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At least 19 recordsLinked to original sources

Thyrotoxic periodic paralysis: a peculiar case with unusual dystonic behavior and variable relations of paralysis to serum potassium levels.

This report describes a male patient, aged 49, with tyrotoxic periodic paralysis. The patient had had episodes of main d'accoucheur for eight years. Since thyrotoxicosis had affected the patient last year, he had had attacks of flaccid paralysis of the limbs associated with main d'accoucheur. While the spontaneous attack was normokalemic and responded favorably to potassium, attacks similar to the spontaneous one were provoked not only by glucose infusion, carbohydrate feeding, and NaCl infusion, but also by oral KCl administration. Transition from hypokalemic to hyperkalemic type of paralysis occurred during potassium treatment of a sodium-induced attack, and that from hyperkalemic to hypokalemic type of paralysis occurred after glucose infusion given during a potassium-induced attack. Intra-arterial epinephrine injection caused prompt paralysis of the perfused hand. A main d'accoucheur was induced in one hand by cooling it in chilled water. The spontaneous attacks of flaccid paralysis disappeared after the patient returned to the euthyroid state, but reappeared when he was treated with high doses of desiccated thyroid. Even when the patient was relieved from thyrotoxicosis, he still experienced stiffness in his hands. The administration of glucose, insulin, and KCl also provoked attacks of paralysis with main d'accoucheur or main d'accoucheur. The disease could be of the normokalemic variety of periodic paralysis with fluctations in the potassium levels depending on the provocative tests employed. It seems that the unusual dystonic behavior of this patient is due not to myotonia, but to muscle spasm resulting from metabolic abnormalities. It could also be suggested that excess thyroid hormones have adverse effects on the development and syndrome of periodic paralysis by abetting a latent hereditary abnormality.

Blood Glucose↗

Aciclovir for Bell's palsy (idiopathic facial paralysis).

BACKGROUND: The most common disorder of the facial nerve is acute idiopathic facial paralysis or Bell's palsy and there may be significant morbidity or incomplete recovery associated with severe cases. Although the cause remains unknown, recent evidence suggests a possible association with Herpes simplex virus (HSV) infection. To test this hypothesis clinically four clinical trials have used aciclovir, an antiviral agent, either alone or in combination with corticosteroids to treat Bell's palsy. OBJECTIVES: To assess the efficacy of aciclovir for treating Bell's palsy and to evaluate any adverse effects of the drug treatment. SEARCH STRATEGY: Search of the Cochrane Neuromuscular Disease Group register, MEDLINE, EMBASE and LILACS databases for randomised trials. We also contacted authors of identified trials. SELECTION CRITERIA: Randomised or quasi-randomised trials of aciclovir therapy, alone or in combination with any other drug, in patients with Bell's palsy. DATA COLLECTION AND ANALYSIS: We identified four randomised trials. One author extracted the data and the other checked them. We wrote to all the authors of the trials identified. No additional data were obtained. MAIN RESULTS: Only two studies met our inclusion criteria and provided results from 200 patients. One study evaluated aciclovir with corticosteroid versus steroid alone and the other study evaluated aciclovir alone versus corticosteroid. PRIMARY OUTCOME Proportion of patients with incomplete recovery after one year: These data were not available. However an analysis was performed on data reported at the end of the study period, three (De Diego 1998) or four months (Adour 1996) after the start of treatment. The results from the Adour study significantly favoured the treatment group whilst the De Diego study significantly favoured the control group. Adverse events: This analysis was not performed as the data were not reported. Complete facial paralysis six months after start of treatment: Only one patient had complete paralysis upon entering only one of the studies (De Diego 1998). This patient was assigned to the control group and the level of recovery attained was not reported. Motor synkinesis/Crocodile tears one year after start of treatment: Data were available up to a maximum of four months after onset of paralysis. One study reported a significant difference between the treatment groups in favour of the aciclovir group and the other demonstrated an inconclusive result. REVIEWER'S CONCLUSIONS: More data are needed from a large multicentre randomised controlled and blinded study with at least 12 months' follow up before a definitive recommendation can be made regarding the routine use of aciclovir in Bell's palsy.

Acyclovir↗

Studies on hyperkalemic periodic paralysis. Evidence of changes in plasma Na and Cl and induction of paralysis by adrenal glucocorticoids.

In a 19 yr old male with familial hyperkalemic periodic paralysis, paralysis was consistently induced by the administration of potassium chloride, corticotropin-gel, and a variety of glucocorticoids (dexamethasone, 6-methylprednisolone, triamcinolone) but not by mineralocorticoids (D-aldosterone, deoxycorticosterone) or by adrenocorticotropin (ACTH)-gel plus metyrapone. Induced attacks were virtually identical with spontaneous attacks, being associated, after a latent period of a few hours, with a rise in plasma K(+) and HCO(3) (-) and a simultaneous fall in plasma Na(+) and Cl(-) concentrations to an extent implying exchange of 1 K(+) with 2 Na(+) and 2 Cl(-) between extracellular and intracellular fluid. ACTH-induced paralysis was preceded by rising serum inorganic P, and associated with increased plasma glucose, blood lactate, and serum creatine phosphokinase concentrations. In normal subjects ACTH, cortisol, and triamcinolone administration failed to change plasma electrolytes or strength, while ingestion of KCl produced no weakness and smaller changes in plasma K and Na than in the patient.Since the patient and normal subjects showed the same changes in renal excretion of K after the administration of cortisol and KCl, it seems likely that paralysis in the patient resulted from abnormally slow uptake (and/or excessive loss) of K by the muscle cells, possibly caused by an abnormal "ion-exchange pump." Normal adrenocortical function and absence of a peak in plasma 11-hydroxycorticoid (11-OHCS) concentration preceding spontaneous paralysis, indicated that spontaneous paralysis did not result from changes in cortisol secretion. Similar hyperkalemic paralysis was precipitated by ACTH-gel in a brother and first cousin of the propositus. Administration of acetazolamide and fludrocortisone reduced the rise in plasma K concentration and prevented the weakness which otherwise invariably followed KCl administration to the patient. He and two close relatives have been completely protected from severe attacks of paralysis in the past 14 months by treatment with these two medications.

Acetazolamide↗

Mutations linked to familial hypokalaemic periodic paralysis in the calcium channel alpha1 subunit gene (Cav1.1) are not associated with thyrotoxic hypokalaemic periodic paralysis.

OBJECTIVE: To investigate whether patients with thyrotoxic hypokalaemic periodic paralysis (THPP) have the same molecular defect in the calcium channel gene described in familial hypokalaemic periodic paralysis (FHPP), as the symptoms of both diseases are comparable, we analysed, in patients with THPP, the presence of mutations R528H, R1239H and R1239G on the S4 voltage-sensing transmembrane segment of the alpha1 subunit of the calcium channel gene (Cav1.1). DESIGN AND PATIENTS: Genomic DNA was extracted from peripheral blood from 14 patients with THPP, 13 sporadic cases and one with a family history. An FHPP family was selected as a positive control. The exons bearing the described mutations were amplified by PCR, screened by single-strand conformation polymorphism (SSCP), and further sequenced. MEASUREMENTS: THPP was diagnosed both clinically and through laboratory tests, all patients having elevated levels of thyroid hormones (T4, T3 or free T4), suppressed TSH and plasma potassium below 3 small middle dot5 mmol/l. RESULTS: No evidence of the described mutations was found in patients with THPP. Furthermore, we did not detect any mutations in any of the four full S4 voltage-sensing transmembrane segments of Cav1 small middle dot1 (DIS4, DIIS4, DIIIS4 and DIVS4) by direct sequencing. However, close to the R528H mutation, we identified two single nucleotide polymorphisms at nucleotides 1551 and 1564 in both familial and sporadic cases with THPP. In addition, we were able to detect the R528H mutation in the DIIS4 transmembrane segment in all members of the FHPP family. CONCLUSION: Mutations linked to familial hypokalaemic periodic paralysis in the calcium channel alpha1 subunit gene (Cav1.1) are not associated with thyrotoxic hypokalaemic periodic paralysis. However, polymorphisms in nucleotides 1551 and 1564 in the exon 11 were found in patients with familial hypokalaemic periodic paralysis and thyrotoxic hypokalaemic periodic paralysis in higher frequency than in controls. The polymorphisms identified within the Cav1.1 gene are associated with thyrotoxic hypokalaemic periodic paralysis and represent a novel finding.

Adult↗

Thyrotoxic periodic paralysis, an unusual cause of hypokalemic periodic paralysis.

Over a two-year period two patients were admitted to the hospital with episodes of paralysis and hypokalemia. In the first patient, familial hypokalemic periodic paralysis was initially suspected. Only several months later was Graves' disease diagnosed and this diagnosis linked to thyrotoxic periodic paralysis. The second patient came to notice after treatment with thyreostatic drugs was stopped prematurely and paralysis together with hypokalemia developed. Thyrotoxic periodic paralysis, being rare outside Asia, closely mimics the clinical presentation of familial hypokalemic periodic paralysis. Mainly men in the third decade with a negative family history are affected. Graves' disease is the most common cause of hyperthyroidism. This disorder is not always clinically apparent since signs of hyperthyroidism may be easily missed. Therefore thyroid function tests are part of the diagnostic workup of hypokalemic periodic paralysis. Correction of thyroid function is essential to treatment. The pathophysiology is still controversial.

Antithyroid Agents↗

An unrecognized cause of paralysis in ED: thyrotoxic normokalemic periodic paralysis.

Hypokalemic paralysis associated with hyperthyroidism (TPP) is a well-known acute electrolyte and muscle function disorder. Lesser known is normokalemic periodic paralysis associated with hyperthyroidism. We describe two cases of young men with acute muscular paralysis and bilateral impairment of sensation over the lower legs who had normal plasma potassium concentrations. They were initially misdiagnosed as having Guillain-Barré syndrome or hysterical paralysis. However, thyroid function tests showed elevated serum T(3) and T(4) and markedly depressed thyroid-stimulating hormone findings consistent with hyperthyroidism. Control of the hyperthyroidism completely abolished their periodic paralysis. Thyrotoxic normokalemic periodic paralysis (TNPP) should be kept in mind as a cause of acute muscle weakness to avoid missing a treatable and curable condition.

Adult↗

Insulin-mediated hypokalemia and paralysis in familial hypokalemic periodic paralysis.

To elucidate a potential role for insulin-mediated extra-renal potassium disposal in the clinical syndrome of hypokalemic periodic paralysis, an obese affected man was studied using the euglycemic insulin clamp, which, in normal and obese subjects, produces predictable, insulin dose-dependent declines in plasma potassium levels. During a 20 mU/m2/minute euglycemic clamp (insulin level, 88 microU/ml) procedure, while the patient with hypokalemic periodic paralysis demonstrated severe resistance to insulin-mediated glucose uptake (glucose uptake 50 percent of that of normal control subjects, n = 17), his plasma potassium declined to a degree similar to that seen in normal subjects. During a subsequent higher dose, 200 mU/m2/minute insulin infusion (insulin level, 914 microU/ml), plasma potassium declined to 2.5 meq/liter, a value significantly below that seen in normal (n = 19) (3.3 +/- 0.1 meq/liter) and obese (n = 6) (3.2 +/- 0.1 meq/liter) subjects. During this study, paralysis began in the patient's hand and forearm at the potassium nadir and lasted three hours, despite restoration of normokalemia 30 minutes after paralysis began. Glucose disposal rates during this high-dose insulin infusion were one-half that seen in lean control subjects (n = 19) and similar to those in obese control subjects. If these findings are representative of hypokalemic periodic paralysis and can be generalized to larger numbers of patients, they indicate several new features of this syndrome. The ability of insulin to induce hypokalemia is enhanced in this syndrome even in the presence of marked coexistent obesity-related resistance to the action of insulin to promote glucose utilization. Enhanced sensitivity of potassium uptake systems to activation by insulin (and other factors) may be a central feature of this syndrome. Additionally, paralytic hypokalemia can be induced during a euglycemic insulin clamp procedure, which could be utilized as a diagnostic test for this syndrome.

Adult↗

Selective paralysis of the upper extremities after odontoid fracture: acute central cord syndrome or cruciate paralysis?

A patient presented with selective paralysis of the arms after having sustained a fall. X-ray of the cervical spine showed a type II odontoid fracture with posterior atlantoaxial dislocation. The diagnosis in the emergency room was cruciate paralysis, which is frequently associated with fractures of axis and/or atlas. However, magnetic resonance imaging (MRI) of the cervical spine revealed a lesion consistent with the acute central cord syndrome (CCS) at the C2-C6 level. The patient underwent posterior atlantoaxial arthrodesis to correct instability and was discharged, without much neurological improvement. Cruciate paralysis has been reported to be associated with fractures of axis and/or atlas, and acute CCS has rarely been associated with the fractures. However, this case illustrates that the lesion responsible for selective paralysis of the upper extremities is not as specific as it had been thought to be, and that it is difficult to accurately identify the level of the cervical cord injury by neurological diagnosis and X-rays alone. Supplementary diagnostic modalities, particularly MRI, are required to make a correct diagnosis and develop a therapeutic strategy.

Acute Disease↗

Barium-induced skeletal muscle paralysis in the rat, and its relationship to human familial periodic paralysis.

An in vivo study of skeletal muscle paralysis induced by intravenous barium chloride has been made in curarized and non-curarized rats. The influence of potassium and calcium chlorides, propranolol, ouabain, and prior adrenalectomy on the paralysis has also been studied. Paralysis is found to be due to a direct effect on skeletal muscle, and to correlate well with the development of hypokalaemia. Possible mechanisms of action of barium are discussed, and attention is drawn to the similarity between barium poisoning and hypokalaemic familial periodic paralysis.

Adrenal Glands↗

Examination of paralysis in Drosophila temperature-sensitive paralytic mutations affecting sodium channels; a proposed mechanism of paralysis.

We have used the identified cells of the Drosophila Giant Fiber System (GFS) to study the defects induced by the temperature-sensitive paralytic mutations no action potential (nap) and paralytic (para). These mutations paralyze at elevated temperatures, reported as due to a block of action potential propagation. We found, however, that the cells of the GFS still were able to respond to stimuli at 7-10 degrees C above the temperature causing mutant paralysis. Stimulus threshold and conduction time both decrease with increasing temperature in the mutants in a manner indistinguishable from wild-type. Since action potentials can propagate efficiently in the mutants at elevated temperatures, we looked for other neural defects that might be involved in producing paralysis. We did find reduced neuronal function at sites such as electrical synapses and axonal branch points where current may be limiting. These sites had weakened following frequency, occasional failures, and increased conduction times. We believe the non-temperature-dependent defects in nap and para uncover the normally temperature-sensitive traits latent within all neurons. Increasing temperature increases the rates of channel activation and inactivation. At higher temperatures, Na+ inactivation and K+ activation encroach upon the Na(+)-activation time, reducing inward sodium current. In addition to this normal temperature-dependent effect, the mutations decrease the number of sodium channels in neurons in a non-temperature-dependent manner. These two reductions in sodium current combine to prevent spiking threshold from being reached at current limited sites. The temperature at which a sufficient number of these sites block should be the temperature of paralysis.

Action Potentials↗

The light and electron microscopic changes in the skeletal muscles during paralysis in thyrotoxic periodic paralysis.

Light microscopy of the biopsied quadriceps muscles during paralysis in 17 patients with thyrotoxic periodic paralysis (TPP) showed no abnormalities in 23.5 per cent, sarcolemmal nuclear proliferation in 35.5 per cent, atrophy of muscle fibers in 29.4 per cent, central nuclei in 23.5 per cent, fatty infiltration in 17.6 per cent, vacuolation in 11.8 per cent, and sarcoplasmic masses in 11.8 per cent. The muscle specimens were also examined by electron microscopy in ten of these patients; the main changes observed were vacuolation (90 per cent), mitochondrial abnormalities (100 per cent), glycogen granules accumulation (100 per cent), disruption of the myofibers (50 per cent), and changes in the T-system (40 per cent). The light and electron microscopic changes in the skeletal muscles during paralysis were not well correlated with the severity of the muscle weakness of hypokalemia.

Adult↗

Facial nerve paralysis induced by herpes simplex virus in mice: an animal model of acute and transient facial paralysis.

We have been the first to succeed in producing an acute and transient facial paralysis simulating Bell's palsy, by inoculating herpes simplex virus into the auricles or tongues of mice. The KOS strain of the virus was injected into the auricle of 104 mice and the anterior two thirds of the tongue in 30 mice. Facial paralysis developed between 6 and 9 days after virus inoculation, continued for 3 to 7 days, and then recovered spontaneously. The animals were painlessly sacrificed between 6 and 20 days after inoculation for histopathologic and immunocytochemical study. Histopathologically, severe nerve swelling, inflammatory cell infiltration, and vacuolar degeneration were manifested in the affected facial nerve and nuclei. Herpes simplex virus antigens were also detected in the facial nerve, geniculate ganglion, and facial nerve nucleus. The pathophysiologic mechanisms of the facial paralysis are discussed in light of the histopathologic findings, in association with the causation of Bell's palsy.

Animals↗

Bilateral upper extremity paralysis (Bell's cruciate paralysis) from a gunshot wound to the cervicomedullary junction.

Cruciate paralysis is characterized by midline involvement of the rostral portion of the pyramidal decussation, resulting in paralysis of the upper extremity without lower extremity involvement. The neuroanatomical basis is the more rostral and medial decussation of the upper extremity motor fibers in the medulla compared with the more caudal and lateral decussating fibers of the lower extremity at the lower boundary of the cervicomedullary junction. We believe this to be the first reported case of Bell's cruciate paralysis caused by a gunshot wound to this region. The neuroanatomical basis and the mechanisms that produce this unique clinical entity are discussed.

Arm↗

Propranolol rapidly reverses paralysis, hypokalemia, and hypophosphatemia in thyrotoxic periodic paralysis.

Hypokalemia and hypophosphatemia are commonly encountered during paralysis in patients with thyrotoxic periodic paralysis (TPP) and may contribute to neuromuscular manifestations. Potassium and phosphate supplements have been recommended to hasten recovery and prevent cardiopulmonary complications. However, this recommendation has not yet proven efficacious. Hyperadrenergic activity has been implicated in the pathogenesis of TPP. We tested whether nonselective beta-blockers could terminate neuromuscular symptoms rapidly while reducing an intracellular shift of potassium and phosphate. We describe two patients who had an acute attack of TPP with characteristic hypokalemia and hypophosphatemia associated with low urinary potassium and phosphate excretion. After oral propranolol, 3 mg/kg, serum potassium and phosphate concentrations increased promptly in 2 hours in both patients, and there was complete amelioration of paralysis. No rebound hyperkalemia or hyperphosphatemia was detected. Given their efficacy in this pilot study, they should be considered as a first-line therapy for TPP.

Administration, Oral↗

A new standardized and effective method of inducing paralysis without administration of exogenous hormone in patients with familial periodic paralysis.

A prolonged glucose loading test is described. When used in five patients with familial periodic paralysis it brought them into a state of massive hypopotassaemic paralysis at the first attempt, without the use of exogenous hormone. Three normal persons were subjected to the same glucose loading without exhibiting hypopotassaemia or muscular weakness. There were no essential differences in serum glucose levels between the two groups of individuals. The efficacy of previous methods of inducing paralysis, hormonal as well as non-hormonal, is reviewed, and the advantages of this new method are pointed out.

Blood Glucose↗