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Biomedical subjects

K M Nelson

Publications and source records attributed to K M Nelson.

At least 19 recordsLinked to original sources

Regulation of glucose kinetics in trauma patients by insulin and glucagon.

The current study was undertaken to evaluate the contribution of insulin and glucagon to regulation of glucose metabolism in man following severe, traumatic injury by manipulating concentrations of insulin and glucagon with infusions of somatostatin. Glucose kinetics were assessed with [U-14C, 6-(3)H]glucose in severely injured patients and compared with data obtained from patients recovering from minor, elective operative procedures. Glucose production was significantly increased in subjects with traumatic injury compared with control subjects (13.0 +/- 0.63 mumol/kg/min v 8.6 +/- 0.27 mumol/kg/min). There was no impairment in glucose oxidation by the injured patients. Modulation of insulin and glucagon with somatostatin indicated that non-insulin-mediated glucose uptake (NIMGU) was significantly elevated in injured patients (12.2 +/- 0.94 mumol/kg/min v 7.4 +/- 0.61 mumol/kg/min). Hepatic glucose output (HGO) in the absence of glucagon was also significantly elevated in injured patients (12.2 +/- 1.20 mumol/kg/min v 5.8 +/- 1.08 mumol/kg/min). Indirect calorimetry showed a 27% increase in resting energy expenditure (REE). Increased protein oxidation accounted for 56% of the increase in REE. Changes in carbohydrate and lipid oxidation accounted for 28% and 15% of the increase in REE. There was no correlation between the injury severity score of the injured patient and the degree of metabolic abnormality. It is concluded from these studies that (1) injured patients have a high rate of glucose turnover in the absence of glucagon and insulin; (2) the reliance on glucose as a source of energy is not diminished in injured subjects; and (3) increases in protein oxidation account for the majority of the increased REE found in injured patients.

Adolescent

Role of fat oxidation in the long-term stabilization of body weight in obese women.

Two studies were performed to investigate the association between body fat mass and fat oxidation. The first, a cross-sectional study of 106 obese women maintaining stable body weight, showed that these two variables were significantly correlated (r = 0.56, P less than 0.001) and the regression coefficient indicated that a 10-kg change in fat mass corresponded to a change in fat oxidation of approximately 20 g/d. The second, a prospective study, validated this estimate and quantifies the long-term adaptations in fat oxidation resulting from body fat loss. Twenty-four moderately obese women were studied under controlled dietary conditions at stable weight before and after mean weight and fat losses of 12.7 and 9.8 kg, respectively. The reduction in fat oxidation was identical to that predicted by the above regression. We conclude that changes in fat mass significantly affect fat oxidation and that this process may contribute to the long-term regulation of fat and energy balance in obese individuals.

Adipose Tissue

Effect of weight reduction on resting energy expenditure, substrate utilization, and the thermic effect of food in moderately obese women.

It is not known whether the decrease in the thermic effect of food (TEF) in obesity is a consequence of obesity or a factor contributing to the development of obesity. The resting energy expenditure (REE) of 24 obese, nondiabetic, postmenopausal women was 5481 +/- 110 kJ/24 h (1310 +/- 26.4 kcal/24 h). After weight loss (12.7 +/- 0.45 kg) the REE was significantly decreased (4858 +/- 94 kJ/24 h, or 1161 +/- 22.4 kcal/24 h) and equivalent to the REE of 4866 +/- 119 kJ/24 h (1163 +/- 28.5 kcal/24 h) in 24 never-obese, postmenopausal women. The TEF, expressed as a percentage of the calories ingested, was 8.2 +/- 0.50% for obese subjects, 8.7 +/- 0.57% for postobese subjects, and 9.8 +/- 0.54% for never-obese subjects. Compared with never-obese subjects, the TEF was significantly reduced in obese subjects (P = 0.043) and remained unchanged after weight loss (P = 0.341). These findings indicate that the lower TEF in the obese subjects is uncorrected by weight loss, and thus it is a contributor to obesity rather than a consequence of obesity.

Aged

Prediction of resting energy expenditure from fat-free mass and fat mass.

On the basis of literature values, the relationship between fat-free mass (FFM), fat mass (FM), and resting energy expenditure [REE (kJ/24 h)] was determined for 213 adults (86 males, 127 females). The objectives were to develop a mathematical model to predict REE based on body composition and to evaluate the contribution of FFM and FM to REE. The following regression equations were derived: 1) REE = 1265 + (93.3 x FFM) (r2 = 0.727, P < 0.001); 2) REE = 1114 + (90.4 x FFM) + (13.2 x FM) (R2 = 0.743, P < 0.001); and 3) REE = (108 x FFM) + (16.9 x FM) (R2 = 0.986, P < 0.001). FM explained only a small part of the variation remaining after FFM was accounted for. The models that include both FFM and FM are useful in examination of the changes in REE that occur with a change in both the FFM and FM. To account for more of the variability in REE, FFM will have to be divided into organ mass and skeletal muscle mass in future analyses.

Adipose Tissue

A physiologic basis for the provision of fuel mixtures in normal and stressed patients.

It has been suggested that lipid is a preferred fuel in stressed patients. We evaluated glucose oxidation in 20 patients (sepsis, cancer of the colon, multiple trauma, controls) while they received TPN (5.65 mg glucose/kg/min). Respiratory quotient (RQ) was measured by indirect calorimetry and the percent VCO2 arising from the oxidation of glucose was measured using [U-14C] glucose. Since RQs were 1.0 or greater in all patients, the nonprotein energy utilized by them was calculated to be derived completely from glucose. However, the kinetic data showed that glucose contributed only 55-60% of the VCO2. Protein oxidation contributed less than 20% of the VCO2, as calculated from urinary nitrogen. The difference must have been derived from fatty acid oxidation. The glucose turnover that was not oxidized was presumed to be converted to lipid at an RQ of 8.6. The net oxygen consumption and carbon dioxide production from this overall distribution resulted in an RQ of about 1.0 with only 60% coming from glucose oxidation. Since all patients responded in the same manner, it appears that the proper ratio of glucose and lipid was dictated on a physiologic basis and not on the type of disease.

Adult

Lipolysis and beta-adrenergic receptor binding on adipocytes of spontaneously hypertensive rats.

Adipocytes from spontaneously hypertensive rats demonstrated a blunted lipolytic response to isoproterenol and dibutyryl cyclic AMP. (-)-[3H]Dihydroalprenolol binding was examined in adipocytes from normotensive and spontaneously hypertensive rats. Increasing concentrations of isoproterenol decreased total (-)-[3H]dihydroalprenolol binding to intact cells from normotensive rats, and the efficacy of competition was decreased in adipocytes from spontaneously hypertensive rats. Scatchard analysis indicated that the number of (-)-[3H]dihydroalprenolol binding sites and the affinity of dihydroalprenolol binding were comparable between normotensive and spontaneously hypertensive rats. Isoproterenol- and Gpp(NH)p-stimulated adenylate cyclase activity was consistently depressed in adipocyte membranes from spontaneously hypertensive rats as compared to normotensive rats. No difference in fluoride-stimulated adenylate cyclase activity was observed. The blunted lipolytic and cyclic AMP response to isoproterenol in these cells suggest a postreceptor lesion of the lipolytic pathway (possibly the guanine nucleotide regulatory protein) in adipocytes from spontaneously hypertensive rats. The blunted lipolytic response to dibutyryl cyclic AMP suggests defective regulation of lipolytic enzymes at the protein kinase-hormone-sensitive lipase level.

Adipose Tissue

Enhanced lipolysis is not evident in adipocytes from exercise-trained SHR.

Adipocytes from spontaneously hypertensive rats (SHR) are not as responsive to isoproterenol or dibutyryl adenosine 3',5'-cyclic monophosphate (cAMP) stimulation compared with Sprague-Dawley or Wistar-Kyoto rats. Lipolytic activity in adipocytes from trained normotensive rats was enhanced in response to 1 microM isoproterenol and 0.5 mM dibutyryl cAMP but not in adipocytes from trained SHR. Decreases in isoproterenol-stimulated (1 microM) cAMP accumulation were evident in adipocytes from trained normotensive rats but not in adipocytes from trained SHR. Basal and agonist-induced lipolysis in fat cells isolated from both normotensive rats and SHR immediately following a 60-min run was increased in both sedentary and trained rats. Adenylate cyclase activity in fat cell membranes was blunted in sedentary and trained SHR both in the absence and presence of 100 microM 5'-guanylyl imidophosphate. No apparent differences existed in antagonist affinity of binding sites for the antagonist dihydroalprenolol in normal rats or SHR. Evidence for a change in affinity of agonist isoproterenol might be indicated based on the enhanced potency of isoproterenol to stimulate lipolysis in trained normal rats. beta-Adrenergic receptor density and antagonist affinity were not different in normotensive rats and SHR in response to training. However, displacement of [3H]dihydroalprenolol in adipocytes from SHR required greater concentrations of isoproterenol compared with adipocytes from normotensive rats, further suggestive of increased agonist affinity of binding sites in normal rats. These data suggest a postreceptor lesion of the lipolytic pathway in adipocytes from spontaneously hypertensive rats, possibly at the guanine nucleotide regulatory protein level.(ABSTRACT TRUNCATED AT 250 WORDS)

Adipose Tissue

Time course of changes in gluconeogenesis from various precursors in chronically endotoxemic rats.

Rates of gluconeogenesis (GNG) from lactate and triosephosphate precursors were measured in hepatocytes isolated from rats that have received endotoxin or physiological saline by continuous infusion from an implanted pump. Six hours after the onset of infusion (day 2 postsurgery) GNG from lactate was significantly elevated in hepatocytes of endotoxemic (ET) animals. By 24 hours later, the gluconeogenic rate was depressed, compared to cells of NaCl-infused controls. However, providing ET cells with lactate at concentrations found in the in vivo milieu resulted in glucose production at rates not different from those of control cells incubated at their respective in vivo (lower) substrate levels. On day 2 postsurgery, ET rats were hyperglycemic and hyperlactacidemic; on day 3 the elevated blood lactate concentration was maintained, but the plasma glucose values were not different from those of NaCl controls. The glucagon-induced increment in glucose synthesis was depressed in cells of ET rats both on day 2 and day 3 postsurgery, although the total amount of glucose released was significantly less only on day 3. The pattern of norepinephrine stimulation was similar to that of glucagon, except for the increase above the basal rate of GNG on day 3 being the same for control and ET cells. GNG was also assessed from oxidized substrates (fructose (F) and dihydroxyacetone (DHA] and reduced substrates (sorbitol and glycerol) entering the pathway at the triosephosphate level. On day 2 both cell populations produced glucose from each of the four precursors at comparable basal rates.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Alteration of adipocyte calcium homeostasis by Escherichia coli endotoxin.

The present study evaluated calcium homeostasis in rat adipocytes after either in vivo or in vitro exposure to Escherichia coli endotoxin. Fat cells from endotoxin-treated rats showed an enhanced uptake of 45Ca. In an attempt to differentiate between 45Ca binding to the cell surface and intracellular 45Ca accumulation, adipocytes were exposed to 5 mM LaCl3. The amount of 45Ca remaining associated with lanthanum-treated adipocytes was taken to be located intracellularly and was increased in adipocytes from endotoxin-treated rats. The amount of 45Ca displaced by lanthanum was also increased in adipocytes from endotoxin-treated rats. This suggested that the endotoxin-induced increase of 45Ca accumulation included both cell surface and intracellular binding sites. Compartmental analysis of the exchange kinetics of cell-associated 45Ca with 40Ca in the medium indicated a 77% increase in the size of the cell surface compartment of adipocytes from endotoxin-treated rats compared with controls. In addition, endotoxin treatment altered the flux of calcium from the cells to the medium. In vitro exposure of freshly prepared adipocytes to 250 or 750 micrograms endotoxin/ml did not produce a perturbation of adipocyte calcium homeostasis. The results indicate that endotoxin induces alterations in the ability of adipocytes to regulate calcium translocations, suggesting that some metabolic and hormonal aspects of endotoxins' actions may be mediated through perturbation of cellular calcium homeostasis.

Adipose Tissue

Effect of traumatic injury on sensitivity to insulin.

Disturbances in carbohydrate homeostasis are metabolic hallmarks in the host response to trauma. Since alterations in insulin responsiveness, especially insulin resistance, have been related to the metabolic sequelae of shock, the present study evaluated insulin responsiveness in traumatic shock. Injury (LD50) of fasted, male Holtzman rats (115 plus or minus 20 gm) by tumbling in the Noble-Collip drum resulted in hyperglycemia in spite of a concomitant hyperinsulinemia. The ability of insulin to lower plasma glucose was evaluated at either three hours or 24 hours post-trauma by means of glucose and insulin tolerance tests. The injured rats showed glucose intolerance and hyperinsulinemia three hours after injury but showed a normal glucose tolerance and hypoinsulinemia on the day after injury. Insulin was ineffective in lowering plasma glucose at both of these times. Noble-Collip tumbling trauma induced no systemic changes in insulin responsiveness in vitro at either time as evaluated by 1) epididymal fat pad glucose oxidation of U-D-14C-glucose to 14CO2 or 2) hemidiaphragm incorporation of U-D-14C-glucose into glycogen. The data suggest that insulin resistance is not due to a decreased capacity of various tissues to respond to insulin.

Adipose Tissue