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Complications in the treatment of acute spinal injury.

Complications may occur during any phase of the treatment process for acute spinal injuries. An awareness of the most common problems is the most powerful tool that the physician has to prevent him or her from repeating at least some of the errors of others.

Acute Disease↗

Sideline and ringside evaluation for brain and spinal injuries.

Participation in contact and collision sports carries an inherent risk of injury to the athlete, with damage to the nervous system producing the most potential for significant morbidity and death. Neurological injuries suffered during athletic competition must be treated promptly and correctly to optimize outcome, and differentiation between minor and serious damage is the foundation of sideline/ringside management of the injury. In this article the authors present a guide to the sideline or ringside identification and management of head and spinal injuries.

Athletic Injuries↗

Epidemiology, demographics, and pathophysiology of acute spinal cord injury.

Spinal cord injury occurs through various countries throughout the world with an annual incidence of 15 to 40 cases per million, with the causes of these injuries ranging from motor vehicle accidents and community violence to recreational activities and workplace-related injuries. Survival has improved along with a greater appreciation of patterns of presentation, survival, and complications. Despite much work having been done, the only treatment to date known to ameliorate neurologic dysfunction that occurs at or below the level of neurologic injury has been intravenous methylprednisolone therapy. Much research over the past 30 to 40 years has focused on elucidating the mechanisms of spinal cord injury, with the complex pathophysiologic processes slowly being unraveled. With a greater understanding of both primary and secondary mechanisms of injury, the roles of calcium, free radicals, sodium, excitatory amino acids, vascular mediators, and apoptosis have been elucidated. This review examines the epidemiology, demographics, and pathophysiology of acute spinal cord injury.

Age Factors↗

Clinical fundaments for rehabilitation treatment in spinal cord injury.

Spinal cord injury leads to a severe disabling syndrome, which most often affects the young. The major etiologic factor in spinal cord injuries is trauma. Patients' rehabilitation is started in the acute phase, soon after the trauma occurs, mainly through preventive care against the formation of pressure sores, deformities of the palsy segments, proper vesical and bowel emptying and care with vasomotor alterations. The rehabilitation process continues at a specialized rehabilitation center, searching the best functional performance of each patient, according to the type and level of the spinal cord injury. This work shows fundaments for the rehabilitation treatment.

Electric Stimulation Therapy↗

A review of the readmissions of patients with tetraplegia to the Regional Spinal Injuries Centre, Southport, United Kingdom, between January 1994 and December 1995.

Patients with chronic tetraplegia are prone to develop unique clinical problems which require readmission to specialised centres where the health professionals are trained specifically to diagnose, and treat the diseases afflicting this group of patients. An appraisal of the readmission pattern of tetraplegic patients will provide the necessary data for planning allocation of beds for treatment of chronic tetraplegic patients. Hospital records of patients with tetraplegia readmitted to the Regional Spinal Injuries Centre, Southport, UK between 1 January 1994 and 31 December 1995 were analyzed to find out the number of tetraplegic patients who required readmission, reasons for readmission, duration of hospital stay, and mortality among patients readmitted. During the 2-year period, 155 tetraplegic patients were readmitted and 44 of them (28.4%) required more than one readmission (total readmission episodes: 221); these patients occupied 4.5 beds which is equivalent to 11.5% of the total bed capacity of the spinal unit. Among the reasons for the readmissions, evaluation and care of urinary tract disorders topped the list with 96 readmission episodes (43.43%) involving 70 patients; the median hospital stay was 3 days, and 18 patients (26%) required more than one readmission during this period. One hospital bed was occupied by the tetraplegic patients requiring treatment/evaluation of urinary tract disorders. Assessment and treatment of cardio-respiratory diseases was the second most common reason for readmission with 51 readmission episodes pertaining to 27 patients having a median hospital stay of 6 days; 13 patients (48%) were readmitted more than once within this 2-year period. Treatment of cardio-respiratory diseases in chronic tetraplegic patients required 1.2 hospital beds yearly. Only five tetraplegic patients were readmitted for treatment of pressure sore(s); however they had a prolonged hospital stay (median duration: 101 days). Social reasons accounted for 13 readmission episodes concerning nine patients who stayed in the hospital for varying periods (median: 6.5 days; mean: 35 days). Four tetraplegic patients readmitted with acute chest infection expired. An 81 year-old tetraplegic died of myocardial infarction. Urinary sepsis, renal insufficiency, respiratory failure and intra-cerebral haemorrhage accounted for the demise of a 41 year-old tetraplegic patient following surgical removal of a large, impacted stone at the pelviureteric junction. A tetraplegic patient who was admitted with haematuria subsequently underwent cystectomy for squamous cell carcinoma of the urinary bladder; he developed secondaries and expired 5 months later. As more patients with high cervical spinal cord injury survive the initial period of trauma, and as the life expectancy of tetraplegic patients increases, it is likely that greater numbers of tetraplegic patients will be requiring readmission to spinal injuries centre. Although it may be possible to prevent some of the complications of spinal cord injury and hence the need for a readmission, progress in medicine and rehabilitation technology will create additional demands for readmissions of chronic tetraplegic patients in order to implement the newer therapeutic strategies. Thus a change in the pattern of readmission of chronic tetraplegic patients is likely to be the future trend and this should be taken into account while making plans for providing the optimum care to chronic tetraplegic patients.

Adult↗

[Morphologic changes in spinal cord of patients with spinal injuries who died in hospital].

Morphologic changes in the spine have been investigated in patients with spinal injuries who died in hospital. The incidence of injuries has been evaluated as 9.3% of mechanical injuries. Purposeful search for possible injuries increased the rate of detection of injuries of the spine and the cord. Spinal cord can be impaired without involving the osseous formations and spinal ligaments. Edema of the cord tissue develops during the early period of injury and prevents the detection of injuries, persisting for a long time after the injury. Edemas are detected even in subjects who died at the site of accident.

Adult↗

The spinal injury learning series: an experimental test.

A new rehabilitation technique, developed for the care of patients with traumatic spinal cord injuries (SCI), the Spinal Injury Learning Series (SILS) combines learning and communications methods to identify the behavioral needs of SCI patients and to provide systematic training for improving cognitive and psychomotor proficiencies. Emphasizing SCI information and procedures (catheter, bowel, skin-inspection, pressure-relief), 297 representative patients were tested at 6 regional SCI centers over a 29-month period. Statistical comparisons of experimental (SILS) and control (traditional) groups indicated higher average cognitive and psychomotor scores for SILS than for regular patients even a year after injury. Evaluations of functional independence, although varying with procedures, revealed faster acquisition and better retention with SILS. Psychomotor independence varied inversely with level of injury, and mean differences between the experimentals and controls decreased somewhat with time, but overall SILS was significantly more effective than current treatments.

Adult↗

Effect of naloxone on the bladder activity of rabbits with acute spinal injury.

BACKGROUND: Naloxone enhances bladder activity in patients with chronic spinal cord injury. However, there are few reports on naloxone for bladder morbidity in acute spinal cord injury. METHODS: We performed a prospective, controlled study of the effects of naloxone on bladder function in rabbits with and without surgical transection of the spinal cord at the 10th thoracic vertebra. Acute and chronic stages of injury were defined according to bladder function. Naloxone was given intravenously at both stages, and intrathecally at the acute stage. Bladder activity was monitored by cystometry. Blood concentrations of methionine-enkephalin were measured by radioimmunoassay. RESULTS: Spinal cord injuries were acute 1 or 2 days after surgery, and chronic after 1 or 2 weeks. Bladder capacity significantly decreased after 0.01 mg of intravenous naloxone in uninjured control rabbits, and after 0.03 mg of intravenous naloxone in rabbits with chronic-phase injuries. During the acute-injury phase, 0.3 mg of intravenous naloxone, or 0.02 mg of intrathecal naloxone, was necessary to evoke the micturition reflex. No significant changes in blood enkephalin levels were seen before or after spinal cord injury. CONCLUSION: In rabbits with acute spinal cord injury, intrathecal naloxone evoked the micturition reflex at a much lower dose than did intravenous naloxone. Intrathecal naloxone promises to become a new therapy for the acute stage of spinal cord injury for active recovery of bladder function, and could replace current therapy.

Animals↗

Biological interventions for spinal cord injury.

Spinal cord injury is frequently followed by the loss of supraspinal control of sensory, autonomus and motor functions at sublesional level. To enhance recovery in patients with spinal cord injuries, three fundamental strategies have been developed in experimental models. These strategies involve three different time points for postlesional intervention in the spinal cord. Neuroprotection soon after injury uses pharmacological tools to reduce the progressive secondary injury processes that follow during the first week after the initial lesion occurs, in order to limit tissue damage. A second strategy, which is initiated shortly after the lesion occurs, aims at promoting axonal regeneration by acting pharmacologically on inhibitors or barriers of regeneration, or by the application of cell or gene therapy as a source of neurotrophic factors or as a bridge or support to enhance the regeneration of lesioned axons. Finally, a mid-term substitutive strategy is the management of the sublesional spinal cord by sensorimotor stimulation or the supply of missing key afferents, such as monoaminergic systems. These three strategies are reviewed. Only a combination of these different approaches can provide an optimal basis for potential therapeutic interventions aimed at functional recovery after spinal cord injury.

Animals↗

Cellular transplantation and spinal cord injury.

Spinal cord injury is often characterized by immediate and irreversible loss of sensory and motor functions below the level of injury. Cellular transplantation in various experimental models of spinal cord injury has been used as a strategy for reducing deficits and improving functional recovery. The general strategy has been aimed at promoting regeneration of intrinsic injured axons with the development of alternative pathways that facilitate a partial functional connection. Other objectives of cellular transplantation studies have included replacement of lost cellular elements, alleviation of chronic pain, and modulation of the inflammatory response after injury. This review focuses on the cell types that have been used in spinal cord transplantation studies in the context of evolving biological perspectives, technological advances, and new therapeutic strategies and serves as a point of reference for future studies.

Animals↗

Clinical management of chronic pain in spinal cord injury.

Spinal cord injury (SCI) can cause paralysis; sensory impairment; autonomic nervous system dysfunction; and bowel, bladder, and sexual dysfunction. These impairments may lead to immobility, physical dependence, and alterations in lifestyle and self-esteem. The addition of chronic, intractable pain to these impairments can be truly devastating. Chronic pain superimposed on spinal cord injury can virtually drain the individual of strength, motivation, and will. For the spinal cord injury survivor who already faces functional loss, severe pain can further restrict even the diversional activities that are available. Thus, it may become impossible for the individual to escape his or her pain even temporarily. The various medical, physical, and surgical treatments considered to be efficacious in treating this pain are reviewed. However, although chronic pain in SCI may be managed by these therapies, a permanent cure may not result.

Chronic Disease↗

Spinal injuries in ice hockey players, 1966-1987.

A registry, established by the Committee on Prevention of Spinal Cord Injuries Due to Hockey, of major injuries to the spine or spinal cord sustained while playing ice hockey contains 117 cases entered between January 1966 and March 1987; 112 of these injuries were sustained in Canada. Between 1981 and 1986 up to 15 hockey related major spinal injuries were reported in Canada each year. Most injuries occurred in teenagers and players under 30 years of age who were playing in supervised games. The most common cause of injury was a push or check from behind, which caused the player to be catapulted head first into the boards. The authors describe the programs currently being implemented to prevent the occurrence of major spinal injuries. Unfortunately, these programs have not decreased the number of injuries reported annually.

Adolescent↗

A review of the adaptability and recovery of locomotion after spinal cord injury.

Spinal cord injury (SCI) is associated with multiple motor problems leading to the alteration and limited adaptation in the walking and postural behavior. This review addresses recent findings on locomotor and postural adaptations after spinal cord injury. The adaptation of the locomotor behavior to behavioral goals and external constraints constitute important functional prerequisites in the recovery of locomotion after spinal cord injury. Functional prerequisites in locomotion include coping with changes in speed, slope obstacle, weight support, interaction with walking aids, energy consumption and attentional demands. Various treatment approaches such as locomotor training using body weight support (BWS) and functional electrical stimulation (FES) will be discussed, in the context of functional prerequisites necessary in the recovery of locomotion. Understanding locomotor and postural adaptations will lead to a better appreciation of the normal and dysfunctional mechanisms, and culminate eventually in the development of appropriate rehabilitation assessment and treatment strategies.

Adaptation, Physiological↗

Long-term psychosocial effects of spinal cord injury.

Spinal cord injury typically occurs in males during late adolescence or young adulthood. These individuals face the developmental challenges of adulthood with significant restrictions in mobility and position. The purposes of this study were to examine how spinal cord injured male experience these limitations and to identify how they fulfill adult developmental tasks/expectations. Interviews on this topic were conducted with a convenience sample of 5 spinal cord injured men between the ages of 30 and 45 who had been injured at least 10 years. The findings of this study indicated that the impairment of mobility and position that resulted from the spinal cord injury did have a significant impact upon the developmental tasks/expectations of adulthood. Mobility and position restrictions delayed and/or interfered with the establishment of close personal relationships and the development of a satisfying career. Information also was obtained about the process of coping with the paralysis of a spinal cord injury over time.

Activities of Daily Living↗

Prehospital clinical findings associated with spinal injury.

OBJECTIVE: The objective of this study was to identify clinical findings that are associated with spinal fracture and/or spinal cord injuries in prehospital trauma patients. METHODS: A retrospective chart review was performed at three tertiary referral centers in Southeastern Michigan. All charts of patients with spinal fractures or spinal cord injuries during 1992 and 1993 were reviewed. Patients with available prehospital records were included in the study analysis. Prehospital data points included documentation of head injury; altered mental status; neurologic deficit; evidence of intoxication; cervical, thoracic, and lumbar pain or tenderness; nonspecified back pain or tenderness; and a narrative for all other documented injuries. Hospital data collected included type and level of spinal injury and age and sex of the patient. RESULTS: Of 867 injury patients identified, 536 were excluded, leaving 346 analyzable fractures in 331 patients. The 346 spinal fractures/spinal cord injuries were distributed as: 100 (29%) cervical, 83 (24%) thoracic, 128 (37%) lumbar, and 35 (10%) sacral. Prehospital documentation of altered mental status, neurologic deficit, evidence of intoxication, spinal pain, or suspected extremity fracture was found for every patient with a cervical injury, 82/83 patients with thoracic injuries (99%), and 124/128 patients with lumbar injuries (97%). All five patients who were not documented as having one of the predictors had stable injuries. CONCLUSION: Prehospital clinical findings of altered mental status, neurologic deficit, evidence of intoxication, spinal pain, and suspected extremity fracture were documented for all patients with significant spinal injuries in this series. These findings may be useful to identify patients who require prehospital spinal immobilization.

Adult↗

Comparison of thyrotropin-releasing hormone (TRH), naloxone, and dexamethasone treatments in experimental spinal injury.

We have shown that early treatment with either naloxone or thyrotropin-releasing hormone (TRH) significantly improves neurologic outcome after experimental spinal injury. Because these previous studies used different injury variables, no conclusion could be made about the relative effectiveness of the two drugs. In the present study naloxone and TRH treatment (each 2 mg per kilogram bolus, 2 mg per kilogram per hour for 4 hours) were directly compared; other cats received either dexamethasone (0.5 mg per kilogram bolus, 0.5 mg per kilogram per hour) or saline. The spinal cord was traumatized at C-7, using the Allen method; treatment was begun 1 hour after injury. Neurologic function was graded between 0 and 10, using an ordinal rating scale. Both TRH- and naloxone-treated animals had significantly better functional scores than saline controls at 6 weeks postinjury. Moreover, TRH-treated cats also showed significantly better neurologic recovery than either naloxone- or dexamethasone-treated animals. These findings confirm the therapeutic benefit of TRH and naloxone in experimental spinal injury and indicate that TRH treatment is most effective. In contrast, corticosteroid treatment was of no benefit in the present model.

Animals↗

Muscular, skeletal, and neural adaptations following spinal cord injury.

Spinal cord injury is associated with adaptations to the muscular, skeletal, and spinal systems. Experimental data are lacking regarding the extent to which rehabilitative methods may influence these adaptations. An understanding of the plasticity of the muscular, skeletal, and spinal systems after paralysis may be important as new rehabilitative technologies emerge in the 21st century. Moreover, individuals injured today may become poor candidates for future scientific advancements (cure) if their neuromusculoskeletal systems are irreversibly impaired. The primary purpose of this paper is to explore the physiological properties of skeletal muscle as a result of spinal cord injury; secondarily, to consider associated changes at the skeletal and spinal levels. Muscular adaptations include a transformation to faster myosin, increased contractile speeds, shift to the right on the torque-frequency curve, increased fatigue, and enhanced doublet potentiation. These muscular adaptations may be prevented in individuals with acute paralysis and partially reversed in individuals with chronic paralysis. Moreover, the muscular changes may be coordinated with motor unit and spinal circuitry adaptations. Concurrently, skeletal adaptations, as measured by bone mineral density, show extensive loss within the first six months after paralysis. The underlying science governing neuromusculoskeletal adaptations after paralysis will help guide professionals as new rehabilitation strategies evolve in the future.

Adaptation, Physiological↗