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DSCAM Deficiency Leads to Premature Spine Maturation and Autism-like Behaviors
Peng Chen1,2, Ziyang Liu1,2, Qian Zhang3
1School of Life Sciences, Nanchang University, Nanchang, 330031, China.
Abstract:
Mutations in some cell adhesion molecules (CAMs) cause abnormal synapse formation and maturation, and serve as one of the potential mechanisms of autism spectrum disorders (ASDs). Recently, DSCAM (Down syndrome cell adhesion molecule) was found to be a high-risk gene for autism. However, it is still unclear how DSCAM contributes to ASD. Here, we show that DSCAM expression was downregulated following synapse maturation, and that DSCAM deficiency caused accelerated dendritic spine maturation during early postnatal development. Mechanistically, the extracellular domain of DSCAM interacts with neuroligin1 (NLGN1) to block the NLGN1-neurexin1β (NRXN1β) interaction. DSCAM extracellular domain was able to rescue spine overmaturation in DSCAM knockdown neurons. Precocious spines in DSCAM-deficient mice showed increased glutamatergic transmission in the developing cortex and induced autism-like behaviors, such as social novelty deficits and repetitive behaviors. Thus, DSCAM might be a repressor that prevents premature spine maturation and excessive glutamatergic transmission, and its deficiency could lead to autism-like behaviors. Our study provides new insight into the potential pathophysiological mechanisms of ASDs.SIGNIFICANCE STATEMENTDSCAM is not only associated with Down syndrome but is also a strong autism risk gene based on large-scale sequencing analysis. However, it remains unknown exactly how DSCAM contributes to autism. In mice, either neuron- and astrocyte-specific or pyramidal neuron-specific DSCAM deficiencies resulted in autism-like behaviors and enhanced spatial memory. In addition, DSCAM knockout or knockdown in pyramidal neurons led to increased dendritic spine maturation. Mechanistically, the extracellular domain of DSCAM binds to NLGN1 and inhibits NLGN1-NRXN1β interaction, which can rescue abnormal spine maturation induced by DSCAM deficiency. Our research demonstrates that DSCAM negatively modulates spine maturation, and that DSCAM deficiency leads to excessive spine maturation and autism-like behaviors, thus providing new insight into a potential pathophysiological mechanism of autism.
Insights
Down syndrome cell adhesion molecule (DSCAM) deficiency accelerates synapse maturation, leading to autism-like behaviors in mice. This study reveals DSCAM
Area of Science:
- Neuroscience
- Genetics
- Developmental Biology
Background:
- Cell adhesion molecules (CAMs) are implicated in synapse formation and maturation, with mutations potentially contributing to autism spectrum disorders (ASDs).
- Down syndrome cell adhesion molecule (DSCAM) is identified as a high-risk gene for autism, but its specific role in ASD pathogenesis is unclear.
Purpose of the Study:
- To investigate the function of DSCAM in synapse maturation and its contribution to autism-like behaviors.
- To elucidate the molecular mechanism by which DSCAM regulates synapse development and function.
Main Methods:
- Analysis of DSCAM expression during synapse maturation in mice.
- Investigating the effects of DSCAM deficiency on dendritic spine maturation and glutamatergic transmission.
- Examining the interaction between DSCAM, neuroligin1 (NLGN1), and neurexin1β (NRXN1β) using knockdown and knockout models.
- Behavioral testing in mice with DSCAM deficiency to assess autism-related phenotypes.
Main Results:
- DSCAM expression decreases as synapses mature; DSCAM deficiency accelerates dendritic spine maturation.
- The extracellular domain of DSCAM inhibits the interaction between NLGN1 and NRXN1β, preventing premature spine maturation.
- DSCAM-deficient mice exhibit enhanced glutamatergic transmission, precocious spines, and autism-like behaviors, including social deficits and repetitive actions.
Conclusions:
- DSCAM acts as a repressor of premature spine maturation and excessive glutamatergic transmission.
- DSCAM deficiency contributes to autism-like behaviors by disrupting normal synapse development.
- This research offers novel insights into the molecular mechanisms underlying ASDs, highlighting DSCAM's critical role.
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