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RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein

Phosphate homeostasis, mediated by dietary intake, renal absorption, and bone deposition, is incompletely understood because of the uncharacterized roles of numerous implicated protein factors. Here, we identified a novel role for one such element, regulator of G protein signaling 14 (RGS14), sugges...

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Autores principales: Friedman, Peter A., Sneddon, W. Bruce, Mamonova, Tatyana, Montanez-Miranda, Carolina, Ramineni, Suneela, Harbin, Nicholas H., Squires, Katherine E., Gefter, Julia V., Magyar, Clara E., Emlet, David R., Hepler, John R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9035407/
https://www.ncbi.nlm.nih.gov/pubmed/35307350
http://dx.doi.org/10.1016/j.jbc.2022.101836
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author Friedman, Peter A.
Sneddon, W. Bruce
Mamonova, Tatyana
Montanez-Miranda, Carolina
Ramineni, Suneela
Harbin, Nicholas H.
Squires, Katherine E.
Gefter, Julia V.
Magyar, Clara E.
Emlet, David R.
Hepler, John R.
author_facet Friedman, Peter A.
Sneddon, W. Bruce
Mamonova, Tatyana
Montanez-Miranda, Carolina
Ramineni, Suneela
Harbin, Nicholas H.
Squires, Katherine E.
Gefter, Julia V.
Magyar, Clara E.
Emlet, David R.
Hepler, John R.
author_sort Friedman, Peter A.
collection PubMed
description Phosphate homeostasis, mediated by dietary intake, renal absorption, and bone deposition, is incompletely understood because of the uncharacterized roles of numerous implicated protein factors. Here, we identified a novel role for one such element, regulator of G protein signaling 14 (RGS14), suggested by genome-wide association studies to associate with dysregulated Pi levels. We show that human RGS14 possesses a carboxy-terminal PDZ ligand required for sodium phosphate cotransporter 2a (NPT2A) and sodium hydrogen exchanger regulatory factor-1 (NHERF1)–mediated renal Pi transport. In addition, we found using isotope uptake measurements combined with bioluminescence resonance energy transfer assays, siRNA knockdown, pull-down and overlay assays, and molecular modeling that secreted proteins parathyroid hormone (PTH) and fibroblast growth factor 23 inhibited Pi uptake by inducing dissociation of the NPT2A–NHERF1 complex. PTH failed to affect Pi transport in cells expressing RGS14, suggesting that it suppresses hormone-sensitive but not basal Pi uptake. Interestingly, RGS14 did not affect PTH-directed G protein activation or cAMP formation, implying a postreceptor site of action. Further pull-down experiments and direct binding assays indicated that NPT2A and RGS14 bind distinct PDZ domains on NHERF1. We showed that RGS14 expression in human renal proximal tubule epithelial cells blocked the effects of PTH and fibroblast growth factor 23 and stabilized the NPT2A–NHERF1 complex. In contrast, RGS14 genetic variants bearing mutations in the PDZ ligand disrupted RGS14 binding to NHERF1 and subsequent PTH-sensitive Pi transport. In conclusion, these findings identify RGS14 as a novel regulator of hormone-sensitive Pi transport. The results suggest that changes in RGS14 function or abundance may contribute to the hormone resistance and hyperphosphatemia observed in kidney diseases.
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spelling pubmed-90354072022-04-28 RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein Friedman, Peter A. Sneddon, W. Bruce Mamonova, Tatyana Montanez-Miranda, Carolina Ramineni, Suneela Harbin, Nicholas H. Squires, Katherine E. Gefter, Julia V. Magyar, Clara E. Emlet, David R. Hepler, John R. J Biol Chem Research Article Phosphate homeostasis, mediated by dietary intake, renal absorption, and bone deposition, is incompletely understood because of the uncharacterized roles of numerous implicated protein factors. Here, we identified a novel role for one such element, regulator of G protein signaling 14 (RGS14), suggested by genome-wide association studies to associate with dysregulated Pi levels. We show that human RGS14 possesses a carboxy-terminal PDZ ligand required for sodium phosphate cotransporter 2a (NPT2A) and sodium hydrogen exchanger regulatory factor-1 (NHERF1)–mediated renal Pi transport. In addition, we found using isotope uptake measurements combined with bioluminescence resonance energy transfer assays, siRNA knockdown, pull-down and overlay assays, and molecular modeling that secreted proteins parathyroid hormone (PTH) and fibroblast growth factor 23 inhibited Pi uptake by inducing dissociation of the NPT2A–NHERF1 complex. PTH failed to affect Pi transport in cells expressing RGS14, suggesting that it suppresses hormone-sensitive but not basal Pi uptake. Interestingly, RGS14 did not affect PTH-directed G protein activation or cAMP formation, implying a postreceptor site of action. Further pull-down experiments and direct binding assays indicated that NPT2A and RGS14 bind distinct PDZ domains on NHERF1. We showed that RGS14 expression in human renal proximal tubule epithelial cells blocked the effects of PTH and fibroblast growth factor 23 and stabilized the NPT2A–NHERF1 complex. In contrast, RGS14 genetic variants bearing mutations in the PDZ ligand disrupted RGS14 binding to NHERF1 and subsequent PTH-sensitive Pi transport. In conclusion, these findings identify RGS14 as a novel regulator of hormone-sensitive Pi transport. The results suggest that changes in RGS14 function or abundance may contribute to the hormone resistance and hyperphosphatemia observed in kidney diseases. American Society for Biochemistry and Molecular Biology 2022-03-17 /pmc/articles/PMC9035407/ /pubmed/35307350 http://dx.doi.org/10.1016/j.jbc.2022.101836 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Friedman, Peter A.
Sneddon, W. Bruce
Mamonova, Tatyana
Montanez-Miranda, Carolina
Ramineni, Suneela
Harbin, Nicholas H.
Squires, Katherine E.
Gefter, Julia V.
Magyar, Clara E.
Emlet, David R.
Hepler, John R.
RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title_full RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title_fullStr RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title_full_unstemmed RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title_short RGS14 regulates PTH- and FGF23-sensitive NPT2A-mediated renal phosphate uptake via binding to the NHERF1 scaffolding protein
title_sort rgs14 regulates pth- and fgf23-sensitive npt2a-mediated renal phosphate uptake via binding to the nherf1 scaffolding protein
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9035407/
https://www.ncbi.nlm.nih.gov/pubmed/35307350
http://dx.doi.org/10.1016/j.jbc.2022.101836
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