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May 1, 2000Journal of Biological Chemistry229 citationsOpen Access

Calcineurin Promotes Protein Kinase C and c-Jun NH2-terminal Kinase Activation in the Heart

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LWLeón J. De WindtHLHae W. LimSHSyed Haq

Key Result

Calcineurin hypertrophic signaling is interconnected with PKCalpha, theta, and JNK in the heart, while PKCepsilon, beta, lambda, p38, and ERK1/2 are not involved.

Key Points

  • This research aims to explore how calcineurin interacts with PKC and MAPK pathways in cardiac hypertrophy.
  • Analyzed PKC and MAPK activation in hypertrophic calcineurin transgenic mouse hearts.
  • Utilized adenoviral infection in cultured cardiomyocytes to induce hypertrophy and assess pharmacologic interventions.
  • Examined MAPK and PKC isoform activation in aortic banded rats with cyclosporine treatment.
  • Calcineurin transgenic mice hearts showed increased activation of PKCalpha, beta(1), theta, and JNK; ERK1/2 did activate while p38 did not (exact rates not provided).
  • Calcineurin-induced hypertrophy in cardiomyocytes was inhibited by PKC inhibitors and Ca(2+) chelation; ERK and p38 inhibitors had no effect.
  • Cyclosporine treatment in aortic banded rats inhibited PKCalpha, theta, and JNK activation without affecting PKCepsilon, beta, lambda, ERK1/2, or p38.

Structured PICO

P
Population
Hypertrophic calcineurin transgenic mice, cultured cardiomyocytes, and aortic banded rats
I
Intervention
Calcineurin overexpression (transgenic or adenovirus) or load-induced hypertrophy with cyclosporine
C
Comparator
Wild-type mice, control cardiomyocytes, or aortic banded rats without cyclosporine
O
Outcome
Activation of PKC and MAPK isoforms (JNK, ERK1/2, p38, PKCalpha, beta, theta, epsilon, lambda) and cardiomyocyte hypertrophysurrogate

Calcineurin-mediated cardiac hypertrophy specifically requires the activation of PKCalpha, theta, and JNK, but not other PKC isoforms or p38/ERK1/2 MAPKs.

Abstract

Multiple intracellular signaling pathways have been shown to regulate the hypertrophic growth of cardiomyocytes. Both necessary and sufficient roles have been described for the mitogen activated protein kinase(1) (MAPK) signaling pathway, specific protein kinase C (PKC) isoforms, and calcineurin. Here we investigate the interdependence between calcineurin, MAPK, and PKC isoforms in regulating cardiomyocyte hypertrophy using three separate approaches. Hearts from hypertrophic calcineurin transgenic mice were characterized for PKC and MAPK activation. Transgenic hearts demonstrated activation of c-Jun NH(2)-terminal kinase (JNK) and extracellular signal-regulated kinase (ERK1/2), but not p38 MAPK factors. Calcineurin transgenic hearts demonstrated increased activation of PKCalpha, beta(1), and theta, but not of epsilon, beta(2), or lambda. In a second approach, cultured cardiomyocytes were infected with a calcineurin adenovirus to induce hypertrophy and the effects of pharmacologic inhibitors or co-infection with a dominant negative adenovirus were examined. Calcineurin-mediated hypertrophy was prevented with PKC inhibitors, Ca(2+) chelation, and attenuated with a dominant negative SEK-1 (MKK4) adenovirus, but inhibitors of ERK or p38 activation had no effect. In a third approach, we examined the activation of MAPK factors and PKC isoforms during the progression of load-induced hypertrophy in aortic banded rats with or without cyclosporine. We determined that inhibition of calcineurin activity with cyclosporine prevented PKCalpha, theta, and JNK activation, but did not affect PKCepsilon, beta, lambda, ERK1/2, or p38 activation. Collectively, these data indicate that calcineurin hypertrophic signaling is interconnected with PKCalpha, theta, and JNK in the heart, while PKCepsilon, beta, lambda, p38, and ERK1/2 are not involved in calcineurin-mediated hypertrophy.

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Cite This Study

Windt et al. (2000) studied Cardiomyocyte hypertrophy. Calcineurin activation or inhibition vs. Controls (wild-type, uninfected, or untreated) was evaluated on Activation of MAPK factors and PKC isoforms. Calcineurin hypertrophic signaling is interconnected with PKCalpha, theta, and JNK in the heart, while PKCepsilon, beta, lambda, p38, and ERK1/2 are not involved.

synapsesocial.com/papers/6a2016e735281a23f90de886https://doi.org/10.1074/jbc.275.18.13571
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