An emerging multi-omic understanding of the genetics of opioid addiction
Eric O Johnson1,2, Heidi S Fisher3, Kyle A Sullivan4
1GenOmics and Translational Research Center and.
Abstract:
Opioid misuse, addiction, and associated overdose deaths remain global public health crises. Despite the tremendous need for pharmacological treatments, current options are limited in number, use, and effectiveness. Fundamental leaps forward in our understanding of the biology driving opioid addiction are needed to guide development of more effective medication-assisted therapies. This Review focuses on the omics-identified biological features associated with opioid addiction. Recent GWAS have begun to identify robust genetic associations, including variants in OPRM1, FURIN, and the gene cluster SCAI/PPP6C/RABEPK. An increasing number of omics studies of postmortem human brain tissue examining biological features (e.g., histone modification and gene expression) across different brain regions have identified broad gene dysregulation associated with overdose death among opioid misusers. Drawn together by meta-analysis and multi-omic systems biology, and informed by model organism studies, key biological pathways enriched for opioid addiction-associated genes are emerging, which include specific receptors (e.g., GABAB receptors, GPCR, and Trk) linked to signaling pathways (e.g., Trk, ERK/MAPK, orexin) that are associated with synaptic plasticity and neuronal signaling. Studies leveraging the agnostic discovery power of omics and placing it within the context of functional neurobiology will propel us toward much-needed, field-changing breakthroughs, including identification of actionable targets for drug development to treat this devastating brain disease.
Insights
Understanding the biology of opioid addiction is crucial for developing better treatments. Omics studies reveal genetic links and gene dysregulation in the brain, highlighting pathways for new drug targets.
Area of Science:
- Neuroscience
- Genetics
- Pharmacology
Background:
- Opioid addiction is a major public health crisis with limited treatment options.
- Current medications for opioid addiction have limitations in effectiveness and usage.
- A deeper biological understanding is needed for novel medication-assisted therapies.
Purpose of the Study:
- To review omics-identified biological features linked to opioid addiction.
- To explore genetic associations and gene expression patterns in the brain.
- To identify biological pathways and potential drug targets for opioid addiction.
Main Methods:
- Genome-wide association studies (GWAS) to identify genetic variants.
- Analysis of postmortem human brain tissue using omics approaches (gene expression, histone modification).
- Meta-analysis and multi-omic systems biology, integrating model organism studies.
Main Results:
- GWAS identified genetic variants in genes like OPRM1, FURIN, and the SCAI/PPP6C/RABEPK cluster.
- Omics studies revealed widespread gene dysregulation in brain regions of individuals who died from opioid overdose.
- Key biological pathways implicated include those involving GABAB receptors, GPCRs, Trk, ERK/MAPK, and orexin signaling, affecting synaptic plasticity.
Conclusions:
- Omics studies provide critical insights into the biological underpinnings of opioid addiction.
- Emerging biological pathways offer promising targets for developing more effective pharmacological treatments.
- Integrating omics discovery with neurobiology research is essential for breakthroughs in treating opioid addiction.
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