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Cossec, J.-C.

Publications and source records attributed to Cossec, J.-C..

2 recordsLinked to original sources

Z-DNA formation induces the totipotent-like state and primes Zscan4-dependent chromatin compartmentalization

A remarkable transition during murine development is the progression from the 1-cell embryo to the 2-cell stage, accompanied by the activation of a specific set of embryonic genes, epigenome reprogramming, and nuclear architecture reorganization. Some of these characteristics are recapitulated in vitro with the spontaneous emergence of 2-cell-like cells from mouse embryonic stem cells, which exhibit a transcriptomic signature resembling the 2-cell stage, including the expression of genes such as Dux, Zscan4, and the repetitive element MERVL, and a more relaxed chromatin state. Here, we show that inter- and intra-chromosomal interactions, driven by Zscan4 chromatin factors, form during this transition and segregate into a distinct genomic compartment (Z compartment). Mechanistically, the formation of Z-DNA, an alternative DNA conformation regulated by polyamine levels, promotes the emergence of totipotent-like cells and the establishment of the Z compartment. This compartment is characterized by a decrease in active histone marks and a reduced expression of genes associated with differentiation and late developmental processes. Overall, these findings suggest that Z-DNA formation may play a dual role, first in activating ZGA genes and later in guiding genome compartmentalization to safeguard the totipotent-like state by restricting the expression of non-ZGA genes within a permissive chromatin environment.

cell biology↗

Culture of pluripotent stem cells in microscale droplets modulates differentiation and tissue patterning towards organoids on chip

1The differentiation of pluripotent stem cells (PSCs) and their self-organization into organoids are influenced by cell-cell interactions mediated by contacts and secreted molecules. These interactions are enhanced in microfluidic droplets due to confinement and small culture volumes. However, a comprehensive study on the culture of PSCs within droplets and the impact of this microenvironment has yet to be conducted. In this study, we present a droplet platform for the 3D culture of PSCs at various stages of cellular commitment. We demonstrate PSC differentiation into the three germ layers and the feasibility of organoid formation within droplets. Our findings reveal that culturing PSCs in confined volumes regulates cell fate decisions, promoting tissue patterning in gastruloids through the sequential induction of growth and migration of distinct differentiated cell populations, and facilitating the self-organization of cardiac organoids. This technological approach provides unique insights into the intrinsic factors regulating tissue self-patterning in vitro. 2 Highlights and eTOC blurbO_ST_ABSHighlightsC_ST_ABSO_LIDroplet microfluidics allows expansion and supports the pluripotency of 3D aggregates of PSCs. C_LIO_LIDroplet microfluidics supports and regulates spontaneous differentiation into embryoid bodies. C_LIO_LIDroplet promotes tissue patterning in gastruloids through the sequential induction of growth and migration of mesoderm followed by ectoderm. C_LIO_LIPerfused microfluidic droplets support long term culture and derivation of organoids on chip. C_LI Vertti-Quintero et al. introduces a microfluidic droplet platform for the 3D culture of pluripotent stem cells (PSCs) at various differentiation stages. The format supports the long term 3D culture and the differentiation of PSCs -either spontaneous or directed-. This "microscale culture" can regulate PSCs fate decision, while promoting tissue pattering -as demonstrated in gastruloids polarization- and allowing self-organization towards cardioids formation.

bioengineering↗