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Electron microscopical demonstration of horseradish peroxidase by use of tetramethylbenzidine as chromogen and sodium tungstate as stabilizer (TMB-ST method): a tracing method with high sensitivity and well preserved ultrastructural tissue.

Until now methods using tetramethylbenzidine (TMB) for electron microscopy (TMB-EM methods) are all unable to provide a maximum demonstration of transported horseradish peroxidase (HRP) while maintaining good ultrastructural tissue preservation. In order to solve this problem, we have attempted to adapt a newly developed, highly sensitive TMB method using sodium tungstate (ST) as the stabilizer (TMB-ST method) for HRP electron microscopic retrograde and anterograde fiber tracing. The present study shows that the TMB-ST method combined with diaminobenzidine-cobalt (DAB-Co) is more sensitive than existing TMB-EM methods and that ultrastructural details are well preserved with this combined method. The resultant reaction product complex after osmication is stable and is observed as characteristic crystal-like structures which are extremely electron dense and often aggregated into clumps. In contrast, the TMB-ST method without the DAB-Co step frequently produces a moderate electron-dense reaction product. Therefore, we recommend the TMB-ST method combined with DAB-Co for HRP electron microscopy.

3,3'-Diaminobenzidine↗

Stimulatory and inhibitory effects of TMB-8 on pancreatic enzyme secretion.

The putative intracellular calcium antagonist 3,4,5-trimethoxybenzoate 8-(diethylamino)-octyl ester (TMB-8) affects carbachol-induced enzyme secretion from rabbit pancreatic acini in a different way than it does that induced by either the C-terminal octapeptide of cholecystokinin (CCK-8), the phorbol ester, 12-O-tetradecanoylphorbol 13-acetate (TPA) or the calcium ionophore, A23187. In the presence of TMB-8 the dose-response curve for carbachol-induced amylase release shifts to the right, suggesting competitive antagonism at the muscarinic receptor. The hypothesis that TMB-8 acts as a muscarinic receptor antagonist is supported by the observation that TMB-8 dose-dependently inhibits the carbachol-, but not CCK-8-induced increases in cytosolic free calcium, measured in acinar cells by means of the fluorescent calcium indicator quin2. At a concentration of 100 microM, TMB-8 maximally potentiates the secretory response to suboptimal, but not (supra)optimal, concentrations of CCK-8. At the same concentration the drug also potentiates TPA- and A23187-induced enzyme secretion. Cytosolic free calcium levels and CCK-8-induced increases in cytosolic free calcium remain unaffected by 100 microM TMB-8. The above results strongly suggest that potentiation occurs at or beyond the site of interaction between the diacylglycerol- and the Ca2+-activated pathways. At concentrations beyond 100 microM the potentiating effect of TMB-8 declines and, finally, at a concentration of 500 microM the drug completely abolishes the secretory response to CCK-8 and TPA. Basal enzyme secretion, however, remains unaffected. At 500 microM severe side effects are observed as is shown by Trypan blue uptake, lactic dehydrogenase release and release of trapped quin2. It is concluded that at lower concentrations TMB-8 does not act as a specific intracellular calcium antagonist in pancreatic enzyme secretion and that inhibitory effects obtained with rather high concentrations of this drug should be treated with caution.

Amylases↗

A comparison of the effects of TMB-8 and nifedipine on pressor responses to alpha 1- and alpha 2-adrenoceptor agonists in pithed rats.

TMB-8 has been characterized as an inhibitor of the release of Ca2+ from intracellular pools. We have studied the modification of the pressor responses to selective alpha 1-adrenoceptor agonists (methoxamine and phenylephrine), and to selective alpha 2-adrenoceptor agonists (B-HT 920 and B-HT 933) in pithed rats, produced by TMB-8. We have compared this modification with that produced by the calcium antagonist nifedipine. Nifedipine (100 micrograms/kg, 300 micrograms/kg, and 1000 micrograms/kg) inhibited in a dose-dependent manner the pressor responses to the alpha 1- and alpha 2-adrenoceptor agonists, the dose-response curves to the alpha 2-adrenoceptor agonists being shifted further to the right. TMB-8 at a dose of 3000 micrograms/kg did not modify the pressor effects of the alpha 1-adrenoceptor agonists, and neither did it reinforce the inhibition of such responses produced by nifedipine. By contrast, TMB-8 pretreatment (0.03 micrograms/kg, 0.3 micrograms/kg, 3 micrograms/kg, 30 micrograms/kg, 300 micrograms/kg and 3000 micrograms/kg) inhibited the responses to both alpha 2-adrenoceptor agonists, the inhibition being more pronounced with B-HT 920. A similar effect was obtained with 0.03 micrograms/kg TMB-8 and 0.3 microgram/kg TMB-8, particularly in the case of B-HT 920. It was stronger with higher doses, but similar for all doses over 3 micrograms/kg. The inhibition of the pressor responses mediated by the stimulation of alpha 2-adrenoceptors by TMB-8 was less in rats treated with the Ca2+ entry promoter BAY K 8644 (300 micrograms/kg), and could also be reduced by the continuous infusion of CaCl2 (0.25 microgram/min).(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-1 Receptor Agonists↗

Calcium-dependent inhibition of renin secretion: TMB-8 is a non-specific antagonist.

Intracellular Ca (Cai) is an inhibitory second messenger in renin secretion, and it has been hypothesized that some first messengers--especially angiotensin II [A-II] and antidiuretic hormone [ADH], and possibly A1-adenosine receptor antagonists as well--increase Cai and thereby inhibit renin secretion by causing the release or mobilization of Ca from intracellular sites of sequestration. The present experiments were designed to test this hypothesis, by using 3,4,5-trimethoxybenzoic acid 8-(diethylamino)-octyl ester (TMB-8), a putative antagonist of Ca release from intracellular sequestration sites. The rat renal cortical slices preparation was used. Basal renin secretory rate was unaffected by 1 and 10 microM TMB-8, but more than doubled in response to 100 microM TMB-8. Basal renin secretory rate was inhibited by A-II (1 microM), by ADH (200 units/1), by an A1-adenosine receptor agonist (N6-cyclohexyladenosine, or CHA; 0.5 microM), and by an alpha-adrenergic agonist (methoxamine; 10 microM). Only the inhibitory effect of methoxamine was blocked by 1 and 10 microM TMB-8, but these concentrations had no effect on basal secretory rate. At 100 microM, TMB-8 blocked the inhibitory effects of ADH as well as of methoxamine, but failed to block the inhibitory effects of CHA and A-II. However, these observations cannot be taken as evidence that methoxamine and ADH, but not CHA and A-II, inhibit renin secretion by a mechanism involving release of Ca from intracellular sequestration sites, because 100 microM TMB-8 clearly had non-specific effects. Among them, it completely blocked the inhibitory effect of K-depolarization on renin secretion. Collectively, at least three separate actions of TMB-8 must be invoked to explain the present results. Likely candidates are an Na-channel blocking effect and a Ca channel blocking effect in addition to antagonism of the release of Cai.

Adenosine↗

Stabilization of tetramethylbenzidine (TMB) reaction product at the electron microscopic level by ammonium molybdate.

The ability to use the tetramethylbenzidine (TMB) method for studying neuronal connections at the electron microscopic level is often difficult because the conditions of osmification and dehydration used in processing the tissue may result in significant loss and/or decreased electron density of the reaction product. In the present study, we report that stabilization of TMB reaction product with 5% ammonium molybdate (AM) prior to osmificating the tissue results in the formation of TMB-AM crystals that are many times more electron dense and resistant to ethanol extraction than non-stabilized TMB crystals. The nature of the chemical interaction that underlies the stabilization of TMB by AM is uncertain, but it may involve the formation of an insoluble salt between molybdic ions and the TMB polymer. The use of this simple procedure increases the sensitivity of the TMB procedure at the electron microscopic level and may be used to label neuronal pathways in the peripheral and central nervous systems with equal success.

Animals↗

TMB-8 prevents the hydroosmotic response to ADH in rabbit cortical collecting tubules.

Both AVP and dDAVP effect a transient increase in cytosolic free calcium (iCa2+) in cortical collecting tubule (CCT) cells. To investigate the physiological role of this increase in iCa2+, we examined the effect of TMB-8, a putative inhibitor of iCa2+ release, on the initial and sustained phase of AVP- and dDAVP-stimulated water permeability (Pf) in isolated, perfused CCTs. Pretreatment of tubules with TMB-8, 50 microM, suppressed the increase in osmotic water permeability (Pf) induced by 10 microU/ml AVP and dDAVP, but had no effect on the sustained phase of the response. When increased to 100 microM. TMB-8 inhibited the sustained phase of AVP action. A similar pattern was observed on AVP-stimulated adenyly cyclase activity in rabbit renal membranes. Pretreatment of tubules with 50 microM TMB-8 attenuated the initial increase in Pf in response to cholera toxin but not to 8-Br-cAMP or forskolin. There was no effect of this concentration of TMB-8 on the sustained phase of these agonists. These studies suggest that, in lower concentrations, TMB-8 inhibits the mobilization of iCa2+, which is important for the interaction of Gs with the catalytic unit of adenylyl cyclase and the initial increase in AVP-stimulated Pf. In higher concentrations, TMB-8 inhibits adenylyl cyclase activity directly.

8-Bromo Cyclic Adenosine Monophosphate↗

[Effect of TMB-8 on the increase of intracellular free Ca2+ induced by NE and BHQ in dissociated single rat brain cell].

The inhibitory effect and mechanism of 8-(N, N'-diethylamino) octyl 3, 4, 5-trimethoxybenzoate hydrochloride (TMB-8) on the elevation of single intracellular free Ca2+ concentration ([Ca2+]i) induced by High K+, Norepinephrine(NE) and 2, 5-Di(tert-butyl)-1, 4-benzohydroquinone (BHQ) in dissociated single rat brain cells were studied. The changes of [Ca2+]i were reflected by the fluorescent indicator, Fura-2/AM, employed. In the absence of extracellular Ca2+, Ca-free Hank's solution, preincubation with TMB-8 (10, 30 mumol.L-1) for 20 min significantly decreased the resting [Ca2+]i from 79 +/- 13 nmol.L-1 to 65 +/- 11 and 61 +/- 6 nmol.L-1, respectively. [Ca2+]i were markedly increased by NE and BHQ and reduced significantly to control level by TMB-8. On the other hand, when the cells were incubated in Hank's solution containing Ca2+ 1.3 mmol.L-1, TMB-8(30, 100 mumol.L-1) suppressed the increase of [Ca2+]i induced by NE (0.0001-0.1 mumol.L-1). TMB-8 showed no significant effect on [Ca2+]i elevation induced by KCl and BHQ in Hank's solution containing Ca2+ 1.3 mmol.L-1. These results indicate that TMB-8 reduced [Ca2+]i via increase of the sarcoplasmic reticulum (SR) sequestration, which blocked the release of intracellular store from the SR. However, the inhibitory effect of TMB-8 on Ca-influx from extracellular medium seems to be an indirect action from the saturation of SR with calcium.

Animals↗

Effects of 8-(N-N-diethylamino)octyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-8) on skinned myocardial fibres of the rat: reversible inhibition of calcium release from the sarcoplasmic reticulum.

The effects of 8-(N,N-diethylamino)octyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-3), which is reported to inhibit the release of intracellularly stored Ca2+ in skeletal and smooth muscles, were examined in ventricular myocardia of the adult rat. In skinned papillary muscle fibres with functional sarcoplasmic reticulum (SR) preserved, application of 100 or 300 microM TMB-8 during the Ca2+ loading period had no significant effect on the peak tension of subsequent caffeine-induced contraction, but when applied during exposure to caffeine, concentration-dependent reduction of the peak tension was observed. At 1000 microM, TMB-8 reduced the peak tension of caffeine-induced contraction when applied either during Ca2+ loading or during exposure to caffeine. TMB-8 had no substantial influence on the Ca(2+)-tension of skinned fibres without functional SR. In isolated papillary muscle preparations, TMB-8 prolonged the action potential duration and decreased the maximum rate of rise of potential, leading to abolition of contraction at 100 microM. In conclusion, TMB-8 may be a useful pharmacological tool for inhibiting Ca2+ release from SR, but only in skinned myocardial preparations.

Action Potentials↗

Inhibition of calcium uptake and catecholamine release by 8-(N,N-diethylamino)-octyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-8) in cultured bovine adrenal chromaffin cells.

Effects of intracellular calcium antagonists, 8-(N,N-diethylamino)-octyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-8) and 1-(5-(p-nitrophenyl)-furfurylidene-amino) hydantoin sodium hydrate (dantrolene sodium), on catecholamine release and 45Ca2+ uptake were studied using cultured bovine adrenal chromaffin cells. TMB-8 inhibited carbamylcholine-evoked catecholamine release and 45Ca2+ uptake in a concentration-dependent manner with a similar potency. On the contrary, dantrolene sodium did not show obvious inhibitory effects of catecholamine release and 45Ca2+ uptake. Although TMB-8 inhibited the high K+-evoked catecholamine release and 45Ca2+ uptake, the potency of the drug was approximately 100-fold less than when used to inhibit the carbamylcholine-evoked catecholamine release and 45Ca2+ uptake. The inhibitory effect of TMB-8 on the carbamylcholine-evoked catecholamine release was not overcome by an increase in an extracellular calcium concentration, and was not due to competitive antagonism at the nicotinic receptor site. Moreover, TMB-8 inhibited the carbamylcholine-stimulated 45Ca2+ efflux, but dantrolene sodium failed to affect it. These results suggest that TMB-8, a well-known intracellular calcium antagonist, prevents the cellular calcium uptake in cultured adrenal chromaffin cells, and thus prevents catecholamine release.

Adrenal Glands↗

Effects of 5-(N,N-diethylamino)-n-pentyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-5) on cardiovascular systems.

The effects of 5-(N,N-diethylamino)-pentyl-3,4,5-trimethoxybenzoate hydrochloride (TMB-5) were studied pharmacologically on smooth muscle, skeletal muscle, blood vessel and cardiac preparations. In all cases, TMB-5 inhibited muscle contractions induced by muscle stimulants such as acetylcholine, norepinephrine, KCl and BaCl2, indicating that the muscle inhibition induced by TMB-5 is unrelated to specific receptors. TMB-5 was found to be most potent in inhibiting skeletal muscles (at 10(-6)-10(-5) M level) and least effective in inhibiting smooth muscles (at 10(-4)-10(-3) M level). The potency of vascular inhibition was in between these two levels (at 10(-4) M level). The ability of TMB-5 to raise the threshold of cardiac arrhythmias was quite good at 7X10(-7)-7X10(-6) M. It is concluded that TMB-5 could be a good antiarrhythmic agent with some skeletal muscle relaxation action.

Animals↗

Inhibition of dibutyryl cyclic AMP induced steroidogenesis in rat adrenocortical cells by the putative calcium antagonist TMB-8.

A significant proportion of the steroidogenic response of isolated rat adrenocortical cells to dibutyryl cyclic AMP does not require extracellular calcium, and this component is profoundly depressed by low concentrations of the putative calcium antagonist, TMB-8. The inhibition is reversed by either the readdition of calcium or the calcium ionophore A23187. The steroidogenic response to pregnenolone, whose mode of action does not require calcium, was not depressed by TMB-8. Corticotropin (ACTH)-induced steroidogenesis, which requires extracellular calcium, was markedly depressed by TMB-8, although enhanced cyclic AMP formation is only slightly depressed by this drug. Adrenal cortical microsomes possess an ATP-dependent 45calcium (45Ca2+) uptake system which responded to EGTA with a rapid efflux of 45Ca2+; EGTA-induced calcium efflux from this microsomal fraction was markedly reduced by a concentration of TMB-8 that blocked dibutyryl cyclic AMP-evoked steroidogenesis. TMB-8 produced a smaller but significant reduction of EGTA-facilitated 45Ca2+ efflux from a mitochondrial-enriched fraction. We interpret these results to mean that TMB-8 blocks the steroidogenic effect of dibutyryl cyclic AMP by interfering with the mobilization of a cellular pool of calcium that is probably localized to the endoplasmic reticulum. The physiological implications of these findings in relation to the complex interactions between calcium and cyclic AMP in adrenal steroidogenesis are discussed.

Adrenal Cortex↗

Correlation between predicted theoretical mechanistic biochemistry (TMB) data and therapeutic effects in the management of vascular disorders with calcium channel blockers.

Theoretical mechanistic biochemistry (TMB) analysis was used to predict the therapeutic effects of calcium channel blockers in the drug management of hypertension, cerebrovascular disorders (CVD) and coronary artery disease (CAD). This analysis was extended to acetylsalicylic acid (aspirin) a non-calcium channel blocker which is nevertheless commonly used in the management of the same disorders. TMB data have suggested nisoldipine, nicardipine and nimodipine as agents of choice in the management of cerebrovascular disease, e.g. in transient ischemic attacks (TIAs). The same agents were found preferable in the management of coronary artery disease. It is noteworthy that atherosclerosis and vascular spasm are common pathogenic events in both conditions. For lowering blood pressure, without compromising cerebral and coronary blood flows TMB data suggested nisoldipine, nicardipine, nimodipine and nifedipine in that preferential order. For tissue selectivity, TMB data have identified nisoldipine, nicardipine, nifedipine, nimodipine and nitrendipine for vascular tissue and that verapamil, diltiazem and aspirin have little or no tissue selectivity. TMB data have gone further to suggest a combination of nicardipine, nisoldipine or nimodipine with beta-blockers in order to reduce the frequently uncomfortable reflex tachycardia often induced by some calcium channel blockers. By and large, TMB predicted data have been found to correlate reasonably well with clinically observed and reported therapeutic effects of calcium channel blockers. Their consistency in the management of hypertension, cerebrovascular disease and coronary artery disease is apparent in this study.

Calcium Channel Blockers↗

TMB-8 and dibucaine induce tyrosine phosphorylation and dephosphorylation of a common set of proteins in platelets.

Dibucaine and 8-(N,N-diethylamino)octyl 3,4,5-trimethoxybenzoate (TMB-8), which are local anesthetics, affect diverse functions of many cell types. For example, platelet aggregation is inhibited by both, and both cause changes in platelet morphology and structure. Little is known of the mechanisms. We found that both dibucaine (0.125-0.5 mM) and TMB-8 (0.25-1.0 mM) induced rapid tyrosine phosphorylation of several platelet proteins (160, 70-75, and 40 kDa) and dephosphorylation of a 62- to 64-kDa protein detectable by a specific antiphosphotyrosine monoclonal antibody (4G10). Platelet aggregation induced by alpha-thrombin (10 nM) was inhibited by the local anesthetics in approximately the same dose range. Neither dibucaine nor TMB-8 induced activation of protein kinase C (PKC) or myosin light-chain kinase. Their activation was not essential for tyrosine phosphorylation induced by local anesthetics. However, an increase in tyrosine phosphorylation of several proteins (95-130 kDa) induced by alpha-thrombin (10 nM) was inhibited by dibucaine (0.5 mM) or TMB-8 (0.5 mM). Furthermore, when dibucaine (0.5 mM) was added 1 min after addition of alpha-thrombin (10 nM), disaggregation was paralleled to dephosphorylation of many proteins, including those mentioned. Tyrosine phosphorylation and dephosphorylation of specific proteins may account for some of the diverse effects of local anesthetics on platelets and other cells. Addition of TMB-8 (0.5 mM) or dibucaine (0.5 mM) also inhibited activation of PKC, induced by alpha-thrombin (10nM), suggesting that some of the inhibitory effects of dibucaine or TMB-8 may be due to inhibitory effects of local anesthetics on PKC.

Blood Platelets↗

Effects of calcium antagonist TMB-8 on active Na and Cl transport in rabbit ileum.

The effects of 3,4,5-trimethoxybenzoate 8-(N,N-diethylamino)octyl ester (TMB-8), an agent that traps calcium within intracellular stores, were studied on active electrolyte transport in rabbit ileum under basal conditions and after altering transport by increasing the intracellular cAMP content or by exposure to two agonists that act by altering intracellular Ca2+ (carbachol and serotonin). TMB-8 decreased the ileal short-circuit current and increased active Na and Cl absorption by increasing the mucosal-to-serosal Na and Cl fluxes. These effects were reversed by increasing the bathing solution Ca2+ to 4 mM, a concentration that itself did not alter basal ileal transport. The maximum glucose- and amino acid (alanine)-induced increase in Na absorption in the ileum was not affected by TMB-8. The effects on basal transport of TMB-8 were not associated with a change in 45Ca2+ entry across the ileal serosal surface. TMB-8 did not alter cAMP-induced secretion, as judged by its lack of effect on the increase in short-circuit current caused by 8-bromo-cAMP (10(-4) M). TMB-8 totally prevented the transport effects of carbachol but did not inhibit the effects of serotonin. These data suggest a role for intracellular Ca2+ in regulation of basal ileal Na and Cl transport but not in cAMP-induced secretion. There appear to be several pools of intracellular Ca2+ involved in neurohumoral effects on active electrolyte transport.

8-Bromo Cyclic Adenosine Monophosphate↗

Stabilization of the tetramethylbenzidine (TMB) reaction product: application for retrograde and anterograde tracing, and combination with immunohistochemistry.

Tetramethylbenzidine (TMB) as a substrate for horseradish peroxidase (HRP) histochemistry is more sensitive than other chromogens. Its instability in aqueous solutions and ethanol, however, has limited its application. We now report a method for stabilizing TMB by incubation in combinations of diaminobenzidine (DAB)/cobalt (Co2+)/H2O2. The stabilized TMB product was unaffected by long-term exposures to ethanol, neutral buffers, and subsequent immunohistochemical staining procedures. A procedure is recommended for optimal stabilization of TMB that affords a sensitivity for demonstrating retrogradely labeled perikarya comparable to standard TMB histochemistry. The physical characteristics of the reaction product make it suitable for combination with the unlabeled antibody, peroxidase-antiperoxidase (PAP) immunohistochemical staining procedure. This was established by staining retrogradely labeled neurons in the basal forebrain with a monoclonal antibody against choline acetyltransferase. Because the stabilized TMB product exhibited a superior sensitivity over cobalt ion intensification of the DAB-based reaction product (DAB-Co), it offers a distinct advantage over previously described combination procedures.

Animals↗

TMB-8 inhibits respiration and cyclic GMP formation in Dictyostelium discoideum.

The putative inhibitor of intracellular calcium mobilization, TMB-8 was found to be a powerful inhibitor of respiration in amoebae of Dictyostelium discoideum. Consequently, the previously reported effects of this drug on cyclic GMP formation induced by chemoattractants were reassessed. It was found that TMB-8 abolished both folate and cyclic AMP-mediated accumulation of cyclic GMP in D. discoideum amoebae and that addition of Ca2+ completely restored this response. The Ca2+ chelating agent EGTA did not mimic the effect of TMB-8. The effect on cyclic GMP formation, however, occurred only at a concentration of TMB-8 that was ten times that causing maximal inhibition of respiration, and inhibition of cyclic GMP formation was completely restored by addition of excess Ca2+, whereas inhibition of respiration was only partially restored. The data suggest that TMB-8 has more than one inhibitory action, and because of the differential sensitivity of respiration and cyclic GMP formation to this drug, and the differential antagonism of excess Ca2+, we conclude that the effect of TMB-8 on the cyclic GMP response is probably due to its effect on Ca2+ mobilization, rather than indirectly via its effects on respiration. However, we advise caution in interpretation of data using this inhibitor where the responses measured are prolonged, are energy-requiring or are not freely reversible by excess Ca2+.

Calcium Channel Blockers↗

[8-(N,N-diethylamino)-n-octyl-3,4,5-trimethoxybenzoate(TMB-8) reduced the elevation of [Ca2+]i induced by BHQ, NE and KCl in cultured single smooth muscle cells of the calf basilar artery].

The effect of 8-(N, N-diethylamino)-n-octyl-3,4,5-trimethoxybenzoate (TMB-8) on the elevation of [Ca2+]i induced by 2, 5-di (tert-butyl)-1, 4-benzohydroquinone (BHQ), norepinephrine (NE), KCl in cultured single smooth muscle cells of the calf basilar artery was studied by a system of measurement of AR-CM-MIC, using Fura-2/AM as a fluoresent indicator. In the presence of extracellular Ca2+ 1.3 mmol.L-1, the resting [Ca2+]i was not changed by TMB-8 (10, 30 and 100 mumol.L-1), but the elevation of [Ca2+]i induced by BHQ, NE and KCl were reduced by TMB-8 (30 mumol.L-1) significantly. In Ca2+ free Hank's solution containing EGTA 0.1 mmol.L-1, the resting [Ca2+]i was markedly reduced by TMB-8 (10, 30 and 100 mumol.L-1), and the increase of [Ca2+]i evoked by BHQ and NE was blocked completely by TMB-8 (30 mumol.L-1). The result suggested that TMB-8 inhibited the Ca2+ release from intracellular stores or increased the up-take of Ca2+ into sarcoplasmic reticulum and the inhibition of Ca(2+)-influx from extracellular site may be an indirect machanism.

Animals↗

Effects of the calcium antagonist, TMB-8 on halothane and on caffeine contractures of malignant hyperthermia susceptible skeletal muscle.

This investigation sought to determine if the Ca2+ antagonist, TMB-8, alters the contracture responses of malignant hyperthermia susceptible (MHS) skeletal muscle to halothane and to caffeine. Muscle fiber bundles were excised from both MHS and normal pigs and exposed to TMB-8 (100 microM), halothane (3%) and caffeine (0.5-8.0 mM), administered alone and in combination. TMB-8 depressed tension developed during isometric twitches in both MHS and normal muscle but had no effect on resting tension (RT). Halothane, however, increased RT in MHS but not in normal muscle. TMB-8 failed to reduce the halothane contracture of MHS muscle but hastened its onset. Caffeine concentrations of greater than or equal to 2 mM increased RT in MHS whereas only 8 mM evoked contracture of normal muscle. These effects were also unaltered by TMB-8. Results suggest that TMB-8 does not inhibit halothane nor caffeine contractures of MHS muscle.

Animals↗