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Vontzou, N.

Publications and source records attributed to Vontzou, N..

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Evidence of two centromeres in the germline-restricted chromosome (GRC): insights from zebra finch lampbrush chromosomes

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.

genetics↗

The germline-restricted chromosome orchestrates germ cell development in passerine birds

While the definition of germ cell fate has been extensively studied in model organisms, evolutionary innovations and mechanistic novelties may remain hidden in understudied systems. The phenomenon of programmed DNA elimination allows germ cells to acquire germline-restricted genes, offering a novel paradigm of germ cell specificity. In passerine birds, the germline-restricted chromosome (GRC) is eliminated from somatic cells in early embryogenesis, yet the role and consequences of its maintenance in the germ cells remain poorly understood. Here, using the zebra finch Taeniopygia guttata as a model, we combined RNA-seq and Spatial Transcriptomics to construct a high-resolution spatiotemporal expression map to understand the role of the GRC across germ cell development. We found a GRC-linked integrin-BMP signaling in maturing oocytes and tfebGRC upregulation at blastoderm embryos, suggesting the involvement of the GRC in oocyte maturation and germ cell determination. We also identified developmental specialization of GRC-linked gene expression relative to their paralogs on the autosomes and sex chromosomes, revealing a gene repertoire which promotes germline stemness and germline/soma distinction. Together, the passerine GRC constitutes a unique system that manifests germ cell complexity, whilst allowing pinpointing the effects on gene expression that may elucidate vertebrate germ cell fate.

developmental biology↗

Programmed DNA elimination drives rapid genomic innovation in two thirds of all bird species

Bird genomes are among the most stable in terms of synteny and gene content across vertebrates. However, germline-restricted chromosomes (GRCs) represent a striking exception where programmed DNA elimination confines large-scale genomic changes to the germline. GRCs are known to occur in songbirds (oscines), but have been studied only in a few species of Passerides such as the zebra finch, the key model for passerine genomics. Their presence and evolutionary dynamics in most major passerine lineages remain largely unexplored, with suboscines entirely unexamined by cytogenetic or genomic methods. Here, we present the most comprehensive comparative analysis of GRCs to date, spanning 44 million years of passerine evolution. By generating the first germline reference genomes of an oscine and a suboscine, 22 novel germline draft genomes spanning nearly all major passerine lineages and a germline draft genome of a parrot outgroup, we show that the GRC is likely present in 6,700 passerine species. Our results reveal that the GRC evolves rapidly and distinctly from the standard A chromosomes (autosomes and sex chromosomes), yet retains functionally important, selectively maintained genes. We observed gene and repeat turnover occuring orders of magnitude faster than on the A chromosomes. Some GRC genes, such as cpeb1 and pim1, are widespread from an ancient duplication. In contrast, other GRC genes, like mfsd2b and bmp15, have been independently duplicated onto the GRC multiple times, suggesting adaptive constraints. The discovery of zglp1 on the zebra finch GRC, initially copied from chromosome 30 and subsequently lost from it, indicates functional replacement, where the GRC permits gene loss from the standard genome. As the GRC harbors the only zglp1 copy in most of the [~]4000 Passerides species, GRC loss would compromise essential germline functions. Our findings establish the GRC as a genomic innovator driving rapid germline evolution. This fact highlights its evolutionary significance for passerine diversification and suggests that programmed DNA elimination may be an overlooked yet phylogenetically widespread mechanism in many understudied animal lineages.

genomics↗

Mechanisms and timing of programmed DNA elimination in songbirds

It is commonly assumed that multicellular organisms contain the same genetic information in all the cells of an individual. However, there is a growing list of species in which parts of the genome are removed from some cells of the organism through a process called programmed DNA elimination. In songbirds, an entire chromosome, called the germline-restricted chromosome (GRC), is lost from all somatic cells during early embryonic development. Nevertheless, the mechanisms, timing and consequences of this elimination remain largely unexplored. Here, we studied GRC elimination using two songbird species, the zebra finch (Taeniopygia guttata) and the Bengalese finch (Lonchura domestica), as model systems. We found that chromosome elimination occurs during the cleavage stage and is completed before egg laying and blastoderm formation. Elimination is associated with delayed attachment of the GRC to the mitotic spindle, changes in its histone modifications, and failure of chromatid separation in anaphase. The lagging GRC is then sequestered into a micronucleus with a defective envelope lacking the essential protein lamin B1, where the DNA is fragmented and degraded. Although the genetic basis of GRC elimination remains to be elucidated, our results suggest that changes of the GRC centromere together with epigenetic modifications of histones play a crucial role in GRC elimination from somatic cells. As the timing of elimination coincides with the germline/soma distinction, we propose that GRC elimination may play an important role in this crucial developmental process in songbirds.

genetics↗