scholarly journals CHEMICAL FINDINGS IN THE BLOOD OF THE DOG AFTER CLOSED-LOOP OBSTRUCTION OF THE JEJUNUM

1929 ◽  
Vol 49 (6) ◽  
pp. 955-958 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

The chemical findings in the blood of 6 dogs with closed-loop obstruction of the upper jejunum are reported. The duration of life with closed loops is less than with simple obstruction. All animals showed a marked rise in non-protein nitrogen and urea nitrogen, and fall in chlorides. Usually the C02 combining power of the plasma is increased. The findings in closed-loop obstruction are essentially the same as in simple intestinal obstruction.

1923 ◽  
Vol 37 (3) ◽  
pp. 377-381 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

Chemical studies of the blood and urine of four dogs following pyloric obstruction are reported. The observations of other workers that a fall in chlorides and a rise in CO2-combining power of the plasma occur, are confirmed. There is also a marked rise in the non-protein nitrogen of the blood, consisting mainly of urea nitrogen and undetermined nitrogen. The fall in chlorides is not due to the loss of chlorides in the gastric juice. The chlorine is probably bound somewhere in the process of protein destruction. There is a close relation between the fall in chlorides and the protein destruction. A study of tetany should include the protein metabolism as well as that of the inorganic salts, since it seems possible that the tetany is due to protein split-products and not to the alkalosis. The chemical changes following pyloric obstruction are essentially the same as those following high intestinal obstruction.


1918 ◽  
Vol 28 (2) ◽  
pp. 243-252
Author(s):  
J. V. Cooke ◽  
G. H. Whipple

Sterile abscess formation in the dog is accompanied by a large increase in output of urinary nitrogen and also by a small but definite increase in the blood non-protein nitrogen. All this nitrogenous material of course is derived from body protein injury and autolysis. Septic inflammation in the dog (pleurisy, pneumonia, peritonitis, etc.) likewise shows a distinct rise in the blood non-protein nitrogen. This rise is not often so great as that frequently observed in the intoxication of intestinal obstruction. Many acute infections in man (septicemia, peritonitis, pneumonia, etc.) show a definite rise in the non-protein nitrogen and urea nitrogen of the blood; some cases show a very great rise above normal (over 100 mg. of non-protein nitrogen per 100 cc. of blood). There may be no anatomical change in the kidney beyond the familiar picture of cloudy swelling. This does not exclude the possibility of some transient functional derangement of the kidney epithelium. Certain obscure intoxications in man may show a considerable rise in the non-protein nitrogen of the blood, indicating a large amount of protein disintegration. These findings must be taken into account in any clinical analysis and interpretation of high non-protein nitrogen of the blood in pathological conditions.


1923 ◽  
Vol 37 (3) ◽  
pp. 365-375 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

A study of the non-protein nitrogen, urea nitrogen, uric acid, creatinine, amino-acid nitrogen, sugar, and chlorides of the blood and the CO2-combining power of the plasma in normal dogs, and in dogs after different types of intestinal obstruction, is reported. Following ligation of the duodenum, ligation of the duodenum with gastroenterostomy, and ligation of the upper half of the ileum, a fall in chlorides and a rise in the non-protein nitrogen and urea nitrogen of the blood and in the CO2-combining power of the plasma occur. The uric acid, creatinine, amino-acid nitrogen, and sugar show no significant changes. The fundamental change is a fall in chlorides followed by an alkalosis. The degree of alkalosis depends upon the rate of formation of carbonate, rate of excretion by the kidneys, and extent of neutralization of the carbonate by acid bodies formed during the intoxication. The fall in chlorides is probably due to a utilization of the chlorine ion in the course of the intoxication. It is suggested that this use of chlorine is a protective measure on the part of the body. There are indications that high intestinal obstruction should not be treated by the administration of alkalies. The urea nitrogen is a good index of the protein destruction. Ligation of the ileum at the ileocecal valve is followed by little increase in nitrogen and no change in the chlorides or CO2-combining power of the plasma. The close similarity of the blood findings in intestinal obstruction, acute lobar pneumonia, and serum disease suggests that these widely different conditions may have a common chemical basis.


1925 ◽  
Vol 41 (1) ◽  
pp. 107-111 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

The blood findings in five monkeys after experimental high intestinal obstruction are reported. All animals showed the marked rise in non-protein nitrogen characteristic of intestinal obstruction in man and the dog. Two monkeys showed a very marked drop in chlorides, the others a less marked fall. Coincident with the change in chlorides there is a rise in the CO2-combining power. The uric acid and creatinine showed no typical changes. No vomiting was observed. This emphasizes the fact that vomiting alone does not account for the fall in blood chlorides characteristic of intestinal obstruction.


1923 ◽  
Vol 38 (4) ◽  
pp. 477-485 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

Ligation of the cardiac end of the stomach or of the esophagus in ten dogs produced a severe toxemia, and rapid death. In seven of the animals there occurred a marked rise in the total non-protein nitrogen and urea nitrogen of the blood. The dogs living longest with cardiac obstruction showed a fall in blood chlorides and a rise in the CO2-combining power of the plasma. All the dogs with an obstruction of the esophagus showed a fall in blood chlorides. Control animals subjected to other types of abdominal operations showed no significant changes in the blood.


2020 ◽  
Vol 13 (12) ◽  
pp. e238112
Author(s):  
Ramprasad Rajebhosale ◽  
Mohammad Miah ◽  
Fraser Currie ◽  
Pradeep Thomas

Perineal hernia with bowel gangrene is uncommon but known complication of laparoscopic extralevator abdominoperineal excision (ELAPE). We present a rare case of closed loop small bowel obstruction with bowel gangrene secondary to an incarcerated perineal hernia that developed 7 years after an ELAPE. Intraoperatively, we found a definitive transition point due to adhesions in pelvis and a closed loop obstruction of the distal small bowel at different site with gangrenous intestine. She was managed successfully surgically with adhesiolysis and fixation of defect with biological mesh. Prevalence of perineal hernias will rise in future because of the increasing cases of ELAPE, in which no repair of pelvic floor is performed. The need of follow-up of these operations and more reporting of such cases are important in increasing awareness of these complications. Patients should be made aware of such complications and should seek urgent medical care.


1913 ◽  
Vol 17 (3) ◽  
pp. 286-306 ◽  
Author(s):  
G. H. Whipple ◽  
H. B. Stone ◽  
B. M. Bernheim

Closed duodenal loops may be made in dogs by ligatures placed just below the pancreatic duct and just beyond the duodenojejunal junction, together with a posterior gastro-enterostomy. These closed duodenal loop dogs die with symptoms like those of patients suffering from volvulus or high intestinal obstruction. This duodenal loop may simulate closely a volvulus in which there has been no vascular disturbance. Dogs with closed duodenal loops which have been washed out carefully survive a little longer on the average than animals with unwashed loops. The duration of life in the first instance is one to three days, with an average of about forty-eight hours. The dogs usually lose considerable fluid by vomiting and diarrhea. A weak pulse, low blood pressure and temperature are usually conspicuous in the last stages. Autopsy shows more or less splanchnic congestion which may be most marked in the mucosa of the upper small intestine. The peritoneum is usually clear and the closed loop may be distended with thin fluid, or collapsed, and contain only a small amount of pasty brown material. The mucosa of the loop may show ulceration and even perforation, but in the majority of cases it is intact and exhibits only a moderate congestion. Simple intestinal obstruction added to a closed duodenal loop does not modify the result in any manner, but it may hasten the fatal outcome. The liver plays no essential role as a protective agent against this poison, for a dog with an Eck fistula may live three days with a closed loop. A normal dog reacts to intraportal injection and to intravenous injection of the toxic substance in an identical manner. Drainage of this loop under certain conditions may not interfere with the general health over a period of weeks or months. Excision of the part of the duodenum included in this loop causes no disturbance. The material from the closed duodenal loops contains no bile, pancreatic juice, gastric juice, or split products from the food. It can be formed in no other way than by the activity of the intestinal mucosa and the growth of the intestinal bacteria. This material after dilution, autolysis, sterilization, and filtration produces a characteristic effect when introduced intravenously. When in toxic doses it causes a profound drop in blood pressure, general collapse, drop in temperature, salivation, vomiting, and profuse diarrhea, which is often blood-stained. Splanchnic congestion is the conspicuous feature at autopsy and shows especially in the villi of the duodenal and jejunal mucosæ. Adrenalin, during this period of low blood pressure and splanchnic congestion, will cause the usual reaction when given intravenously, but applied locally or given intravenously it causes no bleaching of the engorged intestinal mucosa. Secretin is not found in the duodenal loop fluid, and the loop material does not influence the pancreatic secretion. Intraportal injection of the toxic material gives a reaction similar to intravenous injection. Intraperitoneal and subcutaneous injections produce a relatively slow reaction which closely resembles the picture seen in the closed duodenal loop dog. In both cases there is a relatively slow absorption, but the splanchnic congestion and other findings, though less intense, are present in both groups. There seems, therefore, to be no escape from the conclusion that a poisonous substance is formed in this closed duodenal loop which is absorbed from it and causes intoxication and death. Injection of this toxic substance into a normal dog gives intoxication and a reaction more intense but similar to that developing in a closed-loop dog.


1929 ◽  
Vol 49 (6) ◽  
pp. 945-953 ◽  
Author(s):  
Russell L. Haden ◽  
Thomas G. Orr

A comparative chemical study of the blood and the urine of the dog with experimental dehydration and with obstruction of the cardiac end of the stomach is reported. The average duration of life is slightly longer with dehydration than with obstruction. The urine output per kilo of body weight is almost twice as great in dehydration as with obstruction. The increase in non-protein nitrogen and urea nitrogen is much the same in the two groups although somewhat more marked with obstruction. The chlorides of the blood are markedly increased with dehydration and slightly decreased with obstruction. The increase in fibrinogen and total protein is twice as great with obstruction as with dehydration. These findings indicate that there must be some factor or factors in addition to dehydration producing the toxemia of cardiac obstruction.


1998 ◽  
Vol 2 (2) ◽  
pp. 44 ◽  
Author(s):  
Andrew C. Hammond

<p>As an adjunct to monitoring body weight changes and body condition score, blood or milk urea nitrogen (BUN or MUN) can be a useful tool for monitoring the protein­energy status of cattle. In healthy beef cows or finishing steers, urea nitrogen concentrations of less than about 7 mg/dL would indicate a deficiency of dietary protein (nitrogen) relative to the intake of digestible energy. In rapidly growing cattle or high producing dairy cows, urea nitrogen concentrations of less than about 15 mg/dL indicate a relative deficiency of dietary protein. Urea nitrogen concentrations of greater than 19 to 20 mg/dL have been associated with reduced conception and pregnancy rates in dairy cows.</p><p> </p><p><strong>Uso de niveles de nitrógeno uréico en sangre (BUN) y leche (MUN) como guía para la suplementación protéica y energética en bovinos</strong></p><p>Además de las mediciones tradicionales de cambios en el peso y la condición corporal, los niveles de nitrógeno uréico en sangre (BUN) o en leche (MUN) pueden utilizarse como herramientas para estimar el estado de la nutrición energético-proteínica del ganado. En vacas y novillos sanos, las concentraciones de nitrógeno uréico por debajo de 7 mg/ dL indican deficiencias de proteína (nitrógeno) en la dieta con relación al consumo de energía digestible. En el ganado vacuno de rápido crecimiento o las vacas lecheras de alta producción, las concentraciones de nitrógeno uréico menores de 15 mg/ dL señalan una deficiencia relativa de proteína en la dieta. Las concentraciones de nitrógeno uréico mayores de 19 a 20 mg/dL, se han asociado con una reducción de las tasas de concepción y preñez en vacas lecheras.</p>


1992 ◽  
Vol 07 (21) ◽  
pp. 5045-5083 ◽  
Author(s):  
H. GROSSE ◽  
E. LANGMANN

We discuss the quantization of fermions interacting with external fields and observe the occurrence of equivalent as well as inequivalent representations of the canonical anticommutation relations. Implementability of gauge and axial gauge transformations leads to generators which fulfil an algebra of current with a Schwinger term. This term can be written as a cocycle and leads to the boson-fermion correspondence. Transport of a quantum-mechanical system along a closed loop of parameter space may yield a geometric phase. We discuss models for which nonintegrable phase factors are obtained from the adiabatic parallel transport. After second quantization, one obtains, in addition, a Schwinger term. Depending on the type of transformation, a subtle relationship between these two obstructions can occur. We indicate finally how we may transport density matrices along closed loops in parameter space.


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