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March 29, 2010Circulation315 citationsOpen Access

Elevated Cytosolic Na + Increases Mitochondrial Formation of Reactive Oxygen Species in Failing Cardiac Myocytes

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MKMichael KohlhaasTLTing LiuAKAndreas Knopp

Structured PICO

Does elevated cytosolic Na+ increase mitochondrial reactive oxygen species formation in failing cardiac myocytes?

P
Population
Guinea pig cardiac myocytes (including failing myocytes)
I
Intervention
Elevation of cytosolic Na+ and blockade of mitochondrial Ca2+ uptake (by Ru360)
C
Comparator
Normal cytosolic Na+ / unblocked mitochondrial Ca2+ uptake
O
Outcome
Mitochondrial H2O2 formation and NAD(P)H oxidationsurrogate

Elevated cytosolic Na+ in heart failure promotes oxidative stress by reducing mitochondrial Ca2+ uptake, identifying a potential therapeutic target for failing hearts.

Abstract

BACKGROUND: Oxidative stress is causally linked to the progression of heart failure, and mitochondria are critical sources of reactive oxygen species in failing myocardium. We previously observed that in heart failure, elevated cytosolic Na(+) (Na(+)(i)) reduces mitochondrial Ca(2+) (Ca(2+)(m)) by accelerating Ca(2+) efflux via the mitochondrial Na(+)/Ca(2+) exchanger. Because the regeneration of antioxidative enzymes requires NADPH, which is indirectly regenerated by the Krebs cycle, and Krebs cycle dehydrogenases are activated by Ca(2+)(m), we speculated that in failing myocytes, elevated Na(+)(i) promotes oxidative stress. METHODS AND RESULTS: We used a patch-clamp-based approach to simultaneously monitor cytosolic and mitochondrial Ca(2+) and, alternatively, mitochondrial H(2)O(2) together with NAD(P)H in guinea pig cardiac myocytes. Cells were depolarized in a voltage-clamp mode (3 Hz), and a transition of workload was induced by beta-adrenergic stimulation. During this transition, NAD(P)H initially oxidized but recovered when Ca(2+)(m) increased. The transient oxidation of NAD(P)H was closely associated with an increase in mitochondrial H(2)O(2) formation. This reactive oxygen species formation was potentiated when mitochondrial Ca(2+) uptake was blocked (by Ru360) or Ca(2+) efflux was accelerated (by elevation of Na(+)(i)). In failing myocytes, H(2)O(2) formation was increased, which was prevented by reducing mitochondrial Ca(2+) efflux via the mitochondrial Na(+)/Ca(2+) exchanger. CONCLUSIONS: Besides matching energy supply and demand, mitochondrial Ca(2+) uptake critically regulates mitochondrial reactive oxygen species production. In heart failure, elevated Na(+)(i) promotes reactive oxygen species formation by reducing mitochondrial Ca(2+) uptake. This novel mechanism, by which defects in ion homeostasis induce oxidative stress, represents a potential drug target to reduce reactive oxygen species production in the failing heart.

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Cite This Study

Kohlhaas et al. (2010) studied this question.

synapsesocial.com/papers/69ffd8a1da5c1eb07f2d8c46https://doi.org/10.1161/circulationaha.109.914911
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