Sodium nitrite improves hypertension-induced myocardial dysfunction by mechanisms involving cardiac S-nitrosylation

Evandro M Neto-Neves1, Lucas C Pinheiro1, Renato C Nogueira1

  • 1Department of Pharmacology, Ribeirao Preto Medical School, University of Sao Paulo, Ribeirao Preto, SP, Brazil.

Insights

Oral nitrite administration improved cardiac function in hypertensive rats by lowering blood pressure and enhancing heart contractility. This effect is linked to increased S-nitrosothiols and protein S-nitrosylation in cardiac tissue.

Area of Science:

  • Cardiovascular Physiology
  • Biochemistry

Background:

  • Nitrite is known to improve vascular function and lower blood pressure.
  • The specific effects of nitrite on cardiac function, particularly in hypertension, require further investigation.

Purpose of the Study:

  • To investigate the effects of nitrite on cardiac function in normotensive and hypertensive rat models.
  • To elucidate the underlying mechanisms of nitrite's cardiac effects, focusing on S-nitrosylation pathways.

Main Methods:

  • Induction of two-kidney, one-clip (2K1C) hypertension in Wistar rats.
  • Administration of nitrite (1 or 15 mg/kg) via gavage for 4 weeks.
  • Assessment of cardiac morphology and function using echocardiography and isolated heart models (Langendorff's preparation).
  • Biochemical analysis of cardiac tissue for nitrite, S-nitrosothiols, and protein S-nitrosylation.

Main Results:

  • Nitrite treatment (15 mg/kg) significantly lowered systolic blood pressure and reduced left ventricular (LV) mass in 2K1C rats.
  • Nitrite administration restored cardiac output and improved overall cardiac function in hypertensive rats.
  • Increased levels of nitrite, S-nitrosothiols, and protein S-nitrosylation were observed in cardiac tissue following nitrite treatment.
  • In isolated hearts, nitrite enhanced contractility and relaxation, an effect dependent on S-nitrosothiols generation and abolished by ascorbate.

Conclusions:

  • Oral nitrite administration improves cardiac function in hypertension through mechanisms involving enhanced S-nitrosothiols generation and protein S-nitrosylation.
  • Pharmacological strategies aimed at promoting cardiac S-nitrosylation hold potential for treating myocardial dysfunction in heart diseases.

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