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Iliopsoas hematoma with femoral neuropathy presenting a diagnostic dilemma after spinal decompression.

STUDY DESIGN: Case report of an iliopsoas hematoma with femoral neuropathy appearing 8 weeks after a posterior spinal decompression procedure. OBJECTIVES: To describe a potential complication and differential diagnosis for nerve root symptoms following spinal decompression. SUMMARY OF BACKGROUND DATA: Iliopsoas hematoma is usually a complication of anticoagulation, hemophilia, or trauma. It has not been described previously as a complication of posterior spinal decompression. Femoral neuropathy results from compression within the iliopsoas compartment. METHODS: A 53-year-old woman reported pain in the right side of her groin and an increasing fixed flexion deformity of the right hip 8 weeks after a posterior, midline, spinal decompression. A femoral neuropathy later developed. Magnetic resonance imaging and computed tomography were performed. RESULTS: Imaging studies demonstrated a diffusely enlarged iliopsoas. Exploration revealed a large hematoma, which was evacuated. The compartment was fully decompressed with resolution of the nerve root symptoms within 48 hours. CONCLUSIONS: Iliopsoas pathology is a rare cause of nerve root symptoms and presented diagnostic difficulties after an apparently successful spinal decompression.

Compartment Syndromes↗

The role and timing of decompression in acute spinal cord injury: what do we know? What should we do?

The management of acute spinal cord injury has traditionally concentrated on preventative measures as well as, for the better part of the previous century, conservative care. Pharmacologic interventions, in particular intravenous methylprednisolone therapy, have shown modest improvements in clinical trials and are still undergoing evaluation. More recent interest has focused on the role of surgical reduction and decompression, particularly "early" surgery. A review of the current evidence available in the literature suggests that there is no standard of care regarding the role and timing of surgical decompression. There are insufficient data to support overall treatment standards or guidelines for this topic. There are, however, Class II data indicating that early surgery (<24 hours) may be done safely after acute SCI. Furthermore, there are Class III data to suggest a role for urgent decompression in the setting of 1) bilateral facet dislocation and 2) incomplete spinal cord injury with a neurologically deteriorating patient. Whereas there is biologic evidence from experimental studies in animals that early decompression may improve neurologic recovery after SCI, the relevant time frame in humans remains unclear. To date, the role of decompression in patients with SCI is only supported by Class III and limited Class II evidence and accordingly can be considered only a practice option. Accordingly, there is a strong rationale to undertake prospective, controlled trials to evaluate the role and timing of decompression in acute SCI.

Acute Disease↗

A minimally invasive technique for decompression of the lumbar spine.

STUDY DESIGN: The technical feasibility of percutaneous microendoscopic bilateral decompression of lumbar stenosis via a unilateral approach was evaluated in a human cadaver model. OBJECTIVES: The purpose of this study was to determine the feasibility of using a microendoscopic laminotomy technique to treat spinal stenosis. SUMMARY AND BACKGROUND DATA: Minimally invasive surgery is an important means of reducing tissue trauma and patient morbidity. This may prove to be essential in improving pain and in reducing postoperative stress responses and delayed sequelae that can lead to unfortunate complications after otherwise uneventful procedures. To date, minimally invasive lumbar endoscopic techniques have not been used to decompress the lumbar spinal canal. METHODS: In each of four cadavers, the laminae of L1 through L4 were subjected to one of four procedures consisting of unilateral microendoscopic laminotomy, bilateral microendoscopic laminotomy, unilateral open laminotomy, and bilateral open laminotomy. Every procedure was performed once at all levels. Computed tomography was performed before and after laminotomy to establish the extent of decompression of the spinal canal, and measurements of the midsagittal, interpedicular, and decompression diameters were taken. RESULTS: The four procedures were successfully performed at every level. Satisfactory decompression of the spinal canal was achieved regardless of the approach used. The exiting nerve roots were well visualized when any one of these techniques was used. Complications, including dural tears and facet complex instability, were independent of the procedure performed. CONCLUSION: Microendoscopic laminotomy can be used to decompress the spinal canal as effectively as an open laminotomy and may prove to be beneficial in decreasing the complications and morbidity of standard treatments for lumbar stenosis.

Cadaver↗

Bilateral core decompression for osteonecrosis of the femoral head.

UNLABELLED: Early treatment of osteonecrosis of the femoral head yields better results than late treatment. Because osteonecrosis frequently is bilateral, it often is advisable to treat both hips simultaneously. Core decompression is one of the more common methods of treatment; however the safety of doing simultaneous bilateral core decompression has been questioned. We sought to evaluate the safety and effectiveness of simultaneous bilateral core decompression compared with unilateral core decompression. One hundred ninety-three patients (276 hips) who had core decompression with bone grafting were followed up for 24 to 145 months. One hundred twenty-four procedures were unilateral and 152 were bilateral. Patients were evaluated by change in Harris hip score, radiographic progression, postoperative complications, and conversion to total hip arthroplasty. Total hip arthroplasty was required in 56 of 124 (45%) of hips in the unilateral, and 48 of 152 (32%) of hips in the bilateral group. Postoperative complications were similar. In the unilateral group there were two major and nine minor complications; in the bilateral group there were three major and 10 minor complications. When bilateral core decompression is indicated, it can be done simultaneously on both hips, allowing earlier treatment of the contralateral hip without risk of increased complications and possibly with a better outcome. It requires only one hospitalization and decreases recovery time compared with two separate procedures. Therefore, it provides advantages over procedures that cannot be done simultaneously on both hips. LEVEL OF EVIDENCE: Therapeutic study, Level IV (case series-no common or historical control group). See the Guidelines for Authors for a complete description of levels of evidence.

Adult↗

Video-assisted thoracoscopic decompression of tubercular spondylitis: clinical evaluation.

STUDY DESIGN: A prospective, observational study using a novel procedure of video-assisted thoracoscopy and conventional, long spinal instruments for decompression of dorsal tubercular spondylitis. OBJECTIVES: To assess the efficacy of video-assisted thoracoscopic decompression of dorsal tubercular spondylitis and compare it with the published data of classic thoracotomy procedures. SUMMARY OF BACKGROUND DATA: Surgical decompression of dorsal tubercular spine with the transpleural transthoracic method is a standard procedure. It is a major surgery with significant morbidity in terms of blood loss, intensive care unit (ICU) and hospital stay, postoperative incision pain, and chest tube insertion. A procedure that has the potential to achieve comparable recovery in patients with dorsal tubercular spondylitis but with a surgery of lesser magnitude and morbidity has immense potential. METHODS: There were 16 patients with mid-dorsal tubercular spondylitis with paraplegia/paraparesis requiring surgery who were included in the study. Every patient had a recent paradiscal disease at a single level. A soft tissue shadow was visible on plain radiographs of the spine, and conservative treatment for at least 3 weeks had shown no recovery. Patients with obvious respiratory insufficiency and likely to have significant pleural adhesions were excluded from the study. Single lung anesthesia and ipsilateral lung collapse using a double-lumen tube were administered. A 3-portal thoracoscopy approach was used, and conventional but long spinal instruments were used through an open port to decompress the spine. Patients were assessed for blood loss, duration of surgery, postoperative incision pain, duration of chest tube insertion, ICU and hospital stay, and neurologic recovery. Patients were observed for a minimum of 6 months. RESULTS: Of 16 patients, 14 (88%) had good neurologic recovery. In 1 patient, thoracoscopy was abandoned, and open thoracotomy was performed because of persistent bleeding. Another patient did not recover, and anterolateral decompression was performed 10 weeks after thoracoscopy. She recovered subsequently. Other complications included fracture of the sixth rib in 1 patient and breakage of suction tip in another. Adequate tissue biopsy for histopathologic examination could be obtained in all patients. Duration of surgery was 223 minutes (+/-56), blood loss was 497 ml (+/-302), and blood transfusion was required in 3 patients (3 U in 1 and 1 U in 2). Postoperative analgesic (tramadol) was 243 mg (+/-70) for 2-4 days (median 3), median hospital stay was 5.5 days (range 4-9), chest tube requirement was 3 days (range 2-7), and 2 patients were required to stay in the ICU for 1 day each. CONCLUSION: Video-assisted thoracoscopic decompression of tubercular dorsal spondylitis is a viable option to achieve significant neurologic recovery with less morbidity, blood requirement, and hospital stay compared to the open thoracotomy procedures.

Adolescent↗

Customized, single-incision, three-wall orbital decompression.

PURPOSE: To present the clinical outcome in 55 consecutive patients by using a customized, single-incision, 3-wall orbital decompression. METHODS: A retrospective chart review was performed of 97 customized, single-incision, 3-wall decompressions in 55 consecutive patients within one surgeon's practice. A standardized surgical technique featuring lateral small-incision, 3-wall decompression with specific "strut" preservation was used in all patients. Success of the procedure was assessed on the basis of the amount of proptosis reduction achieved, as measured by the difference in Hertel exophthalmometry measurements, and by improvement in or preservation of preoperative visual acuity and color vision in the setting of compressive optic neuropathy. Subjective diplopia was recorded before and after surgery, as was the presence of extraocular muscle restriction. RESULTS: A total of 97 orbital decompressions in 55 consecutive patients were reviewed. The majority of surgeries were performed for disfiguring proptosis with some degree of exposure-related symptoms (81%), with other indications including compressive optic neuropathy (17%), and pain (2%). The average amount of proptosis reduction achieved at 3 months was 5 mm (range, 1 to 11 mm). Visual acuity in patients with compressive optic neuropathy improved an average of 2 lines on the standard Snellen chart testing (range, 1 to 5). Color vision improved an average of 5 Ishihara plates (range, 0 to 13). Seventy-one percent of patients had subjective diplopia before surgery; 21% of these patients reported improvement or complete resolution of diplopia after surgery. Of the 29% of patients without preoperative subjective diplopia, all but one (1.8 of total patients) remained symptom free. CONCLUSIONS: We find that a customized, single-incision, 3-wall orbital decompression provides adequate decompression and proptosis reduction while minimizing postoperative strabismus and providing an aesthetically desirable result.

Adult↗

Orbital decompression in Graves' orbitopathy: efficacy and safety.

BACKGROUND: Vision-threatening compressive optic neuropathy occurs in a minority of patients with Graves' orbitopathy. Surgical orbital decompression, systemic glucocorticoids and orbital irradiation are treatment options. Orbital decompression is being performed on an increasing number of patients for other indications such as corneal exposure and disfiguring proptosis. AIMS: To examine the outcomes of surgical orbital decompression for Graves' orbitopathy by one surgeon. METHODS: An analysis of a retrospective case series of 88 consecutive patients (151 orbits) who underwent orbital decompression for Graves' orbitopathy between April 1991 and November 2002. RESULTS: The indication for surgery was compressive optic neuropathy for 57 orbits; 94 orbits had an indication other than optic neuropathy. Of those with optic neuropathy, 94% had improvement or maintenance of visual acuity and 93% had improvement in colour vision after decompression. The overall mean reduction in proptosis was 4.7 mm. Of all patients, 30% had new or worsened diplopia postdecompression. Patients with optic neuropathy were more likely to develop new or worsened diplopia than those without optic neuropathy. CONCLUSIONS: Orbital decompression is a safe procedure and effective in improving vision in compressive optic neuropathy. It is effective in reducing proptosis, therefore improving exposure keratopathy and cosmesis. However, new or worsened diplopia is a significant postoperative complication, and subsequent strabismus surgery might be required. This is an important consideration, especially for patients undergoing surgery for non-optic neuropathy indications.

Adult↗

Factors predictive of fatality in massive middle cerebral artery territory infarction and clinical experience of decompressive hemicraniectomy.

To determine the factors predictive of fatality in massive middle cerebral artery (MCA) territory infarction and outcome of decompressive hemicraniectomy, 62 patients who were retrospectively verified with first event massive MCA infarctions were enrolled in this study. Amongst them, 21 received decompressive hemicraniectomy during hospitalization. Clinical data between early and late hemicraniectomy groups were also compared. Significant deterioration occurred in 40 cases, 21 of whom received decompressive hemicraniectomy. The other 19 received conservative treatment. The mortality rate of these 40 cases between decompressive hemicraniectomy and conservative treatment was 29% (six of 21) and 42% (eight of 19), respectively. Factors that predicted fatalities in our massive MCA infarction patients with or without decompressive hemicraniectomy were total scores of baseline GCS at the time of admission, associated with coronary artery diseases, and significant deterioration during hospitalization. This study confirms the lifesaving procedure of hemicraniectomy that prevents death in patients deteriorating because of cerebral edema after infarction, although it may produce severe disability with an unacceptably poor quality of life in survival. Despite high mortality and morbidity, decompressive hemicraniectomy to prevent cerebral herniation when significant deterioration is demonstrated are essential for maximizing the potential for survival.

Adult↗

Systematic literature review of spinal decompression via motorized traction for chronic discogenic low back pain.

OBJECTIVE: The objective of this study was to systematically review the literature to assess the efficacy of nonsurgical spinal decompression achieved with motorized traction for chronic discogenic lumbosacral back pain. DESIGN: Computer-aided systematic literature search of MEDLINE and the Cochrane collaboration for prospective clinical trials on adults with low back pain in the English literature from 1975 to October 2005. Methodologic quality for each study was assessed. Studies were included if the intervention group received motorized spinal decompression and the comparison group received sham or another type of nonsurgical treatment. RESULTS: Data from 10 studies were fully analyzed. Seven studies were randomized controlled trials using various apparatus types. Because of this low number, we also analyzed three nonrandomized case series studies of spinal decompression systems. As the overall quality of studies was low and the patient groups heterogeneous, a meta-analysis was not appropriate and a qualitative review was undertaken. Sample sizes averaged 121 patients (range 27-292), with six of the seven randomized studies reporting no difference with motorized spinal decompression and one study reporting reduced pain but not disability. The three unrandomized studies (no control group) of motorized spinal decompression found a 77% to 86% reduction in pain. CONCLUSIONS: These data suggest that the efficacy of spinal decompression achieved with motorized traction for chronic discogenic low back pain remains unproved. This may be, in part, due to heterogeneous patient groups and the difficulties involved in properly blinding patients to the mechanical pulling mechanism. Scientifically more rigorous studies with better randomization, control groups, and standardized outcome measures are needed to overcome the limitations of past studies.

Chronic Disease↗

Decompression outcome following saturation dives with multiple inert gases in rats.

This investigation examined the question of whether gas mixtures containing multiple inert gases provide a decompression advantage over mixtures containing a single inert gas. Unanesthetized male albino rats, Rattus norvegicus, were subjected to 2-h simulated dives at depths ranging from 145 to 220 fsw. At pressure, the rats breathed various He-N2-Ar-O2 mixtures (79.1% inert gas-20.9% O2); they were then decompressed rapidly (within 10 s) to surface pressures. The probability of decompression sickness (DCS), measured either as severe bends symptoms or death, was related to the experimental variables in a Hill equation model incorporating parameters that account for differences in the potencies of the three gases and the weight of the animal. The relative potencies of the three gases, which affect the total dose of decompression stress, were determined as significantly different in the following ascending order of potency: He less than N2 less than Ar; some of these differences were small in magnitude. With mixtures, the degree of decompression stress diminished as either N2 or Ar was replaced by He. No obvious advantage or disadvantage of mixtures over the least potent pure inert gas (He) was evident, although limits to the expectation of possible advantage or disadvantage of mixtures were defined. Also, model analysis did not support the hypothesis that the outcome of decompression with multiple inert gases in rats under these experimental conditions can be explained totally by the volume of gas accumulated in the body during a dive.

Animals↗

Effect of N2-He-O2 on decompression outcome in rats after variable time-at-depth dives.

No study of decompression sickness has examined both variable gas mixtures and variable time at depth to the point of statistical significance. This investigation examined the effect of N2-He-O2 on decompression outcome in rats after variable time-at-depth dives. Unanesthetized male albino rats were subjected to one of two series of simulated dives: 1) N2-He-O2 dives (20.9% O2) at 175 feet of seawater fsw) and 2) N2-O2 dives (variable percentage of O2; depths from 141 to 207 fsw). Time at depth ranged from 10 to 120 min; rats were then decompressed within 10 s to surface pressure. The probability of decompression sickness (severe bends symptoms or death) was analyzed with a Hill equation model, with parameters for gas potency and equilibrium time for the three gases and weight of the animal. Relative potencies for the three gases were of similar magnitude for bends and statistically different for death in ascending order: O2 less than He less than N2. Estimated gas uptake rates were different. N2 took three to four times as long as He to reach full effect; the rate of O2 appeared to be considerably shorter than that of N2 or He. The large influence of O2 on decompression outcome questions the simplistic view that O2 cannot contribute to the decompression requirement.

Animals↗

Mixed-gas model for predicting decompression sickness in rats.

A mixed-gas model for rats was developed to further explore the role of different gases in decompression and to provide a global model for possible future evaluation of its usefulness for human prediction. A Hill-equation dose-response model was fitted to over 5,000 rat dives by using the technique of maximum likelihood. These dives used various mixtures of He, N(2), Ar, and O(2) and had times at depth up to 2 h and varied decompression profiles. Results supported past findings, including 1) differences among the gases in decompression risk (He < N(2) < Ar) and exchange rate (He > Ar approximately N(2)), 2) significant decompression risk of O(2), and 3) increased risk of decompression sickness with heavier animals. New findings included asymmetrical gas exchange with gas washout often unexpectedly faster than uptake. Model success was demonstrated by the relatively small errors (and their random scatter) between model predictions and actual incidences. This mixed-gas model for prediction of decompression sickness in rats is the first such model for any animal species that covers such a broad range of gas mixtures and dive profiles.

Animals↗

Optimal oxygen pressure and time for reduced bubble formation in the N2-saturated decompressed prawn.

Bubbles that grow during decompression are believed to originate from preexisting gas micronuclei. We showed that pretreatment of prawns with 203 kPa oxygen before nitrogen loading reduced the number of bubbles that evolved on decompression, presumably owing to the alteration or elimination of gas micronuclei (Arieli Y, Arieli R, and Marx A. J Appl Physiol 92: 2596-2599, 2002). The present study examines the optimal pretreatment for this assumed crushing of gas micronuclei. Transparent prawns were subjected to various exposure times (0, 5, 10, 15, and 20 min) at an oxygen pressure of 203 kPa and to 5 min at different oxygen pressures (PO2 values of 101, 151, 203, 405, 608, and 810 kPa), before nitrogen loading at 203 kPa followed by explosive decompression. After the decompression, bubble density and total gas volume were measured with a light microscope equipped with a video camera. Five minutes at a PO2 of 405 kPa yielded maximal reduction of bubble density and total gas volume by 52 and 71%, respectively. It has been reported that 2-3 h of hyperbaric oxygen at bottom pressure was required to protect saturation divers decompressed on oxygen against decompression sickness. If there is a shorter pretreatment that is applicable to humans, this will be of great advantage in diving and escape from submarines.

Animals↗

The Chiari pseudotumor cerebri syndrome: symptom recurrence after decompressive surgery for Chiari malformation type I.

INTRODUCTION: The etiology of Chiari malformation type I (CM1) as well as other anomalies associated with CM1 remains poorly defined. We have noted the presence of elevated CSF pressures with small ventricles, consistent with the pseudotumor cerebri (PTC) syndrome in a group of CM1 patients that did not respond over the long term to posterior fossa decompression. In order to better understand this association, we reviewed a series of CM1 patients treated by posterior fossa decompression to define the prevalence and nature of post-Chiari PTC. METHODS: We performed a retrospective chart review of 192 patients diagnosed with CM1 and treated by posterior fossa decompression. Patients who failed to respond to surgery were evaluated by CINE MR flow studies to assess presence of CSF flow at the foramen magnum and then by lumbar puncture if flow was present. The diagnosis of Chiari PTC was defined by recurrence of Chiari-like symptoms after decompression, elevated lumbar CSF pressure in the absence of ventriculomegaly, and transient resolution of symptoms with large volume lumbar CSF drainage. RESULTS: Thirty-six of 192 patients did not improve with surgical decompression. Fifteen of 36 operative CM1 patients (41.6%) were found to have Chiari PTC. The most frequent symptoms of CM1/PTC patients were head pain, body aches, and balance difficulties. Three patients also experienced visual complaints. The mean maximum lumbar CSF pressure documented in this cohort was 26 cm of water in adults and 25.3 in children. All patients received treatment for the CM1/PTC that culminated with CSF shunt placement in 14/15. Seven of 9 pediatric patients had significant symptom resolution while 6/6 adult patients remained variably symptomatic. CONCLUSION: CM1 and PTC co-exist in a surprising percentage of failed operative CM1 patients and present with a syndrome that is difficult to treat. The etiology of this association after Chiari decompression is unclear, though perhaps posterior fossa surgery in the setting of abnormal anatomy and potentially anomalous CSF flow dynamics contributes to CSF malabsorption and resultant or coexistant PTC.

Adult↗

Bone regrowth and recurrence of symptoms following decompression in the infant with Chiari II malformation.

The Chiari malformation is the leading cause of death in infants with myelodysplasia. While controversial, early operative decompression may halt or reverse the progression of symptoms. If symptoms recur after initial improvement, attention is directed to assuring shunt patency and the absence of hydromyelia and not to reassessment of the area of bone decompression. Three infants are presented who initially improved after Chiari decompression only to have recurrence of symptoms several months after surgery. In each case, regrowth of bone at the site of previous decompression was documented radiographically and at surgery. In one case, regrowth of bone occurred twice. Each child stabilized or improved following further decompressive surgery. A theory of bone regrowth and a possible means of prevention are discussed. If recurrence of Chiari symptoms occurs after decompressive surgery in infants, thin section CT with bone windows through the operative site should be performed to exclude bone regrowth and recurrent compression.

Arnold-Chiari Malformation↗

Delayed decompressive surgery increases apparent diffusion coefficient and improves peri-infarct perfusion in rats with space-occupying cerebral infarction.

BACKGROUND AND PURPOSE: There is no conclusive experimental support that decompressive surgery in late stages of space-occupying cerebral infarction will improve outcome. We studied the effects of delayed decompressive surgery on the development of tissue damage, edema formation, and cerebral perfusion with different MRI techniques in a rat model of space-occupying cerebral infarction. METHODS: Permanent middle cerebral artery (MCA) occlusion was performed in 6 Fisher 344 rats. Decompressive surgery was performed 17 hours after the occlusion. Each animal was assessed before surgery and 2 and 4 hours after surgery by means, of diffusion-weighted T2-weighted, and flow-sensitive alternating inversion recovery perfusion-weighted MRI. Ischemic damage was also evaluated in hematoxylin-eosin-stained brain sections. RESULTS: Lesion volume as derived from apparent diffusion coefficient (ADC) maps decreased from 522+/-98 mm3 before to 405+/-100 mm3 (P=0.016) 4 hours after decompressive surgery, whereas lesion volume from T2 maps increased from 420+/-66 mm3 before to 510+/-92 mm3 (P=0.048) 4 hours after decompressive surgery. Midline shift decreased from 1.4+/-0.1 mm to 0.5+/-0.2 mm (P=0.001). Blood flow in the noninfarcted area of the ipsilateral hemisphere improved from 25+/-9 mL/min/100 g of tissue to 38+/-9 mL/min/100 g of tissue (P=0.035). Despite the pseudonormalization of ADC, irreversible damage was found in the entire MCA territory on histological evaluation. CONCLUSIONS: In rats with space-occupying cerebral infarction, delayed decompressive surgery leads to a decrease in lesion volume derived from ADC maps, which is probably because of an increase of extracellular water formation. There are no signs that this reflects rescue of ischemic tissue.

Animals↗

Endoscopically assisted fasciotomy: description of technique and in vitro assessment of lower-leg compartment decompression.

We describe a reliable method of endoscopically assisted fasciotomy for treating chronic exertional compartment syndrome in the lower leg and for assessing compartment decompression in an in vitro model. Endoscopically assisted fasciotomy was performed in the anterior and lateral compartments of 14 matched, fresh-frozen, through-the-knee amputation specimens using a 30 degrees endoscope. A one-incision technique used in 4 specimens failed to provide complete visualization, and a two-incision technique was then performed in 10 specimens. After decompression, the skin and subcutaneous tissues were removed to assess adequacy of release, nerve decompression, anatomic course of the superficial peroneal nerve, and potential complications. Endoscopic visualization of the fascial layer and subcutaneous neurovascular structures permitted consistent compartment decompression. Fascial release, expressed as a percentage of length from the proximal origin of the fascia to the inferior retinaculum, was 99.8% (range, 98.4% to 100%) for the anterior compartment and 96.4% (range, 82% to 100%) for the lateral compartment. There were no retained fascial bands, unrecognized fascial defects, or neurovascular injuries. Optimal visualization with endoscopically assisted fasciotomy may improve clinical outcome through 1) reliable compartment decompression, 2) identification of fascial defects, 3) decompression of nerve branches at the fascial foramen, and 4) reduction of iatrogenic risk to neurovascular and muscular structures.

Compartment Syndromes↗

Kinetic and dynamic models of diving gases in decompression sickness prevention.

Decompression sickness is a complex phenomenon involving gas exchange, bubble dynamics and tissue response. Relatively simple deterministic compartmental models using empirically derived parameters have been the mainstay of the practice for preventing decompression sickness since the early 1900s. Decades of research have improved our understanding of decompression physiology, and the insights incorporated in decompression models have allowed people to dive deeper into the ocean. However, these efforts have not yet, and are unlikely in the near future, to result in a 'universal' deterministic model that can predict when decompression sickness will occur. Divers using current recreational dive computers need to be aware of their limitations. Probabilistic models based on the estimation of parameters using modern statistical methods from large databases of dives offer a new approach and can provide a means of standardisation of deterministic models. Future improvements in decompression practice will depend on continued improvement in understanding the kinetics and dynamics of gas exchange, bubble evolution and tissue response, and the incorporation of this knowledge in risk models whose parameters can be estimated from large databases of human and animal data.

Decompression Sickness↗