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ELSAID, R.

Publications and source records attributed to ELSAID, R..

2 recordsLinked to original sources

Distinct origin and fate for fetal hematopoietic progenitors

It was proposed that two sequential sources of intraembryonic multipotent progenitors ensure blood cell production from late gestation into adulthood, with only the latter producing self-renewing hematopoietic stem cells (HSC). How these two populations differ and how they impact the establishment of the postnatal immune system, remains poorly understood. Using complementary lineage tracing models, we showed that the first emerging embryonic multipotent progenitors (eMPP) are responsible for late gestation hematopoiesis. They are distinct from HSC that do not significantly contribute to embryonic mature blood cells. eMPP are the predominant source of embryonic lymphocytes and lymphoid tissue inducer cells, some of which persist for life. Between E12.5 and E16.5 eMPP rapidly differentiate, whereas HSC expand 20-fold. Altogether, these results support the notion that eMPP establish the embryonic adaptive immune system and shape the lymphoid organs where later adaptive immune responses occur, while HSC expand to sustain blood cell production throughout life.

developmental biology↗

A non-invasive photoactivatable split-Cre recombinase system for genome engineering in zebrafish.

The cyclic recombinase (Cre)/loxP recombination system is a powerful technique for in vivo cell labeling and tracking. However, achieving high spatiotemporal precision in cell tracking using this system is challenging due to the requirement for reliable tissue-specific promoters. In contrast, light-inducible systems offer superior regional confinement, tunability and non-invasiveness compared to conventional lineage tracing methods. Here, we took advantage of the unique strengths of the zebrafish to develop an easy-to-use highly efficient, genetically encoded, Magnets-based, light-inducible transgenic Cre/loxP system. Our system relies on the reassembly of split Cre fragments driven by the affinity of the Magnets and is controlled by the zebrafish ubiquitin promoter. We demonstrate that our system does not exhibit phototoxicity or leakiness in the dark, and it enables efficient and robust Cre/loxP recombination in various tissues and cell types at different developmental stages through noninvasive illumination with blue light. Our newly developed tool is expected to open novel opportunities for light-controlled tracking of cell fate and migration in vivo. HighlightsO_LIzPA-Cre is a novel zebrafish transgenic optogenetic split-Cre tool C_LIO_LIzPA-Cre allows loxP-mediated DNA recombination in various tissues and cell types C_LIO_LIIt enables light-induced DNA recombination at different developmental stages. C_LIO_LIIt allows spatio-temporal DNA recombination in a specific tissue region with high resolution C_LI

developmental biology↗