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Narcolepsy.

Narcolepsy is a severely debilitating neurologic disease that is not as rare as many believe, affecting an estimated 140,000 Americans. Despite the sometimes debilitating nature of narcolepsy symptoms, the disease may go undiagnosed without an organized method for evaluating patients with sleep complaints. Many of the classic symptoms of narcolepsy, such as excessive daytime sleepiness, cataplexy, sleep paralysis, and hypnagogic hallucinations, may be mistakenly associated with other disease states and must be differentiated from other sleep disorders. The results of self-administered sleep-disorder questionnaires are useful and may increase the suspicion of narcolepsy; however, referral to an accredited sleep laboratory for a formal sleep study including overnight polysomnography is necessary for a positive narcolepsy diagnosis. A variety of medications may be used to successfully treat excessive daytime sleepiness and cataplexy, the two most debilitating symptoms of the disease. Primary-care physicians who develop the proper diagnostic skills can play a pivotal role in the accurate diagnosis and long-term management of patients suffering from narcolepsy.

Adjuvants, Anesthesia↗

The genetics of narcolepsy.

Human narcolepsy is a genetically complex disorder. Family studies indicate a 20-40 times increased risk of narcolepsy in first-degree relatives and twin studies suggest that nongenetic factors also play a role. The tight association between narcolepsy-cataplexy and the HLA allele DQB1*0602 suggests that narcolepsy has an autoimmune etiology. In recent years, extensive genetic studies in animals, using positional cloning in dogs and gene knockouts in mice, have identified abnormalities in hypothalamic hypocretin (orexin) neurotransmission as key to narcolepsy pathophysiology. Though most patients with narcolepsy-cataplexy are hypocretin deficient, mutations or polymorphisms in hypocretin-related genes are extremely rare. It is anticipated that susceptibility genes that are independent of HLA and impinge on the hypocretin neurotransmitter system are isolated in human narcolepsy.

Animals↗

The number of hypothalamic hypocretin (orexin) neurons is not affected in Prader-Willi syndrome.

CONTEXT: Narcoleptic patients with cataplexy have a general loss of hypocretin (orexin) in the lateral hypothalamus, possibly due to an autoimmune-mediated degeneration of the hypocretin neurons. In addition to excessive daytime sleepiness, Prader-Willi syndrome (PWS) patients may show narcolepsy-like symptoms, such as sleep-onset rapid eye movement sleep and cataplexy, independent of obesity-related sleep disturbances, which suggests a disorder of the hypocretin neurons. OBJECTIVE: We hypothesized that the narcolepsy-like symptoms in PWS are caused by a decline in the number of hypocretin neurons. DESIGN: We estimated the number of hypocretin neurons in postmortem hypothalami using immunocytochemistry and an image analysis system. SETTING: This study was conducted at the Netherlands Institute for Brain Research. PATIENTS: Eight PWS adults, three PWS infants, and 11 controls were studied. MAIN OUTCOME MEASURE: The total number of hypocretin neurons in the lateral hypothalamus was measured. RESULTS: There was no significant difference in the total number of hypocretin-containing neurons among the seven PWS patients (in whom sufficient hypothalamic material was available to quantify total cell number) and seven age-matched controls, either in adults or in infants. A significant decline with age was found in adult PWS patients (r = -0.9; P = 0.037). CONCLUSIONS: We conclude that a decrease in the number of hypocretin neurons does not play a major role in the occurrence of narcolepsy-like symptoms in PWS.

Adult↗

HLA antigens in narcolepsy.

Eighteen black patients with narcolepsy underwent human leukocyte antigen (HLA) typing. Eleven of the 18 had cataplexy. Twelve patients (66.6%) had HLA-DR2; 7 patients with cataplexy had DR2. All patients had DQw1. In contrast to white and Japanese patients studied to date, not all black narcoleptics have DR2.

Adult↗

Clinical and sleep laboratory study of narcoleptic symptoms in multiple sclerosis.

Seventy white patients with a diagnosis of MS and typed for their HLA-A, B, C, and DR were studied. A clinical interview and a questionnaire were used to evaluate the presence of narcoleptic symptoms. The prevalence of sleep attacks, cataplexy, and sleep paralysis was significantly elevated among these patients. However, no difference was seen between DR2 and non-DR2 subjects with regard to the incidence of narcoleptic symptoms. Nine DR2 patients complaining of both sleep attacks and cataplexy were studied in the sleep laboratory for five consecutive naps, but no polygraphic evidence of narcolepsy was found.

Adult↗

Genetic and familial aspects of narcolepsy.

Narcolepsy-cataplexy is a disabling sleep disorder characterized by excessive daytime sleepiness and abnormal REM sleep. The development of human narcolepsy involves environmental factors acting on a specific genetic background. The importance of environmental factors is evidenced by the reported 25 to 31% of monozygotic twins who are concordant for narcolepsy. One of the predisposing genetic factors is located in the MHC DQ region. More than 85% of all narcoleptic patients with definite cataplexy share a specific HLA allele, HLA DQB1*0602 (most often in combination with HLA DR2), compared with 12 to 38% of the general population, as evaluated in various ethnic groups. Genetic factors other than HLA are also likely to be involved. Even if genuine multiplex families are rare, 1 to 2% of the first-degree relatives of narcolepsy patients manifest the disorder, compared with 0.02 to 0.18% in the general population. Studies using a canine model of narcolepsy illustrate the importance of non-MHC genes in disease predisposition. In this model, narcolepsy is transmitted as a single autosomal recessive trait, canarc-1. In spite of an association with immune-related polymorphisms, narcolepsy does not appear to be a classic autoimmune disease. Other pathophysiologic models involving the microglia and the release of specific cytokines in the CNS may be involved and are being explored. This approach, together with positional cloning studies in humans and canines, should reveal the cause of narcolepsy and open new therapeutic avenues.

Animals↗

Age at onset of narcolepsy in two large populations of patients in France and Quebec.

BACKGROUND: Narcolepsy usually starts around adolescence; however, there is great variability in the clinical presentation of narcolepsy. OBJECTIVE: To determine the age at onset in conjunction with severity of narcoleptic symptoms in two large populations of narcoleptic patients with a similar genetic background. METHODS: Information on age at onset and severity of the condition was obtained in 317 patients with well-defined narcolepsy-cataplexy from Montpellier (France) and in 202 from Montreal (Canada). RESULTS: The mean age at onset was 23.4 years in Montpellier and 24.4 in Montreal. The age at onset was bimodal in two independent patient populations: a first peak occurring at 14.7 years, and a second peak occurring at 35. Age at onset clearly differentiates patients with a positive family history of narcolepsy (early onset) from those without a family history. Other clinical and polygraphic findings may indicate that young age at onset is associated with increased severity of the condition (higher frequency of cataplexy and decreased mean sleep latency on the Multiple Sleep Latency Test). CONCLUSION: Bimodal distribution of age at onset of narcolepsy was found in two independent patient populations. Our data suggest that age at onset is genetically determined.

Adolescent↗

Paraneoplastic limbic encephalitis and possible narcolepsy in a patient with testicular cancer: case study.

We describe a patient who presented with a clinical syndrome of limbic encephalitis, narcolepsy, and cataplexy. The anti-Ma2 antibody was positive. Although there was no mass on imaging, orchiectomy was performed in this patient, and testicular carcinoma was found. This is the first known case of limbic encephalitis and anti-Ma2 antibody to be associated with cataplexy and possible narcolepsy. Neurological symptoms precede the diagnosis of cancer in 50% of patients with paraneoplastic syndromes, and clinicians are therefore strongly advised to evaluate patients with neurological symptoms for this condition.

Adult↗

Medications for the treatment of narcolepsy.

Narcolepsy is a syndrome of unknown aetiology characterised by excessive daytime sleepiness (often severe) usually in association with cataplexy (brief episodes of partial or complete muscle paralysis) and often with other uncommon symptoms. Due to limited disease-specific knowledge, medication treatment for this condition has focussed on specific symptom amelioration rather than improving or eliminating underlying disease mechanisms. Such treatment generally consists of stimulants for daytime sleepiness and anticataplectic medication for cataplexy; hence, both types of agents are reviewed in this article. Recent discoveries, including the finding that canine familial narcolepsy is caused by a single gene defect in the hypocretin receptor, coupled with the findings in human narcoleptics of undetectable hypocretin levels in the CSF and of severe hypocretin-containing neuronal atrophy in brains of deceased narcoleptics, have shifted the focus of narcolepsy treatment research to the hypocretin system. The hope is that a single agent can be developed to provide effective treatment for all symptoms of narcolepsy. While the mechanism of action in narcolepsy is unknown, gamma-hydroxybutyrate (GHB) is proving to be such an agent. Interestingly, GHB is not known to impact hypocretin pathways in the brain, yet specific research exploring this possible interaction has not been performed. The market for medications limited to use by narcoleptics is small because of the relatively low prevalence of narcolepsy; however, the prevalence of clinically important daytime sleepiness and/or fatigue is surprisingly high. New agents that effectively manage the sleepiness of narcolepsy thus have a much larger potential for appropriate use in treating sleepiness and fatigue in the general population. This fact has recently been demonstrated by the tremendous success of modafinil, a drug introduced to the market a little over 2 years ago, which was developed to treat sleepiness in narcolepsy but now is used in a much larger patient population.

Journal Article↗

The Xyrem risk management program.

Sodium oxybate, also known as gamma-hydroxybutyric acid (GHB), was discovered in 1960 and has been described both as a therapeutic agent with high medical value and, more recently, a substance of abuse. The naturally occurring form of this drug is found in various body tissues but has been studied most extensively in the CNS where its possible function as a neurotransmitter continues to be studied. Sodium oxybate has been approved in different countries for such varied uses as general anaesthesia, the treatment of alcohol withdrawal and addiction, and, most recently, cataplexy associated with narcolepsy. During the 1980s, easy access to GHB-containing products led to various unapproved uses, including weight loss, bodybuilding and the treatment of sleeplessness, sometimes with serious long-term effects. The availability of these unapproved and unregulated forms of the drug led to GHB and its analogues being popularised as substances of abuse and subsequent notoriety as agents used in drug-facilitated sexual assault, or 'date rape', eventually leading to the prohibition of GHB sales in the US. Legal efforts to control the sale and distribution of GHB and its analogues nearly prevented the clinical development of sodium oxybate for narcolepsy in the US. However, following extensive discussions with a variety of interested parties, a satisfactory solution was devised, including legislative action and the development of the Xyrem Risk Management Program. Amendments to the US Controlled Substances Act made GHB a schedule I drug, but also contained provisions that allow US FDA-approved products to be placed under schedule III. This unique, bifurcated schedule for sodium oxybate/GHB allowed the clinical development of sodium oxybate to proceed and, in July 2002, it was approved by the FDA as an orphan drug for the treatment of cataplexy in patients with narcolepsy as Xyrem(sodium oxybate) oral solution. To promote the safe use of sodium oxybate, as well as alleviate concerns over possible diversion and abuse following product approval, a proprietary restricted drug distribution system was created, called the Xyrem Success Program. Components of the programme include a centralised distribution and dispensing system, a physician and patient registry, compulsory educational materials for patients and physicians, a specially trained pharmacy staff, a method for tracking prescription shipments, and an initial post-marketing surveillance programme. The system has created a unique opportunity to provide both physician and patient education and ongoing patient counselling, promoting greater drug safety and enhanced patient compliance.

Administration, Oral↗

Narcolepsy in children: a practical guide to its diagnosis, treatment and follow-up.

Narcolepsy is a neurological syndrome characterised by daytime somnolence and cataplexy which often begins in childhood. Failing to recognise the condition may lead to mislabelling a child as lazy or depressed. The diagnostic criteria for narcolepsy vary with age. In children 8 years and older a Multiple Sleep Latency Test with an average latency of less than 8 minutes, and 2 or more sleep onset REM episodes supports the diagnosis. Human leucocyte antigen (HLA) marker DQbeta1 -0602 has been associated with narcolepsy. The current evidence supports the hypothesis that transmission of narcolepsy is multifactorial. with at least two genes, one of which is non-HLA related. The goal of all therapeutic approaches in narcolepsy is to control the narcoleptic symptoms and allow the patient to continue to fully participate in personal and academic activities. This usually requires a combination of behavioural therapy along with medication. Medications for patients with excessive sleepiness are usually stimulants, including amphetamines. However, a novel wake promoting agent, modafinil, is now available. Cataplexy can be controlled by medications with noradrenergic reuptake-blocking properties, such as clomipramine and fluoxetine, through their active metabolites. Increased awareness of narcolepsy is important to allow earlier diagnosis. Research on the effects different medications have, specifically on children with narcolepsy, has been very limited.

Child↗

Sleep disorders: sleep apnea and narcolepsy.

Symptoms of obstructive sleep apnea, a potentially life-threatening disorder, include excessive daytime sleepiness and sleep attacks, nocturnal breath cessation, and snorting and gasping sounds. These symptoms usually become manifest before age 40 and cluster within a few years. Most patients are obese, hypertensive men who eventually develop cardiovascular abnormalities. If sleep apnea is suspected based on clinical information, a sleep laboratory evaluation is indicated. For severe obstructive sleep apnea, tracheostomy is the most effective treatment. Narcolepsy, another sleep disorder, is a life-long and usually disabling condition. In most narcoleptic patients the first symptoms develop during childhood or adolescence, yet many years pass before the proper diagnosis is made. The presence of sleep attacks together with auxiliary symptoms, particularly cataplexy, is diagnostic. Treatment of narcolepsy includes stimulants in combination with therapeutic naps for sleep attacks and tricyclic drugs for cataplexy.

Humans↗

HLA and hypocretin studies in Korean patients with narcolepsy.

STUDY OBJECTIVES: Very few studies have evaluated narcolepsy in Asian countries, outside of Japan. Our goal was to study narcolepsy at the genetic, clinical and pathophysiological level in Korea. DESIGN: Prospective study of consecutive patients and age matched controls. Clinical data ascertained from the Stanford Sleep Inventory, Polysomnography and MSLT data, as well as clinical notes. High resolution DRB1 and DQB1 typing in all subjects and studies of CSF hypocretin-1 was also evaluated in a subset of patients. PARTICIPANTS AND SETTING: 20 patients diagnosed at St. Vincent and Korea University Hospitals (Seoul, Korea). 21 Korean control subjects. INTERVENTIONS: N/A. MEASUREMENTS AND RESULTS: For narcoleptic subjects, mean age was 28.2 years old and 45% were female. Mean BMI was 23.9+/-3.4 kg/m2, a significantly higher value than that expected in an age- and sex-matched sample (p<0.01). All patients had sleepiness and cataplexy while the prevalence of other symptoms ranged from 60-75%. All but 2 subjects were HLA-DR15 (DR2), DQB1*0602 positive (90%). This high DQB1*0602 percentage compared with 24% DQB1*0602 positivity in 21 control Koreans. Protective effects were observed for the DQB1*0601 and DRB1*0406 alleles, Hypocretin (orexin) CSF studies were also performed in 6 cataplectic subjects, all of which had undetectable CSF hypocretin levels. Two of these subjects had started narcolepsy less than 1 year before analysis yet had undetectable hypocretin levels. CONCLUSION: These results illustrate the similarity of narcolepsy-cataplexy in Korea in comparisons with other more studied populations. We also identified a new potential HLA protective subtype, HLA-DRB1*0406.

Adolescent↗

A 12-month, open-label, multicenter extension trial of orally administered sodium oxybate for the treatment of narcolepsy.

OBJECTIVES: To evaluate the long-term safety and efficacy of nightly sodium oxybate for the treatment of narcolepsy. DESIGN: A multicenter, 12-month, open-label trial. PARTICIPANTS: 118 narcolepsy patients previously enrolled in a 4-week double-blind sodium oxybate trial. INTERVENTIONS: Patients were administered 6 g sodium oxybate nightly, taken in equally divided doses at bedtime and 2.5 to 4 hours later. The study protocol permitted the dose to be increased or decreased in 1.5-g increments at 2-week intervals based on efficacy response or adverse experiences but staying within the range of 3 to 9 g nightly. MEASURES: Narcolepsy symptoms and adverse events were recorded in daily diaries. Safety measures included physical and laboratory examinations repeated at 6 and 12 months. The primary efficacy measure was the change in weekly cataplexy attacks from baseline. Secondary measures included daytime sleepiness using the Epworth Sleepiness Scale (ESS), inadvertent naps/sleep attacks, nighttime awakenings, and the overall change in disease severity as rated by the investigators (Clinical Global Impression of Change; CGI-c). RESULTS: Sodium oxybate, in doses of 3 to 9 g nightly, produced overall improvements in narcolepsy symptoms, which were significant at 4 weeks and maximal after 8 weeks. Reported improvements included a significant decrease in frequency of cataplexy attacks (p < 0.001); diminished daytime sleepiness (p < 0.001); and patient descriptions of nocturnal sleep quality, level of alertness, and ability to concentrate (for each p < 0.001). Adverse events were generally mild and patients showed no evidence of tolerance. CONCLUSION: Sodium oxybate is an effective and well-tolerated treatment for narcolepsy.

Adjuvants, Anesthesia↗

[HLA-DRB and -DQB allele contribution to narcolepsy susceptibility in Chinese patients with narcolepsy].

OBJECTIVES: To study the association of narcolepsy with HLA class II alleles in Chinese narcoleptic patients. METHODS: 31 patients with narcolepsy underwent brain computed tomography (CT) scan and magnetic resonance imaging (MRI) testing. All patients received a MSLT test following a routine night's sleep, and serological HLA typing for HLA DR(2). 21 patients received PCR-SSP HLA DR and DQ typing. RESULTS: All patients had sleepiness and cataplexy. There was no evidence for other functional or structural diseases. Sleep paralysis was elicited in 45%; hypnagogic hallucinations, in 61%. Mean sleep latency on MSLT was 2.1 min +/- 1.3 min; sleep-onset rapid eye movement (SOREM) occurred during 2/5 naps in 30 of 31 patients. The average number and latency of SOREM episodes were 4.2 +/- 1.0 episodes and 4.0 min +/- 1.8 min, respectively. All patients but one were HLA DR(2) positive and 86% were HLADRB(1) * 1501-HLADQB(1)*0602 positive. CONCLUSIONS: HLA DR(2) and HLADQw6 are markers for narcolepsy-cataplexy in Chinese.

Adolescent↗

[Diagnosis of childhood narcolepsy and significance of HLA in its diagnosis].

OBJECTIVE: Narcolepsy is a lifelong sleep disorder characterized by excessive daytime sleepiness, and features of rapid eye movement (REM) sleep, such as cataplexy, sleep paralysis and hypnagogic hallucinations. The present study aimed to investigate the diagnostic basis of childhood narcolepsy and possible role of HLA Class II alleles in the onset of this disease. METHODS: The clinical data of 40 narcoleptic children were analyzed. All patients received Multiple Sleep Latency Test (MSLT) and they were analyzed in combination with clinical features. Polymerase chain reaction/sequence specific primers (PCR/SSP) methods were used to detect the HLA-DRB1 and DQB1 alleles. RESULTS: Narcolepsy was diagnosed in 40 children. The age range was 3 to 14 years (mean 8.5 +/- 2.5 years), 29 were male and 11 female. Their mean course of disease was 6.5 months, 14 patients (30%) were less than 3 months old, 21 patients (52%) were less than 6 months old. All the patients had excessive daytime sleepiness, cataplexy appeared in 37 cases, hypnagogic hallucination in 22 and sleep paralysis in 6. Mean sleep latency on MSLT was less than 5 min, the average number of sleep-onset rapid eye movement (SOREM) was 4.33 +/- 0.26 episodes (2-5 episodes), the latency of SOREM episodes were 4.0 +/- 1.8 min (0.25-4.9 min). Thirty-five patients were DRB1 1501 and DQB1 0602 positive (Pc < 0.01), 2 were DRB1 1502 and DQB1 0601 positive, while 3 were DRB1 15 and DQB1 6 negative. CONCLUSIONS: Some pediatric patients with narcolepsy were different from adult patients in that the pediatric cases had a sudden onset and shorter disease course. Diagnosis of this disease was based on the clinical manifestations, MSLT and absence of any medical or psychiatric disorder that could account for the symptoms. The authors demonstrated that DRB1 1501 and DQB1 0602 were susceptibility genes for narcolepsy and those who were DRB1 15 negative could not be excluded.

Adolescent↗

Narcolepsy research: past, present, and future perspectives.

In 1877, Westphal described a patient with hypersomnia and episodic muscle weakness. He did not feel that these weakness attacks could simply be explained by "epileptoid" phenomenon. The next year, Fischer described a similar case. By 1880, Gélineau decided that patients with these symptoms represented a distinct clinical entity and he called it "narcolepsy". In 1902, Loewenfeld noted the importance of cataplexy in this disorder, and in 1934 Daniels published an important review on the topic which helped to galvanize interest in further study. In 1957, Yoss and Daly discussed the "clinical tetrad" which included hypersomnia, cataplexy, hypnagogic hallucinations, and sleep paralysis. In 1960, Vogel noted that patients with narcolepsy had early onset of REM sleep on their electroencephalograms. At the First International Symposium on Narcolepsy in 1975, the symptom of disturbed nocturnal sleep was added to the clinical diagnostic criteria for narcolepsy. For many years the etiology and mechanisms of this disease were poorly understood. It was not until the early 1970s when the exciting animal and human research first started to unravel the mysteries of the genetics and physiology of narcolepsy. This research will be discussed below.

Animals↗

Narcolepsy.

Narcolepsy is a chronic neurologic disorder characterized by excessive daytime sleepiness, cataplexy, and premature onset of rapid eye movement sleep. It can be differentiated from other disorders causing daytime drowsiness by its clinical symptoms and by sleep laboratory studies. The disorder usually begins in adolescence and remains present throughout life. Genetic susceptibility to narcolepsy is closely associated with specific HLAs that indicate the existence of a gene in the region of the major histocompatibility complex on chromosome 6 that increases susceptibility to narcolepsy. Neurochemical studies of human and canine narcolepsy have demonstrated disturbed monoaminergic and cholinergic function that may account for impaired regulation of rapid eye movement sleep, but the link between these abnormalities and the genetic factors is still unknown. Treatment of sleepiness with stimulants and cataplexy with tricyclic antidepressants leads to substantial improvement but does not fully resolve symptoms in most patients.

Arousal↗