Zebrafish embryonic explants undergo genetically encoded self-assembly.

Schauer, Alexandra; Pinheiro, Diana; Hauschild, Robert; Heisenberg, Carl-Philipp · Elife · 2020

basic_science · Level V

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Abstract

Embryonic stem cell cultures are thought to self-organize into embryoid bodies, able to undergo symmetry-breaking, germ layer specification and even morphogenesis. Yet, it is unclear how to reconcile this remarkable self-organization capacity with classical experiments demonstrating key roles for extrinsic biases by maternal factors and/or extraembryonic tissues in embryogenesis. Here, we show that zebrafish embryonic tissue explants, prepared prior to germ layer induction and lacking extraembryonic tissues, can specify all germ layers and form a seemingly complete mesendoderm anlage. Importantly, explant organization requires polarized inheritance of maternal factors from dorsal-marginal regions of the blastoderm. Moreover, induction of endoderm and head-mesoderm, which require peak Nodal-signaling levels, is highly variable in explants, reminiscent of embryos with reduced Nodal signals from the extraembryonic tissues. Together, these data suggest that zebrafish explants do not undergo <i>bona fide</i> self-organization, but rather display features of genetically encoded self-assembly, where intrinsic genetic programs control the emergence of order.

Medical subject headings