I. Kondrychyn, Y. Chen, R. Kumar, J. da Silva, H. Wint, G. Chen, K. Kawakami, E. McEvoy, L.-K. Phng
Haematopoietic stem and progenitor cells (HSPCs) emerge from specialised haemogenic endothelial cells (HECs) in the ventral wall of the dorsal aorta (VDA) through a process known as endothelial-to-haematopoietic transition (EHT). During EHT, elongated HECs undergo actomyosin-driven rounding and extrusion, a mechanically demanding transformation that requires cell integrity to be maintained. Here, we identify an osmo-hydraulic volume-regulation mechanism that enables HECs to adapt to and withstand this mechanical challenge. Haemodynamic forces increase Piezo-dependent calcium ion activity in ventral endothelial cells, while Piezo activation promotes HEC swelling. Combined genetic and pharmacological analyses support a pathway in which Piezo-mediated swelling triggers VRAC-dependent osmolyte efflux and Aqp1a.1-mediated water efflux to reduce HEC volume. Disrupting either osmolyte or water efflux causes excessive HEC swelling, compromises HEC integrity and reduces HSPC production. Together, our findings establish osmo-hydraulic volume regulation as a mechanism that preserves cellular robustness during EHT and support a model in which aquaporins act as pressure-relief valves, dissipating intracellular hydrostatic pressure to sustain HEC survival and definitive haematopoiesis.