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Effects of betahistine and of its metabolites on vestibular sensory organs.

Betahistine is widely used in the treatment of peripheral and central vestibular disorders. Till now the anti-vertigo effect of the drug was though to be mainly due to an action of betahistine on inner ear or cerebral microcirculation or on some structures of the CNS, chiefly the vestibular nuclei. Vertigo, however is, in most cases, of peripheral origin but it remains unknown whether betahistine, or some of its metabolities, may directly affect the vestibular system at peripheral level. Pharmacokinetic studies have in fact demonstrated that betahistine is transformed, mainly at the hepatic level, in aminoethylpyridine (M1), hydroxyethylpyridine (M2) and, finally, in pyridylacetic acid (M3) which is excreted with the urine. All these substances are therefore present in the body fluids of subjects treated with betahistine, and thus might have pharmacological effects. The goal of the present study was to investigate whether betahistine or some of its metabolites could exert any effect on vestibular receptors. To this end, the effects of the drugs (10(-7)-10(-2) M) have been examined on frog semicircular canals, an animal model well suited for this purpose. The effects of betahistine and of its metabolites have been evaluated by recording ampullar receptor activity both at rest and during mechanical stimulation of the sensory organ. The results demonstrated that both betahistine and one of its metabolites, the aminoethylpyridine (M1), exert effects quite similar on ampullar receptors; both these substances in fact could reduce greatly ampullar receptor resting discharge but had scanty effects on mechanically-evoked responses. This observation might justify betahistine and possibly M1 anti-vertigo effects. In fact vertigo is normally due to uncontrolled changes in vestibular receptor resting discharge. It is therefore probable that any factor able to reduce vestibular receptor resting firing rate and, in consequence, its variations, may have, as final effect, an anti-vertigo action. The observation that betahistine and M1 have similar effects might be of some clinical interest. In fact, on the basis of our data, the hypothesis may be put forward that the anti-vertigo action of betahistine is at first achieved by betahistine itself and then sustained and prolonged in time by M1.

Animals↗

Some studies of the action of betahistine at H1 and H2 receptors for histamine.

Betahistine produced a concentration-dependent contraction of the guinea-pig ileum and was about 27 times less active than histamine in this respect. Betahistine induced desensitization of contractile responses to histamine in the guinea-pig ileum. The H1 histamine receptor antagonist mepyramine was a competitive antagonist of the action of betahistine on the guinea-pig ileum. Betahistine caused relaxation of the rat uterus contracted by acetylcholine, and this action of betahistine was blocked by the H2 receptor antagonist cimetidine. Betahistine had a concentration-dependent positive chronotropic action on isolated guinea-pig atria, and in this respect was tenfold less potent than histamine. The action of betahistine on the atria was blocked by the H2 receptor antagonist YM11170. Betahistine caused a concentration-related contraction of the isolated lung parenchymal strip of the guinea-pig, and YM11170 potentiated this effect. Betahistine failed to release histamine from rat peritoneal mast cells at concentrations up to 100 microM and it did not prevent histamine release induced by either substance P or anti-IgE. Betahistine produced a dose-related flare and wheal reaction when injected intradermally into human skin. It is concluded that betahistine has agonist activity at both H1 and H2 receptors for histamine.

Animals↗

The vascular mechanism of action of betahistine in the inner ear of the guinea pig.

The aim of this study was to investigate the mechanism and site of action of betahistine dihydrochloride in the inner ear of the guinea pig. Betahistine-evoked increases in cochlear blood flow (CBF) have been presumed to be due to the drug effect on the later wall capillary bed or larger feeding vessels in the cochlea vascular system. As such, the mechanism of action could be due to inhibition of H3 receptors. Betahistine may also have a direct effect on postsynaptic H1/H2 receptors and/or an effect modulated by other autonomic receptors. Betahistine-evoked CBF responses were assessed by laser Doppler flowmetry in the presence of an H3 agonist (alpha N-methyl-histamine dihydrochloride), an H3 antagonist (thioperamide), an H2 antagonist (cimetidine) or an alpha 2 antagonist (idazoxan). The effects of betahistine on circulation in the anterior inferior cerebellar artery (AICA) and ipsilateral stria vascularis (SV) were assessed using intravital microscopy (IVM). Findings showed that betahistine increased CBF and reduced systemic blood pressure (BP). In contrast, alpha N-methylhistamine dihydrochloride had no effect on baseline CBF or BP and did not influence betahistine-induced increases in CBF. Thioperamide reversed the effects of betahistine on CBF, but had no effect on baseline CBF or BP. Cimetidine had no marked effect on baseline CBF or betahistine-induced increases in CBF Idazoxan had no consistent effects on baseline CBF, but abolished the effect of betahistine on CBF. The mean increase of red blood cell velocity in SV capillaries was 15% and occurred without a demonstrable change in capillary diameters. In contrast, the diameter of the AICA increased by 17-20%, indicating that betahistine-evoked increases in CBF resulted primarily from vasodilatation of the AICA. We suggest that this effect may be mediated via presynaptic H3 heteroreceptors and autonomic alpha 2 receptors.

Animals↗

Betahistine: a retrospective synopsis of safety data.

Betahistine is a structural analogue of histamine that is prescribed for the treatment of vestibular disorders such as Ménière's disease and the symptomatic treatment of vertigo. It is estimated from sales information that >130 million patients have been exposed to the drug since its registration in 1968. In this review we analyse the safety profile of betahistine based on data obtained during >35 years of worldwide postmarketing surveillance. Until 31 December 2005, 554 adverse drug reaction (ADR) reports with 994 individual signs and symptoms were received by the marketing authorisation holder from worldwide sources and were reviewed and evaluated. Signs and symptoms of cutaneous hypersensitivity reactions during betahistine therapy were the most frequently reported complaints. They consisted of usually mild and self-limiting rash, pruritus and urticaria, and all symptoms were reversible after drug discontinuation. Betahistine was reported to be involved in one anaphylactoid reaction and one case of Stevens-Johnson syndrome. Anaphylactic reactions with fatal outcome were not reported. The reports that describe gastrointestinal complaints mostly concern nausea and vomiting or unspecific abdominal pain. These were typically non-serious complaints. Hepatobiliary involvement was reported 25 times, including increases in alkaline phosphatase, gamma-glutamyltransferase, and alanine and aspartate aminotransferase levels. None of the patients concerned developed severe liver failure or died. ADRs related to the nervous system predominantly reveal heterogeneous events that are not suggestive of a specific adverse reaction profile for betahistine. A clinical intolerance to betahistine that gave rise to asthma or bronchospasm was only reported in eight ADRs. A total of three cases of neoplasm have been reported. One case concerned a male patient of unknown age who experienced weight loss, insomnia, impatience and irritability soon after the start of betahistine therapy. An undiagnosed phaeochromocytoma was suspected. The remaining two cases were assessed as being unrelated to betahistine by the reporter. Finally, four deaths have been reported during the course of postmarketing surveillance for betahistine. The reporter assessed the causal relationship to betahistine in two as unrelated, in one as unlikely and the other as unassessable. In summary, clinical and postmarketing studies have revealed a good safety profile of betahistine that was confirmed by the safety surveillance data presented.

Adverse Drug Reaction Reporting Systems↗

Action mechanism of betahistine in the vestibular end organs.

Betahistine has been used to treat several vestibular disorders of both central and peripheral origin. The objective of this work was to study the betahistine action mechanism at the vestibular end organs. Experiments were carried out in wild larval axolotl (Ambystoma tigrinum). Multiunit extracellular recordings were obtained from the semicircular canal nerve using a suction electrode. Betahistine (10 microM to 10 mM, n = 32) inhibited the basal spike discharge of the vestibular afferent neurons with an IC50 of 600 microM. To define the site of action of betahistine, its interactions with antagonists of nitric oxide sintethizing enzyme, cholinergic drugs, and excitatory amino acids were studied. Betahistine 1 mM (n = 5) was coadministered with NG-nitro-L-arginine 3 microM. The action of betahistine remained as in control experiments. Betahistine 1 mM reduced the excitatory action of carbachol (200 microM, n = 5) in a 30 +/- 3.4%. Cholinergic antagonists atropine (10 microM, n = 3) and d-tubocurarine (10 microM, n = 3) did not modify betahistine actions. Betahistine 1 mM also reduced kainic acid (10 microM, n = 4) excitatory action in 45.5 +/- 9.8%. These results corroborate that betahistine has a peripheral inhibitory action in the spike discharge of the afferent neurons in the vestibule. This action seems to involve neither NO production nor modifications in the release of acetylcholine from the efferent fibers. The inhibitory action of betahistine seems to be due to a postsynaptic binding site on the afferent neurons.

Ambystoma↗

Betahistine for Menière's disease or syndrome.

BACKGROUND: Menière's disease is characterised by attacks of hearing loss, tinnitus and disabling vertigo. Betahistine is used by many people to reduce the frequency and severity of these attacks but there is conflicting evidence relating to its effects. OBJECTIVES: The objective of this review was to assess the effects of betahistine in people with Menière's disease. SEARCH STRATEGY: We searched the Cochrane Controlled Trials Register (The Cochrane Library issue 4,1999), MEDLINE (January 1966 to December 1999), EMBASE (January 1985 to December 1999) and Index Medicus (1962 to 1966). We checked reference lists of articles and contacted pharmaceutical companies for further studies. SELECTION CRITERIA: Randomised controlled studies of betahistine versus placebo in Menière's disease. DATA COLLECTION AND ANALYSIS: Two reviewers independently assessed trial quality and extracted data. Study authors were contacted for further information. MAIN RESULTS: Six trials involving 162 patients were included. No trial met the highest quality standard set by the review because of inadequate diagnostic criteria or methods, and none assessed the effect of betahistine on vertigo adequately. Most trials suggested a reduction of vertigo with betahistine and some suggested a reduction in tinnitus but all these effects may have been caused by bias in the methods. One trial with good methods showed no effect of betahistine on tinnitus compared with placebo in 35 patients. None of the trials showed any effect of betahistine on hearing loss. No adverse effects were found with betahistine. REVIEWER'S CONCLUSIONS: There is insufficient evidence to say whether betahistine has any effect on Menière's disease.

Betahistine↗

Actions of betahistine at histamine receptors in the brain.

The actions of betahistine (N alpha-methyl-2-pyridylethylamine) on brain histamine receptors were investigated in a series of biological models. [3H]Mepyramine binding to H1-receptors in membranes from guinea-pig cerebellum was inhibited by betahistine with a Ki value of 31 microM. The binding of [3H]mepyramine in brain of the living mouse was inhibited by betahistine in high dosages (150-300 mg/kg). In slices from mouse cerebral cortex, betahistine induced [3H]glycogen hydrolysis in a concentration-dependent manner with an EC50 value of 9.0 microM with a maximal effect 57% that of histamine. Mepyramine and triprolidine, two H1-receptor antagonists, inhibited the betahistine-induced glycogenolysis with Ki values of 28 nM and 7 nM respectively. In slices from guinea-pig hippocampus, betahistine stimulated the accumulation of cyclic AMP in the presence of 5 microM impromidine, a H2-receptor agonist. The maximal effect represented 22% of that elicited by histamine at the H1-receptor and the EC50 value was 32.4 microM. Mepyramine at 0.1 microM partially blocked the response to betahistine. Together these various observations indicate that betahistine is a partial agonist at cerebral H1-receptors. Finally, betahistine was not an agonist at histamine H3-autoreceptors but was a rather potent antagonist of the inhibitory effect of exogenous histamine on [3H]histamine release elicited by K+ depolarisation in slices from rat cerebral cortex (Ki = 6.9 microM).

Animals↗

Betahistine increases vestibular blood flow.

Betahistine is used for treatment of several vestibular disorders. Despite the accepted use of this histamine-like substance, its mechanism of action is not well understood. The purpose of this study was to assess the possibility that one of the activities of betahistine is increasing blood flow in the peripheral vestibular end organs. Using a novel surgical approach, we identified the posterior semicircular canal ampulla of guinea pigs and placed a laser Doppler probe in position to obtain blood flow measurements from the posterior semicircular canal ampulla. Blood pressure, heart rate, and vestibular blood flow were continuously recorded. Concentration-response curves were obtained for betahistine (2.5, 5, 7.5, and 10 mg/kg) and control-vehicle (0.15 mol/L NaCl) infusions. A separate group of subjects was pretreated with the competitive selective H3 agonist, thioperimide maleate, before betahistine treatment. Increases in vestibular blood flow and decreases in blood pressure were observed in response to betahistine infusions. Pretreatment with thioperamide maleate abolished these changes at low doses of betahistine and attenuated the responses at higher doses of betahistine. These results show that betahistine administration induces increases in vestibular blood flow. These findings support the potential use of betahistine for treatment of vestibular disorders, which may be caused by compromised circulation.

Animals↗

Betahistine in Ménière's disease.

The effects of betahistine hydrochloride (Serc) on the clinical features of Ménière's disease were assessed in two double-blind, placebo-controlled, cross-over clinical studies. The diagnosis was based on a peripheral, fluctuating, recruiting, cochlear (sensorineural) deafness in one or both ears, tinnitus (usually of low tone) and paroxysmal attacks of rotational vertigo. Appropriate auditory and vestibular analyses confirmed the diagnosis. Twenty-four patients were admitted to the studies after careful screening over two-and-a-half years. Twenty-two patients completed the studies, ten of whom received betahistine and placebo for eight weeks each whereas the remaining twelve were given betahistine and placebo for twelve weeks each. the dose of betahistine was the same (16 mg. t.i.d.) in both studies. Daily symptom score cards kept by all patients throughout the studies showed a statistically significant preference for betahistine over placebo with regard to vertigo (p = 0-025), tinnitus (p = 0-010) and fullness of the ear (p = 0-036). Symptom scores of deafness and vomiting indicated trends in favour of betahistine but these did not attain statistical significance. Objective measurements of deafness (mean db. loss), however, showed a highly significant improvement in favour of betahistine, when compared with placebo (p less than 0-001). Vestibular testing revealed no important difference between betahistine and placebo. No unwanted effects or adverse reactions attributable to betahistine were observed during the studies.

Adult↗

Benign paroxysmal positional vertigo: a study of two manoeuvres with and without betahistine.

Efficacy of the liberatory manoeuvre and of gradual otolitis dispersion technique, with or without associated drug therapy, have been compared. Included in this prospective study were 103 patients with benign paroxysmal positional vertigo seen in the Outpatient Department. Patients were classified into 4 groups according to treatment: Liberatory Manoeuvre according to methods described by Semont et al., with and without betahistine, Gradual Otolitis Dispersion Technique according to Brandt and Daroff, with and without betahistine. Evaluation was performed at baseline and at 3, 7, 14, 30, 60 and 90 days after start of treatment. Response to treatment was evaluated using criteria of Epley. At day 14, liberatory manoeuvre-betahistine and Brandt and Daroff-betahistine groups did significantly better than liberatory manoeuvre and Brandt and Daroff groups (p < 0.05). Improvement reached at day 30 was: 100% in liberatory manoeuvre-betahistine group; 96.30% (p > 0.05) in Brandt and Daroff-betahistine group; these results were significantly better (p < 0.05) than those of liberatory manoeuvre (54.17%) and Brandt and Daroff (25%) groups. As far as concerns differences between disease onset and start of therapy (less and more than 2 weeks), and age (< or =60 years and > or =60 years), response to treatment was similar. In conclusion, both liberatory manoeuvre and Brandt and Daroff, when associated with betahistine, were significantly more effective than manoeuvres alone (p < 0.05). Improvement in liberatory manoeuvre-betahistine group, in the initial phase, was greater that in Brandt and Daroff-betahistine group, albeit, differences were not significant (p > 0.05). Age-related effects of manoeuvres were compared in 71 patients < 60 years and 32 patients > or =60 years, showing a similar improvement rate at the end of the investigation in both groups. In our opinion, liberatory manoeuvre and Brandt and Daroff associated with betahistamine produces faster recovery compared to liberatory manoeuvre and Brandt and Daroff alone. Nevertheless, 3 months after onset of treatment, all patients showed complete recovery due to spontaneous evolution of paroxysmal positional vertigo, in other words, treatment does not appear to influence the final improvement rate and its role should be accepted as a significant reduction in persistence of symptoms.

Adult↗

The influence of betahistine on the dynamics of the cutaneous hypersensitivity reaction in patients with grass pollen allergy.

Histamine has been well documented as an immune modulator, but the dynamics of a number of histamine receptor agonists and antagonists have not been similarly established. The aim of this study was to determine the effect of betahistine (an H3-receptor blocker with partial H1- and H2-agonism) on the dynamics of the cutaneous hypersensitivity reaction. The skin blister technique was used to collect inflammatory cells after intradermal (i.d.) administration of grass pollen antigen, histamine and betahistine to 11 atopic volunteers. In this open, cross-over study, volunteers were randomly allocated to five treatment protocols i.e. (a) histamine 1 microgram i.d.; (b) betahistine 57, 114 and 285 micrograms i.d.; (c) i.d. grass pollen antigen; (d) (c) plus oral betahistine; (e) (c) plus oral betahistine, cetirizine, (H1-blocker) and cimetidine (H2-blocker). Blister fluid containing cells were collected on microscope slides at 6 and 24 h after i.d. injections. The areas of the wheal and flare and of induration were measured, respectively, at 0.25, and, 1, 6 and 24 h. Combined oral therapy with cetirizine, cimetidine and betahistine reduced the area of grass pollen-induced induration significantly at all time periods, but caused a significant increase in eosinophil and neutrophil vacuolisation during the late phase reaction. This did not occur with orally administered betahistine alone. Intradermal betahistine induced significantly more neutrophil and eosinophil vacuolization than histamine and, in contrast to the latter, also mediated a concentration-dependent late phase induration. The results of this study suggest that the H3-receptor regulates a feedback system in conjunction with that previously proven for the H2-receptor.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

[Assessment of betahistine dihydrochloride effectiveness in the treatment of vertigo of a different aetiology based on videonystagmography test results].

UNLABELLED: Comprehensive medical history and videonystagmography (VNG) testing play very important role in balance assessment especially when dealing with balance disorders occurring occasionally. VNG in many clinical situations is performed as an initial test before complete otoneurological examination is carried out. Betahistine dihydrochloride (betahistine) a synthetic histamine analogue is one of many drugs used in the treatment of balance disorders of central or peripheral etiology. The aim of our work was to analyze, using the VNG test, effectiveness of betahistine treatment and to compare it with the control group treated with different drugs. MATERIAL AND METHODS: 42 patients suffering from vertigo were evaluated before and after the treatment with betahistine. Treatment results were compared with the results of 20 vertigo sufferers treated during the same period of time with different drugs. In effort to standardize asked questions, interviews with patients were completed with specially structured questionnaire. In 54% of patients, decreased intensity and severity of vegetative symptoms was observed after the treatment with betahistine, in 45.2% of patients (30% of the control group) decreased frequency of attacks was noted. RESULTS: In 69.1% of patients treated with betahistine and in 50% of the control group improved results of the VNG test were noted. In 9.5% of patients (4 patients) treated with betahistine and in 20% of patients from the control group, the VNG test results were worse. Quantitative and qualitative features of the VNG test were best improved in parts of the test showing features of its central origin. In 50% of patients improvement of the symmetry in Optokinetic testing, decrease or stop of vertical component of positional nystagmus was noted. In 38.1% of patients decrease of directional predominance of nystagmus in Caloric Testing was noted. None of all examined patients exhibited features of worsening of VNG test results and no new symptoms were noted. Radiological investigations showed no new pathologies. CONCLUSION: Betahistine dichloride is one of the basic drugs used in the treatment of vertigo of different etiology.

Betahistine↗

Betahistine dihydrochloride in the treatment of peripheral vestibular vertigo.

The present study compares the efficacy and safety of betahistine dihydrochloride to that of a placebo in recurrent vertigo resulting from Meniere's disease (MD) or in paroxysmal positional vertigo (PPV) of probable vascular origin. The design was double-blind, multicentre and parallel-group randomised. Eleven Italian centres enrolled 144 patients: 75 of the patients were treated with betahistine (41 MD/34 PPV) and 69 with placebos (40 MD/29 PPV). The betahistine dosage was 16 mg twice per day for 3 months. Compared to the placebo, betahistine had a significant effect on the frequency, intensity and duration of vertigo attacks. Associated symptoms and the quality of life also were significantly improved by betahistine. Both the physician's judgement and the patient's opinion on the efficacy and acceptability of the treatment were in agreement as to the superiority of betahistine. The effective and safe profile of betahistine in the treatment of vertigo due to peripheral vestibular disorders was confirmed.

Administration, Oral↗

Betahistine produces post-synaptic inhibition of the excitability of the primary afferent neurons in the vestibular endorgans.

Betahistine has been used to treat several vestibular disorders of both central and peripheral origin. The objective of this work was to study the action of betahistine in the vestibular endorgans. Experiments were done in wild larval axolotl (Ambystoma tigrinum). Multiunit extracellular recordings were obtained from the semicircular canal nerve using a suction electrode. Betahistine (10 microM to 10 mM; n = 32) inhibited the basal spike discharge of the vestibular afferent neurons with an IC50 of 600 microM. To define the site of action of betahistine, its interactions with the nitric oxide synthase inhibitor NG-nitro-L-arginine (3 microM) and with the cholinergic antagonists atropine (10 microM; n = 3) and d-tubocurarine (10 microM; n = 3) were studied. The action of betahistine when co-administered with these drugs was the same as that in control experiments, indicating that its effects did not include nitric oxide production or the activation of cholinergic receptors. In contrast, 0.01-1 mM betahistine reduced the excitatory action of kainic acid (10 microM; n = 6) and quiscualic acid (1 microM; n = 13). These results indicate that the action of betahistine on the spike discharge of afferent neurons seems to be due to a post-synaptic inhibitory action on the primary afferent neuron response to the hair cell neurotransmitter.

Ambystoma↗

Effect of betahistine dihydrochloride on induced vestibular nystagmus: a double blind study.

The effect of betahistine on vestibular nystagmus induced by means of a torsion swing was tested in 10 subjects. Each individual received, in a randomized double-blind study, 3 different single oral dosages of betahistine (8, 16 and 32 mg) on 3 different occasions. Electronystagmographic tracings were taken at different time-intervals after drug intake. At 3-4 hours after a dose of 8 mg betahistine the nystagmus duration was reduced by 35%, after 16 mg betahistine by 48% and after 32 mg betahistine by 59% (mean values). All these differences in dose-response are highly significant (P less than 0.0005). It can be concluded from these results, that a dose of 3 X 8 mg or 3 X 16 mg betahistine daily will be efficacious in maintenance treatment of vertigo, and a dose of 3 X 24 mg betahistine daily will have even more effect.

Adult↗

Betahistine dihydrochloride treatment facilitates vestibular compensation in the cat.

Unilateral lesion of the vestibular system induces posturo-locomotor deficits that are compensated for with time. Drug therapy is currently used to improve the recovery process and to facilitate vestibular compensation. Betahistine dihydrochloride is an histamine-like substance that has been employed in vestibular pathology; it was found effective in many forms of vertigo and in vestibular-related syndromes. Investigations performed in animal models have shown betahistine-induced neuronal modulations in the vestibular nuclei complex and interactions with the H1 and H3 histamine receptors. Potentially, this substance is therefore capable to interfere with some recovery mechanisms and to improve the behavioral adaptations. But there is at present a total lack of data concerning the influence of betahistine treatment on vestibular compensation in animal models. The aim of this study was to understand the pharmacological activity of betahistine in the restoration of posture and locomotor balance functions in unilateral vestibular neurectomized cats. Posture recovery was assessed by quantifying the surface reaction of the cat's support as measured while standing erect on its four legs, at rest. Locomotor balance recovery was determined using the rotating beam test, by measuring the maximal performance (max. P.) of the cat and its locomotion speed regulation during the postoperative time period. We have compared the recovery profile and time course of these static (posture) and dynamic (equilibrium) functions in three groups of cats. Two experimental groups were treated at daily doses of 50 mg/kg and 100 mg/kg, respectively. Betahistine dihydrochloride was given orally until complete recovery of posturolocomotor functions. One untreated control group served as the reference. Results showed that postoperative treatment strongly accelerated the recovery process in both treated groups, inducing a time benefit of around 2 weeks as compared to the controls. Maximum performance of the cats on the rotating beam as well as locomotion speed regulation were highly correlated to the postoperative development of the cat's support surface, indicating that compensation of the static vestibulospinal deficits conditioned the subsequent locomotor balance recovery. These behavioral data showed that betahistine dihydrochloride constitutes a useful drug therapy for the symptomatic treatment of central vestibular disorders in our animal model of unilateral vestibular lesion. Improvement of vestibular compensation under betahistine postoperative treatment, as evidenced here for the posture and locomotor balance functions, is discussed both in terms of aspecific effect (histamine-induced increase of the level of vigilance) or more direct action in the vestibular nuclei (histamine-induced rebalance of neuronal activity on both sides).

Administration, Oral↗

Effects of betahistine, a histamine H1 agonist and H3 antagonist, in a light/dark test in mice.

The effects of betahistine, a histamine H1 agonist and H3 antagonist, were investigated in a light/dark test measuring anxiety in mice. Betahistine significantly decreased the locomotion and rearing in the light and dark zones, shuttle crossing and time spent in the light zone in the light/dark test. These phenomena suggest that betahistine has anxiogenic effects and/or locomotor suppressive effects. Pyrilamine (6 mg/kg) and ketotifen (6 mg/kg), H1-receptor antagonists, antagonized the effects of betahistine (100 mg/kg) on all parameters in the light/dark test but zolantidine (6 mg/kg), an H2-receptor antagonist, augmented its effects on some parameters decreased by betahistine. Especially, it potentiated the decreases by betahistine in the parameters showing anxiety in this test. The decreases in the light/dark test induced by zolantidine (6 mg/kg) plus betahistine (200 mg/kg) were antagonized by pyrilamine (12 mg/kg) but antagonism of the decrease in the time spent in the light zone as a parameter showing anxiety was not significant. These results suggest that the effects via H1 receptors are involved in anxiety in the light/dark test in mice but the other factor may be simultaneously needed for induction of behaviorally detectable anxiogenic effects in this test.

Animals↗

Betahistine dihydrochloride in the treatment of vertigo of peripheral vestibular origin. A double-blind placebo-controlled study.

A double-blind, cross-over, placebo-controlled study of betahistine dihydrochloride (12 mg, t.i.d.) was carried out in patients with vertigo of peripheral vestibular origin. Twenty-four patients completed the study, which consisted of two six-week treatment periods. The patients were diagnosed as suffering from Menière's disease (15 patients), vertigo due to other (specified) causes (five patients), or vertigo of unknown origin (four patients). Patients were examined by the investigator at the start of the study and were re-assessed at three-weekly intervals. In addition, they recorded the nature, frequency and severity of their symptoms on diary cards. Both the incidence and severity of dizziness (the predominant presenting complaint) were found to be significantly reduced during betahistine treatment (p = 0.004). The occurrence of nausea and vomiting was also significantly reduced during betahistine treatment (p = 0.014 and 0.036 respectively). There were no statistically significant differences in the results of audiometric or vestibulometric tests, or in the severity of tinnitus or deafness, between the two treatment periods. The overall comparisons of the two periods made by both the patients and the investigator were significantly in favour of betahistine (p less than 0.001). All diagnostic groups responded favourably to betahistine, confirming the efficacy of betahistine in the symptomatic treatment of peripheral vestibular vertigo. No unwanted signs or symptoms were reported.

Activities of Daily Living↗