Chromosome Research
○ Springer Science and Business Media LLC
All preprints, ranked by how well they match Chromosome Research's content profile, based on 18 papers previously published here. The average preprint has a 0.01% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.
Takki, O.; Volodkina, V.; Rubtsov, N.; Zadesenets, K.; Ruiz-Ruano, F. J.; Vontzou, N.; Jukova, J.; Kulak, M.; Gaginskaya, E.; Suh, A.; Galkina, S.
Show abstract
The germline-restricted chromosome (GRC) of the zebra finch Taeniopygia guttata represents a well-established model of programmed DNA elimination in vertebrates. Although the DNA composition of the GRC, as well as elimination processes during spermatogenesis and early embryogenesis, have been characterised previously, little is known about the cytogenetic features underlying its unusual behaviour, including its stable transmission through the maternal germline. Here, we provide a detailed characterisation of the zebra finch GRC at the diplotene stage of female meiosis, when chromosomes are actively transcribed and acquire the form of giant lampbrushes. We identified a transcriptionally repressed region on the GRC, which we term the belt. Microdissection and sequencing of the belt revealed that it is predominantly composed of a tandem repeat derived from the dph6 gene, robo1 gene fragments, and ERVs. Notably, the terminally located functional centromere of the GRC lacks typical zebra finch centromeric satellites and, conversely, consists of the newly identified GRC-specific tandem repeats Tgut16-201 and Tgut17-167. The canonical centromeric repeat Tgut716 was observed in the GRC belts. Moreover, belts, like the terminal GRC centromere, were associated with coilin-containing nuclear bodies, which serve as markers of centromeric regions on zebra finch lampbrush chromosomes. Together, our findings provide evidence for the presence of one functional and one putative centromeric region on the zebra finch GRC, suggesting their role in non-Mendelian inheritance of the GRC. Author summaryGermline-restricted chromosomes (GRCs) are unusual chromosomes that are retained in germ cells but eliminated from somatic cells during early development. They have evolved independently in several groups of organisms, but are particularly notable in passerine birds, a large monophyletic vertebrate clade ([~]6,700 species) in which GRCs have persisted for at least 44 million years. Passerine GRCs are normally transmitted to the next generation through the maternal germ cell, however, the mechanisms ensuring their inheritance remain unknown. To address this question, we examined the structure of the zebra finch GRC during female meiosis. We found that the GRC differs from all other chromosomes in possessing two distinct centromeric regions: a functional terminal centromere and an extended heterochromatic region exhibiting centromeric properties. These unusual features suggest a mechanism by which the GRC may achieve its preferential transmission through the female germline. Our findings substantially advance the understanding of the zebra finch GRC and the general biology of passerine GRCs. By revealing chromosome features that may underlie their non-Mendelian inheritance, this work provides new insights into the evolution and behaviour of GRCs and other selfish chromosomes that bias their own transmission.
Nascimento, T.; Marques, A.
Show abstract
The genus Rhynchospora Vahl (beak-sedges) comprises approximately 381 accepted species with a worldwide distribution, all of which possess holocentric chromosomes, where centromeric activity is distributed almost along the entire chromosome. Despite the recent advances, the mechanisms governing the dynamics of meiotic recombination in holocentric plants remain poorly understood. Here, we developed haplotype-specific oligo-FISH probes for chromosomes 1, 2, and 3 based on a haplotype-phased genome assembly of Rhynchospora breviuscula (n = 5), enabling homolog-specific chromosome painting. Each probe set was labelled with a distinct fluorophore and hybridised in situ to metaphase chromosomes of the reference plant and seven F1 individuals derived from self-crossed reference plants. This approach allowed the unambiguous discrimination of homologous haplotypes and the indirect visualisation of crossover (CO) events in recombined chromosomes. We observed that recombination events were predominantly located in terminal chromosomal regions, consistent across individuals. These results corroborate previous findings from single-cell recombination mapping and provide independent cytological validation of the recombination landscape in this species. Our study establishes haplotype-specific chromosome painting as a robust tool for high-resolution mapping of meiotic recombination in holocentric plants across generations. Furthermore, these probes provided a foundation for future investigations into inverted meiosis, a mechanism characterized by an alternative pattern of chromosome segregation in holocentric species.
Bruno, H.; Almeida, I.; D. Vibranovski, M.
Show abstract
Drosophila miranda is considered an excellent model for studying sex chromosome evolution due to its neo-sex chromosomes, which originated from fusions between autosomes and sex chromosomes. In this study, we took advantage of the latest genome assembly of D. miranda to design the first oligo probe libraries targeting neo-sex chromosomes, covering X and Y-linked regions with times ranging from [~]1.5 to 60 million years. These libraries, which include both single-copy and repetitive oligos, were generated by integrating the OligoY approach to the conventional OligoMiner pipeline and validated through fluorescence in situ hybridization (FISH). We optimized oligo density and spacing parameters to predict consistent and effective chromosome painting. Beyond tool improvement, our mapping of the three largest unplaced Y-linked scaffolds in D. miranda reveals a complex evolutionary mechanism driving the current structure of the Y chromosome, including chromosomal translocation, centromere loss, and inversions. This work provides essential tools for sex chromosome identification via probe labeling and offers a foundation for exploring the spatial and evolutionary dynamics of sex chromosomes across different cell types. Author summaryWhile previous studies have focused on using single-copy oligonucleotides for chromosome painting, these oligos have limited effectiveness in targeting repetitive regions such as ribosomal DNA, pericentromeres, and mainly Y chromosomes. In this study, we integrated the OligoMiner and OligoY pipelines to design highly specific oligonucleotide libraries capable of targeting both single-copy and repetitive regions in any chromosome, enabling comprehensive painting of autosome and sex chromosomes. Using Drosophila miranda neo-sex chromosomes as a model, we validated the specificity of our oligo libraries through fluorescence in situ hybridization (FISH). Our results demonstrate that it is possible to achieve successful chromosome painting of sex chromosomes ranging from 1.5 to 60 million years old by combining single-copy and repetitive oligos, without compromising specificity. Notably, we painted the neo-Y chromosome of D. miranda and proposed a hypothesis to give rise to its current structure. This approach provides a powerful tool for studying chromosome evolution and organization, particularly in complex and repetitive genomic regions.
Hernandez Sanchez-Rebato, M.; Schubert, V.; White, C. I.
Show abstract
We report here the successful labelling of meiotic prophase I DNA synthesis in the flowering plant, Arabidopsis thaliana. Incorporation of the thymidine analogue, EdU, enables visualisation of the footprints of recombinational repair of programmed meiotic DNA double-strand breaks (DSB), with [~]400 discrete, SPO11-dependent, EdU-labelled chromosomal foci clearly visible at pachytene and later stages of meiosis. This number equates well with previous estimations of 200-300 DNA double-strand breaks per meiosis in Arabidopsis, confirming the power of this approach to detect the repair of most or all SPO11-dependent meiotic DSB repair recombination. The chromosomal distribution of these DNA-synthesis foci accords with that of early recombination markers and MLH1, which marks Class I crossover sites, colocalises with the EdU foci. It is currently estimated that [~]10 cross-overs (CO) and an equivalent number of non-cross-overs (NCO) occur in each Arabidopsis male meiosis. Thus, at least 90% of meiotic recombination events, and very probably more, have not previously been accessible for analysis. Visual examination of the patterns of the foci on the synapsed pachytene chromosomes corresponds well with expectations from the different mechanisms of meiotic recombination and notably, no evidence for long Break-Induced Replication DNA synthesis tracts was found. Labelling of meiotic prophase I, SPO11-dependent DNA synthesis holds great promise for further understanding of the molecular mechanisms of meiotic recombination, at the heart of reproduction and evolution of eukaryotes. Author SummarySexual reproduction involves the fusion of two cells, one from each parent. To maintain a stable chromosome complement across generations, these specialized reproductive cells must be produced through a specialized cell division called meiosis. Meiosis halves the chromosome complement of gametes and recombines the parental genetic contributions in each gamete, generating the genetic variation that drives evolution. The complex mechanisms of meiotic recombination have been intensely studied for many years and we now know that it involves the repair of programmed chromosomal breaks through recombination with intact template DNA sequences on another chromatid. At the molecular level, this is known to involve new DNA synthesis at the sites of repair/recombination and we report here the successful identification and characterisation of this DNA neo-synthesis during meiosis in the flowering plant, Arabidopsis. Both the characteristics and numbers of these DNA synthesis tracts accord with expectations from theory and earlier studies. Potentially applicable to studies in many organisms, this approach provides indelible footprints in the chromosomes and has the great advantage of freeing researchers from dependence on indirect methods involving detection of proteins involved in these dynamic processes.
Bergelova, B.; Fornaini, N. R.; Tlapkova, T.; Vavra, J.; Plevakova, M.; Cernohorska, H.; Kubickova, S.; Krylov, V.; Evans, B. J.; Knytl, M.
Show abstract
Genomic rearrangements are fundamental drivers of biodiversity, yet dynamics of structural evolution following polyploidization remain poorly understood. Genus Xenopus provides a valuable tool to study these phenomena. Utilizing the diploid X. tropicalis as a reference, we employed cytogenetic and genomic mapping to track the structural evolution of the allotetraploids X. borealis and X. laevis across a 50-million-year timeline. Based on chromosome morphometrics and C-banding patterns, we characterized the X. borealis pseudotetraploid karyotype (2n = 4x = 36), localizing the nucleolus organizer region (NOR) to chromosome 5L, U1 and U2 small nuclear DNAs to 1S and 8L, and 5S rDNA to nearly all chromosomes. Our analysis revealed 17 genomic rearrangements distributed within three temporal strata: ancestral (50-35 Mya), intermediate (35-15 Mya), and recent (< 15 Mya). Although we categorized chromosome 9/10 fusion as an ancestral rearrangement, the 2/9 translocation previously identified in X. mellotropicalis was absent in both studied allotetraploids. Furthermore, we tested for sex-specific structural polymorphism on the X. borealis W chromosome. Despite a large region of recombination suppression between the W and Z, no inversions were detected, indicating persistent sex chromosome homomorphism. Results are consistent with the expectation that tandem repeats such as NORs follow an asymmetric trajectory driven by a jumping mechanism and biased deletion, whereas small nuclear DNA loci are governed by copy number reduction-expansion dynamics. These findings indicate that structural rearrangements in Xenopus were not limited to punctuated bursts immediately following whole-genome duplication; rather, they accumulated over a prolonged evolutionary history, affecting the entire polyploid complement.
Luo, J.; Vale-Silva, L. A.; Raghavan, A. R.; Mercy, G.; Heldrich, J.; Sun, X.; Li, M.; Zhang, W.; Agmon, N.; Yang, K.; Cai, J.; Stracquadanio, G.; Thierry, A.; Zhao, Y.; Coelho, C.; Lauer, S.; Ahn, J. Y.; Adoff, G.; D'Avino, A.; Berger, H.; Chen, Y.; Chickering, M.; Fishman, O.; Greeno, R. V.; Kim, S.; Kim, S.; Lim, H. S.; Im, J.; Meyer, L.; Moyer, A.; Annadanam, S.; Murphy, N. A.; Natov, P.; Nimer, M.; Radley, A.; Tripathy, A.; Wang, T.; Wilkerson, N.; Zheng, T.; Zhou, V.; Zeller, K.; Kaback, D. B.; Bader, J. S.; Mitchell, L. A.; Mozziconacci, J.; Koszul, R.; Hochwagen, A.; Boeke, J. D.
Show abstract
As part of the Synthetic Yeast 2.0 (Sc2.0) project, we designed and synthesized synthetic chromosome I. The total length of synI is [~]21.4% shorter than wild-type chromosome I, the smallest chromosome in Saccharomyces cerevisiae. SynI was designed for attachment to another synthetic chromosome due to concerns of potential instability and karyotype imbalance. We used a variation of a previously developed, robust CRISPR-Cas9 method to fuse chromosome I to other chromosome arms of varying length: chrIXR (84kb), chrIIIR (202kb) and chrIVR (1Mb). All fusion chromosome strains grew like wild-type so we decided to attach synI to synIII. Through the investigation of three-dimensional structures of fusion chromosome strains, unexpected loops and twisted structures were formed in chrIII-I and chrIX-III-I fusion chromosomes, which depend on silencing protein Sir3. These results suggest a previously unappreciated 3D interaction between HMR and the adjacent telomere. We used these fusion chromosomes to show that axial element Red1 binding in meiosis is not strictly chromosome size dependent even though Red1 binding is enriched on the three smallest chromosomes in wild-type yeast, and we discovered an unexpected role for centromeres in Red1 binding patterns.
Holub, M.; Birnie, A.; Japaridze, A.; van der Torre, J.; den Ridder, M.; de Ram, C.; Pabst, M.; Dekker, C.
Show abstract
Chromosome structure and function is studied in cells using imaging and chromosome-conformation-based methods as well as in vitro with a range of single-molecule techniques. Here we present a method to obtain genome-size (megabasepair length) deproteinated DNA for in vitro studies, which provides DNA substrates that are two orders of magnitude longer than typically studied in single-molecule experiments. We isolated chromosomes from bacterial cells and enzymatically digested the native proteins. Mass spectrometry indicated that 97-100% of DNA-binding proteins are removed from the sample. Upon protein removal, we observed an increase in the radius of gyration of the DNA polymers, while quantification of the fluorescence intensities showed that the length of the DNA objects remained megabasepair sized. In first proof-of-concept experiments using these deproteinated long DNA molecules, we observed DNA compaction upon adding the DNA-binding protein Fis or PEG crowding agents and showed that it is possible to track the motion of a fluorescently labelled DNA locus. These results indicate the practical feasibility of a genome-in-a-box approach to study chromosome organization from the bottom up.
Kubalova, I.; Camara, A. S.; Capal, P.; Beseda, T.; Rouillard, J.-M.; Krause, G. M.; Toegelova, H.; Himmelbach, A.; Stein, N.; Houben, A.; Dolezel, J.; Mascher, M.; Simkova, H.; Schubert, V.
Show abstract
The higher-order organization of metaphase chromosomes has been debated for almost 140 years. Classical light and electron microscopy studies suggested that chromatids are composed of helically organized chromatin fibers (chromonemata). Non-helical models were also recently proposed. We studied chromosome organization in barley using cutting-edge approaches and obtained evidence for a helically arranged 400-nm chromatin fiber representing the chromonema within chromatid arms. The number of turns is positively correlated with arm length. Turn size and chromatin density decrease towards the telomeres. Due to their specialized functions, the helical organization of centromeres and nucleolus-organizing regions is interrupted by several thinner, straight chromatin fibers. A comparison with previously published data indicates that the helical turning of metaphase chromatid arms is a conserved feature of large eukaryotic chromosomes.
Valero-Regalon, F. J.; Sole, M.; Lopez-Jimenez, P.; Valerio-de Arana, M.; Martin-Ruiz, M.; de la Fuente, R.; Marin-Gual, L.; Renfree, M. B.; Shaw, G.; Berris, S.; Fernandez-Donoso, R.; Waters, P. D.; Ruiz-Herrera, A.; Gomez, R.; Page, J.
Show abstract
In eutherian mammals, hundreds of programmed DNA double-strand breaks (DSBs) are generated at the onset of meiosis. The DNA damage response is then triggered. Although the dynamics of this response is well studied in eutherian mammals, recent findings have revealed different patterns of DNA damage signaling and repair in marsupial mammals. To better characterize these differences, here we analyzed synapsis and the chromosomal distribution of meiotic DSBs markers in three different marsupial species (Thylamys elegans, Dromiciops gliorides, and Macropus eugenii) that represent South American and Australian Orders. Our results revealed inter-specific differences in the chromosomal distribution of DNA damage and repair proteins, which were associated with differing synapsis patterns. In the American species T. elegans and D. gliroides, synapsis progressed exclusively from the chromosomal ends towards interstitial regions. This was accompanied by sparse H2AX phosphorylation, mainly accumulating at chromosomal ends, which appeared conspicuously polarized in a bouquet configuration at early stages of prophase I. Accordingly, RAD51 and RPA were mainly localized at chromosomal ends throughout prophaseI in both American marsupials, likely resulting in reduced recombination rates at interstitial positions. In sharp contrast, synapsis initiated at both interstitial and distal chromosomal regions in the Australian representative M. eugenii, {gamma}H2AX had a broad nuclear distribution, and RAD51 and RPA foci displayed an even chromosomal distribution. Given the basal evolutionary position of T. elegans, it is likely that the meiotic features reported in this species represent an ancestral pattern in marsupials and that a shift in the meiotic program occurred after the split of D. gliroides and the Australian marsupial clade. Our results open intriguing questions about the regulation and homeostasis of meiotic DSBs in marsupials. The low recombination rates observed at the interstitial chromosomal regions in American marsupials can result in the formation of large linkage groups, thus having an impact in the evolution of their genomes.
Arifulin, E.; Sorokin, D.; Anoshina, N.; Kuznetsova, M.; Valyaeva, A.; Fedotova, A.; Schubert, V.; Kolesnikova, T.; Sheval, E.
Show abstract
Among flowering plants, genome size varies remarkably, by >2200-fold, and this variation depends on the loss and gain of non-coding DNA sequences that form distinct heterochromatin complexes during interphase. In plants with giant genomes, most chromatin remains condensed during interphase, forming a dense network of heterochromatin threads called interphase chromonemata. Using super-resolution light and electron microscopy, we studied the ultrastructure of chromonemata during and after replication in root meristem nuclei of Nigella damascena L. During S-phase, heterochromatin undergoes transient decondensation locally at DNA replication sites. Due to the abundance of heterochromatin, the replication leads to a robust disassembly of the chromonema meshwork and a general reorganization of the nuclear morphology visible even by conventional light microscopy. After replication, heterochromatin recondenses, restoring the chromonema structure. Thus, we show that heterochromatin replication in interphase nuclei of giant-genome plants induces a global nuclear reorganization.
Sader, M. A.; Sucre, Y. M.; Kuo, Y.-T.; Schubert, V.; Nascimento, T.; Fuchs, J.; Dias, Y.; Pistrick, K.; Sargheini, N.; Huettel, B.; Vanzela, A. L. L.; Marques, A.; Houben, A.; Pedrosa-Harand, A.
Show abstract
Centromeres ensure accurate chromosome segregation and are typically confined to a single, localised region in monocentric chromosomes. In contrast, holocentric chromosomes exhibit kinetochore activity distributed along the chromosome length. Although holocentricity is widespread in Cyperaceae, the composition and organisation of these centromeres, as well as their evolutionary diversification, remain poorly understood. Here, we investigated centromere organisation in representatives of the subfamilies Mapanioideae (Hypolytrum schraderianum Nees) and Cyperoideae (Cladium mariscus (L.) Pohl) by combining genome assemblies, repeatome characterisation (RepeatExplorer), fluorescence in situ hybridisation (FISH), and immunolocalisation. Comparative synteny analyses incorporating the genomes of Rhynchospora breviuscula (n = 5) and Carex littledalei (n = 29) identified conserved blocks, eventually expanding almost whole chromosomes of H. schraderianum (n = 30) and Cl. mariscus (n = 39), despite divergent chromosome numbers and deep evolutionary distances within Cyperaceae. Mobile elements showed very low abundances and were uniformly dispersed, with Ty1/Copia Angela being the most abundant in both species. In Cl. mariscus, holocentromeres showed an extended distribution of centromere- and kinetochore-associated proteins along the chromosomes, largely colocalised with two satellite DNA repeats that form dispersed clusters. In contrast, H. schraderianum also displayed kinetochore signals along chromatids, but the most abundant satellite DNA family was enriched in distal and interstitial chromosomal regions rather than interspersed along the chromatids. Together, these results reveal different genomic architectures underlying holocentric organisation in phylogenetically distinct Cyperaceae lineages, suggesting that holocentromeres in this family have diversified with variation in centromere organisation in regard to its association with repetitive DNA.
Dedukh, D.; Zolotarov, H.; Komashchuk, K.; Schartl, M.; Wanzenboeck, J.; Majtanova, Z.; Imai, Y.; Trifonov, V.; Janko, K.; Lamatsch, D.
Show abstract
Sexual reproduction in eukaryotes relies on meiosis, recombination, and fertilization, yet hybridization can lead to transitions to asexuality. Asexual vertebrate hybrids require modified gametogenesis to produce unreduced gametes, but the underlying mechanisms remain poorly understood in various hybrid complexes. Here, we investigated the Carassius gibelio complex, which combines clonal genome propagation to the offspring along with the transmission of B chromosomes. We analyzed meiotic progression and gametogenesis in sexual tetraploid and asexual hexaploid lineages, focusing on sex-specific differences. Cytological analyses of synaptonemal complexes and diplotene chromosomes revealed that both sexes in hexaploid lineages undergo achiasmatic meiosis, characterized by the absence of homologous pairing, recombination, and chiasmata. Chromosomes persist as univalents throughout meiotic prophase. Despite this shared meiotic program, outcomes differ between sexes: females complete oogenesis and produce unreduced eggs, whereas males exhibit disrupted spermatogenesis and reduced fertility. Females bypass the reductional division, enabling clonal gamete formation, while males fail to segregate univalents properly. Furthermore, B chromosomes were detected in both mitosis and meiosis of hexaploid males and females, but not in sexual lineages. B chromosomes were consistently present and varied in number among individuals. B chromosomes varied in number and consistently formed univalents during meiosis, similar to other chromosomes. Significance statementMeiosis normally depends on chromosome pairing and recombination, yet asexual vertebrates can bypass these processes. We demonstrate that asexual hexaploid Carassius gibelio reproduces through achiasmatic meiosis, in which chromosomes fail to pair and recombine. While females successfully produce unreduced clonal eggs, males display reduced fertility, revealing striking sex-specific differences in the ability to overcome meiotic dysfunction. We further show that B chromosomes persist as meiotic univalents and are stably inherited.
Patra, G.; Harastani, M.; Samejima, K.; Remnant, L. C.; Troffer-Charlier, N.; Crucifix, C.; Durand, A.; Marechal, N.; Lutz, Y.; Steyer, A. M.; Yang, Z.; Hagen, W.; Earnshaw, W. C.; Eltsov, M.
Show abstract
The formation of mitotic chromosomes is essential for the accurate segregation of genetic material during cell division. Increasing evidence suggests that chromosome formation involves the reorganization of DNA into loops anchored within chromosomal axial regions, whose structural organization remains insufficiently characterized. Taking advantage of DT40 cells, an avian cell model characterized by the presence of a range of chromosome sizes from 3.2-197 Mb, we have established a preparation of entire close-to-native native mitotic chromosomes for cryogenic correlative light and electron microscopy (cryo-CLEM). The size of the smallest chromosomes allows imaging of their axial regions without further thinning. Cryo-electron tomography of the chromosome axial regions reveals the presence of heterogeneous non-histone macromolecular densities (NHMDs), approximately 30-45 nm in size, interspersed within chromatin/DNA regions. We propose that NHMDs may contain condensins and contribute to chromosome architecture. In addition to NHMDs, we identified dense clusters of particles, similar in size, near the chromosome surface, likely associated with ribosomal components. To quantitatively differentiate NHMDs from these surface clusters, we developed an analytical approach based on particle interspacing and spatial distribution within the chromosome volume. By establishing a cryo-CLEM workflow for whole, near-native mitotic chromosomes, our study provides a foundation for investigating their ultrastructural architecture.
Matveevsky, S.; Kolomiets, O.; Shchipanov, N. A.; Pavlova, S. V.
Show abstract
Hybrid zones are "natural laboratories" for studying speciation. In the common shrew Sorex araneus, the hybrid zone between extremely divergent in karyotypes the Moscow and Seliger chromosomal races is unique, because complex heterozygotes (interracial hybrids) form the longest meiotic configuration consisting of 11 chromosomes with monobrachial homology (undecavalent or chain-of-eleven - CXI). Different studies suggested that such a multivalent would negatively affect meiotic progression and, in general, would significantly reduce fertility. In this work, using immunocytochemical and electron microscopy methods, we investigated chromosome synapsis, recombination, and meiotic silencing in pachytene spermatocytes carrying undecavalent. Despite some abnormalities detected in spermatocytes, such as single associations of chromosomes, stretched centromeres in the multivalent, shifted recombinational peak towards distal parts of chromosomal arms of superchain, heterozygous shrews were able to form a large number of morphologically normal and active spermatozoa. Possible low stringency of pachytene checkpoints, proper segregation of homologous chromosomes, and the ability of hybrids to form mature germ cells imply rapid evolutionary fixation and circulation of Rb chromosomes within shrew populations, leading to a variety of chromosomal races.
Madison, B. S.; Flanagan, M. K.; Nath, S.; White, M. A.
Show abstract
Crossover frequencies often differ substantially between sexes (i.e. heterochiasmy). Although this phenomenon is widespread throughout taxa, the mechanisms that lead to heterochiasmy remain unclear. One pattern that has emerged is that the overall length of the synaptonemal complex likely has a direct influence on the total number of crossovers in each sex. However, this has only been investigated in a handful of species. The threespine stickleback fish (Gasterosteus aculeatus) is an excellent species to explore whether synaptonemal complex length is associated with differences in the total number of crossovers, as females have much longer linkage maps than males. We used an immunocytological approach to quantify synaptonemal complex length in late pachytene female and male meiocytes in two different populations of threespine stickleback fish. Overall, the freshwater population had shorter synaptonemal complex lengths than the marine population. In both populations we observed sexual dimorphism, with females possessing longer axes. Our results support a model where chromosome axis length determines overall crossover frequency and establish the threespine stickleback as a useful species to explore the mechanistic basis of heterochiasmy as well as the genetic basis underlying variation in synaptonemal complex length.
Sattler, M. C.; Singh, A.; Bass, H. W.; Mondin, M.
Show abstract
BackgroundMaize knobs are regions of constitutive heterochromatin that are readily identified in both meiotic and somatic chromosomes. These structures have been characterized as stable throughout the cell cycle, exhibiting late replication during the S-phase, and are composed of two specific families of highly repetitive DNA sequences: K180 and TR-1. Although widely used as cytogenetic markers due to their variability in number and chromosomal position across inbred lines, hybrids, and landraces, little is known about their chromatin structure and dynamics. In this study, we analyzed chromatin accessibility of knobs using DNS-seq data across four maize tissues representing distinct developmental stages. ResultsOur results reveal that K180 knobs exhibit tissue-specific variation in chromatin accessibility, transitioning between open and closed states during development. In contrast, the TR-1 knob of chromosome 4 remained consistently inaccessible across all tissues analyzed. A knob composed of both K180, and TR-1 further supported this observation, with only the K180 region showing dynamic accessibility. To validate these findings, we also analyzed other repetitive regions such as centromeres, which showed a uniformly closed chromatin structure similar to TR-1. These results suggest a unique developmental modulation of chromatin accessibility associated with K180 repeats. While the chromatin accessibility of knobs does not reach the levels observed at Transcription Start Sites (TSS), the comparison among different classes of repetitive DNA within maize constitutive heterochromatin provides compelling evidence for sequence-specific and tissue-specific chromatin dynamics. ConclusionsOur findings uncover a previously unrecognized property of maize knobs and establish a reference for future studies on chromatin organization and epigenetic regulation of repetitive DNA in plant genomes.
Gamba, R.; Mazzucco, G.; Wilhelm, T.; Chardon, F.; Velikovsky, L.; Picotto, J.; Doksani, Y.; Fachinetti, D.
Show abstract
Centromeres are key elements for chromosome segregation. Canonical centromeres are built over long-stretches of tandem repetitive arrays. Despite being quite abundant compared to other loci, centromere sequences overall still represent only 2 to 5% of the human genome, therefore studying their genetic and epigenetic features is a major challenge. Furthermore, sequencing of centromeric regions requires high coverage to fully analyze length and sequence variations, which can be extremely costly. To bypass these issues, we have developed a technique based on selective restriction digestion and size fractionation to enrich for centromeric DNA from human cells. Combining enzymes capable of cutting at high frequency throughout the genome, except within most human centromeres, with size-selection of >20 kb fragments resulted in over 25-fold enrichment in centromeric DNA. Sequencing of the enriched fractions revealed that up to 60% of the enriched material is made of centromeric DNA. This approach has great potential for making sequencing of centromeric DNA more affordable and efficient and for single DNA molecule studies.
Provaznikova, I.; Dalikova, M.; Volenikova, A.; Roessingh, P.; Sahara, K.; Provaznik, J.; Marec, F.; Nguyen, P.
Show abstract
Sex chromosome-autosome fusions give rise to neo-sex chromosomes, which provide an insight into early evolution of sex chromosomes and drivers of chromosomal fusions. While sex chromosome-autosome fusions are scarce in vertebrates with female heterogamety ([female]ZW/[male]ZZ), they are common in moths and butterflies (Lepidoptera), the most species rich group with heterogametic females. This contradicts theoretical model that assumes chromosome fusions to be random and predicts them to be rare in taxa with high chromosome number such as Lepidoptera. In the present study we analyzed sex chromosomes in nine ermine moths of the genus Yponomeuta (Yponomeutidae) and their two outgroups, Teinoptila gutella (Yponomeutidae) and Plutella xylostella (Plutellidae). We employed genomic in situ hybridization to identify sex chromosomes and used a custom designed microarray to identify Z-linked genes. Our results confirmed a multiple sex chromosome system Z1Z2W to be present in T. gutella and all Yponomeuta spp. except for Y. tokyonella. The multiple sex chromosome system resulted from a fusion between the W chromosome and autosome homeologous to the Bombyx mori chromosome 2 (BmChr2). The BmChr2 bears a cluster of genes with ovary-specific expression which suggests that sexually antagonistic selection could have driven fixation of the fusion in a common ancestor of Yponomeuta and Teinoptila genera. We hypothesize that sex chromosome turnover in Lepidoptera could be driven by sexual antagonism.
Torok, A.; Browne, M. J.; Vilar, J. C.; Patwal, I.; DuBuc, T. Q.; Febrimarsa, F.; Atcheson, E.; Flaus, A.; Frank, U.; Gornik, S. G.
Show abstract
Many animals achieve sperm chromatin compaction and stabilisation during spermatogenesis by replacing canonical histones with sperm nuclear basic proteins (SNBPs) such as protamines. A number of animals including hydrozoan cnidarians and echinoid sea urchins lack protamines and have instead evolved a distinctive family of sperm-specific histone H2Bs (spH2Bs) with extended N-termini rich in SPKK-related motifs. Sperm packaging in echinoids such as sea urchins is regulated by spH2Bs and their sperm is negatively buoyant for fertilization on the sea floor. Hydroid cnidarians also package sperm with spH2Bs but undertake broadcast spawning and their sperm properties are poorly characterised. We show that sperm chromatin from the hydroid Hydractinia possesses higher stability than its somatic equivalent, with reduced accessibility of sperm chromatin to transposase Tn5 integration in vivo and to endonucleases in vitro. However, nuclear dimensions are only moderately reduced in mature Hydractinia sperm compared to other cell types. Ectopic expression of spH2B in the background of H2B knockdown resulted in downregulation of global transcription and cell cycle arrest in embryos without altering their nuclear density. Taken together, spH2B variants containing SPKK-related motifs act to stabilise chromatin and silence transcription in Hydractinia sperm without significant chromatin compaction. This is consistent with a contribution of spH2B to sperm buoyancy as a reproductive adaptation.
Slobodchikova, A.; Malinovskaya, L.; Grishko, E.; Pristyazhnyuk, I.; Torgasheva, A.; Borodin, P.
Show abstract
Karyotypes of less than 10% of bird species are known. Using immunolocalization of the synaptonemal complex, the core structure of meiotic chromosomes at the pachytene stage, and centromere proteins we described male pachytene karyotypes of seventeen species of birds. This method enables higher resolution than the conventional analyses of metaphase chromosomes. We provided the first descriptions of the karyotypes of three species (Rook, Blyths reed warbler and European pied flycatcher), corrected the published data on the karyotypes of ten species and confirmed them for four species. All passerine species examined have highly conservative karyotypes, 2n=80-82 with seven pairs of macrochromosomes and 33-34 pairs of microchromosomes. In all of them but not in the Common cuckoo we revealed single copies of the germline restricted chromosomes varying in size and morphology even between closely related species. This indicates a fast evolution of this additional chromosome. The interspecies differences concern the sizes of the macrochromosomes, morphology of the microchromosomes and sizes of the centromeres. The pachytene cells of the Gouldian finch, Brambling and Common linnet contained heteromorphic synaptonemal complexes indicating heterozygosity for inversions or centromere shifts. The European pied flycatcher, Gouldian finch and Domestic canary have extended centromeres in several macro- and microchromosomes.