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Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells

Phosphodiesterase 3 (PDE3), of which there are two isoforms, PDE3A and PDE3B, hydrolyzes cAMP and cGMP—cyclic nucleotides important in the regulation of pulmonary vascular tone. PDE3 has been implicated in pulmonary hypertension unresponsive to nitric oxide (NO); however, contributions of the two is...

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Autores principales: Dillard, Julie, Meng, Xiaomei, Nelin, Leif, Liu, Yusen, Chen, Bernadette
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7507575/
https://www.ncbi.nlm.nih.gov/pubmed/32914566
http://dx.doi.org/10.14814/phy2.14559
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author Dillard, Julie
Meng, Xiaomei
Nelin, Leif
Liu, Yusen
Chen, Bernadette
author_facet Dillard, Julie
Meng, Xiaomei
Nelin, Leif
Liu, Yusen
Chen, Bernadette
author_sort Dillard, Julie
collection PubMed
description Phosphodiesterase 3 (PDE3), of which there are two isoforms, PDE3A and PDE3B, hydrolyzes cAMP and cGMP—cyclic nucleotides important in the regulation of pulmonary vascular tone. PDE3 has been implicated in pulmonary hypertension unresponsive to nitric oxide (NO); however, contributions of the two isoforms are not known. Furthermore, adenosine monophosphate‐activated protein kinase (AMPK), a critical regulator of cellular energy homeostasis, has been shown to be modulated by PDE3 in varying cell types. While AMPK has recently been implicated in pulmonary hypertension pathogenesis, its role and regulation in the pulmonary vasculature remain to be elucidated. Therefore, we utilized human pulmonary artery smooth muscle cells (hPASMC) to test the hypothesis that NO increases PDE3 expression in an isoform‐specific manner, thereby activating AMPK and inhibiting hPASMC proliferation. We found that in hPASMC, NO treatment increased PDE3A protein expression and PDE3 activity with a concomitant decrease in cAMP concentrations and increase in AMPK phosphorylation. Knockdown of PDE3A using siRNA transfection blunted the NO‐induced AMPK activation, indicating that PDE3A plays an important role in AMPK regulation in hPASMC. Treatment with a soluble guanylate cyclase (sGC) stimulator increased PDE3A expression and AMPK activation similar to that seen with NO treatment, whereas treatment with a sGC inhibitor blunted the NO‐induced increase in PDE3A and AMPK activation. These results suggest that NO increases PDE3A expression, decreases cAMP, and activates AMPK via the sGC‐cGMP pathway. We speculate that NO‐induced increases in PDE3A and AMPK may have implications in the pathogenesis and the response to therapies in pulmonary hypertensive disorders.
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spelling pubmed-75075752020-09-29 Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells Dillard, Julie Meng, Xiaomei Nelin, Leif Liu, Yusen Chen, Bernadette Physiol Rep Original Research Phosphodiesterase 3 (PDE3), of which there are two isoforms, PDE3A and PDE3B, hydrolyzes cAMP and cGMP—cyclic nucleotides important in the regulation of pulmonary vascular tone. PDE3 has been implicated in pulmonary hypertension unresponsive to nitric oxide (NO); however, contributions of the two isoforms are not known. Furthermore, adenosine monophosphate‐activated protein kinase (AMPK), a critical regulator of cellular energy homeostasis, has been shown to be modulated by PDE3 in varying cell types. While AMPK has recently been implicated in pulmonary hypertension pathogenesis, its role and regulation in the pulmonary vasculature remain to be elucidated. Therefore, we utilized human pulmonary artery smooth muscle cells (hPASMC) to test the hypothesis that NO increases PDE3 expression in an isoform‐specific manner, thereby activating AMPK and inhibiting hPASMC proliferation. We found that in hPASMC, NO treatment increased PDE3A protein expression and PDE3 activity with a concomitant decrease in cAMP concentrations and increase in AMPK phosphorylation. Knockdown of PDE3A using siRNA transfection blunted the NO‐induced AMPK activation, indicating that PDE3A plays an important role in AMPK regulation in hPASMC. Treatment with a soluble guanylate cyclase (sGC) stimulator increased PDE3A expression and AMPK activation similar to that seen with NO treatment, whereas treatment with a sGC inhibitor blunted the NO‐induced increase in PDE3A and AMPK activation. These results suggest that NO increases PDE3A expression, decreases cAMP, and activates AMPK via the sGC‐cGMP pathway. We speculate that NO‐induced increases in PDE3A and AMPK may have implications in the pathogenesis and the response to therapies in pulmonary hypertensive disorders. John Wiley and Sons Inc. 2020-09-10 /pmc/articles/PMC7507575/ /pubmed/32914566 http://dx.doi.org/10.14814/phy2.14559 Text en © 2020 The Authors. Physiological Reports published by Wiley Periodicals, Inc. on behalf of The Physiological Society and the American Physiological Society This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Dillard, Julie
Meng, Xiaomei
Nelin, Leif
Liu, Yusen
Chen, Bernadette
Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title_full Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title_fullStr Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title_full_unstemmed Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title_short Nitric oxide activates AMPK by modulating PDE3A in human pulmonary artery smooth muscle cells
title_sort nitric oxide activates ampk by modulating pde3a in human pulmonary artery smooth muscle cells
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7507575/
https://www.ncbi.nlm.nih.gov/pubmed/32914566
http://dx.doi.org/10.14814/phy2.14559
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