Transforming Brain Organoids Into Functional Platforms: Convergence of Engineering, Imaging, AI, and Ethics

Brain organoids are self-organizing 3D aggregates derived from pluripotent stem cells and thus mirror many aspects of human brain development, including gene expression programs, spatial organization, and neuron subtype specification. As a result, these organoids have been used to emulate neurodevelopmental, neuropsychiatric, and neurodegenerative diseases. Yet, their maturation remains fundamentally constrained by diffusion-limited necrosis, incomplete vascularization, limited visualization, and the absence of large-scale circuit integration, which collectively prevent progression beyond the fetal stage. These intrinsic limitations have catalyzed a convergence across microfluidics, biofabrication, imaging, and ethical frameworks, giving rise to a multidisciplinary movement aimed at enhancing organoid viability, reproducibility, and physiological relevance. This perspective examines how these technologies are transforming brain organoids from developmental models into experimentally robust, functional platforms.

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Publication Details

Journal
Advanced Science
Published
2026-09-29
DOI
https://doi.org/10.1002/advs.202523506
Primary Topic
Pluripotent Stem Cells Research
Type
article
Field-Weighted Citation Impact
0.00
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article

Transforming Brain Organoids Into Functional Platforms: Convergence of Engineering, Imaging, AI, and Ethics

Kaustubh G. Joshi, Greta Babakhanova, Aishwarya Pantula, Annie Kathuria et al.
Advanced Science
Pluripotent Stem Cells Research
article

Transforming Brain Organoids Into Functional Platforms: Convergence of Engineering, Imaging, AI, and Ethics

Kaustubh G. Joshi, Greta Babakhanova, Aishwarya Pantula, Annie Kathuria, Swarangi Samant
article en

Abstract

Brain organoids are self-organizing 3D aggregates derived from pluripotent stem cells and thus mirror many aspects of human brain development, including gene expression programs, spatial organization, and neuron subtype specification. As a result, these organoids have been used to emulate neurodevelopmental, neuropsychiatric, and neurodegenerative diseases. Yet, their maturation remains fundamentally constrained by diffusion-limited necrosis, incomplete vascularization, limited visualization, and the absence of large-scale circuit integration, which collectively prevent progression beyond the fetal stage. These intrinsic limitations have catalyzed a convergence across microfluidics, biofabrication, imaging, and ethical frameworks, giving rise to a multidisciplinary movement aimed at enhancing organoid viability, reproducibility, and physiological relevance. This perspective examines how these technologies are transforming brain organoids from developmental models into experimentally robust, functional platforms.

Advanced Science
Kennedy Krieger Institute (US), National Institute of Standards and Technology (US), Johns Hopkins University (US), Johns Hopkins Medicine (US)
Openalex Percentile: Top 20%
Pluripotent Stem Cells Research
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Transforming Brain Organoids Into Functional Platforms: Convergence of Engineering, Imaging, AI, and Ethics — Kaustubh G. Joshi, Greta Babakhanova, et al. · Advanced Science (2026) | TGRS Research Map | TGRS