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Muscle atonia is triggered by cholinergic stimulation of the basal forebrain: implication for the pathophysiology of canine narcolepsy.

Narcolepsy is a sleep disorder characterized by excessive daytime sleepiness and rapid eye movement (REM) sleep-related symptoms, such as cataplexy. The exact pathophysiology underlying the disease is unknown but may involve central cholinergic systems. It is known that the brainstem cholinergic system is activated during REM sleep. Furthermore, REM sleep and REM sleep atonia similar to cataplexy can be triggered in normal and narcoleptic dogs by stimulating cholinergic receptors within the pontine brainstem. The pontine cholinergic system is, therefore, likely to play a role in triggering cataplexy and other REM-related abnormalities seen in narcolepsy. The other cholinergic system that could be involved in the pathophysiology of narcolepsy is located in the basal forebrain (BF). This system sends projections to the entire cerebral cortex. Since acetylcholine release in the cortex is increased both during REM and wake, the basocortical cholinergic system is believed to be involved in cortical desynchrony. In the current study, we analyzed the effect of cholinergic compounds injected into the forebrain structures of narcoleptic and control dogs. We found that carbachol (a cholinergic agonist) injected into the BF triggers cataplexy in narcoleptic dogs while it increases wakefulness in control dogs. Much higher doses of carbachol bilaterally injected in the BF were, however, shown to trigger muscle atonia even in control dogs. These results suggest that a cholinoceptive site in the BF is critically implicated in triggering muscle atonia and cataplexy. Together with similar results previously obtained in the pontine brainstem, it appears that a widespread hypersensitivity to cholinergic stimulation may be central to the pathophysiology of canine narcolepsy.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Perspectives in narcolepsy research and therapy.

Narcolepsy with associated cataplexy is a disabling sleep disorder that affects 0.05% of the general population. Whereas narcolepsy-cataplexy is largely considered as etiologically homogeneous, hypersomnias without cataplexy represent a very heterogeneous group of clinical entities that must be thoroughly explored before final diagnosis of narcolepsy is given. A typical treatment for narcolepsy-cataplexy associates amphetamine-like stimulants for sleepiness and antidepressant therapy for abnormal rapid eye movement sleep (cataplexy, sleep paralysis, and hypnagogic hallucinations). This treatment is purely symptomatic and involves activation of central dopaminergic and adrenergic activity respectively. Genetic research indicates a role for the immune system rather than abnormalities in monoaminergic or cholinergic systems as the primary cause for narcolepsy. Human narcolepsy is tightly associated with HLA-DQB1*0602; canine narcolepsy is linked with a DNA segment with high homology with the human immunoglobulin mu-switch segment, and the onset of canine narcolepsy is associated with increased microglial expression of major histocompatibility complex DQ and DR molecules. Taken together with the lack of direct evidence for an autoimmune process in narcolepsy, these results may suggest the existence of novel neuroimmune interactions in narcolepsy and open new perspectives in the treatment of this disabling disorder.

Adrenergic Agonists↗

Electroencephalographic correlates of cataplectic attacks in narcoleptic canines.

Cataplectic attacks were monitored behaviorally and polygraphically in 4 narcoleptic dogs, of which three inherited the disorder. The recorded EEG signals were evaluated by power spectral analysis. We found 3 distinct stages of cataplexy: an initial stage which resembled wakefulness with tonic suppression of EMG activity, a later stage which was highly similar to REM sleep, and a final transitional stage to wakefulness or NREM sleep. The first stage of cataplexy was characterized by full postural collapse, a waking-like EEG spectrum, visual tracking, and a hypotonic EMG. The second stage of cataplexy differed electrographically from the previous stage by the onset of hypersynchronous hippocampal theta activity, a REM-like EEG spectrum, larger amplitude EEG signals, and a higher peak theta frequency. Glazed eyes, sporadic rapid eye movements and muscle twitches were also present. The final stage of cataplexy was characterized by mixed amplitude, mixed frequency EEG activity, and by the absence of rapid eye movements, visual tracking, directed movements, and muscle twitches. The EEG spectra of two other narcoleptic phenomena, sleep-onset REM periods and NREM sleep onsets from cataplexy, were nearly identical to the spectra of the normally occurring REM and NREM sleep periods.

Alpha Rhythm↗

Sleep disturbances and hypocretin deficiency in Niemann-Pick disease type C.

DESIGN AND PATIENTS: Subjects with Niemann-Pick disease, type C have been reported to display narcolepsylike symptoms, including cataplexy. In this study, 5 patients with juvenile Niemann-Pick disease were evaluted for sleep abnormalities using nocturnal polysomnography, clinical evaluation, and the Multiple Sleep Latency Test. HLA typing and cerebrospinal fluid hypocretin levels were also evaluated in 4 patients. Niemann-Pick disease diagnosis was confirmed in all cases biochemically and by the presence of foam cells in the bone marrow. RESULTS: Deterioration of intellectual function; the presence of pyramidal, dystonic and cerebellar features; and splenomegaly were observed in all cases. Cataplexy was reported in 1 patient. Nocturnal polysomnography revealed disrupted sleep in all patients. Total sleep time, sleep efficiency, rapid eye movement sleep, and delta sleep amounts were decreased when compared to age-matched controls. Altered sleep patterns included sudden increases in muscle tone during delta sleep, electroencephalographic sigma activity connected with rapid eye movements and muscle atonia, atypical K-complexes and spindle activity, and the presence of alpha-delta sleep. All Niemann-Pick disease cases exhibited fragmentary myoclonus. Shortened mean sleep latencies were observed in 3 patients during the Multiple Sleep Latency Test, but sleep-onset rapid eye movement periods were observed only in the case with cataplexy. This patient was HLA DQB1*0602 positive, while the other subjects were HLA negative. Cerebrospinal fluid hypocretin-1 levels were reduced in 2 patients (1 with cataplexy) while in the 2 other patients, the levels were at the lower range of the normal values. Hypocretin levels in the Niemann-Pick disease group (204.8 +/- 39.3 pg/mL) were significantly reduced when compared to controls (265.8 +/- 48.8 pg/mL). CONCLUSIONS: The findings suggest that lysozomal storage abnormalities in Niemann-Pick disease patients may impact the hypothalamus and, more specifically, hypocretin-containing cells. These changes might be partially responsible for sleep abnormalities and cataplexy in patients with Niemann-Pick disease.

Adolescent↗

Sleep studies on canine narcolepsy: pattern and cycle comparisons between affected and normal dogs.

Two narcoleptic and 2 normal poodle or mixed poodle dogs were polygraphically monitored for 48 h with one narcoleptic and one normal monitored concurrently. Data were categorized by 15-sec epochs into wakefulness, light sleep, slow wave sleep, REM sleep, cataplexy (immobility preceded by wakefulness with partial or complete electromyographic quiescence and pronounced theta activity from subcortical leads), and atonia with no theta (15-30 sec periods like cataplexy but without theta). In narcoleptics we could see no gross differences between the polygraphic records of cataplexy and those of REM sleep; scoring distinctions between the two states depended on the antecedent state. Results indicated that narcoleptic dogs do not differ from normals with respect to percent of time spent in wakefulness (39.8% vs. 42.6%), light sleep (16.2% vs. 18.4%), or slow wave sleep (27.2% vs. 28.0%). Narcoleptic dogs spent slightly less time than normals in REM sleep (6.9% vs. 11.1%) and spend 9.1% and 0.8% of the recording time in cataplexy and atonia with no theta respectively. Normal dogs presented neither of these pathological states.

Animals↗

The movement disorders of Coffin-Lowry syndrome.

Coffin-Lowry syndrome (CLS) is an X-linked semi-dominant condition with learning difficulties and dysmorphism caused by mutations in the gene RSK2. Originally, epilepsy was reported as a feature. We and others have since described predominantly sound-startle induced drop attacks that have been labelled 'cataplexy', abnormal startle response and hyperekplexia. We sought to clarify why there should be controversy over the type of paroxysmal events. Review of the literature and our patients confirmed that each centre had studied only a small numbers of individuals (mean = 2). The type of movement disorder varied both with age and between individuals. One individual might have more than one movement disorder. One of our adult patients had several types of movement disorder and epilepsy that merged seamlessly: there was true cataplexy triggered by telling a joke, something close to cataplexy ('cataplexy') triggered by sound-startle, a predominantly hypertonic reaction varying from hyperekplexia to a more prolonged tonic reaction resembling startle epilepsy, and true unprovoked epileptic seizures. In the large database of the Coffin-Lowry Syndrome Foundation family support group, 34 of 170 (20%) individuals with CLS and known age had 'drop attacks' and an additional 9 (5%) of these had additional epileptic seizures. The onset of such events was usually after age 5 years, prevalence peaking at 15-20 years (27%). Many became wheelchair bound as a result. This unique combination of more than one non-epileptic movement disorder and epilepsy deserves further semiological and genetic study both for the patients with CLS and for the wider implications.

Adolescent↗

Narcolepsy: a review of evidence for autoimmune diathesis.

Sporadic narcolepsy with cataplexy is a disabling disease that is strongly associated with the major histocompatibility class II allele HLA DQB1*0602 and is characterized by profound reduction in the cerebrospinal fluid (CSF) concentration of hypocretin 1 levels. This article provides a comprehensive review of the evidence that neurologic autoimmunity is the pathogenic basis of narcolepsy with cataplexy. Despite this evidence, specific antibody markers for narcolepsy have been elusive. Clinical trials using intravenous immunoglobulin infusions in recent onset narcolepsy with cataplexy have led to improvement in cataplexy in some patients. Future research must focus on elucidation of immune markers and early ameliorative treatments for narcolepsy.

Alleles↗

Role of central alpha-1 adrenoceptors in canine narcolepsy.

The role of central alpha-1 adrenergic receptors in cataplexy was investigated in genetically narcoleptic Doberman pinschers. Treatment of narcoleptic dogs with 25-600 micrograms/kg prazosin, a selective alpha-1 adrenergic receptor blocker, exacerbated cataplexy, whereas treatment with the alpha-1 agonist, methoxamine, ameliorated it. Subsequent studies showed that the beneficial effects of classical treatments of human narcolepsy (amphetamines and tricyclic antidepressants) are antagonized by prazosin, suggesting that these drugs are active through an indirect alpha-1 stimulation (via an increase of norepinephrine in the synaptic cleft). Other studies confirmed that the observed effects were not due to peripheral alpha-1 cardiovascular involvement. Atropine, a central anticholinergic agent, but not methylatropine, a peripheral one, completely suppressed the prazosin effect, which suggests that adrenergic and cholinergic systems act sequentially and not independently to generate cataplexy. Little is known about the physiological role of central alpha-1 adrenoceptors. This series of experiments implicates these receptors in narcolepsy-cataplexy.

Animals↗

A study of the occurrence of HLA DR2 in 124 narcoleptics: clinical aspects.

The authors examined HLA antigens in 124 narcoleptics. In addition to narcolepsy, 122 patients suffered also from cataplexy. The two patients without cataplexy suffered also from sleep paralysis and hypnagogic hallucinations. These two symptoms were also present in many of the other patients. HLA group DR2 was found in 120 patients including all six symptomatic cases. In four patients HLA DR2 was not present. Two of these were fully pronounced narcolepsy-cataplexy cases whereas the two other did not suffer from cataplexy. Since several other cases with negative DR2 have already been published it is necessary to admit the existence of DR2-negative narcolepsy, albeit very rare. Among 5 patients with isolated sleep paralysis HLA DR2 was present in one familial and 1 sporadic case. The authors further discuss some aspects of the classification of narcolepsies in the light of recent HLA studies as well as their delimitation from idiopathic hypersomnia.

Cataplexy↗

[Narcolepsy].

First described as a separate entity by Gelineau in 1880 and later considered as a symptom, narcolepsy has eventually been recognized as a disease on clinical and polygraphic grounds. Its prevalence stays between 0.04 and 0.06 percent. Age at onset varies from 5 to 50 with a peak in the second decade. Clinical symptoms include excessive daytime somnolence, overwhelming daytime sleep episodes, attacks of cataplexy, hypnagogic hallucinations, sleep paralysis and disturbed nocturnal sleep; sleep onset REM episodes are the main polygraphic feature. Natural history varies with the different symptoms. Excessive daytime somnolence never subsides completely. Cataplexy may disappear spontaneously. Hypnagogic hallucinations and sleep paralysis are not present in all patients and tend to be more transitory. A positive diagnosis of narcolepsy requires a minimum of one major symptom, daytime sleep episodes or cataplexy, together with documented sleep onset REM episodes. Prolonged polygraphic recordings or multiple sleep latency test are of special interest in difficult cases. Clinical variants can be grouped under three headings, incomplete, symptomatic and associated narcolepsies. The etiology of narcolepsy is not well understood. However the discovery of natural animal models of narcolepsy, mainly dogs, has prompted genetic, pharmacological and biochemical studies. The breeding of narcoleptic canine colonies has led to the evidence of a possible autosomal recessive model of inheritance in some species. Pharmacological and neurochemical analysis has shown an imbalance between monoaminergic and cholinergic mechanism. In man, extensive family studies suggest either a two-threshold multifactorial model of inheritance or a dominant mode of inheritance and immunologic studies have recently shown a strong association between HLA-DR2 and narcolepsy. Assays of CSF biogenic amines suggest a decreased bioavailability of dopamine to explain sleepiness and an imbalance between monoamines and acetylcholine to explain cataplexy. A disturbance of circadian rhythms has not been evidenced in narcoleptics. Treatment is still purely symptomatic. Amphetamines and tricyclic antidepressants have been extensively used. However they are not free of side-effects hence the need for alternative treatments.

Adolescent↗

A narcolepsy susceptibility locus maps to a 5 Mb region of chromosome 21q.

The genetic basis of human narcolepsy remains poorly understood. Multiplex families with full-blown narcolepsy-cataplexy are rare, whereas families with both narcolepsy-cataplexy and excessive daytime sleepiness without cataplexy are more common. We performed a genomewide linkage analysis in a large French family with four members affected with narcolepsy-cataplexy and 10 others with isolated recurrent naps or lapses into sleep. Only three regions showed logarithm of odds (LOD) scores greater than 1 in two-point linkage analysis (D6S1960, D11S2359, and D21S228). Genotyping additional markers provided support for linkage to 9 markers on chromosome 21 (maximum two-point LOD score, 3.36 at D21S1245). The multipoint linkage analysis using SimWalk2 provided further evidence for linkage to the same region (maximum parametric LOD score, 4.00 at 21GT26K). A single haplotype was shared by all affected individuals and informative crossovers indicated that the elusive gene that confers susceptibility to narcolepsy is likely to be located between markers D21S267 and ABCG1, in a 5.15 Mb region of 21q.

Child↗

Treatment with immunosuppressive and anti-inflammatory agents delays onset of canine genetic narcolepsy and reduces symptom severity.

All Doberman pinschers and Labrador retrievers homozygous for a mutation of the hypocretin (orexin) receptor-2 (hcrtr2) gene develop narcolepsy under normal conditions. Degenerative changes and increased display of major histocompatibility complex class II antigens have been linked to symptom onset in genetically narcoleptic Doberman pinschers. This suggests that the immune system may contribute to neurodegenerative changes and narcoleptic symptomatology in these dogs. We therefore attempted to alter the course of canine genetic narcolepsy, as an initial test of principle, by administering a combination of three immunosuppressive and anti-inflammatory drugs chosen to suppress the immune response globally. Experimental dogs were treated with a combination of methylprednisolone, methotrexate and azathioprine orally starting within 3 weeks after birth, and raised in an environment that minimized pathogen exposure. Symptoms in treated and untreated animals were quantified using the food elicited cataplexy test (FECT), modified FECT and actigraphy. With drug treatment, time to cataplexy onset more than doubled, time spent in cataplexy during tests was reduced by more than 90% and nighttime sleep periods were consolidated. Short-term drug administration to control dogs did not reduce cataplexy symptoms, demonstrating that the drug regimen did not directly affect symptoms. Treatment was stopped at 6 months, after which experimental animals remained less symptomatic than controls until at least 2 years of age. This treatment is the first shown to affect symptom development in animal or human genetic narcolepsy. Our findings show that hcrtr2 mutation is not sufficient for the full symptomatic development of canine genetic narcolepsy and suggest that the immune system may play a role in the development of this disorder.

Age of Onset↗

DQB1*0301 and DQB1*0601 modulate narcolepsy susceptibility in Koreans.

The association of narcolepsy with HLA-DQB1*0602 is established in Japanese, African-Americans, European, and North American Caucasians. We examined DRB1, DRB3, DRB4, DRB5, DQA1, and DQB1 in 163 patients with centrally mediated daytime sleepiness (100 with narcolepsy) and 211 Korean controls. In this population, the DQB1*0602 association was always evident in the context of the DRB1*1501-DQA1*0102-DQB1*0602 haplotype. The DQB1*0602 association was highest in cases with hypocretin deficiency (100% vs 13% in controls), most of which had narcolepsy-cataplexy (81%). A weaker DQB1*0602 (45%) association was present in cases without cataplexy. No human leukocyte antigen (HLA) association was present in idiopathic hypersomnia or in cases with normal cerebrospinal fluid (CSF) hypocretin-1. As in other populations, DQB1*0602 homozygosity increased risk in cases with cataplexy and/or hypocretin deficiency (odds ratio = 2.0 vs heterozygotes). Non-DQB1*0602 allelic effects were also observed but could not be interpreted in the context of DQB1*0602 overabundance and linkage disequilibrium. We therefore next analyzed compound heterozygote effects in 77 subjects with either hypocretin deficiency or cataplexy and one copy of DRB1*1501-DQA1*0102-DQB1*0602, a sample constructed to maximize etiologic homogeneity. In this analysis, we found additional predisposing effects of DQB1*0301 and protective effects for DQA1*0103-DQB1*0601. Unexpectedly, the predisposing effects of DQB1*0301 were present in the context of various DQA1-bearing haplotypes. A predisposing effect of DQA1*0303 was also suggested. These results indicate a remarkable consistency in the complex HLA association present in narcolepsy across multiple ethnic groups.

Genetic Predisposition to Disease↗

The neurobiology of hypocretins (orexins), narcolepsy and related therapeutic interventions.

Narcolepsy is characterized by excessive daytime sleepiness, cataplexy and other manifestations of dissociated rapid eye movement sleep. Narcolepsy is typically treated with amphetamine-like stimulants (sleepiness) and antidepressants (cataplexy). Newer compounds, such as modafinil (non-amphetamine wake-promoting compound for excessive daytime sleepiness) and sodium oxybate (short-acting sedative for fragmented nighttime sleep, cataplexy, excessive daytime sleepiness), are increasingly used. Recent discoveries indicate that the major pathophysiology of human narcolepsy is the loss of lateral hypothalamic neurons that produce the neuropeptide hypocretin (orexin). Approximately 90% of people diagnosed as having narcolepsy with cataplexy are hypocretin ligand deficient. This has led to the development of new diagnostic tests (cerebrospinal fluid hypocretin-1 measurements). Hypocretin receptor agonists are likely to be ideal therapeutic options for hypocretin-deficient narcolepsy but such compounds are still not available in humans.

Animals↗

[Narcolepsy, from Westphal to hypocretin].

CLINICAL DATA: Narcolepsy is a poorly known disease, though not exceptional, with a prevalence of 25 to 35 per 100,000 according to various surveys. Its onset can be anytime from childhood to the fifties with a peak in the second decade. It is characterized by two cardinal symptoms, irresistible sleep episodes and cataplexy or sudden loss of muscle tone triggered by emotional situations. The other symptoms, referred to as accessory due to their inconstancy, are hypnagogic hallucinations, sleep paralysis and disturbed nocturnal sleep. Its diagnosis relies on the identification of the cardinal symptoms. Laboratory tests are required to confirm the diagnosis before initiation of a life-long treatment. Theses test include: all-night and daytime polysomnography documenting sleep-onset REM periods, HLA typing, showing the association with HLA DQB1*0602, and, in unclear cases only, measurement of cerebro-spinal fluid (CSF) hypocretine-1 showing values below 110pg/ml, highly specific of narcolepsy with cataplexy. Pathophysiology owes a lot to the existence of a natural canine model, the narcoleptic dog. Irresistible sleep episodes and cataplexy exhibit different pharmacological control, the former depending on dopaminergic systems and the latter on noradrenergic systems. The most remarkable findings of the last twenty years are the close association with HLA DQB1*0602, the identification of a mutation of hypocretin receptor 2 in the narcoleptic dog and the absence of CSF hypocretin-1 in 90% of patients. An autoimmune mechanism is suggested but not evidenced. THREE-FOLD TREATMENT: First line treatment of irresistible sleep episodes in modafinil, Cataplexy or tricyclic antidepressants or sodium oxybate, and disturbed nocturnal sleep by hypnotics or sodium oxybate. Current therapeutic research is oriented towards hypocretin agonists and immunosuppressors.

Animals↗

Narcolepsy and the hypocretin system--where motion meets emotion.

Narcolepsy is a neurological disorder that is characterized by excessive daytime sleepiness and cataplexy--a loss of muscle tone generally triggered by certain strong emotions with sudden onset. The underlying cause of most cases of human narcolepsy is a loss of neurons that produce hypocretin (Hcrt, also known as orexin). These cells normally serve to drive and synchronize the activity of monoaminergic and cholinergic cells. Sleepiness results from the reduced activity of monoaminergic, cholinergic and other cells that are normally activated by Hcrt neurons, as well as from the loss of Hcrt itself. Cataplexy is caused by an episodic loss of activity in noradrenergic cells that support muscle tone, and a linked activation of a medial medullary cell population that suppresses muscle tone. Current treatments for narcolepsy include stimulants to combat sleepiness and antidepressants to reduce cataplexy. Sodium oxybate produces both reductions in cataplexy and improved waking alertness. Future treatments are likely to include Hcrt or Hcrt agonists to reverse the underlying neurochemical deficit.

Animals↗

Segregation of HLA genes in multicase narcolepsy families.

In the past 15 years, 411 sporadic narcolepsy patients have been diagnosed in the Hephata Klinik, Schwalmstadt, Germany. They were explored for presence or absence of excessive daytime sleepiness and narcolepsy in their relatives. A subset of 39 patients were explored for presence or absence of parasomnias. Six patients had more than one relative affected by narcolepsy-cataplexy. Forty-seven family members were investigated with the Stanford Center for Narcolepsy Sleep Inventory and a standardized parasomnia questionnaire. Twenty-four relatives had nocturnal polysomnographies and Multiple Sleep Latency Tests. HLA class I typing was performed in all sporadic and familial cases, class II and microsatellite typing was performed in all members of multicase families. Based on the Finnish prevalence study by Hublin et al., 1994, the relative risk for first degree relatives to develop narcolepsy-cataplexy was in our sample 16.5, 34.2 for excessive daytime sleepiness and 426.9 for parasomnias. Cataplexy, excessive daytime sleepiness and single narcoleptic symptoms in the multicase families segregate with the DRBI*1501, CARII:200, CARI: 103, DQBI*0602 haplotype. In two families, members with narcolepsy and isolated symptoms have inherited the DRBI*1501/DQBI*0602 haplotype from the nonaffected parent. The observed segregations in these two families may support the view that narcoleptic symptoms are expressed by DRBI*1501/DQBI*0602 carriers, independent of haplotype origin. Parasomnias do not segregate with a specific haplotype. The frequency of parasomnias in narcolepsy is much higher than in the general population. The empirical risk for first degree family members of narcolepsy patients to develop cataplexy seems to be low, whereas it is higher for EDS and highest for parasomnias.

Adult↗

Narcolepsy: genetic predisposition and neuropharmacological mechanisms. REVIEW ARTICLE.

Narcolepsy is a disabling sleep disorder characterized by excessive daytime somnolence (EDS), cataplexy and REM sleep-related abnormalities. It is a frequently-occurring but under-diagnosed condition that affects 0.02 to 0.18% of the general population in various countries. Although most cases occur sporadically, familial clustering may be observed; the risk of a first-degree relative of a narcoleptic developing narcolepsy is 10-40 times higher than in the general population. The disorder is tightly associated with the specific human leukocyte antigen (HLA) allele, DQB1*0602 [most often in combination with HLA-DR2 (DRB1*15)]. Genetic transmission is, however, likely to be polygenic in most cases, and genetic factors other than HLA-DQ are also likely to be implicated. In addition, environmental factors are involved in disease predisposition; most monozygotic twins pairs reported in the literature are discordant for narcolepsy. Narcolepsy was reported to exist in canines in the early 1970s. Both sporadic and familial cases are also observed in this animal species. A highly-penetrant single autosomal recessive gene, canarc-1, is involved in the transmission of narcolepsy in Doberman pinschers and Labrador retrievers. Positional cloning of this gene is in progress, and a human homologue of this gene, or a gene with a functional relationship to canarc-1, might be involved in some human cases. Human narcolepsy is currently treated with central nervous system (CNS) stimulants for EDS and antidepressants for cataplexy and abnormal REM sleep. These treatments are purely symptomatic and induce numerous side effects. These compounds disturb nocturnal sleep in many patients, and tolerance may develop as a result of continuous treatment. The canine model is an invaluable resource for studying the pharmacological and physiological control of EDS and cataplexy. Experiments using canine narcolepsy have demonstrated that increased cholinergic and decreased monoaminergic transmission are likely to be at the basis of the pathophysiology of the disorder. Pharmacological studies have shown that blockade of norepinephrine uptake mediates the anticataplectic effect of currently prescribed antidepressants, while blockade of dopamine uptake and/or stimulation of dopamine release mediates the awake-promoting effect of CNS stimulants. Studies in canine narcolepsy also suggest that mechanisms and brain sites for triggering cataplexy are not identical to those regulating REM sleep. It may thus be possible to develop new pharmacological compounds that specifically target abnormal symptoms in narcolepsy, but do not disturb physiological sleep/wake cycles. (See also postscript remarks).

Journal Article↗