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Reduction of Derlin activity suppresses Notch-dependent tumours in the C. elegans germ line
Ramya Singh1, Ryan B Smit1, Xin Wang1
1Department of Biological Sciences, University of Calgary, Calgary, Canada.
Abstract:
Regulating the balance between self-renewal (proliferation) and differentiation is key to the long-term functioning of all stem cell pools. In the Caenorhabditis elegans germline, the primary signal controlling this balance is the conserved Notch signaling pathway. Gain-of-function mutations in the GLP-1/Notch receptor cause increased stem cell self-renewal, resulting in a tumour of proliferating germline stem cells. Notch gain-of-function mutations activate the receptor, even in the presence of little or no ligand, and have been associated with many human diseases, including cancers. We demonstrate that reduction in CUP-2 and DER-2 function, which are Derlin family proteins that function in endoplasmic reticulum-associated degradation (ERAD), suppresses the C. elegans germline over-proliferation phenotype associated with glp-1(gain-of-function) mutations. We further demonstrate that their reduction does not suppress other mutations that cause over-proliferation, suggesting that over-proliferation suppression due to loss of Derlin activity is specific to glp-1/Notch (gain-of-function) mutations. Reduction of CUP-2 Derlin activity reduces the expression of a read-out of GLP-1/Notch signaling, suggesting that the suppression of over-proliferation in Derlin loss-of-function mutants is due to a reduction in the activity of the mutated GLP-1/Notch(GF) receptor. Over-proliferation suppression in cup-2 mutants is only seen when the Unfolded Protein Response (UPR) is functioning properly, suggesting that the suppression, and reduction in GLP-1/Notch signaling levels, observed in Derlin mutants may be the result of activation of the UPR. Chemically inducing ER stress also suppress glp-1(gf) over-proliferation but not other mutations that cause over-proliferation. Therefore, ER stress and activation of the UPR may help correct for increased GLP-1/Notch signaling levels, and associated over-proliferation, in the C. elegans germline.
Insights
Reducing Derlin proteins (CUP-2, DER-2) suppresses stem cell over-proliferation caused by Notch pathway mutations in C. elegans. This suggests ER stress and the Unfolded Protein Response (UPR) can correct aberrant Notch signaling.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Maintaining stem cell pools requires balancing self-renewal and differentiation.
- The Notch signaling pathway is crucial for this balance in the C. elegans germline.
- Gain-of-function mutations in GLP-1/Notch lead to stem cell over-proliferation and are linked to human diseases.
Purpose of the Study:
- To investigate the role of Derlin family proteins (CUP-2, DER-2) in regulating GLP-1/Notch signaling.
- To determine if reducing Derlin function can suppress stem cell over-proliferation phenotypes.
- To explore the connection between endoplasmic reticulum (ER) stress, the Unfolded Protein Response (UPR), and Notch signaling.
Main Methods:
- Utilized C. elegans as a model organism.
- Generated gain-of-function mutations in the GLP-1/Notch receptor.
- Reduced the function of Derlin proteins (CUP-2, DER-2) using genetic approaches.
- Assessed stem cell proliferation and Notch signaling readouts.
- Induced ER stress chemically.
Main Results:
- Reduction of CUP-2 and DER-2 function suppressed glp-1(gain-of-function) induced germline over-proliferation.
- This suppression was specific to Notch gain-of-function mutations.
- Loss of Derlin function reduced GLP-1/Notch signaling levels.
- Suppression required a functional Unfolded Protein Response (UPR).
- Chemical induction of ER stress also suppressed glp-1(gain-of-function) over-proliferation.
Conclusions:
- Derlin proteins are key regulators of GLP-1/Notch signaling activity.
- Reducing Derlin function or inducing ER stress can suppress stem cell over-proliferation caused by aberrant Notch signaling.
- The Unfolded Protein Response (UPR) plays a critical role in mediating this suppression.
- These findings suggest potential therapeutic strategies for diseases linked to Notch pathway dysregulation.
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