H9c2 Cardiomyocytes under Hypoxic Stress: Biological Effects Mediated by Sentinel Downstream Targets

Author:

Boccellino Mariarosaria1ORCID,Galasso Giovanni1ORCID,Ambrosio Pasqualina1ORCID,Stiuso Paola1ORCID,Lama Stefania1ORCID,Di Zazzo Erika1,Schiavon Sonia2,Vecchio Daniele2ORCID,D’ambrosio Luca2ORCID,Quagliuolo Lucio1ORCID,Feola Antonia3ORCID,Frati Giacomo45ORCID,Di Domenico Marina16ORCID

Affiliation:

1. Department of Precision Medicine, University of Campania “Luigi Vanvitelli”, Naples, Italy

2. Department of Medico-Surgical Sciences and Biotechnologies, Sapienza University of Rome, Latina, Italy

3. Department of Biology, University of Naples “Federico II”, Naples, Italy

4. Department of Medical-Surgical Sciences and Biotechnologies, Sapienza University of Rome, Italy

5. IRCCS Neuromed, Pozzilli, Italy

6. Department of Biology, College of Science and Technology, Temple University, Philadelphia, PA, USA

Abstract

The association between diabetes and cardiovascular diseases is well known. Related diabetes macro- and microangiopathies frequently induce hypoxia and consequently energy failure to satisfy the jeopardized myocardium basal needs. Additionally, it is widely accepted that diabetes impairs endothelial nitric oxide synthase (eNOS) activity, resulting in diminished nitric oxide (NO) bioavailability and consequent endothelial cell dysfunction. In this study, we analyzed the embryonic heart-derived H9c2 cell response to hypoxic stress after administration of a high glucose concentration to reproduce a condition often observed in diabetes. We observed that 24 h hypoxia exposure of H9c2 cells reduced cell viability compared to cells grown in normoxic conditions. Cytotoxicity and early apoptosis were increased after exposure to high glucose administration. In addition, hypoxia induced a RhoA upregulation and a Bcl-2 downregulation and lowered the ERK activation observed in normoxia at both glucose concentrations. Furthermore, a significant cell proliferation rate increases after the 1400 W iNOS inhibitor administration was observed. Again, hypoxia increased the expression level of myogenin, a marker of skeletal muscle cell differentiation. The cardiomyocyte gene expression profiles and morphology changes observed in response to pathological stimuli, as hypoxia, could lead to improper ventricular remodeling responsible for heart failure. Therefore, understanding cell signaling events that regulate cardiac response to hypoxia could be useful for the discovery of novel therapeutic approaches able to prevent heart diseases.

Funder

Università degli Studi di Napoli Federico II

Publisher

Hindawi Limited

Subject

Cell Biology,Ageing,General Medicine,Biochemistry

Reference58 articles.

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