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Biology subjects

Garcia-Ortega, L.

Publications and source records attributed to Garcia-Ortega, L..

2 recordsLinked to original sources

iFlpMosaics: A method for the ratiometric induction and high-throughput comparative analysis of mutant and wildtype cells

To understand gene function, it is necessary to compare cells carrying the mutated target gene with normal cells. In most biomedical studies, the cells being compared are in different mutant and control animals and therefore do not experience the same epigenetic changes and tissue microenvironment. The experimental induction of genetic mosaics is essential to determine a gene cell-autonomous function and to model the etiology of diseases caused by somatic mutations. Current technologies used to induce genetic mosaics in mice lack either accuracy, throughput or barcoding diversity. Here, we present a large set of new genetic tools and mouse lines that enable Flp recombinase-dependent ratiometric induction and single-cell clonal tracking of multiple fluorescently labeled wildtype and Cre-mutant cells within the same time window and tissue microenvironment. The labeled cells can be profiled by multispectral imaging or by FACS and scRNA-seq. This technology facilitates the induction and analysis of genetic mosaics in any cell type and for any given single or combination of floxed genes. iFlpMosaics enables a more accurate understanding of how induced genetic mutations affect the biology of single cells during tissue development, homeostasis, and disease.

cell biology↗

Incongruence between transcriptional and vascular pathophysiological cell states

The Notch pathway is a major regulator of transcriptional specification and vascular biology. Previous studies have suggested that targeting the ligand Dll4 or the Notch-receptors results in similar molecular and angiogenesis outcomes. Here, we analyzed single and compound genetic mutants for all Notch signaling members and found very significant differences in the way ligands and receptors regulate vascular homeostasis. Loss of Notch receptors, leads to minor vascular pathology featuring hypermitogenic MAPK-driven cell-cycle arrest and senescence. In contrast, loss of Dll4 triggers a strong Myc-driven switch towards cell proliferation and sprouting and major organ pathology. Targeting of Myc completely suppressed the proliferative and tip-cell angiogenic states induced by Dll4 loss-of-function, however, this did not avoid vascular pathology. Only VEGF blockade prevented the pathology induced by Dll4 loss, but without fully suppressing its transcriptional and metabolic programs. This study shows incongruence between single-cell transcriptional states and adult vascular phenotypes and related pathophysiology.

physiology↗