PubMed HealthSearch

Biomedical subjects

M Z Abedin

Publications and source records attributed to M Z Abedin.

At least 19 recordsLinked to original sources

Elevated biliary calmodulin during gallstone formation: the role of bile acids.

Hepatic bile synthesis is altered during experimental gallstone formation. In response to cholesterol, there is a hydrophobic shift in hepatic bile acid synthesis and hypersecretion of phospholipids. These changes decrease the vesicular capacity for cholesterol and favor crystallization. The mechanism for these changes in hepatic bile formation is unknown. Calmodulin (CaM), a Ca2+ receptor protein involved in cellular secretion, regulates gallbladder transport and may play an important role in alterations of hepatic bile formation during cholelithiasis. We hypothesized that biliary CaM activity is altered during gallstone formation and may be associated with changes in bile acid and phospholipid synthesis. Prairie dogs were fed either control (N = 22) or 1.2% cholesterol-enriched (N = 26) diets for one to six weeks. Cholecystectomy was performed; the common bile duct was cannulated, and hourly bile samples were collected. CaM was measured in bile and gallbladder tissues by radioimmunoassay. Bile samples were analyzed for cholesterol, phospholipids, total bile acids, total protein, calcium, and individual bile acid composition. Compared to controls, gallstone animals had elevated hepatic bile levels of CaM, phospholipids, and cholesterol. Hydrophobic bile acid synthesis was also stimulated, with increased levels of taurochenodeoxycholic acid (TCDCA) and decreased taurocholic acid (TCA). Gallbladder bile demonstrated similar changes. Although gallbladder bile CaM levels were increased, tissue levels were unchanged, suggesting that increased CaM concentration is a hepatic phenomenon. Hepatic bile CaM activity correlated linearly with TCDCA concentration (r = 0.64, P < 0.004) and phospholipid hypersecretion (r = 0.53, P < 0.03). The relationship between biliary CaM and increased concentrations of TCDCA and phospholipids suggests a role for CaM in alterations of hepatocyte secretion that may promote gallstone formation.

Animals

Sequential changes in biliary lipids and gallbladder ion transport during gallstone formation.

OBJECTIVE: This study sought to correlate gallbladder (GB) Na+ and Cl-) fluxes with biliary lipid composition during the various stages of gallstone (GS) formation. SUMMARY BACKGROUND DATA: GS formation is associated with altered GB ion transport and increased biliary lipid and Ca2+ concentrations. Nonetheless, the longitudinal relationship between ion transport and biliary lipid changes during GS formation has not been defined. METHODS: Prairie dogs were fed standard (n = 18) or 1.2% cholesterol-enriched (n = 30) diets for 4 to 21 days. Hepatic and GB bile were analyzed for lipids and Ca2+. Animals were designated either Pre-Crystal, Crystal, or GS based on absence or presence of crystals or GS, respectively. GBs were mounted in Ussing chambers, electrophysiologic parameters were recorded, and unidirectional Na+ and Cl- fluxes measured. RESULTS: Short-circuit current and potential difference were similar during Pre-Crystal and Crystal stages but significantly reduced during GS stage compared to controls and Pre-Crystals. Transepithelial resistance was similar in all groups. Net Na+ absorption was increased during Pre-Crystal but decreased during GS stage due to increased mucosa-to-serosa and serosa-to-mucosa flux, respectively. Increased serosa-to-mucosa flux of both Na+ and Cl- characterized the Crystal stage. Biliary lipids and Ca2+ increased progressively during various stages of GS formation and correlated positively with unidirectional fluxes of Na+ and Cl-. CONCLUSION: GB epithelial ion transport changes sequentially during GS formation, with the early Pre-Crystal stage characterized by increased Na+ absorption, and the later Crystal stage accompanied by prosecretory stimuli on Na+ and Cl- fluxes, which may be due to elevated GB bile Ca2+ and total bile acids.

Animals

Apical and basolateral Ca(2) channels modulate cytosolic Ca(2)+ in gallbladder epithelia.

Gallstone formation is associated with altered gallbladder (GB) ion transport and increased concentration of GB bile Ca2+. Recent studies show that increased cytosolic Ca2+ ([Ca2+]i) stimulates GB Cl- secretion. However, the mechanism by which extracellular Ca2+ ([Ca2+]e) enters the cytosol remains unclear. We tested the hypothesis that entry of [Ca2+] into cytosol occurs via apical and basolateral membrane Ca2+ channels. Prairie dog GBs were mounted in Ussing chambers, standard electrophysiologic parameters were recorded, and unidirectional Cl- fluxes (J, microEq x cm(-2) x hr(-1) were measured using 36Cl at various mucosal Ca2+ in the absence or presence of mucosal lanthanum (La3+), a non-diffusible Ca2+ channel blocker. Serosal [Ca2+]e was maintained at trace levels. In the absence of mucosal La3+, short circuit current (Isc) showed a positive correlation with mucosal [Ca2+]e as represented by a second order polynomial equation (y = 4.1 + 2.5x - 0.73x(2), r = 0.68, P < 0.001). In contrast, unidirectional mucosa to serosa Cl flux (JCl/ms) was inversely correlated with [Ca2+] (y = 47.9 - 8.7x + 0.9x(2), r = 0.51, P <.05) Addition of 1 mM mucosal La3+ blunted the effects of [Ca2+]e on electrophysiologic parameters and JCl/ms. However, basolateral repletion with 5 mM Ca2+ reverses the blocking effects of La3+ on JCl/ms. These data suggest that [Ca2+]e enters the cytosol via apical and basolateral Ca2+ channels. We conclude that GB apical Ca2+ channels may represent a pathway for biliary Ca2+ entry into the cell and therefore may represent an important regulatory pathway for GB ion transport during gallstone formation.

Analysis of Variance

Converting gallbladder absorption to secretion: the role of intracellular calcium.

BACKGROUND: Experimental cholelithiasis is associated with elevated biliary calcium concentration and altered gallbladder absorption. Recent studies showed that extracellular calcium ([Ca2+]ec) plays a role in regulating gallbladder ion transport. The extent to which intracellular calcium ([Ca2+]ic) mediates the changes in gallbladder ion transport is not clear. We hypothesize that [Ca2+]ic is an important regulator of gallbladder ion transport. METHODS: Prairie dog gallbladders were mounted in Ussing chambers, standard electrophysiologic parameters were recorded, and unidirectional Na+, Cl- and H2O fluxes were measured before and after mucosal exposure of 10-5 mol/L calcium ionophore A23187 was performed. RESULTS: A23187 caused an increase in transepithelial short-circuit current and potential difference and a decrease in transepithelial resistance. A23187 inhibited mucosa to serosa Cl- flux and stimulated serosa to mucosa Na+ flux, resulting in increased net Cl- secretion and decreased net Na+ absorption. A23187 converted H2O from absorption to secretion. Transepithelial short-circuit current effect of A23187 was delayed by indomethacin pretreatment and was completely blunted by low bathing Ca2+. CONCLUSIONS: This is the first demonstration that increased [Ca2+]ic converts the gallbladder from its normal absorptive state to a secretory one. Furthermore [Ca2+]ic appears to regulate ion transport through mechanisms that are partially prostaglandin-dependent. Studies are necessitated to define possible links between gallbladder secretion of Cl- and H2O and mucus hypersecretion, a well-described phenomenon associated with cholesterol gallstone formation.

Animals

Octreotide promotes gallbladder absorption in prairie dogs: a potential cause of gallstones.

BACKGROUND/AIMS: Gallstone formation during octreotide administration has been causally linked to increased biliary concentrations of calcium, protein, and total lipids, all purported prolithogenic factors. These changes may be caused by octreotide-induced gallbladder stasis or a direct effect of octreotide on gallbladder absorption. We tested the hypothesis that octreotide stimulates gallbladder ion and water transport. METHODS: Prairie dog gallbladders were mounted in Ussing chambers and bathed in oxygenated Ringer's solution. Electrophysiological parameters were recorded, and unidirectional Na+, Cl-, and H2O fluxes were measured before and after serosal exposure to 50 nmol/L octreotide. RESULTS: Octreotide exposure caused a significant decrease in transepithelial short-circuit current and potential difference and an increase in tissue resistance compared with baseline. These alterations in electrophysiological parameters coincided with changes in ion transport. Octreotide stimulated net Na+ and H2O absorption and converted the gallbladder from a state of Cl- secretion to one of Cl- absorption by increasing mucosal to serosal fluxes. Octreotide effects on ion transport were blocked by 4,4'-diisothiocynostilbene-2,2'-disulfonic acid and amiloride and reversed by theophylline. CONCLUSIONS: Octreotide may promote gallstone formation by inducing gallbladder stasis and by directly increasing gallbladder absorption, which may act synergistically to increase the concentration of prolithogenic factors in bile and to facilitate nucleation and stone growth.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid

Protein kinase C regulates prairie dog gallbladder ion transport.

BACKGROUND: Gallstone formation is characterized by increased biliary calcium (Ca2+) level and altered gallbladder absorption. Recent studies suggest that luminal Ca2+ regulates gallbladder ion transport via intracellular calcium ([Ca2+]ic). Ca2+-calmodulin and protein kinase C (PKC) are two major systems through which [Ca2+]ic carries out second-messenger functions in many cell types. We have previously shown that Ca2+-calmodulin regulates basal gallbladder ion transport in prairie dog. The present study tests the hypothesis that PKC is also essential in regulation of gallbladder ion transport in this model. METHODS: The role of PKC in regulation of gallbladder ion transport was determined by studying the effects of phorbol esters, synthetic analogues of diacylglycerol, which directly activates PKC. Gallbladders were mounted in Ussing chambers, and standard electrophysiologic parameters were recorded after exposing tissues to either 10(-5) mol/L of 4-alpha-phorbol 12,13-didecanoate (PDD), 4-beta-phorbol 12-myristate 13-acetate, 4-beta-phorbol 12,13-dibutyrate (PDB), or 10(-4) mol/L serotonin. Unidirectional Na+, Cl-, and H2O fluxes were measured before and after treatment with only inactive PDD and most active PDB. RESULTS: Mucosal and serosal exposure of tissues to either 4-beta-phorbol 12-myristate 13-acetate or PDB resulted in a decrease in short-circuit current and transepithelial potential difference without any change in tissue resistance. Serotonin induced similar changes in gallbladder electrical properties. PDB caused an inhibition of mucosal to serosal fluxes of Na+, Cl-, and H2O, with a decrease in net Na+ absorption, an increase in net Cl- secretion, and a conversion of net H2O absorption to net H2O secretion. Serosal-to-mucosal fluxes of Na+, Cl-, and H2O did not change. Inactive PDD had no effect on either electrophysiologic parameters or ion and water fluxes. Pretreatment of tissues with PKC antagonist 1-(5-isoquinolinylsulfonyl)-2-methylpiperazine blocked the phorbol ester-induced inhibition of ion transport. CONCLUSION: PKC regulates gallbladder ion transport in the prairie dog by inhibiting Na+ absorption and stimulating Cl- secretion.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine

Increased biliary protein precedes gallstone formation.

Although nucleation is critical to the pathogenesis of cholesterol gallstones, the factors responsible for this process are poorly defined. Numerous potential nucleating agents have been identified in the bile of humans and animals with cholelithiasis, including mucus, calcium, and bilirubin. Recent studies have shown that patients with cholesterol crystals and gallstones have increased biliary total protein, suggesting that protein may be a previously unrecognized nucleating factor. We tested the hypothesis that biliary total protein is increased prior to cholesterol gallstone formation. Prairie dogs were maintained on either control (N = 22) or 0.4% cholesterol-enriched chow (N = 18) for up to 18 weeks. Cholesterol-fed animals were classified as pregallstone (N = 12) or gallstone (N = 6) based on gross examination of the gallbladder bile. Both hepatic and gallbladder biles were then analyzed for lipid, bile acid, calcium, and protein content. Cholesterol feeding was associated with increased gallbladder concentrations of cholesterol, phospholipids, and calcium in the pregallstone and gallstone groups. Biliary total protein was significantly elevated in the pregallstone (5.8 +/- 0.4 mg/ml, P < 0.001) and gallstone animals (6.0 +/- 0.6 mg/ml, P < 0.001) as computed to controls (3.8 +/- 0.3 mg/ml). Regression analysis showed positive correlations between gallbladder bile total protein and the gallbladder bile cholesterol saturation index (CSI) (P < 0.001), as well as between gallbladder total protein and calcium (P < 0.001). Although the hepatic bile CSI was elevated in cholesterol-fed animals, total protein remained unchanged, suggesting that the alteration in biliary protein is a gallbladder phenomenon.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Early and long-term effects of colectomy and endorectal pullthrough on bile acid profile.

OBJECTIVE: Although total colectomy with mucosal proctectomy and endorectal pullthrough affects two sites critical to the enterohepatic circulation of bile acids, little information is available regarding the manner in which normal digestive physiology is altered by these procedures. This study defines the early and long-term effects of colectomy and endorectal pullthrough on bile acid profile and the long-term effects on biliary lipid metabolism. SUMMARY BACKGROUND DATA: Specific changes in bile acid absorption have been reported in patients after ileal resection. Recent studies from our laboratory indicate that in the early postoperative period, colectomy with endorectal pullthrough causes a significant decrease in gallbladder bile concentrations of total bile acids, cholesterol, phospholipids, and calcium. The observation by several authors that the pouch undergoes morphologic and perhaps functional adaptation suggest that these changes may be transient and perhaps reversible. METHODS: These studies were done in an awake, unanesthetized canine model that allows periodic sampling of gallbladder bile without creation of an external biliary fistula and its associated sequelae. Animals were ultimately randomly assigned to either laparotomy and gallbladder cannulation (N = 6), or gallbladder cannulation with total colectomy and ileorectal anastomosis (N = 7), or biliary cannulation, colectomy, mucosal proctectomy and endorectal pullthrough with ileal reservoir (N = 5). RESULTS: Six weeks after operation, colectomy and ileorectal anastomosis were associated with a significant alteration in the relative composition of bile acids in gallbladder bile. These early changes were manifested by a significant (p < 0.05) increase in taurocholic acid and a concomitant decrease in taurodeoxycholic acid. These changes became even more pronounced in the ileorectal anastomosis group 12 weeks after colectomy and ileorectostomy. Although similar changes in the relative concentrations of individual bile acids occurred in the 6-week endorectal animals, bile acid profile was restored to normal by 12 weeks. CONCLUSIONS: Colectomy with ileorectal anastomosis leads to early and significant changes in bile acid profile, which persist and become even more pronounced with time. In contrast, the construction of an ileal reservoir after colectomy facilitates restoration of a normal bile acid profile. We propose that these alterations in bile acid metabolism result from adaptation of the ileal reservoir as its mucosa assumes functional characteristics of normal colon.

Adaptation, Physiological

Ca2+ calmodulin regulates basal gallbladder absorption.

BACKGROUND: Gallbladder absorption is altered during gallstone formation, a phenomenon that may be partly the result of elevated biliary Ca2+ levels. Recent studies suggest that changes in gallbladder absorption are mediated by intracellular Ca2+ ([Ca2+]ic). However, the mechanisms by which [Ca2+]ic regulates gallbladder ion transport are not known. Calmodulin is a Ca2+ receptor protein in the Ca2+ messenger system that modulates ion transport in the small intestine. We hypothesized that Ca(2+)-calmodulin mediates the effects of [Ca2+]ic on gallbladder absorption. METHODS: Prairie dog gallbladders were mounted in Ussing chambers, and standard electrophysiologic parameters were recorded. Unidirectional Na+, Cl-, and water fluxes were measured before and after mucosal exposure to 5 x 10(-5) mol/L trifluoperazine, a potent calmodulin antagonist. In addition, the ion transport effects of increased extracellular calcium and theophylline were determined in the presence of calmodulin inhibition. RESULTS: Inhibition of calmodulin resulted in an increase in net Na+ and water absorption and converted the gallbladder from a Cl- absorptive state. Similar results were obtained during exposure to two other calmodulin antagonists that differ only in their affinity for calmodulin but not in their hydrophobicity, suggesting that the observed changes were caused by specific calmodulin inhibition. Effects of trifluoperazine were reversed by increasing luminal [Ca2+] or theophylline exposure. CONCLUSIONS: The effects of calmodulin inhibition are directly opposite of the effects of the Ca2+ ionophore. We conclude that Ca(2+)-calmodulin regulates gallbladder absorption at basal [Ca2+]ic. Further studies are needed to determine whether altered calmodulin activity is responsible for increased gallbladder absorption during gallstone formation.

Absorption

Lovastatin and gallstone dissolution: a preliminary study.

BACKGROUND: Lovastatin, an agent that reduces both serum and biliary cholesterol in humans, also inhibits cholesterol gallstone formation in an animal model. The present study was designed to assess the efficacy of lovastatin in gallstone dissolution. METHODS: All prairie dogs were fed a 1.2% cholesterol-enriched diet during the entire study. Gallbladders from five animals were examined at 3 weeks, and four of five gallbladders contained gallstones. Remaining animals were maintained on the 1.2% cholesterol-enriched diet and randomized to receive either water (n = 7); lovastatin, 8 mg (n = 7); ursodeoxycholic acid, 50 mg (UR, n = 7); or both drugs (lovastatin and UR, n = 7) twice daily by way of orogastric tube for 4 additional weeks. Response to therapy was determined by blinded examination of gallbladders. RESULTS: All three treatment groups had significant reductions in serum cholesterol, hepatic bile cholesterol, and hepatic cholesterol saturation index as compared to controls (water). Lovastatin induced a 28% response rate to dissolution therapy, which was equal to that achieved with UR, and the combination of lovastatin and UR produced a 56% response rate. CONCLUSIONS: This preliminary study suggests that lovastatin, alone or in combination with UR, may be useful in dissolving gallstones in humans.

Animals

Altered Na+ and Cl- flux during diet-induced mixed gallstone formation in the prairie dog.

Recent studies suggest that altered gallbladder absorptive function may be an important and previously unrecognized factor in the pathogenesis of experimentally induced gallstones. The present study was designed to define the specific changes in gallbladder epithelial ion transport that occur during mixed gallstone formation. Fifteen prairie dogs were fed either control or corn-alfalfa chow for six months. No control animals developed gallstones or crystals. Three of eight corn-alfalfa-fed animals had large black stones, and the remaining five had crystals ("pregallstone" group). Corn-alfalfa-fed animals had significant increases in gallbladder bile cholesterol, phospholipids, and calcium as compared to controls. Gallbladders were removed and mounted in a Ussing chamber for electrophysiologic and ion flux studies. Gallbladders from animals fed corn-alfalfa demonstrated significant decreases in short-circuit current and potential difference as compared to controls (P less than 0.05). 22Na and 36Cl were used to determine unidirectional ion fluxes. While net ion fluxes were similar in pregallstone animals and controls, stone-forming animals exhibited a significant decrease in net Na+ flux and a significant reversal in the direction of net Cl- flux (from secretion to absorption) as compared to controls (P less than 0.05). These data indicate that mixed gallstone formation is associated with alterations in gallbladder ion transport. The role of these changes in the pathogenesis of mixed gallstones remains to be determined.

Animal Nutritional Physiological Phenomena

The effects of extracellular calcium on prairie dog gallbladder ion transport.

Recent studies suggest that experimentally induced gallstone formation is associated with altered gallbladder absorptive function. Moreover, elevated biliary levels of calcium have been implicated in the pathogenesis of cholesterol gallstones. Nonetheless, the relationship between gallbladder ion transport and biliary calcium remains obscure. We tested the hypothesis that extracellular calcium modulates gallbladder ion transport. Prairie dog gallbladders were mounted in an Ussing chamber, and short-circuit current (Isc), transepithelial potential difference (Vms), and tissue resistance (Rt) were measured. Tissues were randomly exposed to physiologic salt solutions containing the following concentrations of calcium: 0.01, 1.3, 5, and 10 mmol/L. Exposure of gallbladder epithelium to increasing calcium concentrations resulted in concomitant increases in Isc and Vms (p < 0.001), without altering Rt. Regression analysis demonstrated a curvilinear correlation between calcium and Isc (Y = 167 + 22.5x - 1.4 x 26; p < 0.001). We conclude that extracellular calcium may be a modulator of gallbladder ion transport.

Animals

Intrahepatic cholesterol stones: a rationale for dissolution therapy.

A case of primary cholesterol hepatolithiasis is reported. Stone composition was documented by infrared spectroscopy, and the presence of cholesterol saturated bile was demonstrated using standard biochemical techniques. The patient was treated with operative stone extraction, choledochoscopy, biliary enteric anastomosis, and oral dissolution therapy. The administration of oral dissolution agents has altered the composition of the patient's bile and may prevent further stone formation. We advocate the use of both stone and biliary biochemical analysis for patients with primary hepatolithiasis to facilitate optimal therapy.

Bile

Intracellular calcium modulates gallbladder ion transport.

Although experimentally induced cholesterol gallstone formation has been associated with altered gallbladder (GB) absorption and increased biliary Ca2+, the relationship between these events remains unclear. Recent studies suggest that extracellular Ca2+ ([Ca2+]ec) influences GB ion transport. Whether the effects of [Ca2+]ec are mediated by changes in intracellular Ca2+ ([Ca2+]ic) has not been determined. This study was designed to define the effects of altered [Ca2+]ic on GB ion transport. Prairie dog GBs were mounted in a Ussing chamber and short-circuit current (Isc), potential difference (Vms), and resistance (Rt) were recorded. Mucosal surfaces were exposed to either Dantrolene (Dt) or nickel (Ni2+). Dt "traps" [Ca2+]ic within intracellular organelles, thereby lowering cytosolic Ca2+; and Ni2+ prevents influx of [Ca2+]ec, presumably by binding Ca2+ channels. Although Dt reduced both Isc and Vms (P less than 0.01), these effects were transient. Transport recovery was probably due to increased [Ca2+]ec influx with restoration of [Ca2+]ic. Ni2+ resulted in sustained decreases in Isc and Vms (P less than 0.05) despite subsequent addition of 10 mM Ca2+. These findings are consistent with the prevention of [Ca2+]ec influx by Ni2+. We conclude that: (1) [Ca2+]ic may be a modulator of GB ion transport and (2) previously reported [Ca2+]ec effects on ion transport may be mediated through [Ca2+]ic concentration changes.

Animals

Uncoupled basal sodium absorption and chloride secretion in prairie dog (Cynomys ludovicianus) gallbladder.

1. Prairie dog gallbladders mounted in a Ussing-type chamber and bathed with symmetrical Ringer's solutions exhibited a transepithelial resistance (Rt) of 51 +/- 5 omega cm2, a lumen negative potential difference (Vms) of 11.5 +/- 0.7 mV and a short-circuit current (Isc) of 6.9 +/- 0.3 microEq/hr/cm2. 2. Radioisotopic ion flux experiments revealed that the basal Isc of 6.9 +/- 0.3 microEq/hr/cm2 was mostly accounted for by net Na+ absorption of 3.2 +/- 0.5 microEq/hr/cm2 and net Cl- secretion of 2.9 +/- 0.3 microEq/hr/cm2. 3. In HCO3- free Ringer's, net Na+ flux was virtually abolished, net Cl- flux decreased by 50% and Isc was reduced by 77%. 4. 10(-3) M mucosal amiloride and DIDS reduced Isc by 28 and 24%, respectively. 5. Mucosal NaCl diffusion potentials indicated that the paracellular pathway was cation selective. 6. Thin section electron micrographs showed a single cell population in this epithelium suggesting that net Na+ absorption and Cl- secretion may emerge from the same cells. 7. We conclude that prairie dog gallbladder epithelium is an electrogenic tissue and, in contrast to gallbladders of most other species, simultaneously but independently absorbs Na+ and secretes Cl-.

Animals

Lovastatin inhibits gallstone formation in the cholesterol-fed prairie dog.

The efficacy of lovastatin, an inhibitor of hepatic cholesterol synthesis in the prevention of cholesterol gallstone formation, was evaluated in the prairie dog model. Two groups of animals were maintained on either nonlithogenic or 1.2% cholesterol-enriched chow for 21 days. Seven of the animals in each group received lovastatin, and the remaining six received only distilled water. All of the cholesterol-fed/water-treated animals had crystals and 83% had gallstones, but none of the cholesterol-fed/lovastatin-treated animals had gallstones and only three had microscopic crystals. These data indicate that lovastatin inhibits cholesterol gallstone formation in a diet-induced model of gallstone disease.

Animals

Reoperative surgery for the morbidly obese. A university experience.

Patients who undergo surgery for morbid obesity are often subjected to reoperation for a wide array of indications. To evaluate outcome following revisional procedures, we reviewed the records of 32 such patients treated at UCLA between April 1986 and May 1989. Twenty-five women (78%) and 7 men (22%) with a mean age of 44 years underwent 76 reoperations (2.4 per patient) for complications of prior obesity surgery. Indications for initial surgical revision consisted primarily of metabolic derangements (12 patients) and weight-related problems (11 patients). In contrast, indications for the patients' final surgical procedure were commonly for bowel obstruction (41%), intra-abdominal sepsis (12%), and gastrointestinal bleeding (6%). Following initial revision, 23 patients (71.8%) required further surgery for major complications and four patients died (12.5%). While initial revisions are frequently indicated for metabolic problems, final reoperations are more frequently undertaken for urgent, life-threatening complications. Revisional procedures for morbid obesity should be carefully considered, and the potential for major complications and/or death should be weighted heavily against proposed benefits.

Adult