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AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation

Fine tuning of urine concentration occurs in the renal collecting duct in response to circulating levels of arginine vasopressin (AVP). AVP stimulates intracellular cAMP production, which mediates exocytosis of sub-apical vesicles containing the water channel aquaporin-2 (AQP2). Protein Kinase A (PK...

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Autores principales: Arnspang, Eva C., Login, Frédéric H., Koffman, Jennifer S., Sengupta, Prabuddha, Nejsum, Lene N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5133805/
https://www.ncbi.nlm.nih.gov/pubmed/27801846
http://dx.doi.org/10.3390/ijms17111804
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author Arnspang, Eva C.
Login, Frédéric H.
Koffman, Jennifer S.
Sengupta, Prabuddha
Nejsum, Lene N.
author_facet Arnspang, Eva C.
Login, Frédéric H.
Koffman, Jennifer S.
Sengupta, Prabuddha
Nejsum, Lene N.
author_sort Arnspang, Eva C.
collection PubMed
description Fine tuning of urine concentration occurs in the renal collecting duct in response to circulating levels of arginine vasopressin (AVP). AVP stimulates intracellular cAMP production, which mediates exocytosis of sub-apical vesicles containing the water channel aquaporin-2 (AQP2). Protein Kinase A (PKA) phosphorylates AQP2 on serine-256 (S256), which triggers plasma membrane accumulation of AQP2. This mediates insertion of AQP2 into the apical plasma membrane, increasing water permeability of the collecting duct. AQP2 is a homo-tetramer. When S256 on all four monomers is changed to the phosphomimic aspartic acid (S256D), AQP2-S256D localizes to the plasma membrane and internalization is decreased. In contrast, when S256 is mutated to alanine (S256A) to mimic non-phosphorylated AQP2, AQP2-S256A localizes to intracellular vesicles as well as the plasma membrane, with increased internalization from the plasma membrane. S256 phosphorylation is not necessary for exocytosis and dephosphorylation is not necessary for endocytosis, however, the degree of S256 phosphorylation is hypothesized to regulate the kinetics of AQP2 endocytosis and thus, retention time in the plasma membrane. Using k-space Image Correlation Spectroscopy (kICS), we determined how the number of phosphorylated to non-phosphorylated S256 monomers in the AQP2 tetramer affects diffusion speed of AQP2 in the plasma membrane. When all four monomers mimicked constitutive phosphorylation (AQP2-S256D), diffusion was faster than when all four were non-phosphorylated (AQP2-S256A). AQP2-WT diffused at a speed similar to that of AQP2-S256D. When an average of two or three monomers in the tetramer were constitutively phosphorylated, the average diffusion coefficients were not significantly different to that of AQP2-S256D. However, when only one monomer was phosphorylated, diffusion was slower and similar to AQP2-S256A. Thus, AQP2 with two to four phosphorylated monomers has faster plasma membrane kinetics, than the tetramer which contains just one or no phosphorylated monomers. This difference in diffusion rate may reflect behavior of AQP2 tetramers destined for either plasma membrane retention or endocytosis.
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spelling pubmed-51338052016-12-12 AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation Arnspang, Eva C. Login, Frédéric H. Koffman, Jennifer S. Sengupta, Prabuddha Nejsum, Lene N. Int J Mol Sci Article Fine tuning of urine concentration occurs in the renal collecting duct in response to circulating levels of arginine vasopressin (AVP). AVP stimulates intracellular cAMP production, which mediates exocytosis of sub-apical vesicles containing the water channel aquaporin-2 (AQP2). Protein Kinase A (PKA) phosphorylates AQP2 on serine-256 (S256), which triggers plasma membrane accumulation of AQP2. This mediates insertion of AQP2 into the apical plasma membrane, increasing water permeability of the collecting duct. AQP2 is a homo-tetramer. When S256 on all four monomers is changed to the phosphomimic aspartic acid (S256D), AQP2-S256D localizes to the plasma membrane and internalization is decreased. In contrast, when S256 is mutated to alanine (S256A) to mimic non-phosphorylated AQP2, AQP2-S256A localizes to intracellular vesicles as well as the plasma membrane, with increased internalization from the plasma membrane. S256 phosphorylation is not necessary for exocytosis and dephosphorylation is not necessary for endocytosis, however, the degree of S256 phosphorylation is hypothesized to regulate the kinetics of AQP2 endocytosis and thus, retention time in the plasma membrane. Using k-space Image Correlation Spectroscopy (kICS), we determined how the number of phosphorylated to non-phosphorylated S256 monomers in the AQP2 tetramer affects diffusion speed of AQP2 in the plasma membrane. When all four monomers mimicked constitutive phosphorylation (AQP2-S256D), diffusion was faster than when all four were non-phosphorylated (AQP2-S256A). AQP2-WT diffused at a speed similar to that of AQP2-S256D. When an average of two or three monomers in the tetramer were constitutively phosphorylated, the average diffusion coefficients were not significantly different to that of AQP2-S256D. However, when only one monomer was phosphorylated, diffusion was slower and similar to AQP2-S256A. Thus, AQP2 with two to four phosphorylated monomers has faster plasma membrane kinetics, than the tetramer which contains just one or no phosphorylated monomers. This difference in diffusion rate may reflect behavior of AQP2 tetramers destined for either plasma membrane retention or endocytosis. MDPI 2016-10-28 /pmc/articles/PMC5133805/ /pubmed/27801846 http://dx.doi.org/10.3390/ijms17111804 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Arnspang, Eva C.
Login, Frédéric H.
Koffman, Jennifer S.
Sengupta, Prabuddha
Nejsum, Lene N.
AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title_full AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title_fullStr AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title_full_unstemmed AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title_short AQP2 Plasma Membrane Diffusion Is Altered by the Degree of AQP2-S256 Phosphorylation
title_sort aqp2 plasma membrane diffusion is altered by the degree of aqp2-s256 phosphorylation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5133805/
https://www.ncbi.nlm.nih.gov/pubmed/27801846
http://dx.doi.org/10.3390/ijms17111804
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