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March 5, 2026ACS Chemical Neuroscience0 citations

Spatial Neurobiology in Brain Organoids Using Mass Spectrometry Imaging-Based Multiomics Approach

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NPNav Raj PhularaKLKadia LissitYHYuejia Huang

Key Points

  • The research aims to explore the use of mass spectrometry imaging-based multiomics in understanding the molecular landscape of brain organoids.
  • Utilized mass spectrometry imaging (MSI) to analyze brain organoids
  • Employed multiomics strategies for a comprehensive assessment
  • Focused on biomolecules such as lipids, metabolites, proteins, and glycans
  • MSI retained spatial information crucial for understanding tissue microenvironments
  • Multiomics approach revealed complex biomolecular interplay in brain organoids
  • Enhanced understanding of neurobiology relevant to human tissues

Abstract

Brain organoids are stem cell-derived, three-dimensional models that more accurately mimic the cellular complexity and architecture of human brain tissues compared to traditional two-dimensional (2D) cultures or animal models. Their physiological relevance and human-specific neurobiology enhance translational research while aligning with current regulatory shifts toward reducing animal testing in biomedical science. A thorough understanding of the molecular landscape of various biomolecules, such as lipids, metabolites, proteins, and glycans in physiologically relevant brain models, such as organoids, is essential to deciphering complex neurobiology. While mass spectrometry has long been used to understand such molecular landscape in tissues, a single-omics approach is insufficient to fully capture the complexity of brain biology. Therefore, multiomics strategies, such as high-resolution mass spectrometry imaging (MSI), mass spectrometry-based proteomics, and lipidomics, together can provide a holistic view of biomolecular interplay within tissue microenvironments. Moreover, since MSI retains spatial information within tissues, MSI-based multiomics approaches hold immense potential to uncover complex neurobiology within brain organoids. In this article, we present our perspectives on leveraging MSI-based multiomics in brain organoids to understand the complex molecular interplay underlying neurobiology.

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Cite This Study

Phulara et al. (2026) studied this question.

synapsesocial.com/papers/69a91dedd6127c7a504c1555https://doi.org/10.1021/acschemneuro.5c00971
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