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1.
Acta cir. bras ; 30(12): 838-843, Dec. 2015. graf
Article in English | LILACS | ID: lil-769500

ABSTRACT

ABSTRACT PURPOSE: To test whether hemorrhagic shock (HS) increases the Cyclooxygenase-2 (COX-2) expression in the intestine and whether this enhanced COX-2 expression mediates the intestinal dysmotility after HS. METHODS: Male Wistar rats were randomly divided into HS sham group and HS group. At 180 min following HS establishment, the duodenum samples were harvested to assess the motility function, protein expression of COX-2 and the downstream products of COX-2, prostaglandins. RESULTS: Examination of motility function ex vivo showed that the contractile response to acetylcholine of smooth muscle strips of rats subjected to HS was significantly suppressed. A COX-2 inhibitor, NS-398, abolished this depressed contractile response after HS. Western blotting revealed an increased protein expression of COX-2 in intestinal tissues of HS rats. Immunohistochemical examination indicated that intestine tissues of HS rats were manifested by part of villous expansion and disruption, a large amount of COX-2 positive cells appearance in lamina propria and submucosa. Furthermore, the contents of prostaglandin E2 was significantly increased in intestinal tissues of HS rats. CONCLUSION: The enhanced COX-2/ prostaglandin E2 involves in the hemorrhagic shock induced intestinal dysmotility.


Subject(s)
Animals , Male , /metabolism , Duodenum/physiopathology , Gastrointestinal Motility/physiology , Shock, Hemorrhagic/enzymology , Acetylcholine/pharmacology , Dinoprostone/metabolism , Models, Animal , Muscle Contraction/drug effects , Nitrobenzenes/pharmacology , Random Allocation , Rats, Wistar , Shock, Hemorrhagic/physiopathology , Sulfonamides/pharmacology
2.
Braz. j. med. biol. res ; 46(7): 574-579, ago. 2013. tab, graf
Article in English | LILACS | ID: lil-682398

ABSTRACT

Vascular hyporeactivity is an important factor in irreversible shock, and post-shock mesenteric lymph (PSML) blockade improves vascular reactivity after hemorrhagic shock. This study explored the possible involvement of myosin light chain kinase (MLCK) in PSML-mediated vascular hyporeactivity and calcium desensitization. Rats were divided into sham (n=12), shock (n=18), and shock+drainage (n=18) groups. A hemorrhagic shock model (40±2 mmHg, 3 h) was established in the shock and shock+drainage groups. PSML drainage was performed from 1 to 3 h from start of hypotension in shock+drainage rats. Levels of phospho-MLCK (p-MLCK) were determined in superior mesenteric artery (SMA) tissue, and the vascular reactivity to norepinephrine (NE) and sensitivity to Ca2+ were observed in SMA rings in an isolated organ perfusion system. p-MLCK was significantly decreased in the shock group compared with the sham group, but increased in the shock+drainage group compared with the shock group. Substance P (1 nM), an agonist of MLCK, significantly elevated the decreased contractile response of SMA rings to both NE and Ca2+ at various concentrations. Maximum contractility (Emax) in the shock group increased with NE (from 0.179±0.038 to 0.440±0.177 g/mg, P<0.05) and Ca2+ (from 0.515±0.043 to 0.646±0.096 g/mg, P<0.05). ML-7 (0.1 nM), an inhibitor of MLCK, reduced the increased vascular response to NE and Ca2+ at various concentrations in the shock+drainage group (from 0.744±0.187 to 0.570±0.143 g/mg in Emax for NE and from 0.729±0.037 to 0.645±0.056 g/mg in Emax for Ca2+, P<0.05). We conclude that MLCK is an important contributor to PSML drainage, enhancing vascular reactivity and calcium sensitivity in rats with hemorrhagic shock.


Subject(s)
Animals , Male , Calcium/metabolism , Lymph/physiology , Mesenteric Artery, Superior/physiopathology , Muscle, Smooth, Vascular/physiopathology , Myosin-Light-Chain Kinase/physiology , Shock, Hemorrhagic/physiopathology , Muscle Contraction , Mesenteric Artery, Superior/metabolism , Muscle, Smooth, Vascular/metabolism , Myosin Light Chains/metabolism , Myosin-Light-Chain Kinase/analysis , Random Allocation , Rats, Wistar , Shock, Hemorrhagic/enzymology
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