Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

The voltage sensing phosphatase (VSP) localizes to the apical membrane of kidney tubule epithelial cells

View through CrossRef
Abstract Voltage-sensing phosphatases (VSPs) are transmembrane proteins that couple changes in membrane potential to hydrolysis of inositol signaling lipids. VSPs catalyze the dephosphorylation of phosphatidylinositol phosphates (PIPs) that regulate diverse aspects of cell membrane physiology including cell division, growth and migration. VSPs are highly conserved among chordates, and their RNA transcripts have been detected in the adult and embryonic stages of frogs, fish, chickens, mice and humans. However, the subcellular localization and biological function of VSP remains unknown. Using reverse transcriptase-PCR (RT-PCR), we show that both Xenopus laevis VSP (Xl-VSP1 and Xl-VSP2) mRNAs are expressed in early embryos, suggesting that both Xl-VSPs are involved in early tadpole development. To understand which embryonic tissues express Xl-VSP mRNA, we used in situ hybridization (ISH) and found Xl-VSP mRNA in both the brain and kidney of NF stage 32-36 embryos. By Western blot analysis with a VSP antibody, we show increasing levels of Xl-VSP protein in the developing embryo, and by immunohistochemistry (IHC), we demonstrate that Xl-VSP protein is specifically localized to the apical membrane of both embryonic and adult kidney tubules. We further characterized the catalytic activity of both Xl-VSP homologs and found that while Xl-VSP1 catalyzes 3- and 5-phosphate removal, Xl-VSP2 is a less efficient 3-phosphatase with different substrate specificity. Our results suggest that Xl-VSP1 and Xl-VSP2 serve different functional roles and that VSPs are an integral component of voltage-dependent PIP signaling pathways during vertebrate kidney tubule development and function.
Title: The voltage sensing phosphatase (VSP) localizes to the apical membrane of kidney tubule epithelial cells
Description:
Abstract Voltage-sensing phosphatases (VSPs) are transmembrane proteins that couple changes in membrane potential to hydrolysis of inositol signaling lipids.
VSPs catalyze the dephosphorylation of phosphatidylinositol phosphates (PIPs) that regulate diverse aspects of cell membrane physiology including cell division, growth and migration.
VSPs are highly conserved among chordates, and their RNA transcripts have been detected in the adult and embryonic stages of frogs, fish, chickens, mice and humans.
However, the subcellular localization and biological function of VSP remains unknown.
Using reverse transcriptase-PCR (RT-PCR), we show that both Xenopus laevis VSP (Xl-VSP1 and Xl-VSP2) mRNAs are expressed in early embryos, suggesting that both Xl-VSPs are involved in early tadpole development.
To understand which embryonic tissues express Xl-VSP mRNA, we used in situ hybridization (ISH) and found Xl-VSP mRNA in both the brain and kidney of NF stage 32-36 embryos.
By Western blot analysis with a VSP antibody, we show increasing levels of Xl-VSP protein in the developing embryo, and by immunohistochemistry (IHC), we demonstrate that Xl-VSP protein is specifically localized to the apical membrane of both embryonic and adult kidney tubules.
We further characterized the catalytic activity of both Xl-VSP homologs and found that while Xl-VSP1 catalyzes 3- and 5-phosphate removal, Xl-VSP2 is a less efficient 3-phosphatase with different substrate specificity.
Our results suggest that Xl-VSP1 and Xl-VSP2 serve different functional roles and that VSPs are an integral component of voltage-dependent PIP signaling pathways during vertebrate kidney tubule development and function.

Related Results

Seismic Acquisition of Walkaway VSP and Walk Around VSP in the Xihu Sag of East China Sea Basin
Seismic Acquisition of Walkaway VSP and Walk Around VSP in the Xihu Sag of East China Sea Basin
Abstract A pre-exploration well was drilled in the Xihu Sag of East China Sea basin, and commercial oil and gas flow had been achieved. But the oil and gas bearing t...
Endothelial Cell‐Secreted Semaphorin 3F Promotes Proximal Tubule Cell Maturation and Polarization
Endothelial Cell‐Secreted Semaphorin 3F Promotes Proximal Tubule Cell Maturation and Polarization
Endothelial cells secrete trophic factors that contribute to the maturation of surrounding tissues. The notion of the microvasculature as niche for local differentiation and homeos...
Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
Rethinking Anticoagulation in Kidney Disease and Kidney Transplantation
Rethinking Anticoagulation in Kidney Disease and Kidney Transplantation
BackgroundA clinical dilemma exists in patients with CKD, ESKD, and after kidney transplantation, as they face concurrent risks of both thromboembolic and hemorrhagic complications...
First Onshore DAS VSP in Abu Dhabi, A Complete Case Study, Onshore Abu Dhabi, UAE
First Onshore DAS VSP in Abu Dhabi, A Complete Case Study, Onshore Abu Dhabi, UAE
Abstract ADNOC Onshore tested the distributed acoustic sensing (DAS) Vertical Seismic Profile (VSP) technique in a well in an Onshore field in order to gain confiden...
Renal Nephron Segment‐Specific Gene Expression using Adeno‐Associated Viral (AAV) Vectors
Renal Nephron Segment‐Specific Gene Expression using Adeno‐Associated Viral (AAV) Vectors
AAV vectors provide sustained long‐term gene expression with minimal immunological consequences. Systemic administration of AAV9 vector transduces efficiently various organs, such ...

Back to Top