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The Role of Epigenetic Modifications in Autism Spectrum Disorder

The Role of Epigenetic Modifications in Autism Spectrum Disorder Through DNA Methylation

Status
UNKNOWN
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT03152838
Enrollment
40
Registered
2017-05-15
Start date
2017-09-01
Completion date
2019-03-01
Last updated
2017-05-15

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Autism Spectrum Disorder

Brief summary

Autism Spectrum Disorder is a neurodevelopmental disorder characterized by impaired social communication and repetitive or stereotyped behaviors. According to the World Health Organization , the prevalence of Autism Spectrum Disorder is one person in 160.

Detailed description

Genetic and non-genetic factors would contribute to the development of autism. However, the molecular mechanisms of ASD are not clear and successful treatments are still under research. Autism Spectrum Disorder can occur due to exposure to environmental pollutants which lead to epigenetic changes like DNA methylation, acetylation and post-translational modifications. However, the role of epigenetic changes in Autism Spectrum Disorder is still debated. Epigenetic mechanisms represent a link through which environmental factors interact with the genetic factors resulting in modification of Autism Spectrum Disorder risk through changes in gene expression. DNA methylation and histone deacetylation are two major epigenetic mechanisms that regulate the gene expression at successive stages of brain development. Brain derived neurotrophic factor is responsible for brain development. Altered BDNF levels and expression may be closely associated with Autism Spectrum Disorder. . Glial fibrillary acidic protein is the hallmark intermediate filament protein in astrocytes, the main type of glial cells in the central nervous system. Interestingly, Glial fibrillary acidic protein is a marker of astroglial activation and the recent data indicated that Glial fibrillary acidic protein could be implicated in the pathophysiology of autism. However, the underlying mechanisms for the role of brain derived neurotrophic factor and glial fibrillary acidic protein in autism spectrum disorder are poorly understood.

Interventions

GENETICDNA methylation and Real-time Polymerase Chain Reaction Analysis

Fasting blood samples will be collected from both autism and controls for DNA extraction. Peripheral blood (2ml) will be drawn from the cubital vein intoplastic syringes. Lymphocytes will be isolated from blood samples. We will examine the gene methylation in the peripheral blood lymphocytes of drug-naı¨ve autism patients and control subjects. DNA will be isolated from lymphocytes, purified and processed for bisulfate modification. Bisulfate treatment of genomic DNA will be performed using DNA methylation kit according to the manufacturer´ instructions. Bisulfite treatment of genomic DNA converts cytosine to uracil, but leaves methylated 5'Cytosines unchanged. Quantitative real time Polymerase chain reaction will be used to determine the DNA methylation status of the Brian derived neurotrophic factor and glia fibrillary acidic protein genes using primers specific to the human genes.

DIAGNOSTIC_TESTGilliam Autism Rating Scale Arabic version

An assessment of the severity of autism using the Gilliam autism rating scale Arabic version: This test was used for diagnosis and assessment of the severity of autistic features for ages 3-22 years. It consists of 56 items, subdivided into 4 subscales: communication, social interaction, stereotyped behaviors, development and total score. The Arabic version has been validated with good reliability and validity and used in many studies before. The lower the scores are, the worse the condition is. The scale will be done by trained and certified psychologist. The protocol and informed consent for this study will be reviewed and approved by the ethics committee at the Faculty of Medicine, Assiut University, Egypt.

Sponsors

Assiut University
Lead SponsorOTHER

Study design

Observational model
CASE_CONTROL
Time perspective
RETROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
2 Years to 6 Years

Inclusion criteria

1. \- All enrolled children with Autism Spectrum Disorder will be: 1. Exhibit symptoms within the typical triad of autistic traits: communication impairment, social deficits, and ritualistic interests. 2. Drug-naïve. 2. Children with Autism Spectrum Disorder and controls will be 2-6 years old.

Exclusion criteria

The control subjects will also clinically examined by the psychiatrist to exclude any sub-clinical autistic features. Children with Autism Spectrum Disorder and controls will excluded from the study if 1. They receive treatment for any reason. 2. -Endocrinological disease, mental retardation, communication disorder, psychotic disorder, attention deficit hyperactivity disorder and learning disorders seen in the children or their family members.

Design outcomes

Primary

MeasureTime frameDescription
The difference of percentage of DNA methylation of Brain derived neurotrophic factor gene and glial fibrillary acidic protein gene between the two groupsone yearReal Time Polymerase Chain Reaction
The relation between the severity of autistic symptoms and percentage of Brain derived neurotrophic factor gene and glial fibrillary acidic protein gene methylation in Autism cases groupone yearcorrelation test

Contacts

Primary ContactOmyma Galal, MD
omyma_galal@hotmail.com01006807029
Backup ContactEman Sayyed, MD
eman_sayyed2@yahoo.com.com01123392260

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026