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Balaguer Balsells, I.

Publications and source records attributed to Balaguer Balsells, I..

4 recordsLinked to original sources

A single-nucleus multiomic and spatial atlas of gene regulation in human spermatogenesis

Gametogenesis, the production of oocytes and sperm, ensures the faithful transmission of genetic material to the next generation. In males, spermatogenesis occurs within the testis, where germ cells progress through a highly ordered developmental programme in close association with supporting somatic cells. Defects in this process cause infertility, yet the gene regulatory mechanisms coordinating normal and dysfunctional human spermatogenesis remain incompletely defined. Here we generate a single-nucleus multiomic and spatial atlas of human spermatogenesis by profiling chromatin accessibility and gene expression in the same nuclei and integrating these data with spatial transcriptomics of intact testicular tissue. We infer high-confidence gene regulatory networks that resolve stage-specific activity of known and novel candidate regulators across germline and somatic compartments, and map spatially restricted signalling interactions within the seminiferous tubule niche. Integration with infertility-associated genetic variation links non-coding risk loci to candidate enhancers and target genes in cell-type-specific regulatory contexts. Finally, profiling clinical cryptozoospermia samples as in vivo perturbations supports the ability of this network to capture downstream transcriptional consequences of disease-associated regulatory disruption. Together, these data provide a spatially resolved regulatory framework for human spermatogenesis and a foundation for interpreting the molecular basis of male infertility.

genomics↗

Temporally distinct CDX programmes preconfigure vagal and trunk neural crest

Neural crest cells (NCCs) are progenitor cells vital in establishing the head, heart, gut and peripheral nervous system of vertebrate embryos. Disruptions to NCC development underlie neurocristopathies, which constitute a wide array of congenital anomalies. Yet how NCCs acquire defined regional identities that enable them to generate distinct derivatives along the body axis remains unclear. Here, we identify an epiblast progenitor population in mouse embryos that transiently contributes to vagal neural crest cells and trunk-to-tail derivatives. Using single-cell spatial transcriptomics across successive stages of neural crest migration, we generate a cervicothoracic cell atlas that resolves vagal and trunk neural crest cells in situ. Combining in vivo lineage tracing with in vitro models of neural crest induction, we show that despite transiently sharing a lineage, vagal and trunk neural crest arise through separate mechanisms. Temporally discrete regionalisation events mediated by CDX transcription factors establish HOX states that define vagal versus trunk identity. These findings revise models of NCC formation by demonstrating that temporally separate epiblast regionalisation events preconfigure neural crest and neural progenitor identities. More broadly, the results suggest that primary regionalisation events coordinately govern multiple cell lineages at the cervicothoracic transition, with implications for understanding neurocristopathies involving combined enteric and trunk derivatives.

developmental biology↗

Global re-organisation of genome architecture at the transition to gametogenesis

Global epigenetic resetting in the gonadal primordial germ cells (PGCs) enables transition from early PGCs to gametogenesis and eventual restoring of totipotency after fertilisation. This reprogramming process involves global DNA demethylation, changes in nuclear morphology as well as remodeling of repressive histone modifications. Here, using combined cytological and Hi-C based methods, we reveal that following the epigenetic reprogramming and concomitant with their commitment to gametogenesis, pre-meiotic gonadal germ cells are characterised by a unique chromosome and genome architecture. This involves separation of individual chromosomes and anchoring of centromeres at the nuclear periphery, reduction of inter-chromosome interactions and disentangling of chromosome ends. Furthermore, genome-wide contact mapping documents striking remodeling of 3D genome architecture across all observable levels including disruption of topological associating domains (TADs), loss of detectable loops and reduced active-active compartment interactions. We further show that the diminished TADs correlate with the reduced levels of CTCF thus providing a unique in vivo physiological model to understand genome folding principles. Finally, we show that primordial germ cell like cells (PGCLCs), derived from embryonic stem cells, do not exhibit the same chromatin organisation as embryonic germ cells suggesting that the 3D genome remodeling accompanies acquisition of meiotic competency. Collectively, our findings uncover the existence of a unique chromatin architecture in premeiotic male and female gonadal germ cells and document that alongside global DNA demethylation, the germline epigenetic reprogramming involves erasure of memory at the genome architectural level through a complete re-organisation of the 3D genome.

cell biology↗

Systematic identification of Y-chromosome gene functions in mouse spermatogenesis

The mammalian Y chromosome is essential for male fertility, but how individual Y genes regulate spermatogenesis is poorly understood. To resolve this question, we generate a deletion series of the mouse Y chromosome, creating thirteen Y-deletant mouse models and conducting exhaustive reproductive phenotyping. Eight Y genes, including several that are deeply conserved and exhibit testis-specific expression, are dispensable for spermatogenesis. For others, we uncover novel functions, including a role for Uty in establishment and differentiation of spermatogonia, and for Zfy2 in ensuring meiotic pairing and reciprocal recombination between the sex chromosomes. We also generate the first mouse equivalent of the human infertility AZFa deletion, revealing cumulative detrimental effects of Y-gene loss on spermatogenesis. We use single nuclei RNAseq to identify candidate mechanisms by which Y genes regulate the germ cell transcriptome and reveal an unexpected impact of Y genes on testis supporting cells. Our study represents a paradigm for the complete functional dissection of a mammalian Y chromosome and advances our knowledge of human infertility and Y-chromosome evolution.

genetics↗