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Inducible and Reversible Dominant-negative (DN) Protein Inhibition
Published on: January 7, 2019
ER-associated protein degradation is a common mechanism underpinning numerous monogenic diseases including Robinow
Ying Chen1, William P Bellamy, Miguel C Seabra
1Division of Biomedical Sciences, Faculty of Medicine, Imperial College, London SW7 2AZ, UK.
Abstract:
Correct folding of nascent polypeptide chains within the ER is critical for function, assembly into multi-subunit complexes and trafficking through the exocytic pathway for secretory and cell surface proteins. This process is rather inefficient, and a substantial proportion of nascent polypeptides is rejected by an ER quality control system and targeted for degradation. In some cases, only a minor fraction of nascent chains is correctly folded, and the smallest alteration to polypeptide primary structure (i.e. point mutation) can result in the complete loss of function with inherent pathological consequences; cystic fibrosis and emphysema result from such mutations. We have taken a bioinformatic approach to parse a large database of known disease susceptibility genes for candidates whose disease-associated alleles are likely prone to misfolding in the ER. Surprisingly, we find that proteins with ER-targeting signals are over represented in this database when compared with all predicted proteins in the human genome (45 versus 30%). We selected a subgroup of proteins that were positive for both an ER-targeting signal and a membrane-anchoring domain and thereby identified several ER-associated degradation diseases candidates. To determine whether our analysis had identified new ER-degradation substrates, we established that ER retention is indeed the mechanism underlying Robinow syndrome (RRS), one of the identified candidates. Specifically, mutant alleles of ROR2 that are associated with RRS are retained within the ER, whereas wild-type and non-pathogenic alleles are exported to the plasma membrane. These data both uncover a major pathogenic factor for RRS and indicate that misfolding of secretory proteins is likely to significantly contribute to human disease and morbidity.
Insights
Misfolding of proteins in the endoplasmic reticulum (ER) is a significant cause of genetic diseases. This study identifies ER-targeting proteins in disease genes, revealing ER retention as a key factor in Robinow syndrome.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Correct folding of proteins in the endoplasmic reticulum (ER) is essential for their function and transport.
- Protein misfolding due to mutations can lead to severe diseases like cystic fibrosis and emphysema.
- The ER has a quality control system that targets misfolded proteins for degradation.
Purpose of the Study:
- To identify disease susceptibility genes encoding proteins prone to misfolding in the ER.
- To investigate the role of ER-associated degradation in human diseases.
- To determine the pathogenic mechanism of Robinow syndrome (RRS).
Main Methods:
- Bioinformatic analysis of disease susceptibility genes.
- Identification of proteins with ER-targeting signals and membrane-anchoring domains.
- Experimental validation of ER retention as the disease mechanism for RRS.
Main Results:
- Proteins with ER-targeting signals are overrepresented in disease genes.
- Several candidates for ER-associated degradation diseases were identified.
- Mutant ROR2 alleles causing RRS are retained in the ER, unlike wild-type alleles.
Conclusions:
- Protein misfolding and ER retention are significant contributors to human disease.
- ER-associated degradation is a key pathogenic mechanism in several genetic disorders.
- ER retention of mutant ROR2 explains the pathology of Robinow syndrome.
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