeric landscape of H. lupulus to determine its role in aberrant chromosomal segregation during cell division. Using a combination of bioinformatic, molecular and cytogenetic approaches, we identified new centromeric repeats and revealed two types of centromeric organizations. Cytogenetic localization on metaphase chromosomes confirmed the genomic distribution of major repeat arrays and revealed unique features that contribute to aberrant segregation. Two centromeric types are composed of the major repeats SaazCEN and SaazCRM1 which are further accompanied by chromosome-specific centromeric satellites, Saaz40, Saaz293, Saaz85, and HuluTR120. Chromosome 2 displays unbalanced segregation during the cell division, implicating an important role for its centromere structure in segregation patterns. Moreover, Saaz293 is a new marker for studying aneuploidy in hop. Our findings provide new insights on chromosome segregation in hop and highlight the diversity and complexity of the centromere organization in H. lupulus.

plant biology↗