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February 5, 2026Nature Communications4 citationsOpen Access

An in vivo and in vitro spatiotemporal profile of human midbrain development

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SBSerena BarralPPPau Roura PuigdevallGHGeorge T. Hall

Key Points

  • This research aims to investigate the developmental profiles of the human midbrain both in vivo and in vitro, particularly focusing on induced pluripotent stem cell models.
  • Conducted single-cell and spatial profiling of fetal midbrain tissues from the first and second trimester.
  • Performed histological examinations of midbrain structural complexity.
  • Mapped gene expression dynamics to reconstruct developmental trajectories of neuronal and astrocytic lineages.
  • Integrated spatial transcriptomics to analyze the organization of organoid models in relation to fetal tissue.
  • Fetal midbrain tissue exhibits structural complexity on par with adult tissues by the second trimester.
  • Single-cell profiling shows differences in cellular composition between fetal and organoid midbrain models.
  • Brain organoids closely resemble late first trimester fetal midbrain tissue based on meta-integration with existing datasets.
  • Spatial organization and intercellular signaling in organoids reflect those found in second trimester midbrain.

Abstract

Abstract The dopaminergic system has key roles in human physiology and is implicated in a broad range of neurological and neuropsychiatric conditions that are increasingly investigated using induced pluripotent stem cell-derived midbrain models. To determine similarities of such models to human systems, here we undertake single-cell and spatial profiling of first and second trimester fetal midbrain and compare it to in vitro midbrain models. Histological examination reveals that, by the second trimester, fetal midbrain tissue exhibits structural complexity comparable to that of adults. At the molecular level, single-cell profiling uncovers differences in cellular composition across models, with brain organoids most closely resembling late first trimester tissue — an observation supported by meta-integration of existing midbrain datasets. By reconstructing developmental trajectories of neuronal and astrocytic lineages, we map gene expression dynamics associated with maturation. Importantly, integration of spatial transcriptomics provides critical context for aligning organoid models, revealing that their spatial organization and intercellular signaling resemble the architecture and microenvironment of the second trimester midbrain. Ultimately, we leverage our findings to study Dopamine Transporter Deficiency Syndrome progression in patient-derived midbrain organoids, validating their relevance. Understanding the extent of human tissue recapitulation in midbrain laboratory models is essential to justify their use as biological proxies.

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Cite This Study

Barral et al. (2026) studied this question.

synapsesocial.com/papers/698435f0f1d9ada3c1fb561dhttps://doi.org/10.1038/s41467-025-67779-1
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