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R Kleinman

Publications and source records attributed to R Kleinman.

At least 19 recordsLinked to original sources

Immunoneutralization of somatostatin, insulin, and glucagon causes alterations in islet cell secretion in the isolated perfused human pancreas.

INTRODUCTION: In this study, immunoneutralization of endogenous insulin, glucagon, and somatostatin with specific antibodies was used in an isolated perfused human pancreas (IPHP) model. AIMS: To study intrapancreatic cellular interactions and pancreatic hormonal secretion. METHODOLOGY: Randomized, sequential 10-minute test intervals of single-pass perfusion with each antibody were performed at 3.9 mM or 11.5 mM steady-state glucose concentrations. Somatostatin, insulin, and glucagon levels were measured in the effluent during basal and immunoneutralization intervals. RESULTS: At 3.9 mM glucose concentration, somatostatin antibody (SS-Ab) stimulated insulin and glucagon secretion, insulin antibody (IN-Ab) inhibited glucagon secretion, and glucagon antibody (GN-Ab) stimulated insulin secretion. At 11.5 mM glucose concentration, SS-Ab stimulated insulin secretion, IN-Ab stimulated glucagon and inhibited somatostatin secretion, and GN-Ab stimulated insulin secretion. CONCLUSION: The variation in hormonal responses to immunoneutralization during stimulated and nonstimulated glucose conditions suggests that a dynamic association exists between the pancreatic cells.

Adolescent↗

The circulating hormonal milieu of the endocrine pancreas in healthy individuals, organ donors, and the isolated perfused human pancreas.

Although basal circulating levels of individual islet cell hormones have been measured, few studies compared the molar ratios of the major hormones secreted by the endocrine pancreas. This study examined the basal levels of four major islet hormones: insulin, C-peptide (C-P), glucagon (G), and pancreatic polypeptide (PP) in normal subjects, in organ donors with brain death, and in the isolated perfused human pancreas. Basal blood samples were taken from normal, fasted control subjects (NCs). Pancreata were obtained from 17 organ donors (ODs) with donor portal vein (DPV) and radial arterial (DRA) blood samples taken before organ procurement. Single-pass perfusion was performed on the procured pancreata, and after rewarming and equilibration, basal samples were collected from the splenic vein (SV) for 30 min. Radioimmunoassays of insulin, C-P, G, and PP were performed on all samples, and basal levels of all hormones were expressed as a common unit, femtomoles per milliliter. The data suggest that in the basal state, these four major islet hormones circulate in a relatively constant molar ratio. The ratio of the hormones is altered in brain death and with in vitro perfusion of the pancreas. The isolated perfused human pancreas secretes a relatively constant molar ratio of these hormones; however, this ratio is markedly different from the circulating ratio seen in either the NC group or the OD group. We conclude that a relatively constant hormonal milieu is secreted from the normal endocrine pancreas, and this hormonal milieu is altered after brain death and with isolation and perfusion of the human pancreas.

Adult↗

Glucose-induced islet hyperemia is mediated by nitric oxide.

PURPOSE: To determine whether hyperglycemia affects pancreatic islet microcirculation in vivo and whether nitric oxide is a mediator. METHODS: Islet blood flow was measured before and after infusion of glucose during in vivo microscopy of mouse pancreatic islet. The pancreas of male BALB/c mice was exteriorized and viewed under the microscope utilizing monochromatic transmitted light. The carotid artery and tail vein were cannulated and systemic blood pressure was monitored continuously. Under fluorescent light, a 0.02 mL bolus of 2% fluorescein isothyocyanate (FITC-albumin) was injected intra-arterially and the first pulse of FITC-albumin through an islet capillary was videorecorded. Following equilibration, either glucose or normal saline 300 mg/g of body weight was given intravenously. Five minutes later, a second bolus was given and the second pulse was videorecorded. The study was repeated in the presence of N omega-nitro-L-arginine methyl ester (L-NAME). The FITC-albumin bolus mean transit time (TT) and observed cross time (OCT) through the islet were calculated using slow-motion video analysis of the recorded images. RESULTS: Infusion of glucose resulted in a significant increase in islet blood flow with no change in systemic blood pressure: baseline TT was 20 +/- 1.3 pixel/0.03 sec and baseline OCT was 0.6 +/- 0.04 seconds; during hyperglycemia, TT was 16.1 +/- 1 pixel/0.03 sec, and OCT was 0.48 +/- 0.03 seconds (n = 11, P < 0.05 versus basal via paired t-test). Continuous infusion of L-NAME negated the effect of hyperglycemia on islet blood flow: baseline TT was 20 +/- 1.8 pixel/0.03 sec and OCT was and 0.6 +/- 0.05 seconds; during hyperglycemia, TT was 20 +/- 1.1 pixel/0.03 sec and OCT was 0.6 +/- 0.33 seconds (n = 10; P < 0.05 versus glucose via unpaired t-test).

Animals↗

The influence of somatostatin on glucagon and pancreatic polypeptide secretion in the isolated perfused human pancreas.

The current study was undertaken to determine whether intraislet somatostatin regulates glucagon or pancreatic polypeptide (PP) secretion in the human pancreas. A high-affinity, high-specificity monoclonal somatostatin antibody (CURE.S6) was used to immunoneutralize somatostatin in the isolated, perfused human pancreas. Single-pass perfusion was performed in pancreata obtained from cadaveric organ donors using a modified Krebs media with either 3.9 or 12.9 mM glucose. Sequential test periods separated by basal periods were performed with infusion of either exogenous somatostatin-14 (SS-14), CURE.S6, or a combined infusion. Infusion of SS-14 did not significantly alter glucagon or PP secretion during low-glucose or high-glucose perfusion. Immunoneutralization of intraislet somatostatin with CURE.S6 resulted in a significant increase of glucagon secretion under low-glucose conditions (delta X = 15 +/- 3 pM) (p < 0.05), but did not significantly effect glucagon secretion under high-glucose conditions (delta X = -2 +/- 3 pM) (p = NS). PP secretion remained unchanged during CURE.S6 infusion. Combined infusion of SS-14 and CURE.S6 did not significantly alter glucagon or PP secretion. The data suggest that intraislet somatostatin may have an inhibitory role in the regulation of glucagon secretion during low-glucose conditions and that intraislet somatostatin does not regulate PP secretion in the isolated, perfused human pancreas.

Adolescent↗

The influence of preoperative donor factors on the performance of the isolated perfused human pancreas.

The present study was undertaken to determine whether there exist specific donor factors which influence the performance of the isolated perfused human pancreas with respect to the sustained level of insulin secretion. Donor factors included age, serum glucose, hospital days, CMV status, RBC transfusion history, and smoking history. Following pancreas procurement, single-pass perfusion was performed in pancreata obtained from 35 cadaveric organ donors using a modified Krebs buffer. Aliquots were collected every 2 min and assayed for insulin concentration. Data was analyzed for 120 min for each pancreas. The mean initial insulin concentration was 2989 +/- 383 microU/ml and the insulin concentration at 120 min averaged 1467 +/- 338 microU/ml. The mean decay of insulin secretion over time was -13 +/- 3.2 microU/ml/min. Multiple regression analysis demonstrated that pancreata from donors who had a smoking history had a faster rate of decay of insulin secretion than pancreata from nonsmokers (P = 0.04). None of the other above mentioned donor factors significantly affected decay of insulin secretion. This analysis suggests that a history of smoking in organ donors results in a significantly faster rate of decay of insulin secretion when the pancreas is utilized for the laboratory model. We conclude that it is important to evaluate specific donor factors of cadaveric organ donors prior to the use of the human organs for experimental purposes.

Adolescent↗

Use of the Fab fragment for immunoneutralization of somatostatin in the isolated perfused human pancreas.

The role of the somatostatin-secreting D cell in the islet remains controversial. The present study was undertaken to determine whether infusion of the Fab fragment of a highly sensitive somatostatin monoclonal antibody into the isolated, perfused human pancreas would influence insulin secretion. Single-pass perfusion was performed in pancreata obtained from cadaveric organ donors using a modified Krebs-media with 3.9 mM glucose. Sequential test periods separated by basal periods were performed with either somatostatin monoclonal antibody Fab fragment (SFab), somatostatin-14 (SS-14), or a combined infusion. Immunoneutralization of intraislet somatostatin with SFab resulted in a significant increase in both immunoreactive insulin (IRI) (1,122 +/- 497 pM) (p < 0.05) and immunoreactive C-peptide (IRC-P) secretion (146 +/- 53 pM) (p < 0.05). Infusion of SS-14 resulted in inhibition of both IRI secretion (-3,372 +/- 1,360 pM) (p < 0.05) and IRC-P secretion (-708 +/- 220 pM) (p < 0.05). Combined infusion of SFab and SS-14 reversed the inhibitory effect of exogenous SS-14 on IRI and IRC-P secretion. The data suggest that intraislet somatostatin has an inhibitory role in the regulation of B-cell secretion in the human islet and demonstrates that the Fab fragment of the somatostatin monoclonal antibody is an effective tool for immunoneutralization studies in the human pancreas. In addition, immunostaining of the donor pancreata demonstrated the presence of somatostatin-immunoreactive endocrine cells interspersed throughout the islet core and mantle. The demonstrated proximity of somatostatin-immunoreactive endocrine cells to B cells lends anatomic support to the concept that intraislet somatostatin influences insulin secretion in the human islet.

Adult↗

Regulatory role of intraislet somatostatin on insulin secretion in the isolated perfused human pancreas.

This study was undertaken to determine whether intraislet somatostatin inhibits insulin secretion in the human islet. A high-affinity monoclonal somatostatin antibody was used to immunoneutralize somatostatin in the isolated, perfused human pancreas. Single pass perfusion was performed in pancreata obtained from cadaveric organ donors using a modified Krebs medium with either 3.9 or 12.9 mM glucose. Sequential test periods separated by basal periods were performed with either somatostatin-14 (SS-14), somatostatin monoclonal antibody (CURE.S6), or a combined infusion. Infusion of SS-14 resulted in inhibition of insulin secretion under both low glucose (delta X = -712 +/- 212 pM) (p < 0.05) and high glucose (delta X = -21,913 +/- 10,003 pM) (p = 0.06) conditions. Immunoneutralization of intraislet somatostatin with CURE.S6 resulted in a significant increase in insulin secretion under both low glucose (454 +/- 162 pM) (p < 0.05) and high glucose (2,177 +/- 829 pM) (p < 0.05) conditions. Combined infusion of SS-14 and CURE.S6 resulted in a reversal of the inhibitory effect of exogenous SS-14. The data suggest that intraislet somatostatin has an inhibitory role in the regulation of insulin secretion in the human islet.

Adolescent↗