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Published on: August 9, 2017
Pa2G4 is a novel Six1 co-factor that is required for neural crest and otic development
Karen M Neilson1, Genevieve Abbruzzesse2, Kristy Kenyon3
1Department of Anatomy and Regenerative Biology, George Washington University, School of Medicine and Health Sciences, Washington, DC, USA.
Abstract:
Mutations in SIX1 and in its co-factor, EYA1, underlie Branchiootorenal Spectrum disorder (BOS), which is characterized by variable branchial arch, otic and kidney malformations. However, mutations in these two genes are identified in only half of patients. We screened for other potential co-factors, and herein characterize one of them, Pa2G4 (aka Ebp1/Plfap). In human embryonic kidney cells, Pa2G4 binds to Six1 and interferes with the Six1-Eya1 complex. In Xenopus embryos, knock-down of Pa2G4 leads to down-regulation of neural border zone, neural crest and cranial placode genes, and concomitant expansion of neural plate genes. Gain-of-function leads to a broader neural border zone, expanded neural crest and altered cranial placode domains. In loss-of-function assays, the later developing otocyst is reduced in size, which impacts gene expression. In contrast, the size of the otocyst in gain-of-function assays is not changed but the expression domains of several otocyst genes are reduced. Together these findings establish an interaction between Pa2G4 and Six1, and demonstrate that it has an important role in the development of tissues affected in BOS. Thereby, we suggest that pa2g4 is a potential candidate gene for BOS.
Insights
Pa2G4 interacts with Six1, a gene linked to Branchiootorenal Spectrum disorder (BOS). This study identifies Pa2G4 as a potential candidate gene for BOS, impacting development of affected tissues.
Area of Science:
- Developmental biology
- Genetics
- Molecular biology
Background:
- Branchiootorenal Spectrum disorder (BOS) is linked to mutations in SIX1 and EYA1.
- These genes account for only half of BOS cases, suggesting other genetic factors are involved.
Purpose of the Study:
- To identify novel co-factors involved in BOS pathogenesis.
- To characterize the role of Pa2G4 (Ebp1/Plfap) in the development of tissues affected in BOS.
Main Methods:
- Investigated Pa2G4 interaction with Six1 and the Six1-Eya1 complex in human embryonic kidney cells.
- Utilized Xenopus laevis embryos for gain-of-function and loss-of-function studies of Pa2G4.
- Assessed gene expression patterns related to neural development and otocyst formation.
Main Results:
- Pa2G4 binds to Six1 and modulates the Six1-Eya1 complex.
- Pa2G4 knockdown in Xenopus embryos altered neural border zone, neural crest, and cranial placode gene expression.
- Pa2G4 manipulation affected otocyst development and gene expression domains.
Conclusions:
- Pa2G4 interacts with Six1 and plays a crucial role in the development of tissues affected in BOS.
- Pa2G4 is proposed as a potential candidate gene for Branchiootorenal Spectrum disorder.
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