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Altered transcriptional regulation in cells expressing the expanded polyglutamine androgen receptor
Andrew P Lieberman1, George Harmison, Andrew D Strand
1Neurogenetics Branch, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892, USA. liebermn@umich.edu
Abstract:
Kennedy's disease is a degenerative disease of motor neurons in which the causative mutation is expansion of a CAG/polyglutamine tract near the 5' end of the androgen receptor gene. The mutant protein misfolds, aggregates, and interacts abnormally with other proteins, leading to a novel, toxic gain of function and an alteration of normal function. We used a cell culture model to explore the mechanisms underlying the alterations in androgen receptor function conferred by the mutation. Here we show that cells expressing the wild-type androgen receptor with 24 CAG repeats respond to ligand by showing trophic effects including prolonged survival in low serum, whereas cells expressing the mutant receptor with 65 CAG repeats do not show a robust trophic response. This partial loss of function correlates with decreased levels of the mutant protein due to its preferential degradation by the ubiquitin-proteasome pathway. Expression analysis using oligonucleotide arrays confirms that the mutant receptor has undergone a partial loss of function, and fails to regulate a subset of genes whose expression is normally affected by ligand activation of the wild-type receptor. The mutant receptor has also undergone several functionally important post-translational modifications in the absence of ligand that the wild-type receptor undergoes in the presence of ligand, including acetylation and phosphorylation. These modifications correlate with a ligand-independent gain of function exhibited by the mutant receptor in expression analysis. Our findings suggest that polyglutamine expansion alters androgen receptor function by promoting its degradation and by modifying its activity as a transcription factor.
Insights
Kennedy's disease, caused by androgen receptor gene mutations, impairs motor neuron function. Mutant proteins are degraded, leading to partial loss of normal function and a ligand-independent gain of toxic function.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Kennedy's disease is a motor neuron degenerative disease.
- The mutation involves CAG/polyglutamine tract expansion in the androgen receptor gene.
- Mutant proteins misfold, aggregate, and gain toxic functions.
Purpose of the Study:
- To investigate the mechanisms of altered androgen receptor function in Kennedy's disease using a cell culture model.
- To understand how polyglutamine expansion affects androgen receptor's normal and abnormal functions.
Main Methods:
- Utilized a cell culture model expressing wild-type and mutant androgen receptors.
- Performed expression analysis using oligonucleotide arrays.
- Investigated protein degradation via the ubiquitin-proteasome pathway.
- Analyzed post-translational modifications like acetylation and phosphorylation.
Main Results:
- Cells with mutant androgen receptor (65 CAG repeats) showed a diminished trophic response compared to wild-type (24 CAG repeats).
- Mutant androgen receptor levels were decreased due to preferential degradation by the ubiquitin-proteasome pathway.
- Expression analysis revealed a partial loss of function, with the mutant receptor failing to regulate specific genes.
- Mutant androgen receptor exhibited ligand-independent post-translational modifications and gain of function.
Conclusions:
- Polyglutamine expansion in the androgen receptor alters its function.
- The mutation promotes androgen receptor degradation, contributing to a partial loss of normal function.
- The mutation also modifies androgen receptor activity as a transcription factor, leading to a ligand-independent gain of function.