Non-gene-edited neural stem cells reverse neuroinflammation and microbiota dysbiosis in a sprague-dawley rat model of autism spectrum disorder

  • Transl Psychiatry. 2026 Apr 1;16(1):275. doi: 10.1038/s41398-026-03841-w.
Zhaoming Liu  #  1  2 Caixia Wu  #  3  4 Xianjie Li  5 Han Wang  5 Muhammad Majid  1 Rajesh Basnet  1 Zhiyuan Li  6  7  8  9
Affiliations
  • 1. Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences, Guangzhou, 510530, China.
  • 2. University of Chinese Academy of Sciences, Beijing, 100049, China.
  • 3. Institute of Biological and Medical Engineering, Guangdong Academy of Sciences, Guangzhou, 510316, China. [email protected].
  • 4. National Engineering Research Center for Healthcare Devices, Guangzhou, 510316, China. [email protected].
  • 5. Institute of Biological and Medical Engineering, Guangdong Academy of Sciences, Guangzhou, 510316, China.
  • 6. Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences, Guangzhou, 510530, China. [email protected].
  • 7. University of Chinese Academy of Sciences, Beijing, 100049, China. [email protected].
  • 8. Department of Anatomy and Neurobiology, School of Basic Medical Sciences, Central South University, Changsha, China. [email protected].
  • 9. Xiangya Boai Rehabilitation Hospital, Changsha, Hunan, China. [email protected].
  • # Contributed equally.
Abstract

Autism spectrum disorder (ASD) is a complex neurodevelopmental condition with limited treatment options, where neuroinflammation and gut microbiota dysbiosis are emerging as interconnected therapeutic targets. This study evaluated the therapeutic potential of non-gene-edited human chemically induced pluripotent stem cell-derived neural stem cells (hCiPSC-NSCs) in a prenatal valproic acid (VPA)-induced rat model of ASD, using a dual-pathway administration strategy (intravenous systemic delivery combined with an intracerebroventricular boost). The treatment significantly ameliorated core ASD-like behaviors, including improved sociability (increased stranger interaction time, P < 0.0001), reduced repetitive behaviors (decreased marble-burying, P < 0.0001; and self-grooming, P < 0.05), and enhanced spatial memory (shorter escape latency in the Morris water maze, P < 0.01). At the mechanistic level, hCiPSC-NSCs attenuated neuroinflammation (suppressed IL-1β, IL-6, and TNF-α; elevated IL-10, all P < 0.0001), reduced oxidative stress (restored GSH and SOD, decreased MDA and NO), diminished microglial activation in the hippocampus and cortex, and restored synaptic ultrastructure by replenishing synaptic vesicles. Furthermore, 16S rRNA Sequencing revealed a rebalancing of the gut microbiota, characterized by a reduced Firmicutes/Bacteroidota ratio, enrichment of beneficial taxa like Bacteroidota and Alloprevotella, suppression of pathobionts such as Desulfovibrionales, and partial restoration of microbial diversity. These findings demonstrate that non-gene-edited hCiPSC-NSCs can simultaneously address neural pathophysiology and gut ecosystem disruption in ASD, highlighting their potential as a gut-brain axis-targeting therapy for neurodevelopmental disorders.

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