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Published on: October 12, 2017
SIX1 acts synergistically with TBX18 in mediating ureteral smooth muscle formation
Xuguang Nie1, Jianbo Sun, Ronald E Gordon
1Department of Genetics and Genomic Sciences, Mount Sinai School of Medicine of New York University, New York, NY 10029, USA.
Insights
Six1 is essential for ureter development, regulating smooth muscle cell differentiation and function. Its absence causes urinary tract malformations, offering insights into branchio-oto-renal syndrome.
Area of Science:
- Developmental Biology
- Urology
- Genetics
Background:
- Ureteral dysfunction impairs urine flow, leading to hydroureter and hydronephrosis.
- Six1 is vital for kidney development, and its mutations cause branchio-oto-renal (BOR) syndrome.
- The role of Six1 in ureter morphogenesis remained unclear.
Purpose of the Study:
- To investigate the role of Six1 in ureter development and smooth muscle cell differentiation.
- To elucidate the molecular mechanisms underlying Six1-associated urinary tract malformations.
Main Methods:
- Analysis of Six1 expression patterns during ureter morphogenesis.
- Generation and study of Six1-deficient mouse models.
- Investigating Six1-Tbx18 interactions and complex formation.
- Assessing the impact of SIX1 mutations from BOR patients on protein complex formation.
Main Results:
- Six1 is differentially expressed in ureter smooth muscle progenitors, crucial for their maintenance and differentiation.
- Six1 deficiency leads to impaired smooth muscle cell differentiation, increased cell death, hydroureter, and hydronephrosis.
- Six1 and Tbx18 genetically interact and form protein complexes, regulating ureter function.
- BOR patient-derived SIX1 mutations disrupt Six1-Tbx18 complex formation.
Conclusions:
- Six1 is essential for normal ureter development and function.
- Disruption of Six1-Tbx18 interaction contributes to urinary tract malformations in BOR syndrome.
- This study provides new molecular insights into ureter development and BOR syndrome pathogenesis.
Abstract:
Dysfunction of the ureter often leads to urine flow impairment from the kidney to the bladder, causing dilation of the ureter and/or renal pelvis. Six1 is a crucial regulator of renal development: mutations in human SIX1 cause branchio-oto-renal (BOR) syndrome and Six1(-/-) mice exhibit renal agenesis, although the ureter is present. It remains unclear whether Six1 plays a role in regulating ureter morphogenesis. We demonstrate here that Six1 is differentially expressed during ureter morphogenesis. It was expressed in undifferentiated smooth muscle (SM) progenitors, but was downregulated in differentiating SM cells (SMCs) and had disappeared by E18.5. In Six1(-/-) mice, the ureteral mesenchymal precursors failed to condense and differentiate into normal SMCs and showed increased cell death, indicating that Six1 is required for the maintenance and normal differentiation of SM progenitors. A delay in SMC differentiation was observed in Six1(-/-) ureters. A lack of Six1 in the ureter led to hydroureter and hydronephrosis without anatomical obstruction when kidney formation was rescued in Six1(-/-) embryos by specifically expressing Six1 in the metanephric mesenchyme, but not the ureter, under control of the Eya1 promoter. We show that Six1 and Tbx18 genetically interact to synergistically regulate SMC development and ureter function and that their gene products form a complex in cultured cells and in the developing ureter. Two missense mutations in SIX1 from BOR patients reduced or abolished SIX1-TBX18 complex formation. These findings uncover an essential role for Six1 in establishing a functionally normal ureter and provide new insights into the molecular basis of urinary tract malformations in BOR patients.
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