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Llobet Ayala, M.

Publications and source records attributed to Llobet Ayala, M..

2 recordsLinked to original sources

Individual mouse mitotic chromosomes exhibit cell type-specific differences in biomechanical properties

Cyclic episodes of chromosome compaction and de-condensation are features of eukaryotic cell division that aid mitotic segregation and help prevent aneuploidy. While biophysical data on mitotic chromosome structure has been previously obtained, heterogeneity within samples can confound analyses and precludes direct like-for-like comparisons. To circumvent this, we employed advanced flow cytometry to purify specific metaphase chromosomes with biotinylated telomeres from stably engineered mouse cells. We show that ESC-derived metaphase chromosomes 3 and 19 display distinct properties but share a conserved force-dependent mechanical response. In contrast, chromosome equivalents isolated from NSCs and preB cells show markedly different force-dependent responses, reflecting progressive differentiation stages. Covalent crosslinking of ESC-derived chromosomes alters biomechanical properties to mimic equivalents from more differentiated cells. Collectively, these results highlight the need to isolate specific, homogeneous metaphase chromosome samples to accurately decipher their complex behaviours.

biophysics↗

The metabolome and proteome of stem cell-derived human primordial germ cells: a multi-omics approach

Primordial germ cells (PGCs) are the population of cells that, in the human embryo, specify day 12 post-fertilization, and form the precursor cells for the future egg or sperm cells. Although in vitro differentiation of PGCs from human stem cells has been achieved, these primordial germ cell-like cells (hPGCLCs) fail to further mature. The reason for this is unclear. Previous studies in mice revealed that several specific metabolic changes occur during the maturation of these cells, which are essential for their developmental progress. However, very little is known about the metabolic profile of human primordial germ cells. In the severe scarcity of human PGCs, hPGCLCs serve as a research model to study PGC formation. To investigate this, we differentiated hPGCLCs using induced-pluripotent stem cells and performed a mass spectrometry analysis to establish their metabolome and proteome. These cells revealed distinct metabolic profile, with changes particularly at the proteome level. This included a shift between canonical and non-canonical citric acid cycle in hPGCLC, downregulation of late-stage glycolysis and reduction of nucleotide de novo synthesis. By providing an integrative map of these metabolic networks, we aim to provide insight on the influence of metabolism on human PGC development that could help improve methods for in vitro differentiation and maturation hPGCLCs.

developmental biology↗