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Retinal alterations in a pre-clinical model of an autism spectrum disorder
Elisa Maria Guimarães-Souza1, Christina Joselevitch2, Luiz Roberto G Britto1
11Department of Physiology and Biophysics, Biomedical Sciences Institute, University of São Paulo, Av. Prof. Lineu Prestes, 1524, São Paulo, SP 05508-000 Brazil.
Insights
Prenatal exposure to valproic acid (VPA) in mice induced autism spectrum disorder (ASD) endophenotypes, showing altered retinal function and protein expression. This suggests the retina may offer insights into ASD mechanisms.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Autism spectrum disorders (ASD) affect 1.5% of the global population, characterized by social and communication deficits.
- Synaptic and neurochemical imbalances, particularly in GABAergic and glutamatergic signaling, are implicated in ASD pathogenesis.
- Sensory hypersensitivity is a common ASD symptom, but its underlying mechanisms, especially in the retina, remain poorly understood.
Purpose of the Study:
- To investigate retinal alterations in adolescent mice exposed prenatally to valproic acid (VPA), a model for ASD endophenotypes.
- To assess behavioral changes, protein expression, and retinal function in VPA-exposed mice.
Main Methods:
- Mice were exposed to VPA or saline during gestation, with male offspring behaviorally tested for anxiety and social interaction.
- Retinal protein levels (GABA, GAD, synapsin-1, FMRP, mGluR5) were quantified via immunoassays.
- Retinal function was evaluated using full-field scotopic electroretinograms (ERGs).
Main Results:
- VPA-exposed mice exhibited impaired social interest and increased anxiety, consistent with an ASD phenotype.
- Retinal expression of GABA, GAD, synapsin-1, and FMRP was reduced, while mGluR5 expression was increased.
- VPA-exposed mice showed reduced a-wave amplitudes in ERGs, with normal b-wave and oscillatory potentials.
Conclusions:
- Prenatal VPA exposure induces ASD-like behavioral and retinal changes in adolescent mice.
- Alterations in retinal protein expression and function correlate with synaptic disturbances and excitatory/inhibitory imbalance seen in ASD.
- The retina serves as a potential window to explore the mechanisms underlying autism spectrum disorders.
Background:
Autism spectrum disorders (ASD) affect around 1.5% of people worldwide. Symptoms start around age 2, when children fail to maintain eye contact and to develop speech and other forms of communication. Disturbances in glutamatergic and GABAergic signaling that lead to synaptic changes and alter the balance between excitation and inhibition in the developing brain are consistently found in ASD. One of the hallmarks of these disorders is hypersensitivity to sensory stimuli; however, little is known about its underlying causes. Since the retina is the part of the CNS that converts light into a neuronal signal, we set out to study how it is affected in adolescent mice prenatally exposed to valproic acid (VPA), a useful tool to study ASD endophenotypes.
Methods:
Pregnant female mice received VPA (600 mg/kg, ip) or saline at gestational day 11. Their male adolescent pups (P29-35) were behaviorally tested for anxiety and social interaction. Proteins known to be related with ASD were quantified and visualized in their retinas by immunoassays, and retinal function was assessed by full-field scotopic electroretinograms (ERGs).
Results:
Early adolescent mice prenatally exposed to VPA displayed impaired social interest and increased anxiety-like behaviors consistent with an ASD phenotype. The expression of GABA, GAD, synapsin-1, and FMRP proteins were reduced in their retinas, while mGluR5 was increased. The a-wave amplitudes of VPA-exposed were smaller than those of CTR animals, whereas the b-wave and oscillatory potentials were normal.
Conclusions:
This study establishes that adolescent male mice of the VPA-induced ASD model have alterations in retinal function and protein expression compatible with those found in several brain areas of other autism models. These results support the view that synaptic disturbances with excitatory/inhibitory imbalance early in life are associated with ASD and point to the retina as a window to understand their subjacent mechanisms.
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