PubMed Health⌕ Search

PubMed · 12371026

Pathophysiology of nerve compression.

Abstract

Both ischemic and mechanical factors are involved in the development of compression neuropathy. Experimental studies suggest a dose response curve such that the greater the duration and amount of pressure, the more significant is neural dysfunction. With changes of axonal injury, significant neurologic dysfunction would be anticipated; however, the vast majority of patients with CTS present with symptoms in association with electrophysiologic findings of demyelination (prolonged latency). Frequently, the prolongation in latency is minimal and some patients may even present with normal electrodiagnostic studies, still complaining of significant symptomatology. This would support the concept that in the majority of patients with CTS, the symptoms relate to problems with the connective tissue "container" of the nerve rather than pathology of the nerve fiber itself. This would be in keeping with the histopathologic findings of fibrosis, with thickening of the external epineurium and perineurium. These changes would interfere with blood flow as the vessels pass through the epineurium and perineurium and produce dynamic ischemia to the nerve fibers. As well, this fibrosis would decrease the excursion of the nerve fibers, resulting in traction, and prevent the nerve fibers themselves from going through a full range of movement without traction and decreased gliding. The importance of neural gliding and movement of the nerve in the extremity has been recently emphasized in the clinical management of patients with multilevel nerve compression. Clinical maneuvers that put the nerve on stretch will provoke patients' symptoms and have been used to diagnose specific compression neuropathies (neural tension test). Similarly, physical therapy modalities to stretch the nerves and restore neural gliding are frequently successful in relieving patients' symptoms [33]. This physical therapy approach is based on the premise that the connective tissue "container" of the nerve is tight and short and needs to be mobilized. This is in keeping with the histopathologic findings of increased connective tissue at the perineurial and epineurial levels. A greater understanding of the pathophysiology of compression neuropathy will have immediate impact on our management of this problem and likely result in emphasis on conservative management and physical therapy rather than surgical intervention.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Susan E Mackinnon. 2002. Pathophysiology of nerve compression.. https://doi.org/10.1016/s0749-0712(01)00012-9

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

A pilot study comparing two manual therapy interventions for carpal tunnel syndrome.

OBJECTIVE: The purpose of this study was to determine the clinical efficacy of manual therapy interventions for relieving the signs and symptoms of carpal tunnel syndrome (CTS) by comparing 2 forms of manual therapy techniques: Graston Instrument-assisted soft tissue mobilization (GISTM) and STM administered with the clinician hands. METHODS: The study was a prospective comparative research design in the setting of a research laboratory. Volunteers were recruited with symptoms suggestive of CTS based upon a phone interview and confirmed by electrodiagnostic study findings, symptom characteristics, and physical examination findings during an initial screening visit. Eligible patients with CTS were randomly allocated to receive either GISTM or STM. Interventions were, on average, twice a week for 4 weeks and once a week for 2 additional weeks. Outcome measures included (1) sensory and motor nerve conduction evaluations of the median nerve; (2) subjective pain evaluations of the hand using visual analog scales and Katz hand diagrams; (3) self-reported ratings of symptom severity and functional status; and (4) clinical assessments of sensory and motor functions of the hand via physical examination procedures. Parametric and nonparametric statistics compared treated CTS hand and control hand and between the treatment interventions, across time (baseline, immediate post, and at 3 months' follow-up). RESULTS: After both manual therapy interventions, there were improvements to nerve conduction latencies, wrist strength, and wrist motion. The improvements detected by our subjective evaluations of the signs and symptoms of CTS and patient satisfaction with the treatment outcomes provided additional evidence for the clinical efficacy of these 2 manual therapies for CTS. The improvements were maintained at 3 months for both treatment interventions. Data from the control hand did not change across measurement time points. CONCLUSIONS: Although the clinical improvements were not different between the 2 manual therapy techniques, which were compared prospectively, the data substantiated the clinical efficacy of conservative treatment options for mild to moderate CTS.

Carpal Tunnel Syndrome↗

Finger flexor motor control patterns during active flexion: an in vivo tendon force study.

An in vivo tendon force measurement system was used to evaluate index finger flexor motor control patterns during active finger flexion. During open carpal tunnel release surgery (N=12) the flexor digitorum profundus (FDP) and flexor digitorum superficilias (FDS) tendons were instrumented with buckle force transducers and participants performed finger flexion at two different wrist angles (0 degrees or 30 degrees ). During finger flexion, there was concurrent change of metacarpophalangeal (MCP) and proximal interphalangeal (PIP) joint angles, but the FDP and FDS tendon force changes were not concurrent. For the FDS tendon, no consistent changes in force were observed across participants at either wrist angle. For the FDP tendon, there were two force patterns. With the wrist in a neutral posture, the movement was initiated without force from the finger flexors, and further flexion (after the first 0.5s) was carried out with force from the FDP. With the wrist in a flexed posture, the motion was generally both initiated and continued using FDP force. At some wrist postures, finger flexion was initiated by passive forces which were replaced by FDP force to complete the motion.

Carpal Tunnel Syndrome↗