The ErbB2 blocker trastuzumab improves survival in oncologic patients, but can cause cardiotoxicity. The late Na+ current inhibitor ranolazine has been shown to counter experimental HF, including doxorubicin cardiotoxicity (a condition characterized by derangements in redox balance), by lowering the levels of reactive oxygen species (ROS). Since ErbB2 can modulate ROS signaling, we tested whether trastuzumab cardiotoxicity could be blunted by ranolazine via redox-mediated mechanisms. Trastuzumab decreased fractional shortening and ejection fraction in mice, but ranolazine prevented heart dysfunction when co-administered with trastuzumab. Trastuzumab cardiotoxicity was accompanied by elevations in natriuretic peptides and matrix metalloproteinase 2 (MMP2) mRNAs, which were not elevated with co-treatment with ranolazine. Trastuzumab also increased cleavage of caspase-3, indicating activation of the proapoptotic machinery. Again, ranolazine prevented this activation. Interestingly, Neonatal Rat Ventricular Myocytes (NRVMs), labeled with MitoTracker Red and treated with trastuzumab, showed only a small increase in ROS compared to baseline conditions. We then stressed trastuzumab-treated cells with the beta-agonist isoproterenol to increase workload, and we observed a significant increase of probe fluorescence, compared with cells treated with isoproterenol alone, reflecting induction of oxidative stress. These effects were blunted by ranolazine, supporting a role for INa inhibition in the regulation of redox balance also in trastuzumab cardiotoxicity.

Ranolazine attenuates trastuzumab-induced heart dysfunction by modulating ROS production / Riccio, Gennaro; Antonucci, Salvatore; Coppola, Carmela; D'Avino, Chiara; Piscopo, Giovanna; Fiore, Danilo; Maurea, Carlo; Russo, Michele; Rea, Domenica; Arra, Claudio; Condorelli, Gerolama; Di Lisa, Fabio; Tocchetti, Carlo G.; De Lorenzo, Claudia; Maurea, Nicola. - In: FRONTIERS IN PHYSIOLOGY. - ISSN 1664-042X. - 9:FEB(2018), p. 38. [10.3389/fphys.2018.00038]

Ranolazine attenuates trastuzumab-induced heart dysfunction by modulating ROS production

Riccio, Gennaro;D'Avino, Chiara;Fiore, Danilo;Rea, Domenica;Condorelli, Gerolama;Tocchetti, Carlo G.
;
De Lorenzo, Claudia
;
2018

Abstract

The ErbB2 blocker trastuzumab improves survival in oncologic patients, but can cause cardiotoxicity. The late Na+ current inhibitor ranolazine has been shown to counter experimental HF, including doxorubicin cardiotoxicity (a condition characterized by derangements in redox balance), by lowering the levels of reactive oxygen species (ROS). Since ErbB2 can modulate ROS signaling, we tested whether trastuzumab cardiotoxicity could be blunted by ranolazine via redox-mediated mechanisms. Trastuzumab decreased fractional shortening and ejection fraction in mice, but ranolazine prevented heart dysfunction when co-administered with trastuzumab. Trastuzumab cardiotoxicity was accompanied by elevations in natriuretic peptides and matrix metalloproteinase 2 (MMP2) mRNAs, which were not elevated with co-treatment with ranolazine. Trastuzumab also increased cleavage of caspase-3, indicating activation of the proapoptotic machinery. Again, ranolazine prevented this activation. Interestingly, Neonatal Rat Ventricular Myocytes (NRVMs), labeled with MitoTracker Red and treated with trastuzumab, showed only a small increase in ROS compared to baseline conditions. We then stressed trastuzumab-treated cells with the beta-agonist isoproterenol to increase workload, and we observed a significant increase of probe fluorescence, compared with cells treated with isoproterenol alone, reflecting induction of oxidative stress. These effects were blunted by ranolazine, supporting a role for INa inhibition in the regulation of redox balance also in trastuzumab cardiotoxicity.
2018
Ranolazine attenuates trastuzumab-induced heart dysfunction by modulating ROS production / Riccio, Gennaro; Antonucci, Salvatore; Coppola, Carmela; D'Avino, Chiara; Piscopo, Giovanna; Fiore, Danilo; Maurea, Carlo; Russo, Michele; Rea, Domenica; Arra, Claudio; Condorelli, Gerolama; Di Lisa, Fabio; Tocchetti, Carlo G.; De Lorenzo, Claudia; Maurea, Nicola. - In: FRONTIERS IN PHYSIOLOGY. - ISSN 1664-042X. - 9:FEB(2018), p. 38. [10.3389/fphys.2018.00038]
File in questo prodotto:
File Dimensione Formato  
2018 riccio fphys-09-00038 (1).pdf

accesso aperto

Licenza: Accesso privato/ristretto
Dimensione 861.01 kB
Formato Adobe PDF
861.01 kB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/704403
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 36
  • ???jsp.display-item.citation.isi??? 35
social impact