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April 7, 2026Cell Research2 citationsOpen Access

A single small molecule-based human embryo model reveals V-ATPase requirement in mammalian blastocyst cavitation

SASamhan AlsolamiACArun Pandian ChandrasekaranYJYiqing Jin

Key Points

  • To investigate the role of V-ATPase in blastoid cavitation during early human development using a DMSO-induced model.
  • Induced blastoid formation from human naïve pluripotent stem cells using DMSO.
  • Analyzed key morphogenetic features such as TE organization and lumenogenesis.
  • Examined genetic and pharmacological inhibition of V-ATPase to assess impacts on cavitation.
  • DMSO treatment enhances blastoid features and V-ATPase subunit expression.
  • Inhibition of V-ATPase disrupts lysosomal function and impairs cavitation in blastoids.
  • Findings indicate a conserved role for V-ATPase in cavitation across mammalian species.

Abstract

Abstract Human naïve pluripotent stem cells (nPSCs) can be induced by various combinations of signaling factors to generate blastocyst-like structures, termed blastoids. Despite rapid progress in human blastoid models, their potential to uncover fundamental mechanisms of early human development remains limited, leaving key morphogenetic processes poorly understood. Here, we describe a simple and robust system in which dimethyl sulfoxide (DMSO) alone induces blastoid formation from human nPSCs. This model recapitulates key pre- and post-implantation features and exhibits enhanced polar trophectoderm (TE) organization, more efficient attachment within an implantation-relevant window, improved epiblast lumenogenesis associated with amniotic cavity formation, and more robust, sustained expansion of embryonic lineages following attachment. Using this system, we reveal a previously unrecognized mechanism underlying TE cavitation and identify lysosome-associated genes — particularly subunits of the proton pump V-ATPase — as essential regulators of blastoid cavitation. DMSO treatment upregulates key V-ATPase subunits ( ATP6V0A4 and ATP6V1B1 ), which are also enriched in the TE of human embryos. Genetic or pharmacological inhibition of V-ATPase activity disrupts lysosomal acidification, blocks intracellular vacuole formation, and impairs blastoid cavitation, whereas overexpression of V-ATPase subunits rescues this phenotype. Furthermore, genetic and pharmacological perturbations of V-ATPase function significantly compromise cavitation in both mouse and human blastocysts. Finally, DMSO treatment induces membrane biomechanical changes characteristic of early embryonic development, suggesting a mode of action distinct from conventional small-molecule, signaling pathway-based induction strategies. This simple DMSO-based blastoid model recapitulates key aspects of human blastocyst development and reveals a conserved requirement for V-ATPase-mediated lysosomal acidification during early mammalian embryogenesis.

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Cite This Study

Alsolami et al. (2026) studied this question.

synapsesocial.com/papers/69d49f8ab33cc4c35a228037https://doi.org/10.1038/s41422-026-01239-3
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