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Biomedical subjects

P D Woolf

Publications and source records attributed to P D Woolf.

At least 19 recordsLinked to original sources

The catecholamine response to multisystem trauma.

We studied the catecholamine response in two groups of patients with multisystem injuries according to the presence (group 1, N = 124) or absence (group 2, N = 82) of head injury. Markers of injury severity included the injury Severity Score, the Glasgow Coma Scale, the need for intubation, admission hypotension, the amount of blood products and fluid expanders administered during the first 24 hours, and patient outcome. In group 1, higher norepinephrine levels always and epinephrine concentrations usually were associated with worsening indexes of injury severity. The best correlations were between the Injury Severity Score and the Glasgow Coma Scale and norepinephrine concentrations. In group 2, despite elevated catecholamine levels, such associations were seldom present. Thus, circulating catecholamine levels, especially norepinephrine levels, significantly correlated with the severity of injury in patients who had suffered multisystem injury, but only if the injury included the brain.

Adolescent

Hormonal responses to trauma.

OBJECTIVES: To review the hormonal changes that have been reported after trauma, to define their etiologies, and to describe their consequences. DATA SOURCES: Literature review using MEDLINE and original data. DATA SYNTHESIS: Hormonal responses to trauma are bidirectional. Functional derangements include increases in adrenocorticotropin hormone and cortisol, growth hormone, and prolactin levels. In contrast, gonadotropin and gonadal steroid, and thyroid hormone concentrations decrease. The response is immediate but not necessarily sustained for those hormones that respond with increased secretion, whereas the effect may not become apparent for several hours, may be maximal after 1 to 4 days, and may persist for the duration of illness for those hormones that decrease. The reduction in hormone concentrations generally reflect diminished secretion, with the exception of the thyroid hormones where altered metabolic pathways and enhanced metabolic clearance play a major role. CONCLUSIONS: The changes in circulating levels do not appear to be injury specific, but tend to reflect the severity of the traumatic insult, and there are some data for cortisol and thyroxine that show their concentrations may be of predictive value. In head-injured patients, structural as well as functional pituitary changes may be present. Patients may show varying degrees of pituitary insufficiency. However, the presence of hyperprolactinemia strongly suggests involvement of the hypothalamus. With the exception of bonafide hypopituitarism, the relevance of the hormonal changes after trauma awaits clarification.

Gonads

Traumatic brain injuries: predictive usefulness of CT.

The computed tomographic (CT) scans from 72 patients with traumatic brain injury were reviewed to determined whether a specific type, location, or size of lesion correlated with changes in neurologic function (assessed with the Glasgow Coma Scale [GCS]), patient outcome (assessed with the Glasgow Outcome Scale [GOS]), or catecholamine levels. The lesions were classified as focal or diffuse. GOS changed as a function of lesions size (P = .00004) in the 48 patients with focal hemorrhages, regardless of whether the lesions were intra- or extraaxial, and in the 19 patients with normal CT scans. Patients with lesions larger than 4,100 mm3 had a twofold greater risk of a poor outcome than patients with smaller lesions (100% vs 50%). Patients with normal CT scans were significantly more likely to have mild neurological dysfunction or none than patients with abnormal CT scans (P = .03), but lesion location, skull fracture, and pineal shift were not significant predictors of GCS or GOS scores. A positive relationship existed between lesion size and both plasma norepinephrine and epinephrine levels (P less than .02); a significant relationship existed between lesion size and GCS score (P = .02).

Adult

Effects of intoxication on the catecholamine response to multisystem injury.

In patients suffering isolated head trauma, we have previously shown that levels of circulating catecholamines obtained within 48 hours of trauma correlate with the severity of brain injury and predict outcome and that intoxication blunts this response. The effects of alcohol on the increase in catecholamines in systematically injured patients, however, have not been well defined. From 1983 to 1990, 78 patients (74% male; median age 30 years) with blunt head and multisystem injury, who also had alcohol levels measured within 5 hours of injury, were studied. Norepinephrine and epinephrine levels were assayed by a radioenzymatic technique. Injury severity was assessed by the admission Glasgow Coma Scale (GCS) score (4-15; median, 12), the Injury Severity Score (ISS) (13-50; median, 25) and the volume of blood products administered within the first 24 hours (0-14.4 L; median, 0.5 L). The impact of alcohol on the norepinephrine response to injury was analyzed using multiple linear regression models, including polynomial interaction terms. Norepinephrine levels significantly (p less than 0.0001) correlated with the GCS score and ISS. However, alcohol significantly lowered the norepinephrine response to decreasing GCS score (R = 0.49, p less than 0.002) and to increasing ISS (R = 0.51, p less than 0.0006). The blunting of the catecholamine response was most marked in those severely injured. The rise in norepinephrine concentrations seen with increasing volume of blood replacement was not affected by intoxication. An association between injury severity and epinephrine levels was also present, but not as consistently. Epinephrine concentrations rose with falling GCS score and with increasing ISS values, but unlike norepinephrine, there were no apparent effects of alcohol on changes in epinephrine levels. Thus, in patients suffering head and multisystem injury, catecholamine changes reflect the severity of injury using three different scalers. Furthermore, intoxication blunts only the norepinephrine component of this important biologic response.

Adolescent

Alcohol intoxication blunts sympatho-adrenal activation following brain injury.

In 46 patients experiencing traumatic brain injury, we studied the interactions of alcohol intoxication and severity of neurologic dysfunction on the resulting sympathetic nervous system activation. Sixty percent of the variation in norepinephrine (p less than 0.0001) and more than 50% of the variation in epinephrine (p less than 0.0001) were due to the initial ethanol concentrations and extent of brain injury assessed by the admission Glasgow Coma Score (GCS). As brain function deteriorated plasma cathecholamines rose (p less than 0.0001), but ethanol qualitatively and quantitatively modified this observation. The magnitude of the sympathetic response to worsening neurologic function was progressively diminished in association with increasing ethanol levels, i.e., the inverse relationship of GCS values with both norepinephrine and epinephrine was flattened. In comatose patients (GCS less than 8) increasing ethanol levels was associated with progressively decreasing norepinephrine and epinephrine responses (p less than 0.04), such that catecholamines were reduced by 80 to 90% at ethanol concentrations approaching 400 mg/dl (87.0 mmol/l). However, the impact of ethanol on the degree of sympathetic nervous system activation depended upon the degree of injury; the apparent ethanol suppression was greatest in patients with the most severe neurologic dysfunction (GCS 3 or 4), but it diminished as neurologic function improved. We conclude that the presence of alcohol appears to modify the rise in catecholamine levels following traumatic brain injury in a dose-dependent manner and alters the relationship between neurologic dysfunction and SNS activation. These alterations may have profound effects on patient morbidity in the immediate post-accident period.

Adolescent

The adrenocortical response to brain injury: correlation with the severity of neurologic dysfunction, effects of intoxication, and patient outcome.

To test the hypothesis that cortisol levels reflect the extent of neurologic dysfunction and predict patient outcome, neurologic function and cortisol levels were determined in 120 traumatically brain injured patients who never received glucocorticoid treatment. Their mean age was 29 years and 78% were men. The impact of intoxication was examined in 59 patients who had ethanol levels measured. Ethanol was detectable in 40 patients and greater than or equal to 100 mg/dl in 31. There were significant correlations between the extent of neurologic dysfunction, determined by the Glasgow Coma Score and plasma cortisol concentrations 1 and 4 days postaccident. Cortisol levels were universally elevated on admission and approached normal 7 days later. Multiple linear regression analysis revealed significant effects of circulating ethanol levels on the association between cortisol concentrations and progressively worsening neurologic function, i.e., ethanol reduced the magnitude of the cortisol elevations in a dose dependent manner, abolishing this relationship at levels above 100 mg/dl. Analysis of the relationships between circulating cortisol levels and patient outcome provided a second method for ascertaining the association between injury severity and the magnitude of adrenocortical activation. Admission and day 1 cortisol concentrations were 25 to 40% lower in patients having good recoveries or moderate disabilities than those who remained severely disabled, persistently vegetative or died; serum cortisol values of less than 20 micrograms/dl one day after the accident were more likely to be associated with a good outcome than a poor one (55 vs. 25%, p less than 0.001). The worsening prognosis of patients having higher cortisol values is further reflected in the duration of acute hospitalization of these individuals.(ABSTRACT TRUNCATED AT 250 WORDS)

Accidents, Traffic

Comparison of phenylephrine bolus and infusion methods in baroreflex measurements.

Phenylephrine (PE) bolus and infusion methods have both been used to measure baroreflex sensitivity in humans. To determine whether the two methods produce the same values of baroreceptor sensitivity, we administered intravenous PE by both bolus injection and graded infusion methods to 17 normal subjects. Baroreflex sensitivity was determined from the slope of the linear relationship between the cardiac cycle length (R-R interval) and systolic arterial pressure. Both methods produced similar peak increases in arterial pressure and reproducible results of baroreflex sensitivity in the same subjects, but baroreflex slopes measured by the infusion method (9.9 +/- 0.7 ms/mmHg) were significantly lower than those measured by the bolus method (22.5 +/- 1.8 ms/mmHg, P less than 0.0001). Pretreatment with atropine abolished the heart rate response to PE given by both methods, whereas plasma catecholamines were affected by neither method of PE administration. Naloxone pretreatment exaggerated the pressor response to PE and increased plasma beta-endorphin response to PE infusion but had no effect on baroreflex sensitivity. Thus our results indicate that 1) activation of the baroreflex by the PE bolus and infusion methods, although reproducible, is not equivalent, 2) baroreflex-induced heart rate response to a gradual increase in pressure is less than that seen with a rapid rise, 3) in both methods, heart rate response is mediated by the vagus nerves, and 4) neither the sympathetic nervous system nor the endogenous opiate system has a significant role in mediating the baroreflex control of heart rate to a hypertensive stimulus in normal subjects.

Adult

Opiate receptor antagonism in right-sided congestive heart failure. Naloxone exerts salutary hemodynamic effects through its action on the central nervous system.

Opiate receptor inhibition causes adrenergic receptor-mediated increases in aortic pressure, cardiac output, and left ventricular contractile function in right heart failure. To study whether the effects of opiate receptor inhibition are mediated by means of an action on the central opiate system, we administered equimolar doses of naloxone hydrochloride and naloxone methobromide (MeBr) and normal saline to heart failure dogs. Chronic stable right heart failure was produced by progressive pulmonary artery constriction and tricuspid valve avulsion. Naloxone hydrochloride caused an increase in mean aortic pressure, cardiac output, left ventricular dP/dt and dP/dt/P, plasma catecholamines, and regional blood flows to the myocardium, quadriceps muscle, kidneys, and splanchnic beds. Plasma beta-endorphin and adrenocorticotropin also increased. In contrast, neither normal saline nor naloxone MeBr (which does not cross the blood-brain barrier) affected the systemic or regional hemodynamics or neurohormones. Naloxone hydrochloride was also administered to anesthetized heart failure dogs. Pentobarbital anesthesia removed cortical perception of nociceptive stimulation, reduced the increase in plasma epinephrine, and abolished vasodilation in skeletal muscle that occurred in conscious dogs after naloxone hydrochloride administration but had no major effects on responses of plasma norepinephrine, systemic hemodynamics, or other regional blood flows to opiate receptor inhibition. Naloxone hydrochloride had no effect in sham-operated dogs. The results indicate that the hemodynamic effects of naloxone are mediated by an action within the central nervous system. Furthermore, since pentobarbital anesthesia did not markedly alter the hemodynamic responses to naloxone hydrochloride, the acute salutary effects of opiate receptor inhibition probably are not caused by removal of the antinociceptive effect of endogenous opioids in heart failure.

Anesthesia

Community outbreak of thyrotoxicosis: epidemiology, immunogenetic characteristics, and long-term outcome.

Between January and March 1984, the first community outbreak of transient thyrotoxicosis in the United States was documented in a seven-county area of southeastern Nebraska; 36 of the total 49 patients resided in York County (2.4 cases per 1,000 population). The median age of patients was 36 years, range six to 82 years; 51 percent were women. By definition, all patients were symptomatic, visited a physician, and had a newly identified elevated serum concentration of thyroxine or triiodothyronine of unknown cause. None had a goiter or a painful thyroid gland. Low 131I uptake measurements were found in all nine patients studied. Six patients were hospitalized; none died. Investigation of all 12 household contacts of eight selected patients revealed five additional persons with thyrotoxicosis and four with asymptomatic hyperthyroxinemia. A case-control study revealed that illness was associated with a significantly higher frequency of a reported recent respiratory viral-like condition. In another case-control study, the HLA-DR3 antigen was present in more case subjects (39 percent) than control subjects (14 percent). In addition, a significantly higher proportion of patients than control subjects purchased beef from one of the three supermarkets in York Country. Concomitant with the outbreak, the supermarket implicated in the outbreak purchased an unusually large quantity of beef (7,000 pounds) from a nonregular supplier in Nebraska, which had reportedly instituted the practice of trimming gullets (a procedure that removes the muscles from bovine larynx for beef) about three months earlier. Thus, it is concluded that the Nebraska outbreak, like one in Minnesota that occurred 18 months later, probably resulted from patients having eaten ground beef that was contaminated with bovine thyroid gland. This form of thyrotoxicosis, perhaps misdiagnosed as painless thyroiditis in the past, probably represents a previously under-recognized public health problem.

Adult

Thyroid test abnormalities in traumatic brain injury: correlation with neurologic impairment and sympathetic nervous system activation.

Acute illness is well known to affect thyroid function, but there are few studies correlating the severity of the underlying medical problem with indexes of thyroid function and little is known about its cause. Traumatically brain-injured patients were selected because they were a relatively homogeneous, previously healthy group with a condition whose severity was readily quantifiable. In 66 such patients, the relationships between changes in thyroid function tests (thyroxine, free thyroxine, triiodothyronine, reverse triiodothyronine, and thyrotropin levels), catecholamine and cortisol concentrations measured on admission and again four days after the accident, and neurologic function assessed by the Glasgow Coma Score (GCS) were studied. Triiodothyronine and thyroxine levels fell significantly within 24 hours of injury. Four days after the accident, patients with the greatest neurologic dysfunction had the lowest triiodothyronine and thyroxine levels; significant correlations were present between the Day 4 GCS and concomitant thyroxine (r = 0.47, p less than 0.0001), free thyroxine (r = 0.32, p less than 0.02), and triiodothyronine (r = 0.50, p less than 0.0001) levels. Reverse triiodothyronine values remained unchanged throughout the study even in the most severely affected patients; the rise in thyrotropin levels was not significant (1.2 +/- 0.2 to 1.7 +/- 0.3 microU/ml, p = NS). Patients who died or remained vegetative had thyroxine and triiodothyronine levels 30 percent to 50 percent lower than those who had a good recovery (p less than 0.05). Highly significant correlations were present between Day 4 thyroxine and triiodothyronine levels and admission and Day 4 norepinephrine and epinephrine concentrations. There was no association between admission or concomitant cortisol levels and thyroid function on Day 4; treatment with high-dose dexamethasone did not influence these indexes. Thus, patients with traumatic brain injury exhibit a gradient of thyroid dysfunction that occurs promptly, is dependent upon the degree of neurologic impairment, and reflects ultimate outcome. The significant association with catecholamine levels suggests a role for sympathetic nervous system activation in its causation, independent of a generalized stress response, since there is no correlation of thyroid test abnormality with the degree of adrenocortical secretion.

Adult

Free and total catecholamines in critical illness.

The magnitude of circulating free and total (free plus conjugated) catecholamine responses to a strong and sustained stimulus was investigated in four groups of patients: traumatic brain injury (n = 24), vascular brain injury (n = 10), polysystem trauma (n = 7) and medical/surgical patients in an intensive care unit (n = 29). Despite significant three- to sevenfold elevations in both free and total norepinephrine (NE) and epinephrine (E), the ratio of free to total NE and E remained constant over a very broad range of values. The proportion of free E was twice normal (30.1-33.5 vs. 16.2%) in all but patients with polytrauma, whereas the percentage of free NE was unchanged in all patients (43.0%). All dopamine (DA) parameters remained generally normal. In the patients with traumatic or vascular brain injury, significant inverse correlations were present between the degree of neurological dysfunction, as indicated by the concomitant Glasgow coma score, and free NE, E, and DA and total NE and DA levels. Thus, during conditions of intense and prolonged catecholamine release, the proportion of free catecholamine remains constant and the total as well as free catecholamine concentration is proportional to the Glasgow coma score.

Critical Care

Effects of naloxone on systemic and regional hemodynamic responses to exercise in dogs.

To determine whether endogenous opiates have a role in circulatory regulation during mild to moderate exercise, 11 chronically instrumented dogs were exercised on a treadmill up a 6% incline at 2.5 and 5.0 mph, each for 20 min, after treatment with either the opiate receptor antagonist naloxone (1 mg/kg bolus and 20 micrograms.kg-1.min-1 infusion) or normal saline. Naloxone increased plasma beta-endorphin and adrenocorticotropic hormone at rest but had no effect on resting heart rate, aortic pressure, cardiac output, left ventricular time derivative of pressure (dP/dt) and ratio of dP/dt at a developed pressure of 50 mmHg and the developed pressure (dP/dt/P), or plasma catecholamines. Plasma beta-endorphin and adrenocorticotropic hormone increased during exercise. In addition, graded treadmill exercise produced proportional increases in heart rate, cardiac output, aortic pressure, left ventricular dP/dt and dP/dt/P, and blood flow to exercising muscles, right and left ventricular myocardium, and adrenal glands. However, there were no differences in the circulatory responses to exercise between animals receiving naloxone and normal saline. Thus the endogenous opiate system probably does not play an important role in regulating the systemic hemodynamic and blood flow responses to mild and moderate exercise.

Adrenocorticotropic Hormone

Catecholamines predict outcome in traumatic brain injury.

Activation of the sympathetic nervous system attends traumatic brain injury, but the association of the severity of neurological impairment and recovery with the extent of sympathetic nervous system stimulation is poorly defined. In this study, plasma norepinephrine (NE), epinephrine (E), and dopamine (DA) levels were measured serially in 33 patients with traumatic brain injury and compared with the Glasgow Coma Score (GCS), which was obtained concurrently. A catecholamine gradient that reflected the extent of brain injury was demonstrated within 48 hours of the injury. In patients with a GCS of 3 to 4, NE and E levels increased four- to fivefold and the DA level increased threefold above normal (NE, 1686 +/- 416 pg/ml; E, 430 +/- 172 pg/ml; DA, 236 +/- 110 pg/ml), while patients with mild brain injury (GCS, greater than 11) had slightly elevated or normal levels. Patients with marked (GCS, 5 to 7) and moderate (GCS, 8 to 10) traumatic brain injuries had intermediate levels. The prognostic value of determining admission levels of NE was shown in patients with an admission GCS of 3 to 4 1 week after injury. Patients with severe and unchanging neurological impairment 1 week after injury had markedly elevated initial NE levels (2,176 +/- 531 pg/ml), whereas initial NE levels (544 +/- 89 pg/ml) were only mildly elevated in patients who improved to a GCS of greater than 11. These data indicate that markedly elevated NE levels predict outcome in patients with comparable neurological deficits. Thus levels of circulating catecholamines are excellent endogenous and readily quantifiable markers that appear to reflect the extent of brain injury and that may predict the likelihood of recovery.

Adolescent

Leucine, glucose, and energy metabolism after 3 days of fasting in healthy human subjects.

Adaptations of leucine and glucose metabolism to 3 d of fasting were examined in six healthy young men by use of L-[1-13C]leucine and D[6,6-2H2]glucose as tracers. Leucine flux increased 31% and leucine oxidation increased 46% after 3 d of fasting compared with leucine flux and oxidation after an overnight fast. Glucose production rate declined 38% and resting metabolic rate decreased 8% during fasting. Plasma concentrations of testosterone, insulin, and triiodothyronine were reduced by fasting whereas plasma glucagon concentrations were increased. We conclude that there is increased proteolysis and oxidation of leucine on short-term fasting even though glucose production and energy expenditure decreased.

Adult

The role of endogenous opioids in congestive heart failure: effects of nalmefene on systemic and regional hemodynamics in dogs.

We studied the role of endogenous opiates and their interrelationships with the sympathetic nervous system in an experimental preparation of right-sided congestive heart failure (CHF) produced by surgical tricuspid avulsion and progressive pulmonary arterial constriction. Three groups of dogs with CHF and one group of sham-operated dogs were studied. One group of dogs with CHF was given normal saline as pretreatment, while the other two groups were pretreated with either propranolol alone (beta-blockade) or propranolol plus prazosin (alpha- plus beta-blockade). CHF was characterized by weight gain, ascites, elevated right atrial pressure, tachycardia, and reduced cardiac output. Compared with sham-operated animals, animals with CHF exhibited significantly higher baseline levels of plasma beta-endorphin and cortisol. Furthermore, only the animals with CHF responded to the opiate receptor-antagonist nalmefene with significant increases in plasma beta-endorphin, cortisol, and adrenocorticotropic hormone. Administration of nalmefene increased aortic blood pressure, cardiac output, left ventricular dP/dt and dP/dt/P, and blood flow to the myocardium, skeletal muscle, and kidneys in dogs with CHF, but had no appreciable effects in sham-operated dogs. beta-Receptor blockade abolished the increase in cardiac output, left ventricular performance, and blood flow produced by nalmefene, but had no effect on the pressor response to nalmefene. The increase in mean aortic pressure in the beta-blockade group was accompanied by an increase in skeletal muscle vascular resistance. Addition of prazosin in the alpha- plus beta-blockade group abolished the increases in mean aortic pressure and skeletal muscle vascular resistance, suggesting that the changes after propranolol probably resulted from unmasking of alpha-receptor-mediated vasoconstriction.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenocorticotropic Hormone

Hyperprolactinemia and hypothyroidism following cytotoxic therapy for central nervous system malignancies.

Endocrinologic dysfunction including hyperprolactinemia and hypothyroidism are recognized complications of irradiation to the hypothalamic-pituitary axis or thyroid gland in the course of treating CNS malignancies. However, the frequency of these adverse effects in both short- and long-term survivors may be underestimated. Sixty-five patients treated in the University of Rochester Cancer Center since 1968 with radiation with or without BCNU chemotherapy for CNS tumors not involving the hypothalamic-pituitary axis were evaluated for thyroid, prolactin, and gonadal disturbances regardless of clinical symptomatology. Prolactin values were elevated in 19 of 47 patients (40%). For males and females treated with greater than 55 Gy, abnormal values were present in nine of 11 (82%) and seven of 14 (50%), respectively. For males and females treated with less than or equal to 55 Gy, two of nine (22%) and one of 13 (8%), respectively, were abnormal (P = .0001). Six of six patients who also received BCNU chemotherapy were hyperprolactinemic, as compared with six of ten (60%) who did not receive BCNU. Seven of eight females with elevated prolactin levels had menstruation abnormalities, and five of seven adult males noted a decrease in libido. Mild abnormalities in testosterone concentration were found in three of nine men evaluated, all of whom had normal gonadotropins. Of 47 patients who did not receive irradiation to the spinal axis (and thus the thyroid gland), ten (21%) had a decreased thyroxin (T4) value. Only one of these patients had an elevated thyroid-stimulating hormone (TSH) value. Of 32 patients who received greater than 55 Gy, ten (31%) had a low T4, compared with zero of 15 who received less than or equal to 55 Gy (P = .0001). Four of eight patients (50%) who also received BCNU had low T4 values, as compared with three of 14 (21%) who did not receive BCNU. Of 15 patients who were treated with 4 to 10 MV photon irradiation to the spinal axis, five patients (33%) had elevated TSH values. The mean spinal axis dose in these patients was 33 Gy. Two euthyroid children in this group manifested the early onset of puberty. The complex of endocrinologic abnormalities observed in several patients receiving only cranial irradiation, that is elevated prolactin, decreased thyroid, and gonadal hormone secretion in the presence of otherwise normal pituitary hormone levels, suggests a radiation-induced insult to the hypothalamic regulation of pituitary function.

Adolescent

The predictive value of catecholamines in assessing outcome in traumatic brain injury.

Because of the central role of the sympathetic nervous system in mediating the stress response, plasma norepinephrine (NE), epinephrine (E), and dopamine (DA) levels were measured in 61 traumatically brain-injured patients to determine whether catecholamine (CA) levels obtained within 48 hours after injury provide reliable prognostic markers of outcome. Patient outcome was determined at 1 week using the Glasgow Coma Scale (GCS) and at the time of discharge using the Glasgow Outcome Scale (GOS). Levels of NE, E, and DA correlated highly with the admission GCS score (NE: r = 0.58, p less than 0.0001; E: r = 0.46, p less than 0.0025; DA: r = 0.27, p less than 0.04). Moreover, in the 21 patients with GCS scores of 3 or 4 on admission, NE levels predicted outcome at 1 week. All six patients with NE levels less than 900 pg/ml (normal level less than 447 pg/ml) improved to GCS scores of greater than 11, while 12 of 15 with NE values greater than 900 pg/ml remained with GCS scores of 3 to 6 or died. Levels of E and DA were not as useful. Catecholamine levels also increased significantly as the GOS score worsened. Levels of NE and E were significantly higher in patients who died or remained persistently vegetative than in those with better outcomes. In the 54 patients who survived beyond 1 week, significant correlations were present between the length of hospitalization and NE (r = 0.71, p less than 0.0001) and E (r = 0.61, p less than 0.0001) levels. Concentrations of NE (r = 0.61, p less than 0.0004) and E (r = 0.48, p less than 0.01) were also highly correlated with the duration of ventilatory assistance. Analysis of the interactions of CA levels and GCS scores, duration of ventilatory assistance, and length of hospitalization revealed that the CA's either enhanced the reliability of the GCS score or were independent predictors of outcome. Thus, these findings indicate that alterations in circulating CA levels reflect the severity of the neurological insult and provide support for the use of CA measurements as a physiological marker of patient outcome in both the acute and chronic phases of traumatic brain injury.

Adolescent

Endocrinology of shock.

The development of shock initiates a cascade of responses in an effort to reestablish homeostasis. Three of the most important hormonal and neurohumoral changes are the secretion of glucocorticoids, catecholamines, and vasopressin. Regulation of adrenal function is much more complex than originally thought. Hemorrhage is a potent stimulus for cortisol release, and both ACTH and ACTH-independent mechanisms have been described. The ACTH response to its releasing hormone, corticotropin releasing hormone (CRF), is itself amplified by vasopressin, which appears to have intrinsic CRF properties. Because ACTH is synthesized as part of a large precursor molecule (pro-opiomelanocortin) containing the amino acid sequences for several important proteins, stimulation of ACTH release has far-ranging effects, the specifics of which are just being clarified. Norepinephrine and epinephrine levels increase manyfold above baseline within minutes of the onset of hemorrhagic shock. Only patients experiencing cardiac arrest or the rare patient with a very active pheochromocytoma have higher concentrations. The levels reached are far in excess of those required to cause both cardiovascular and metabolic alterations. Because of the presence of the endogenous opiates leucine and methionine enkephalin in the neurosecretory granule, it is very likely that the enkephalins are coreleased with the catecholamines, modifying their cardiovascular effects and producing analgesia. Hypovolemia is also a potent stimulus for vasopressin secretion, which overrides hypotonicity, presenting a clinical picture quite compatible with the syndrome of inappropriate antidiuretic hormone secretion, from which it must be differentiated. Vasopressin also is released by pain, nausea, and hypoxia, all of which are likely to be present in the patient with shock.(ABSTRACT TRUNCATED AT 250 WORDS)

Homeostasis