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Signaling through the B cell antigen receptor regulates discrete steps in the antigen processing pathway.

Antigen processing in B cells is initiated by antigen binding to the surface B cell antigen receptor (BCR). The BCR is a signaling receptor which also functions to endocytose bound antigen for subsequent intracellular processing and presentation with class II molecules. Previously, using subcellular fractionation, we showed that although the surface BCR constitutively traffics from the cell surface to the class II peptide-loading compartment (IIPLC), cross-linking the BCR regulates trafficking, resulting in a more rapid movement of the BCR to the IIPLC (Song et al., 1995, J. Immunol. 155, 4255). The rate of degradation of both the BCR and the bound antigen was also accelerated following BCR cross-linking. Here we provide evidence that the effect of cross-linking the BCR on antigen processing is in part dependent on signal cascades initiated by the BCR. We show that the protein kinase inhibitors Genistein and Chelerythrine, which block BCR signaling, reduce BCR-enhanced antigen processing in a dose-dependent manner. The kinase inhibitors have a small effect on the rate of internalization of the BCR and antigen following BCR cross-linking and significantly decrease the accelerated trafficking to the IIPLC. The increased rate of degradation of the BCR and antigen induced by BCR cross-linking is also decreased by the kinase inhibitors. BCR signaling does not appear to have a global effect on intracellular membrane trafficking as cross-linking the BCR did not alter the rate of trafficking of newly synthesized class II molecules to the IIPLC. Thus, the signaling function of the BCR appears to play a significant role in regulating discrete steps in the intracellular antigen processing pathway.

Alkaloids↗

The role of protein kinase C and calcium in induction of human polymorphonuclear leukocyte IL-1 beta gene expression by GM-CSF.

At infection sites, synthesis of interleukin (IL-)1beta by polymorphonuclear leukocytes (PMNs) facilitates the recruitment of inflammatory cells and enhances the inflammatory response. We investigated the role of protein kinase C (PKC) and Ca2+ in the induction of PMN IL-1beta gene expression by GM-CSF. The PKC inhibitors chelerythrine and H7 blocked induction of IL-1beta mRNA expression in human PMNs. HA1004, an H7 analogue with little activity towards PKC, had no inhibitory effect. Similarly, H7 blocked IL-1beta transcription in nuclear run-on analysis, while HA1004 had little effect. The intracellular Ca2+ chelator BAPTA/AM inhibited induction of IL1beta mRNA accumulation and transcription by GM-CSF. At concentrations similar to those used to inhibit IL-1beta gene expression, H7, chelerythrine, and BAPTA all inhibited substrate phosphorylation by PKC isolated from PMN lysates. Thus, PKC and Ca2+ are potential targets for modulating an important PMN immunoregulatory function.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Regulation of protein tyrosine phosphorylation in human sperm by a calcium/calmodulin-dependent mechanism: identification of A kinase anchor proteins as major substrates for tyrosine phosphorylation.

Signal transduction pathways regulate various aspects of mammalian sperm function. When human sperm were incubated in a medium supporting capacitation, proteins became tyrosine-phosphorylated in a time-dependent manner. This phosphorylation was inhibited by genistein, a protein tyrosine kinase inhibitor. Phosphorylation was also reduced when sperm were incubated either in the presence of increasing concentrations of extracellular Ca2+ or in a medium containing the Ca2+ ionophore A23187. This Ca2+-induced dephosphorylation was calmodulin-dependent, suggesting that calcineurin was involved. In this regard, the calcineurin inhibitor deltamethrin inhibited the Ca2+ ionophore-induced dephosphorylation. A limited number of Mr 80,000-105,000 polypeptides were the most prominent phosphotyrosine-containing proteins present in human sperm. Unlike mouse sperm, which contains a tyrosine-phosphorylated isoform of hexokinase, a phosphotyrosine-containing hexokinase in human sperm was not detected. Most of the tyrosine-phosphorylated proteins were Triton X-100-insoluble and were localized to the principal piece of the flagellum, the region where the cytoskeletal fibrous sheath is found. Prominent phosphotyrosine-containing proteins of Mr 82,000 and 97,000 were identified as the human homologues of mouse sperm AKAP82, the major fibrous sheath protein, and pro-AKAP82, its precursor polypeptide, respectively. These proteins are A Kinase Anchor Proteins, polypeptides that sequester protein kinase A to subcellular locations. Taken together, these results suggest that protein tyrosine phosphorylation may be part of a signal transduction cascade(s) regulating events pertaining to capacitation and/or motility in mammalian sperm and that an interrelationship between tyrosine kinase and cAMP signaling pathways exists in these cells.

Alkaloids↗

Fertilization in Dictyostelium: pharmacological analyses and the presence of a substrate protein suggest protein kinase C is essential for gamete fusion.

The role of protein kinase C (PKC) during fertilization in the model eukaryote Dictyostelium discoideum was studied. Inhibition of PKC activity using staurosporine, chelerythrine, and bisindoylmaleimide resulted in a dose-dependent decrease in gamete fusion without any detectable effect on cell morphology or growth. At 1.0 microM, staurosporine led to a greater than 90% inhibition of gamete fusion. In support of this, chelerythrine and bisindoylmaleimide at 10 microM inhibited gamete cell fusion by 98 and 99%, respectively. In all cases, subsequent removal of the inhibitor allowed for the completion of sexual development in a manner indistinguishable from untreated, control cultures. In contrast, the stimulation of PKC by the addition of the phorbol ester 12-O-tetradecanoylphorbol-13-acetate at 5 nM resulted in a 56% enhancement of cell fusion. In order to identify PKC substrates that may regulate fertilization in D. discoideum, in vitro phosphorylation was carried out followed by SDS-PAGE. A number of proteins were phosphorylated, only one of which, a protein of about 50,000 M(r), appears to be a PKC substrate. In total, these results coupled with earlier work suggest that PKC functions as part of a calcium-mediated signaling pathway that regulates fertilization in D. discoideum, suggesting that the dual signaling pathway that regulates fertilization in higher eukaryotes may have evolved very early.

Alkaloids↗

Alpha-melanocyte stimulating hormone-induced pigmentation is blocked by depletion of protein kinase C.

We have explored the role of protein kinase C (PKC) in pigmentation induced by alpha-melanocyte stimulating hormone (alpha-MSH). Using the well-studied S91 Cloudman mouse melanoma model system in which 10(-7) M alpha-MSH is known to produce a time-dependent increase in pigmentation, we found an increase in the activity of tyrosinase, the key enzyme in pigmentation, between Days 2 and 6 accompanied by an increase in mRNA and protein levels of tyrosinase, as well as an increase in the level of specifically the beta isoform of PKC. When S91 cells were treated with phorbol dibutyrate, 95% of PKC activity was lost within 48 h and the alpha-MSH-induced melanogenesis was completely blocked, as was the induction of tyrosinase mRNA and protein. Serially passaged S91 cells no longer capable of responding to alpha-MSH had an undetectable level of PKC-beta, although the tyrosinase protein level was identical to that of alpha-MSH-responsive cells. Furthermore, in these S91 cells alpha-MSH also did not increase the level of tyrosinase mRNA. Thus, induction of murine melanogenesis by alpha-MSH involves up-regulation of tyrosinase mRNA and protein mediated in part by the PKC-dependent pathway, associated with an up-regulation of the beta isoform previously demonstrated to specifically activate tyrosinase in human melanocytes.

Alkaloids↗

Protein kinase C is required for induction of 2',5'-oligoadenylate synthetases.

Induction of the p40/46 and p69/71 isoforms of the 2',5'-oligoadenylate (2-5A) synthetase by interferon-alpha (IFN-alpha) is variable among six different Burkitt lymphoma cell lines with Ramos cells expressing among the highest levels of these enzymes. Inhibitors of protein kinase C (PKC) block induction of mRNAs encoding both isoforms; however, induction of the p69/71 isoform is more sensitive to these inhibitors. Down-regulation of PKC by prolonged treatment with 12-O-tetradecanoylphorbol-13-acetate (TPA) also blocks induction of 2-5A synthetase mRNAs and decreases both constitutive and IFN-alpha-induced enzymatic activity. Cotreatment of cells with TPA and IFN-alpha increases induction of 2-5A synthetase mRNAs above that seen in cells treated with IFN-alpha alone. IFN-alpha does not directly activate PKC-alpha or PKC-delta, the two most abundant PKC isoforms present in Ramos cells, suggesting that PKC activation by another signaling pathway is necessary for maximal induction of 2-5A synthetases by IFN-alpha.

2',5'-Oligoadenylate Synthetase↗

A factor with a zinc- and phorbol ester-binding domain is necessary for endosome fusion.

An inhibitory effect of several zinc chelators on endosome fusion reconstituted in an in vitro system has been recently reported (A. Aballay et al., 1995, Biochem. J. 312, 919-923). The factor that requires zinc for its activity is still unknown. Since the regulatory domain of protein kinase C (PKC) contains cysteine-rich motifs which coordinate zinc, we suspected that PKC or a PKC-like protein might be that factor. To test this hypothesis, we studied the effect of calphostin C, a specific inhibitor of PKC that interacts with the cysteine-rich motif, and PMA (phorbol 12-myristate 13-acetate), an activator of several PKC isoforms that bind to the same region, on endosome fusion. Calphostin C inhibited endosome fusion in a zinc-regulated manner, whereas PMA enhanced endosome fusion. Moreover, fusion was strongly stimulated when both PMA and zinc were added together to zinc-depleted fusion reactions. Inhibitors of the catalytic domain of PKC had no effect on the assay suggesting that the kinase activity is not required. In contrast, a glutathione S-transferase fusion protein containing a cysteine-rich region of the regulatory domain of PKCgamma inhibited endosome fusion in a PMA-dependent manner. Western blot analysis demonstrated the presence of proteins containing PKC-like cysteine-rich regions that are released from endosomal fractions by zinc chelators. These results indicate that the previously proposed zinc-dependent factor required for endosome fusion could be either a PKC isoform or a protein containing the phorbol ester-binding domain of PKC.

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Inhibitors of protein kinases abolish ECM-mediated promotion of neuronal polarity.

Different extracellular matrix (ECM) molecules, when presented to hippocampal neurons in culture in a substrate-bound form, exert strikingly similar effects on the establishment of neuronal polarity, i.e., the growth of axon-like major neurites is favored, whereas extension of dendrite-like minor neurites is inhibited. To gain insight into the underlying signal transduction processes, we have investigated the effects of modulators of protein kinase activity on the morphology of neurons cultured on tenascin-R, tenascin-C, and laminin-entactin substrates. We found differential effects of broad-spectrum protein kinase inhibitors: H-7 promoted the growth of minor neurites, whereas H-8 reduced the growth of major neurites on ECM but not control substrates. In contrast, chelerythrine, a specific inhibitor of protein kinase C, selectively affected growth of both minor and major neurites on control, but not on ECM substrates. Finally, reagents which elevate intracellular cAMP levels facilitated growth of minor neurites and inhibited growth of major neurites and thus interfered with the establishment of a polarized phenotype on both ECM and control substrates. Our results suggest that protein kinases mediate the effects of ECM molecules on neuronal polarity and that different kinases control extension of axons and dendrites.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Activation of extracellular signal-regulated kinase in trabecular meshwork cells.

A number of different agents, such as growth factors, cytokines and phorbol esters have been shown to modulate trabecular meshwork cell function. These studies were designed to evaluate the role extracellular signal-regulated kinase (ERK) pathway plays in mediating the responses to platelet-derived growth factor-BB (PDGF-BB) and phorbol 12-myristate 13-acetate (PMA) in trabecular meshwork cells. The human trabecular meshwork cell line, HTM-3, and the bovine trabecular meshwork (BTM) cells were treated with either PDGF-BB or PMA and the activation of ERK 1/2 evaluated. The effects of the MAP kinase kinase (MEK) inhibitor U0126, and the PKC inhibitor chelerythrine on ERK 1/2 were also determined. In a separate group of experiments, cells were treated with PDGF-BB or PMA and the secretion of matrix metalloproteinase-2 (MMP-2) evaluated. The addition of PDGF-BB or PMA produced time- and dose-dependent activation of ERK 1/2. Pretreatment with U0126 or chelerythrine significantly reduced ERK 1/2 activation induced by PDGF-BB or PMA. The addition of PDGF-BB or PMA stimulated the secretion of MMP-2. This secretory response was inhibited by pretreatment with the MEK inhibitor U0126. In trabecular meshwork cells, PDGF-BB and PMA activate ERK 1/2 by a PKC-dependent mechanism. Activation of ERK 1/2 by these agents in trabecular meshwork cells leads to the secretion of MMP-2. These studies provide evidence that ERK pathway is an important mechanism for integrating various signals that regulate trabecular function.

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Bax, Bcl-2, and NF-kappaB expression in sanguinarine induced bimodal cell death.

The apoptosis related proteins Bax, Bcl-2, and NF-kappaB were analyzed in sanguinarine induced apoptosis and blister cell death (BCD) of K562 erythroleukemia cells and in sanguinarine treated high Bcl-2 expressing JM1 pre-B lymphoblastic cells, utilizing immunofluorescence-flow cytometry. Sanguinarine induced apoptosis of K562 cells was found to have increased Bax expression and decreased NF-kappaB, whereas BCD showed a decrease in Bax expression and an increase in NF-kappaB. In contrast, high Bcl-2 expressing JM1 cells, when exposed to the same concentrations (and duration) of sanguinarine that induced PCD and BCD in K562 cells, failed to show the respective morphologies while showing a concomitant increase in Bcl-2. Results from studies with K562 cells suggest that Bax is pro-apoptotic and also that NF-kappaB activation may be associated with BCD. Results from studies with JM1 cells suggest that Bcl-2 is anti-apoptotic and anti-BCD. Results from JM1 cells strengthen the assumption in the literature of the central role Bcl-2 plays in chemoresistance by assuming an anti-PCD role. These results also suggest that, in JM1 cells, Bcl-2 may further complicate chemoresistance by being anti-BCD in nature, in addition to its anti-PCD role.

Alkaloids↗

Stimulation of the Na+/Ca2+ exchanger by phenylephrine, angiotensin II and endothelin 1.

The Na+/Ca2+ exchanger plays an important role in the maintenance of calcium homeostasis in the heart. Therefore, factors which regulate the exchanger have a significant impact on cardiac function. Previously, we showed that the non-hydrolysable GTP analog, 5'guanylyl imidodiphosphate [Gpp(NH)p], stimulates Na+/Ca2+ exchange activity, implying the involvement of a G protein in exchanger regulation. In this study, we examined the effect of G protein agonists on Na+/Ca2+ exchanger activity. Isoproterenol, a Gs agonist, had no effect on exchanger activity. Likewise, the Gi agonist, carbachol, did not influence Na+/Ca2+ exchanger activity. Since these G proteins couple to the adenylate cyclase system, it would appear that cAMP-linked events do not regulate the Na+/Ca2+ exchanger. We next examined the influence of Gq-linked agonists on exchanger activity. Phenylephrine, an alpha 1-adrenergic agonist, increased Na+/Ca2+ exchanger activity up to 111% with an EC50 of 21 microM. Moreover, the Na+/Ca2+ exchanger activity was enhanced by angiotensin II and endothelin 1, which caused maximal stimulation of exchanger activity up to 125% and 211%, respectively. The selective protein kinase C inhibitor chelerythrine significantly attenuated the ability of phenylephrine and angiotensin II to stimulate the Na+/Ca2+ exchanger. In addition, the protein kinase C activator, phorbol 12-myristate 13-acetate, stimulated exchanger activity by 32%, raising the possibility that all three Gq agonists mediate their actions in part through the promotion of phospholipase C activity and the subsequent activation of protein kinase C. The contribution of Na+/Ca2+ exchange to the actions of phenylephrine, angiotensin II, and endothelin 1 is discussed.

Alkaloids↗

Pretreatment with endothelin-1 mimics ischemic preconditioning against infarction in isolated rabbit heart.

We have proposed that ischemic preconditioning in rabbit hearts is initiated by adenosine receptor stimulation resulting in activation of protein kinase C. If this theory is correct then any agonist which can activate PKC should also put the heart into a preconditioned state. This study sought to determine whether endothelin-1 (ET-1), which is known to activate protein kinase C can also mimic ischemic preconditioning. Isolated rabbit hearts experienced 30 min of regional ischemia followed by 120 min of reperfusion. Infarct size was measured with triphenyltetrazolium chloride. In control hearts infarction was 30.3 +/- 2.5% of the risk zone. Preconditioning with 5 min global ischemia and 10 min reperfusion reduced infarct size to 5.6 +/- 0.7% (P < 0.01). Perfusion with either 10 PM ET-1 at constant coronary artery flow for 5 min in lieu of ischemia or 50 PM ET-1 with 10 nM nicardipine to block the former's coronary constructive effect was quite protective and equipotent with preconditioning. Infarction averaged 7.2 +/- 0.8% and 5.8 +/- 1.7% of the risk zone, respectively. This protection could be blocked by PD 156 707 (10 microM), a highly specific endothelin receptor antagonist. Chelerythrine (5 microM), a PKC inhibitor, also aborted protection (22.0 +/- 1.7% infarction). However, 8-(p-sulfophenyl)theophylline (100 microM), an adenosine receptor blocker, given during ET-1 administration did not block ET-1's protective effect indicating that adenosine was not involved in the effect. PD 156707 failed to block the protection from ischemic preconditioning (12.6 +/- 2.3% infarction) revealing that endothelin is not an important physiological mediator of ischemic preconditioning. We conclude that ET-1 can mimic ischemic preconditioning in isolated rabbit hearts as would be predicted since its receptors are PKC-coupled, but that endogenous endothelin contributes little to ischemic preconditioning.

Alkaloids↗

Angiotensin II induces apoptosis of adult ventricular myocytes in vitro.

To determine whether angiotensin II (Ang II) activates the suicide program of myocytes, primary cultures of adult rat ventricular myocytes were exposed to 10(-9) M of Ang II, for 24 h. Ang II resulted in a five-fold increase in programmed myocyte cell death (PMCD) documented by the terminal deoxynucleotidyl transferase assay and confirmed by DNA agarose gel electrophoresis. Ang II stimulation was associated with translocation of the epsilon and delta isoforms of protein kinase C (PKC) which was coupled with an increase in cytosolic Ca2+ in the cells. The PKC inhibitor chelerythrine abolished Ang II-mediated increases in cytosolic Ca2+ and PMCD. Similarly, pretreatment of cells with the intracellular Ca2+ chelator BAPTA/AM inhibited the formation of DNA strand breaks. Conversely, the Ca2+ ionophore A23187 markedly increased PMCD. Finally, the AT1 receptor antagonist, losartan, completely blocked Ang II-induced PMCD, whereas the AT2 receptor antagonist, PD123319, did not attenuate this phenomenon. In conclusion, ligand binding of AT1 receptors on myocytes triggers PMCD by a mechanism involving PKC-mediated increases in cytosolic calcium, which result in internucleosomal DNA fragmentation.

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Norepinephrine pretreatment attenuates Ca2+ overloading in rat trabeculae during subsequent metabolic inhibition: improved contractile recovery via an alpha 1-adrenergic, PKC-dependent signaling mechanism.

The present study was designed in order to investigate more precisely the role of calcium homeostasis maintenance in protein kinase C (PKC) mediated preconditioning. We used a 15 min pre-incubation period, with 1 mumol/l exogenous norepinephrine (NE) to pharmacologically precondition isolated, superfused rat trabeculae against contractile dysfunctioning following 120 min of metabolic inhibition (MI, in 2 mmol/l CN- containing Tyrode without glucose at 1 Hz stimulation frequency). Contractile recovery was studied during a subsequent 60 min recovery period (RP, in glucose containing Tyrode at 0.2 Hz). Tyrode was gassed with 95%, O2/ 5% CO2 and kept at a constant temperature of 24 degrees C. Force and intracellular free calcium ([Ca2+]i) were monitored throughout the experimental protocol; [Ca2+]i was measured using fura-2. Pretreatment with NE (group NE-I) significantly increased the fraction of trabeculae that resumed to contract during RP, from 36 +/- 13% (mean +/- S.E.M.) in controls to 82 +/- 10% (P < 0.05). In correspondence with this, NE-pretreatment increased the proportion of trabeculae in which the Ca2+ rise from the onset of rigor development during MI was attenuated. After 40 min of MI [Ca2+]i in the failing control, as well as failing group NE-I, trabeculae (1.08 +/- 0.20 and 1.51 +/- 0.26 mumol/l, respectively) was increased significantly compared to the mean value registered in the recovering preparations of these groups (0.34 +/- 0.04 mumol/l: P < 0.05). Specific inhibition of PKC with 2 mumol/l chelerythrine (group NE-IV) almost completely blocked the protection induced by NE-pretreatment, including its protective action against Ca2+ overload, i.e. the fraction of trabeculae that resumed to contract during RP returned to untreated control level (46 +/- 11%: P < 0.05 v group NE-I). Also in this case [Ca2+]i in the failing group NE-IV trabeculae after 40 min of MI was increased substantially, compared to the value measured in the recovering preparations (4.75 +/- 1.00 and 0.60 +/- 0.08 mumol/ l, respectively). The relative importance of both alpha-adrenergic and beta-adrenergic receptor pathways in this preconditioning-like effect of NE-pretreatment, was investigated using specific blockers. The results point to an alpha 1-adrenergic receptor mediated signaling mechanism, which enhances PKC-dependent control of [Ca2+]i from the onset of rigor development during MI.

Adrenergic alpha-Agonists↗

Preconditioning of isolated rabbit cardiomyocytes: no evident separation of induction, memory and protection.

Cardiomyocytes isolated from rabbit hearts were preconditioned in vitro by 10 min of ischemia or treatment with 100 microM adenosine. Protection was assessed as average integrated mortality following osmotic swelling and determination of viability by trypan blue exclusion over 60-180 min ischemia. Repetitive sub-maximal stimulations with 1 microM adenosine amplified the protective response. Treatment with adenosine only at the onset of prolonged ischemia afforded a dose-dependent protection. The PKC inhibitor calphostin C (500 nm) blocked preconditioning and, when added during ischemic incubation of non-preconditioned cells, significantly increased injury. The memory of adenosine-induced preconditioning decayed over a 60 min post-incubation period. Light activation of calphostin C initially added to preconditioned ischemic cells in the dark indicated that a 10 min period of PKC activity at the onset of ischemia affords full protection. The reversible PKC inhibitors chelerythrine (5 microM) or staurosporine (100 nM) added only to bracket induction of ischemia, reduced but did not abolish protection. Protection was abolished when either drug was present during induction and a subsequent 30 min post-incubation period. Staurosporine included during initiation and post-incubation but washed out in the final 5 min of post-incubation allowed significant protection to occur. It is concluded that a single adenosine receptor-stimulation induces protection as it preconditions, and PKC activity appears to be required for both induction and protection. Memory may reside in post-receptor amplification of an initial protective response.

Adenosine↗

Protein kinase C is involved in resistance to myocardial infarction induced by heat stress.

Heat stress (HS) is known to protect against mechanical dysfunction and myocardial necrosis in myocardial ischemia-reperfusion models both in vivo and in vitro. However, the mechanisms involved in this form of cardioprotection remain unclear. Protein kinase C (PKC) and tyrosine kinase activation have both been shown to be involved in the delayed phase of protection following ischemic preconditioning, a phenomenon which appears to be analogous to HS-induced protection. Therefore, we investigated the role of PKC and tyrosine kinase in HS-induced resistance to myocardial infarction, in the isolated rat heart. The selective inhibitors chelerythrine (Che) and genistein (Gen) were used to inhibit PKC and tyrosine kinase, respectively. Rats were treated with Che (5 mg/kg, i.p.) or Gen (5 mg/kg, i.p.) or vehicle before they were either heat stressed (42 degrees C for 15 min) or sham anesthetized. Twenty-four h later their hearts were isolated, retrogradely perfused, and subjected to 35-min occlusion of the left coronary artery followed by 120-min of reperfusion. Infarct-to-risk ratio was significantly reduced in HS (19.9+/-1.1%) compared to sham (43.1+/-1.1%) hearts. This reduction in infarct size was abolished in chelerythrine-treated groups (43.8+/-1.9% in HS+Che v 44.9+/-2.0% in sham+Che), but was conserved in genistein-treated groups (17.7+/-0.9% in HS+Gen v 36.4+/-2.8% in sham+Gen). In order to confirm that genistein at this dose was effectively inhibiting tyrosine kinase activity, we observed the ability of the agent to prevent the hypoglycemic responses to insulin in a separate group of anesthetised rats receiving an i.v. insulin infusion. Western blot analysis of the myocardial hsp72 showed a HS-induced increase of this protein, which was modified by neither the PKC inhibitor, chelerythrine, nor the tyrosine kinase inhibitor, genistein. We conclude that the activation of PKC, but not of tyrosine kinase, appears to play a role in the functional cardioprotection associated with the heat stress response. Although protection appears to be dissociated from induction of hsp72, further work is required to explore the importance of hsp72 phosphorylation to cytoprotective activity of the protein.

Alkaloids↗

Effects of protein kinase C inhibitors in in situ and isolated ischemic rabbit myocardium.

We tested the effects of the protein kinase C (PKC) inhibitors bisindolylmaleimide (1 microM) and chelerythrine (2 microM) on myocardial ischemia-reperfusion injury in in situ and isolated perfused rabbit hearts. In non-ischemic isolated hearts, bisindolylmaleimide (1 microM) and chelerythrine (2 microM) blocked sn-1,2-dioctanoylglycerol (DOG)-induced coronary vasoconstriction by approximately 80%. Intact hearts were subjected to 45 min coronary artery occlusion and 2 h reperfusion. Infarct size, determined by triphenyltetrazolium chloride (TTC)-staining and expressed as percentage of risk area, was reduced approximately 50% by both bisindolylmaleimide (0.05 mg/kg, i.v.) and chelerythrine (0.1 mg/kg, i.v.) compared to vehicle treated controls. In contrast, a higher dose of chelerythrine (3.8 mg/kg, i.v.) did not significantly reduce infarct size. Isolated hearts were subjected to 45 min of global normothermic (37 degrees C) ischemia and 60 min reperfusion. Control hearts exhibited 45+/-2% recovery of pre-ischemic left ventricular developed pressure (LVDP) compared to bisindolylmaleimide- (73+/-7%) and chelerythrine-treated hearts (70+/-11%). Bisindolylmaleimide and cherythrine reduced infarct size from a control value of 24+/-4 to 8+/-2 and 9+/-3%, respectively. Preconditioning isolated hearts with 5 min ischemia and 10 min reperfusion prior to prolonged ischemia reduced infarct size to 10.4+/-2.3%, an effect which was blocked by chelerythrine (22.5+/-4.2% infarct size). These results suggest that although PKC may play a role in ischemic preconditioning, PKC inhibitors can be cardioprotective during prolonged ischemia.

Alkaloids↗