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Biomedical subjects

Jeremy M Shefner

Publications and source records attributed to Jeremy M Shefner.

12 recordsLinked to original sources

Degeneration of respiratory motor neurons in the SOD1 G93A transgenic rat model of ALS.

The transgenic mutant superoxide dismutase (SOD1) mice and rats have been important tools in attempting to understand motor neuron pathology and degeneration but the mechanism behind death in this model has not been studied. We studied the electrophysiologic and pathologic properties of the cervical motor neurons and phrenic nerves in mutant SOD1 rats and demonstrated motor neuron loss, progressive reduction of phrenic nerve compound muscle action potential amplitudes, phrenic nerve fiber loss, and diaphragm atrophy suggesting respiratory insufficiency as a significant contributing factor leading to SOD1 rat death. Unlike previous observations suggesting that a dying-back process may be occurring in the mouse model of the disease, we did not observe differences between proximal and distal axon loss in phrenic nerves of SOD1 rats. This may reflect a unique feature of respiratory motor neuron biology or may be related to the relatively rapid course of decline in the rat model when compared with the mouse SOD1 model. Significant motor neuron loss was also noted in the lumbosacral spinal cord with relative sparing of motor neurons in the cranial nuclei. Taken together, these data suggest that respiratory motor neuron loss results in significant electrophysiologic changes and diaphragmatic atrophy. These changes may play a significant role resulting in death of these animals.

Action Potentials↗

Electrodiagnosis in common mononeuropathies and plexopathies.

Electrodiagnosis has a prominent role in the diagnosis of common entrapment neuropathies (carpal tunnel syndrome and ulnar neuropathy at the elbow) and plexopathies (idiopathic brachial plexopathy and diabetic lumbar radiculoplexopathy). The relevant anatomy and pathology of these disorders is reviewed in the context of electrodiagnosis and prognosis.

Brachial Plexus Neuropathies↗

Evaluation of patients with recurrent symptoms after ulnar nerve transposition.

Focal entrapment of the ulnar nerve occurs most frequently in the region of the elbow, at the ulnar groove or beneath the humeroulnar aponeurosis. Surgical treatment commonly involves transposition of the nerve anterior to the medial epicondyle, in the antecubital fossa. Symptoms may recur after surgery, and, to assess their etiology, we studied 10 patients with recurrent ulnar symptoms after transposition. Conventional motor and sensory conduction studies were performed, as was mapping of nerve position using submaximal stimuli. In 9 of 10 patients, the ulnar nerve at the elbow was located adjacent to the medial epicondyle, rather than in the antecubital fossa. Focal slowing in the region of the elbow was noted in 8 patients, and an additional site of focal slowing was found in the forearm in 3 patients. We conclude that in patients with recurrent symptoms after ulnar nerve transposition postoperative position of the ulnar nerve may be medial, often near the medial epicondyle. This location may predispose the nerve to recurrent trauma or cause traction on the nerve at more distal locations within the forearm. The prevalence of this medial location of the ulnar nerve in asymptomatic postsurgical patients is unknown.

Adult↗

Single motor unit variability with threshold stimulation in patients with amyotrophic lateral sclerosis and normal subjects.

Repetitive nerve stimulation often shows responses with an abnormal decrement in patients with amyotrophic lateral sclerosis (ALS), suggesting instability of the neuromuscular junction; however, the pathophysiology and response characteristics of this instability are not clear. We evaluated response variability of 47 single motor units from 16 patients with ALS and 51 units from 10 normal subjects, acquired by delivering threshold stimuli sporadically at 0.5 HZ or less. In addition, in 46 other different single motor units obtained from 21 patients with ALS, variability was studied at both 1- and 3-HZ stimulation rates. Motor units from patients with ALS were significantly more variable than those from normal subjects, even when their larger amplitude was accounted for. This increased variability was not rate dependent. Response variability is a critical measure in the statistical method of motor unit number estimation and is attributed to variability in the number of units activated; the fact that variability of single motor units varies with disease state may be a potentially confounding factor in the application of the technique.

Adult↗

Motor unit number estimation in the evaluation of focal conduction block.

Temporal dispersion and phase cancellation limit the utility of amplitude reduction in compound muscle action potential (CMAP) as a measure of focal conduction block but may not affect motor unit number estimation (MUNE). Hence, MUNE offers the potential of a specific measure of conduction block. We investigated the role of MUNE in 11 patients with ulnar neuropathy and conduction block at the elbow and also in 8 normal subjects. MUNE failed to detect motor unit dropout in the patient group because reduced values for surface-recorded motor unit potentials (SMUPs) were obtained at proximal locations, suggesting that focal compression selectively damages larger motor axons, an hypothesis that has support from animal studies. We conclude that, because MUNE is affected by the physiological characteristics of functional axons surviving the underlying pathological process, the utility of MUNE is limited to diseases in which the expected pathology affects motor axons uniformly.

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Motor unit number estimation.

Since its introduction 30 years ago, MUNE techniques have increasingly been refined and applied to a wide variety of neuromuscular disorders. Differences of opinion remain among MUNE investigators as to which method is best; however, statistical and MPS MUNE are currently the most widely used. Numerous methodologic issues remain, including the development of detailed universal standards for each technique and the implementation of modifications for the enhancement of reproducibility. These issues are the subjects of ongoing investigation. Despite technical variability, the MUNE values obtained using different methods show good agreement in studies of normal subjects and in patients with a variety of neurogenic processes. MUNE has been applied most successfully to patients with amyotrophic lateral sclerosis and to animal models of motor neuron disease, providing significant insight into the pathophysiology of these disorders. These techniques are increasingly being incorporated into clinical therapeutic trials. MUNE offers promise in the study of neuromuscular disease, enabling the collection of novel data in the living patient unobtainable by any other method.

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Amyotrophic lateral sclerosis, lead, and genetic susceptibility: polymorphisms in the delta-aminolevulinic acid dehydratase and vitamin D receptor genes.

Previous studies have suggested that lead exposure may be associated with increased risk of amyotrophic lateral sclerosis (ALS). Polymorphisms in the genes for delta-aminolevulinic acid dehydratase (ALAD) and the vitamin D receptor (VDR) may affect susceptibility to lead exposure. We used data from a case-control study conducted in New England from 1993 to 1996 to evaluate the relationship of ALS to polymorphisms in ALAD and VDR and the effect of these polymorphisms on the association of ALS with lead exposure. The ALAD 2 allele (177G to C; K59N) was associated with decreased lead levels in both patella and tibia, although not in blood, and with an imprecise increase in ALS risk [odds ratio (OR) = 1.9; 95% confidence interval (95% CI), 0.60-6.3]. We found a previously unreported polymorphism in ALAD at an Msp1 site in intron 2 (IVS2+299G>A) that was associated with decreased bone lead levels and with an imprecise decrease in ALS risk (OR = 0.35; 95% CI, 0.10-1.2). The VDR B allele was not associated with lead levels or ALS risk. Our ability to observe effects of genotype on associations of ALS with occupational exposure to lead or with blood or bone lead levels was limited. These findings suggest that genetic susceptibility conferred by polymorphisms in ALAD may affect ALS risk, possibly through a mechanism related to internal lead exposure.

Amyotrophic Lateral Sclerosis↗

Comparison of incremental with multipoint MUNE methods in transgenic ALS mice.

Several methods of motor unit number estimation (MUNE) are in current use. Uncertainty still exists about which is preferable and how results obtained from one method compare to another. We studied changes with MUNE over time in the SOD1(G93A) transgenic mouse model of amyotrophic lateral sclerosis (ALS), using both incremental and multipoint methods. This mouse model of motor neuron degeneration is highly consistent, with a monotonic decline in motor neuron number starting at approximately 60 days of life. Five mice were studied four times each, starting at day 60 of life and approximately every 20 days thereafter, using both methods. Results were quite comparable for both methods, with the incremental method yielding slightly higher estimates of motor unit size, and hence smaller MUNEs. Correlations between the two methods were 0.71 for single motor unit action potential (SMUAP) amplitude and 0.95 for MUNE. In this model, therefore, both MUNE methods yield similar estimates and are equally effective at documenting progression of a lower motor neuron disorder.

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Lead exposure and amyotrophic lateral sclerosis.

BACKGROUND: Previous interview-based studies have suggested that exposure to neurotoxicants including metals might be related to ALS. METHODS: We evaluated the relation of lead exposure to ALS, using both biological measures and interviews, in a case-control study conducted in New England from 1993 to 1996. Cases (N = 109) were recruited at two hospitals in Boston, MA. Population controls (N = 256) identified by random-digit dialing were frequency-matched to cases by age, sex, and region of residence within New England. RESULTS: Risk of ALS was associated with self-reported occupational exposure to lead (odds ratio [OR] = 1.9; 95% confidence interval [CI] = 1.1-3.3), with a dose response for lifetime days of lead exposure. Blood and bone lead levels were measured in most cases (N = 107) and in a subset of controls (N = 41). Risk of ALS was associated with elevations in both blood and bone lead levels. ORs were 1.9 (95% CI = 1.4-2.6) for each microg/dl increase in blood lead, 3.6 (95% CI = 0.6-20.6) for each unit increase in log-transformed patella lead, and 2.3 (95% CI = 0.4-14.5) for each unit increase in log-transformed tibia lead. CONCLUSIONS: These results are consistent with previous reports and suggest a potential role for lead exposure in the etiology of ALS.

Adult↗

Motor unit number estimation in neurologic disease.

Since its introduction 30 years ago, MUNE technologies have been increasingly refined and applied to a wide variety of neuromuscular disorders. Differences of opinion remain among MUNE investigators as to which method should be used; however, statistical and MPS MUNE currently enjoy the most widespread use. A number of methodological issues remain, including the development of detailed universal standards for each technique and modifications for the further enhancement of reproducibility. These issues are the subject of ongoing investigation. However, despite technical variability, the MUNE values obtained with different methods show good agreement, both in studies of healthy subjects and in patients with a variety of neurogenic processes. MUNE has been most successfully applied to patients with ALS and in animal models of motor neuron disease, providing significant insight into the pathophysiology of these disorders. These techniques are being increasingly incorporated into clinical therapeutic trials. MUNE is a technology offering important promise in the study of neuromuscular disease, enabling the collection of novel data in the living patient unobtainable by any other method.

Action Potentials↗