Dynamin Binding Protein (Tuba) Deficiency Inhibits Ciliogenesis and Nephrogenesis in Vitro and in Vivo
Jeong-In Baek1, Sang-Ho Kwon1, Xiaofeng Zuo1
1From the Department of Medicine, Medical University of South Carolina, Charleston, South Carolina 29425 and.
Abstract:
Dysfunction of renal primary cilia leads to polycystic kidney disease. We previously showed that the exocyst, a protein trafficking complex, is essential for ciliogenesis and regulated by multiple Rho and Rab family GTPases, such as Cdc42. Cdc42 deficiency resulted in a disruption of renal ciliogenesis and a polycystic kidney disease phenotype in zebrafish and mice. Here we investigate the role of Dynamin binding protein (also known as Tuba), a Cdc42-specific guanine nucleotide exchange factor, in ciliogenesis and nephrogenesis using Tuba knockdown Madin-Darby canine kidney cells and tuba knockdown in zebrafish. Tuba depletion resulted in an absence of cilia, with impaired apical polarization and inhibition of hepatocyte growth factor-induced tubulogenesis in Tuba knockdown Madin-Darby canine kidney cell cysts cultured in a collagen gel. In zebrafish, tuba was expressed in multiple ciliated organs, and, accordingly, tuba start and splice site morphants showed various ciliary mutant phenotypes in these organs. Co-injection of tuba and cdc42 morpholinos at low doses, which alone had no effect, resulted in genetic synergy and led to abnormal kidney development with highly disorganized pronephric duct cilia. Morpholinos targeting two other guanine nucleotide exchange factors not known to be in the Cdc42/ciliogenesis pathway and a scrambled control morpholino showed no phenotypic effect. Given the molecular nature of Cdc42 and Tuba, our data strongly suggest that tuba and cdc42 act in the same ciliogenesis pathway. Our study demonstrates that Tuba deficiency causes an abnormal renal ciliary and morphogenetic phenotype. Tuba most likely plays a critical role in ciliogenesis and nephrogenesis by regulating Cdc42 activity.
Insights
Dynamin binding protein (Tuba) is crucial for kidney development and cilia formation. Tuba deficiency disrupts kidney development by impairing Cdc42 activity, leading to polycystic kidney disease phenotypes.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Renal primary cilia dysfunction causes polycystic kidney disease.
- The exocyst complex regulates ciliogenesis and is controlled by GTPases like Cdc42.
- Cdc42 deficiency disrupts renal ciliogenesis and causes polycystic kidney disease in model organisms.
Purpose of the Study:
- Investigate the role of Dynamin binding protein (Tuba), a Cdc42-specific guanine nucleotide exchange factor, in ciliogenesis and nephrogenesis.
- Determine if Tuba regulates Cdc42 activity in the context of kidney development.
Main Methods:
- Tuba knockdown in Madin-Darby canine kidney cells and zebrafish.
- Assessment of cilia formation, apical polarization, and tubulogenesis.
- Analysis of kidney development and pronephric duct cilia in zebrafish morphants.
- Genetic interaction studies with cdc42 morpholinos.
Main Results:
- Tuba depletion caused absent cilia, impaired apical polarization, and inhibited tubulogenesis in kidney cell cysts.
- Zebrafish tuba morphants exhibited ciliary mutant phenotypes in multiple organs.
- Combined knockdown of tuba and cdc42 showed genetic synergy, leading to abnormal kidney development and disorganized pronephric duct cilia.
- Other guanine nucleotide exchange factors did not show similar effects, supporting a specific pathway.
Conclusions:
- Tuba plays a critical role in ciliogenesis and nephrogenesis.
- Tuba likely regulates Cdc42 activity to control kidney development and ciliary function.
- Tuba deficiency leads to renal ciliary and morphogenetic abnormalities, contributing to polycystic kidney disease.
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