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Postrach, D.

Publications and source records attributed to Postrach, D..

2 recordsLinked to original sources

Holistic genetic barcoding reveals a lineage tree of tissue macrophage development

Tissue macrophages are crucial for organ development and homeostasis, yet the developmental routes leading to tissue macrophages remain controversial. By combining unbiased Polylox barcoding with computational inference, we comprehensively mapped tissue macrophage ontogeny in mice from gastrulation to adult organs. Our data reveal a lineage tree of all tissue macrophages. This tree originates from a pan-hematopoietic progenitor at embryonic day (E)6.5 and branches, via oligolineage progenitors (E7.5-E9.5), into organ-specific macrophage lineages by E10.5. Barcode analysis in embryonic tissues and adult organ fragments suggests that local macrophage colonies, formed by organ-specific progenitors, persist into adulthood. Indeed, spatial fate mapping with Polytope barcoding detects local Kupffer cell colonies of the size predicted by the lineage tree model. Our findings uncover the origin of tissue-resident macrophages from a lineage tree, and show how holistic barcoding can comprehensively map complex cellular lineage specification. One-Sentence SummaryHolistic, time- and space-resolved barcoding in the embryo reveals a unified lineage tree for all tissue macrophages, generating local macrophage colonies persisting in adult organs.

developmental biology↗

Polytope: High-resolution epitope barcoding for in vivo spatial fate-mapping

Tracing the fate of individual cells and their progeny remains a challenging task. While imaging-based fate-mapping provides spatial information, it generally lacks complexity due to limited label diversity, resulting in diminished capture of comprehensive lineages and fate maps. Here, we introduce Polytope, an epitope barcoding system capable of generating up to 512 unique color codes. Comprising nine epitope tag cassettes flanked by loxP sites, Polytope allows random excision via Cre recombinase, creating unique color codes detectable through multiplexed imaging. Using an engineered Polytope mouse, we traced the fate of hundreds of clones across tissues in vivo, from embryonic development until adulthood. Together, Polytope enables high-resolution imaging-based fate-mapping through endogenous epitope barcoding, comprehensively capturing the spatial organization of complex clonal dynamics in situ. One-Sentence SummaryPolytope is an imaging-based barcoding system to trace lineages at clonal and spatial resolution in living organisms using a diverse set of color-coded markers.

developmental biology↗