Cargando…

High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model

Background: In the kidney glucose is freely filtered by the glomerulus and, mainly, reabsorbed by sodium glucose cotransporter 2 (SGLT2) expressed in the early proximal tubule. Human proximal tubule epithelial cells (PTECs) undergo pathological and fibrotic changes seen in diabetic kidney disease (D...

Descripción completa

Detalles Bibliográficos
Autores principales: Pan, Xinlu, Phanish, Mysore K., Baines, Deborah L., Dockrell, Mark E.C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8220447/
https://www.ncbi.nlm.nih.gov/pubmed/34003249
http://dx.doi.org/10.1042/BSR20203947
_version_ 1783711149743669248
author Pan, Xinlu
Phanish, Mysore K.
Baines, Deborah L.
Dockrell, Mark E.C.
author_facet Pan, Xinlu
Phanish, Mysore K.
Baines, Deborah L.
Dockrell, Mark E.C.
author_sort Pan, Xinlu
collection PubMed
description Background: In the kidney glucose is freely filtered by the glomerulus and, mainly, reabsorbed by sodium glucose cotransporter 2 (SGLT2) expressed in the early proximal tubule. Human proximal tubule epithelial cells (PTECs) undergo pathological and fibrotic changes seen in diabetic kidney disease (DKD) in response to elevated glucose. We developed a specific in vitro model of DKD using primary human PTECs with exposure to high D-glucose and TGF-β1 and propose a role for SGLT2 inhibition in regulating fibrosis. Methods: Western blotting was performed to detect cellular and secreted proteins as well as phosphorylated intracellular signalling proteins. qPCR was used to detect CCN2 RNA. Gamma glutamyl transferase (GT) activity staining was performed to confirm PTEC phenotype. SGLT2 and ERK inhibition on high D-glucose, 25 mM, and TGF-β1, 0.75 ng/ml, treated cells was explored using dapagliflozin and U0126, respectively. Results: Only the combination of high D-glucose and TGF-β1 treatment significantly up-regulated CCN2 RNA and protein expression. This increase was significantly ameliorated by dapagliflozin. High D-glucose treatment raised phospho ERK which was also inhibited by dapagliflozin. TGF-β1 increased cellular phospho SSXS Smad3 serine 423 and 425, with and without high D-glucose. Glucose alone had no effect. Smad3 serine 204 phosphorylation was significantly raised by a combination of high D-glucose+TGF-β1; this rise was significantly reduced by both SGLT2 and MEK inhibition. Conclusions: We show that high D-glucose and TGF-β1 are both required for CCN2 expression. This treatment also caused Smad3 linker region phosphorylation. Both outcomes were inhibited by dapagliflozin. We have identified a novel SGLT2 -ERK mediated promotion of TGF-β1/Smad3 signalling inducing a pro-fibrotic growth factor secretion. Our data evince support for substantial renoprotective benefits of SGLT2 inhibition in the diabetic kidney.
format Online
Article
Text
id pubmed-8220447
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Portland Press Ltd.
record_format MEDLINE/PubMed
spelling pubmed-82204472021-07-07 High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model Pan, Xinlu Phanish, Mysore K. Baines, Deborah L. Dockrell, Mark E.C. Biosci Rep Cell Membranes, Excitation & Transport Background: In the kidney glucose is freely filtered by the glomerulus and, mainly, reabsorbed by sodium glucose cotransporter 2 (SGLT2) expressed in the early proximal tubule. Human proximal tubule epithelial cells (PTECs) undergo pathological and fibrotic changes seen in diabetic kidney disease (DKD) in response to elevated glucose. We developed a specific in vitro model of DKD using primary human PTECs with exposure to high D-glucose and TGF-β1 and propose a role for SGLT2 inhibition in regulating fibrosis. Methods: Western blotting was performed to detect cellular and secreted proteins as well as phosphorylated intracellular signalling proteins. qPCR was used to detect CCN2 RNA. Gamma glutamyl transferase (GT) activity staining was performed to confirm PTEC phenotype. SGLT2 and ERK inhibition on high D-glucose, 25 mM, and TGF-β1, 0.75 ng/ml, treated cells was explored using dapagliflozin and U0126, respectively. Results: Only the combination of high D-glucose and TGF-β1 treatment significantly up-regulated CCN2 RNA and protein expression. This increase was significantly ameliorated by dapagliflozin. High D-glucose treatment raised phospho ERK which was also inhibited by dapagliflozin. TGF-β1 increased cellular phospho SSXS Smad3 serine 423 and 425, with and without high D-glucose. Glucose alone had no effect. Smad3 serine 204 phosphorylation was significantly raised by a combination of high D-glucose+TGF-β1; this rise was significantly reduced by both SGLT2 and MEK inhibition. Conclusions: We show that high D-glucose and TGF-β1 are both required for CCN2 expression. This treatment also caused Smad3 linker region phosphorylation. Both outcomes were inhibited by dapagliflozin. We have identified a novel SGLT2 -ERK mediated promotion of TGF-β1/Smad3 signalling inducing a pro-fibrotic growth factor secretion. Our data evince support for substantial renoprotective benefits of SGLT2 inhibition in the diabetic kidney. Portland Press Ltd. 2021-06-21 /pmc/articles/PMC8220447/ /pubmed/34003249 http://dx.doi.org/10.1042/BSR20203947 Text en © 2021 The Author(s). https://creativecommons.org/licenses/by/4.0/This is an open access article published by Portland Press Limited on behalf of the Biochemical Society and distributed under the Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Cell Membranes, Excitation & Transport
Pan, Xinlu
Phanish, Mysore K.
Baines, Deborah L.
Dockrell, Mark E.C.
High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title_full High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title_fullStr High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title_full_unstemmed High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title_short High glucose–induced Smad3 linker phosphorylation and CCN2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
title_sort high glucose–induced smad3 linker phosphorylation and ccn2 expression are inhibited by dapagliflozin in a diabetic tubule epithelial cell model
topic Cell Membranes, Excitation & Transport
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8220447/
https://www.ncbi.nlm.nih.gov/pubmed/34003249
http://dx.doi.org/10.1042/BSR20203947
work_keys_str_mv AT panxinlu highglucoseinducedsmad3linkerphosphorylationandccn2expressionareinhibitedbydapagliflozininadiabetictubuleepithelialcellmodel
AT phanishmysorek highglucoseinducedsmad3linkerphosphorylationandccn2expressionareinhibitedbydapagliflozininadiabetictubuleepithelialcellmodel
AT bainesdeborahl highglucoseinducedsmad3linkerphosphorylationandccn2expressionareinhibitedbydapagliflozininadiabetictubuleepithelialcellmodel
AT dockrellmarkec highglucoseinducedsmad3linkerphosphorylationandccn2expressionareinhibitedbydapagliflozininadiabetictubuleepithelialcellmodel