A PI3Kγ mimetic peptide triggers CFTR gating, bronchodilation, and reduced inflammation in obstructive airway diseases

Author:

Ghigo Alessandra12ORCID,Murabito Alessandra1ORCID,Sala Valentina12ORCID,Pisano Anna Rita3,Bertolini Serena3,Gianotti Ambra4,Caci Emanuela4,Montresor Alessio56ORCID,Premchandar Aiswarya7ORCID,Pirozzi Flora18ORCID,Ren Kai1,Della Sala Angela1,Mergiotti Marco1,Richter Wito9ORCID,de Poel Eyleen10,Matthey Michaela11,Caldrer Sara56ORCID,Cardone Rosa A.12,Civiletti Federica13,Costamagna Andrea13ORCID,Quinney Nancy L.14ORCID,Butnarasu Cosmin1ORCID,Visentin Sonja1ORCID,Ruggiero Maria Rosaria1ORCID,Baroni Simona1ORCID,Crich Simonetta Geninatti1ORCID,Ramel Damien15ORCID,Laffargue Muriel15,Tocchetti Carlo G.81617ORCID,Levi Renzo18ORCID,Conti Marco19ORCID,Lu Xiao-Yun20ORCID,Melotti Paola21,Sorio Claudio56,De Rose Virginia1,Facchinetti Fabrizio3,Fanelli Vito13,Wenzel Daniela1122ORCID,Fleischmann Bernd K.22ORCID,Mall Marcus A.2324ORCID,Beekman Jeffrey10ORCID,Laudanna Carlo56ORCID,Gentzsch Martina1425,Lukacs Gergely L.7ORCID,Pedemonte Nicoletta4ORCID,Hirsch Emilio12ORCID

Affiliation:

1. Department of Molecular Biotechnology and Health Sciences, Molecular Biotechnology Center, University of Torino , 10126 Torino, Italy.

2. Kither Biotech Srl, 10126, Torino, Italy.

3. Chiesi Farmaceutici S.p.A., Corporate Pre-Clinical R&D, 43122 Parma, Italy.

4. UOC Genetica Medica, IRCCS Istituto Giannina Gaslini, 16147 Genova, Italy.

5. Division of General Pathology, Department of Medicine, University of Verona School of Medicine , 37134 Verona, Italy.

6. Cystic Fibrosis Translational Research Laboratory "Daniele Lissandrini," Department of Medicine, University of Verona School of Medicine , 37134 Verona, Italy.

7. Department of Physiology, McGill University, Montréal, Quebec H3G 1Y6, Canada.

8. Department of Translational Medical Sciences, Federico II University, 80131 Naples, Italy.

9. Department of Biochemistry and Molecular Biology, University of South Alabama College of Medicine Mobile, AL 36688, USA.

10. Department of Pediatric Pulmonology, Wilhelmina Children’s Hospital, University Medical Center Utrecht, 3584 EA Utrecht, Netherlands.

11. Department of Systems Physiology, Medical Faculty, Ruhr University Bochum, 44801 Bochum, Germany.

12. Department of Biosciences, Biotechnologies, and Biopharmaceutics, University of Bari , 70126 Bari, Italy.

13. Department of Anesthesia and Critical Care Medicine, University of Torino, Azienda Ospedaliera Città della Salute e della Scienza di Torino, 10126 Torino, Italy.

14. Marsico Lung Institute/Cystic Fibrosis Research Center, University of North Carolina, Chapel Hill, NC 27599, USA.

15. Institute of Metabolic and Cardiovascular Diseases, Paul Sabatier University , 31432 Toulouse, France.

16. Interdepartmental Center of Clinical and Translational Research (CIRCET), Federico II University, 80131 Naples, Italy.

17. Interdepartmental Hypertension Research Center (CIRIAPA), Federico II University, 80131 Naples, Italy.

18. Department of Life Sciences and Systems Biology, University of Torino, 10123 Torino, Italy.

19. Department of Obstetrics, Gynecology, and Reproductive Sciences, University of California San Francisco, San Francisco, CA 94143, USA.

20. School of life Science and Technology, Xi’an Jiaotong University, 710049 Xi’an Shaanxi, P.R. China.

21. Cystic Fibrosis Center, Azienda Ospedaliera Universitaria Integrata di Verona, 37126 Verona, Italy.

22. Institute of Physiology I, Life and Brain Center, Medical Faculty, University of Bonn, 53127 Bonn, Germany.

23. Department of Pediatric Respiratory Medicine, Immunology, and Critical Care Medicine, Charité-Universitätsmedizin Berlin, 10117 Berlin, Germany.

24. German Center for Lung Research (DZL), associated partner, 10117 Berlin, Germany.

25. Department of Pediatric Pulmonology, University of North Carolina, Chapel Hill, NC 27599, USA.

Abstract

Cyclic adenosine 3′,5′-monophosphate (cAMP)–elevating agents, such as β 2 -adrenergic receptor (β 2 -AR) agonists and phosphodiesterase (PDE) inhibitors, remain a mainstay in the treatment of obstructive respiratory diseases, conditions characterized by airway constriction, inflammation, and mucus hypersecretion. However, their clinical use is limited by unwanted side effects because of unrestricted cAMP elevation in the airways and in distant organs. Here, we identified the A-kinase anchoring protein phosphoinositide 3-kinase γ (PI3Kγ) as a critical regulator of a discrete cAMP signaling microdomain activated by β 2 -ARs in airway structural and inflammatory cells. Displacement of the PI3Kγ-anchored pool of protein kinase A (PKA) by an inhaled, cell-permeable, PI3Kγ mimetic peptide (PI3Kγ MP) inhibited a pool of subcortical PDE4B and PDE4D and safely increased cAMP in the lungs, leading to airway smooth muscle relaxation and reduced neutrophil infiltration in a murine model of asthma. In human bronchial epithelial cells, PI3Kγ MP induced unexpected cAMP and PKA elevations restricted to the vicinity of the cystic fibrosis transmembrane conductance regulator (CFTR), the ion channel controlling mucus hydration that is mutated in cystic fibrosis (CF). PI3Kγ MP promoted the phosphorylation of wild-type CFTR on serine-737, triggering channel gating, and rescued the function of F508del-CFTR, the most prevalent CF mutant, by enhancing the effects of existing CFTR modulators. These results unveil PI3Kγ as the regulator of a β 2 -AR/cAMP microdomain central to smooth muscle contraction, immune cell activation, and epithelial fluid secretion in the airways, suggesting the use of a PI3Kγ MP for compartment-restricted, therapeutic cAMP elevation in chronic obstructive respiratory diseases.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

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