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Published on: October 27, 2023
Sumoylation of bZIP transcription factor NRL modulates target gene expression during photoreceptor differentiation
Jerome E Roger1, Jacob Nellissery, Douglas S Kim
1Neurobiology-Neurodegeneration and Repair Laboratory, NEI, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
Development of rod photoreceptors in the mammalian retina is critically dependent on the basic motif-leucine zipper transcription factor NRL (neural retina leucine zipper). In the absence of NRL, photoreceptor precursors in mouse retina produce only cones that primarily express S-opsin. Conversely, ectopic expression of NRL in post-mitotic precursors leads to a rod-only retina. To explore the role of signaling molecules in modulating NRL function, we identified putative sites of post-translational modification in the NRL protein by in silico analysis. Here, we demonstrate the sumoylation of NRL in vivo and in vitro, with two small ubiquitin-like modifier (SUMO) molecules attached to the Lys-20 residue. NRL-K20R and NRL-K20R/K24R sumoylation mutants show reduced transcriptional activation of Nr2e3 and rhodopsin promoters (two direct targets of NRL) in reporter assays when compared with wild-type NRL. Consistent with this, in vivo electroporation of the NRL-K20R/K24R mutant into newborn Nrl(-/-) mouse retina leads to reduced Nr2e3 activation and only a partial rescue of the Nrl(-/-) phenotype in contrast to the wild-type NRL that is able to convert cones to rod photoreceptors. Although PIAS3 (protein inhibitor of activated STAT3), an E3-SUMO ligase implicated in photoreceptor differentiation, can be immunoprecipitated with NRL, there appears to be redundancy in E3 ligases, and PIAS3 does not seem to be essential for NRL sumoylation. Our studies suggest an important role of sumoylation in fine-tuning the activity of NRL and thereby incorporating yet another layer of control in gene regulatory networks involved in photoreceptor development and homeostasis.
Insights
Neural retina leucine zipper (NRL) protein sumoylation fine-tunes its activity, impacting photoreceptor development. This post-translational modification is crucial for regulating gene networks in the mammalian retina.
Area of Science:
- Molecular Biology
- Developmental Biology
- Neuroscience
Background:
- Photoreceptor development in the mammalian retina relies on the transcription factor NRL.
- NRL absence results in S-opsin cone production, while its ectopic expression yields rod-only retinas.
Purpose of the Study:
- To investigate the role of post-translational modifications in modulating NRL function.
- To identify signaling molecules that influence NRL activity during photoreceptor differentiation.
Main Methods:
- In silico analysis to predict NRL post-translational modification sites.
- In vivo and in vitro sumoylation assays.
- Reporter assays to assess transcriptional activation of NRL targets.
- In vivo electroporation in Nrl(-/-) mouse retina.
Main Results:
- NRL undergoes sumoylation at the Lys-20 residue.
- Sumoylation mutants (NRL-K20R, NRL-K20R/K24R) exhibit reduced transcriptional activity on Nr2e3 and rhodopsin promoters.
- Electroporation of NRL-K20R/K24R in Nrl(-/-) mice showed partial rescue, unlike wild-type NRL.
Conclusions:
- Sumoylation is a key regulatory mechanism for NRL activity in photoreceptor development.
- This modification adds a layer of control to gene regulatory networks governing retinal homeostasis.
- While PIAS3 interacts with NRL, it's not essential for NRL sumoylation, suggesting ligase redundancy.
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