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receptor agonists and have re-emerged as candidates for modulating these core pathways. In this Review, we synthesize molecular, cellular, and systems-level findings suggesting that psychedelics may transiently relax overly rigid cortical priors, reopen critical periods for social learning, and recalibrate dysfunctional neural circuits in ASD. These compounds enhance synaptic plasticity via BDNF and mTOR signaling, modulate cortical oscillations, and suppress neuroinflammation by shifting microglial phenotypes and suppressing pro-inflammatory cytokines. Systems-level frameworks, including the REBUS and anarchic brain hypotheses, contextualize how psychedelics induce globally integrated, less constrained brain states that may counteract the hyper-segregated connectivity commonly observed in ASD. While preclinical and early human studies report improvements in sociability, sensory responsiveness, and behavioural flexibility, rigorous clinical trials are urgently needed to establish safety, efficacy, and optimal developmental windows for intervention. We conclude by outlining a translational roadmap to guide future research, emphasizing the need for structured integration with behavioural therapies, attention to ASD heterogeneity, ethical considerations, and the potential to shift ASD treatment beyond symptomatic management toward disease-modifying intervention.
Zhen Xuen Brandon Low (Wed,) studied this question.