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Huang, T.-N.

Publications and source records attributed to Huang, T.-N..

3 recordsLinked to original sources

Abnormal synaptic proteomes, impaired neural ensembles, and defective behaviors in autism mouse models are ameliorated by dietary intervention with nutrient mixtures

Autism spectrum disorders (ASD) are a group of heterogeneous, behaviorally defined neurodevelopmental conditions influenced by both genetic and environmental factors. Here, we show that nutrients--an important environmental factor--can modulate synaptic proteomes, reconfigure neural ensembles, and improve social behaviors in ASD mouse genetic models. We analyzed Tbr1+/- mice, a well-established model of ASD, using proteomic approaches and in vivo calcium imaging. Synaptic and metabolic proteomes were found to be sensitive to Tbr1 haploinsufficiency. Our results also revealed that Tbr1 haploinsufficiency promotes hyperactivation and hyperconnectivity of basolateral amygdala (BLA) neurons, enhancing the activity correlation between individual neurons and their corresponding ensembles. Zinc, branched-chain amino acids (BCAA), and serine--all nutrients known to regulate synapse formation and activity--were then combined into supplement cocktails and administered to Tbr1+/- mice. This treatment altered synaptic and metabolic proteomes and normalized the activity and connectivity of the BLA in Tbr1+/- mice during social interactions. We further show that although a low dose of individual nutrients did not alter social behaviors, treatment with supplement cocktails containing low-dose individual nutrients improved social behaviors and associative memory of Tbr1+/- mice, implying a synergistic effect of combining low-dose zinc, BCAA, and serine. Moreover, the supplement cocktails also improved social behaviors in Nf1+/- and Cttnbp2+/M120I mice, two additional ASD mouse models. Thus, our findings reveal aberrant neural connectivity in the BLA of Tbr1+/- mice and indicate that dietary supplementation with zinc, BCAA, and/or serine offers a safe and accessible approach to mitigate neural connectivity and social behaviors across multiple ASD models.

neuroscience↗

Assigning Targetable Molecular Pathways to Transdiagnostic Subgroups Across Autism and Related Neurodevelopmental Disorders

The heterogeneity of autism and related neurodevelopmental conditions has impeded accurate prognoses and treatment discovery. Using translational neuroimaging across 135 mouse models (3,515 mice) and two human MRI datasets (n = 1,234 and n = 1,015), we derived participant subgroups from shared neuroanatomical features. These subgroups did not distinguish autism, ADHD, or OCD diagnoses and only modestly differentiated cognitive and behavioural phenotypes. Instead, they mapped onto four molecular pathways: (1) synaptic function; (2) MAPK and Wnt signalling; (3) chromatin modification and cellular stress responses; and (4) broader chromatin, immune, and second-messenger signalling pathways. This framework bridges preclinical models and idiopathic human neurodevelopmental conditions, linking patients to biologically relevant molecular mechanisms.

neuroscience↗

Shared Alteration of Whole-Brain Connectivity and Olfactory Deficits in Multiple Autism Mouse Models

Autism spectrum disorder (ASD) is a disconnection condition influenced by both heterogeneous genetic and environmental factors, yet it remains unclear whether common connectivity deficits exist. Here, we demonstrate that different ASD-linked mutations lead to distinct circuit abnormalities but share deficits in the piriform cortex and olfactory discrimination. Using advanced artificial intelligence, we developed a whole-brain mapping platform to analyze the distribution of the Thy1-YFP projection neurons in three ASD mouse models (Tbr1+/-, Nf1+/-, Vcp+/R95G). Our analysis revealed changes in axonal patterns and neuronal distribution, indicating deficits in projection neuron differentiation and maintenance. Notably, the piriform cortex consistently exhibited reduced YFP+ cells and signals and impaired functionality across all models. Visual and somatosensory cortices were also affected, but the patterns varied. These findings highlight that the sensory regions, especially the piriform cortex, are susceptible to ASD-related mutations, strengthening the notion that different sensory experiences are common in ASD. HighlightsO_LIAI-powered whole-mouse brain quantification accelerates neural connectivity study. C_LIO_LIAutism-linked mutations lead to various circuit abnormalities of Thy1-YFP neurons. C_LIO_LIMultiple sensory regions all exhibit circuit deficits among the three autism models. C_LIO_LIAbnormalities of olfaction and piriform cortex circuits are common in autism models. C_LI

neuroscience↗