Piezo1 stretch‐activated channel activity differs between murine bone marrow‐derived and cardiac tissue‐resident macrophages

Author:

Simon‐Chica Ana12,Klesen Alexander13ORCID,Emig Ramona14ORCID,Chan Andy5ORCID,Greiner Joachim14,Grün Dominic5ORCID,Lother Achim67ORCID,Hilgendorf Ingo8,Rog‐Zielinska Eva A.1,Ravens Ursula1ORCID,Kohl Peter14ORCID,Schneider‐Warme Franziska14ORCID,Peyronnet Rémi1ORCID

Affiliation:

1. Institute for Experimental Cardiovascular Medicine, University Heart Center Freiburg – Bad Krozingen, Medical Center – University of Freiburg and Faculty of Medicine University of Freiburg Freiburg Germany

2. Centro Nacional de Investigaciones Cardiovasculares Carlos III Madrid Spain

3. Department of Congenital Heart Defects and Paediatric Cardiology, University Heart Center Freiburg – Bad Krozingen, Medical Center – University of Freiburg and Faculty of Medicine University of Freiburg Freiburg Germany

4. Centre for Integrative Biological Signalling Studies (CIBSS), Faculty of Biology University of Freiburg Freiburg Germany

5. Würzburg Institute of Systems Immunology Max Planck Research Group at Julius‐Maximilians‐University Würzburg Würzburg Germany

6. Interdisciplinary Medical Intensive Care, Medical Center – University of Freiburg and Faculty of Medicine University of Freiburg Freiburg Germany

7. Institute of Experimental and Clinical Pharmacology and Toxicology, Faculty of Medicine University of Freiburg Freiburg Germany

8. Department of Cardiology and Angiology, University Heart Center Freiburg – Bad Krozingen, Medical Center – University of Freiburg and Faculty of Medicine University of Freiburg Freiburg Germany

Abstract

AbstractMacrophages (MΦ) play pivotal roles in tissue homeostasis and repair. Their mechanical environment has been identified as a key modulator of various cell functions, and MΦ mechanosensitivity is likely to be critical – in particular in a rhythmically contracting organ such as the heart. Cultured MΦ, differentiated in vitro from bone marrow (MΦBM), form a popular research model. This study explores the activity of mechanosensitive ion channels (MSC) in murine MΦBM and compares it to MSC activity in MΦ enzymatically isolated from cardiac tissue (tissue‐resident MΦ; MΦTR). We show that MΦBM and MΦTR have stretch‐induced currents, indicating the presence of functional MSC in their plasma membrane. The current profiles in MΦBM and in MΦTR show characteristics of cation non‐selective MSC such as Piezo1 or transient receptor potential channels. While Piezo1 ion channel activity is detectable in the plasma membrane of MΦBM using the patch‐clamp technique, or by measuring cytosolic calcium concentration upon perfusion with the Piezo1 channel agonist Yoda1, no Piezo1 channel activity was observed in MΦTR. The selective transient receptor potential vanilloid 4 (TRPV4) channel agonist GSK1016790A induces calcium entry in MΦTR and in MΦBM. In MΦ isolated from left‐ventricular scar tissue 28 days after cryoablation, stretch‐induced current characteristics are not significantly different compared to non‐injured control tissue, even though scarred ventricular tissue is expected to be mechanically remodelled and to contain an altered composition of pre‐existing cardiac and circulation‐recruited MΦ. Our data suggest that the in vitro differentiation protocols used to obtain MΦBM generate cells that differ from MΦ recruited from the circulation during tissue repair in vivo. Further investigations are needed to explore MSC identity in lineage‐traced MΦ in scar tissue, and to compare mechanosensitivity of circulating monocytes with that of MΦBM. imageKey points Bone marrow‐derived (MΦBM) and tissue resident (MΦTR) macrophages have stretch‐induced currents, indicating expression of functional mechanosensitive channels (MSC) in their plasma membrane. Stretch‐activated current profiles show characteristics of cation non‐selective MSC; and mRNA coding for MSC, including Piezo1 and TRPV4, is expressed in murine MΦBM and in MΦTR. Calcium entry upon pharmacological activation of TRPV4 confirms functionality of the channel in MΦTR and in MΦBM. Piezo1 ion channel activity is detected in the plasma membrane of MΦBM but not in MΦTR, suggesting that MΦBM may not be a good model to study the mechanotransduction of MΦTR. Stretch‐induced currents, Piezo1 mRNA expression and response to pharmacological activation are not significantly changed in cardiac MΦ 28 days after cryoinjury compared to sham operated mice.

Publisher

Wiley

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