Effect of Shenfu injection on intestinal mucosal barrier in a rat model of sepsis. 2015

Wan Wu, and Rong-Lin Jiang, and Ling-Cong Wang, and Shu Lei, and Xi Xing, and Yi-Hui Zhi, and Jian-Nong Wu, and Yan-Chun Wu, and Mei-Fei Zhu, and Li-Quan Huang
Department of Emergency, Hangzhou Hospital of Traditional Chinese Medicine, Hangzhou, Zhejiang Province, China.

OBJECTIVE The effects of Shenfu injection on protecting the intestinal mucosal barrier were investigated in rats with sepsis. METHODS Severe sepsis was established by cecal ligation and puncture (CLP) in 30 healthy Sprague-Dawley rats. Twelve rats that received sham surgery received 10 mL/kg of normal saline. Rats with CLP were randomized to receive 10 mL/kg of normal saline (n = 12) and 5 mL/kg Shenfu (n = 12), and 10 received 10 mL/kg Shenfu injection (n = 12) by tail intravenous injection. Rats were killed after 8 hours. Serum levels of tumor necrosis factor α and interleukin-10, and ileal malondialdehyde and superoxide dismutase activity were measured by enzyme-linked immunosorbent assay. Ileum tissue structures and pathological score were observed by microscopy. Ileal mucosal epithelial cell apoptosis index was calculated by TUNEL assay. Ileal proapoptotic protein Bax, antiapoptotic protein Bcl-2, and tight junction transmembrane protein occludin were measured by immunohistochemistry and immunoblot. RESULTS The level of tumor necrosis factor α, the ileal malondialdehyde level, ileum pathological score, apoptosis index of ileal mucosal epithelial cells, and Bax protein level were significantly higher, and serum level of interleukin-10, the ileal superoxide dismutase activity, Bcl-2 protein level, Bcl-2/Bax ratio, and occludin protein level were significantly lower in the CLP group than in the sham group (P < .01 or P < .05). Both low- and high-dose Shenfu significantly ameliorated these changes (P < .01 or P < .05), but high-dose injection achieved more significant improvements than did the low-dose injection (P < .01 or P < .05). CONCLUSIONS Shenfu injection might ameliorate the mucosal barrier function in a model of sepsis in rats in a dose-dependent manner.

UI MeSH Term Description Entries
D007082 Ileum The distal and narrowest portion of the SMALL INTESTINE, between the JEJUNUM and the ILEOCECAL VALVE of the LARGE INTESTINE.
D007275 Injections, Intravenous Injections made into a vein for therapeutic or experimental purposes. Intravenous Injections,Injection, Intravenous,Intravenous Injection
D007413 Intestinal Mucosa Lining of the INTESTINES, consisting of an inner EPITHELIUM, a middle LAMINA PROPRIA, and an outer MUSCULARIS MUCOSAE. In the SMALL INTESTINE, the mucosa is characterized by a series of folds and abundance of absorptive cells (ENTEROCYTES) with MICROVILLI. Intestinal Epithelium,Intestinal Glands,Epithelium, Intestinal,Gland, Intestinal,Glands, Intestinal,Intestinal Gland,Mucosa, Intestinal
D008297 Male Males
D008315 Malondialdehyde The dialdehyde of malonic acid. Malonaldehyde,Propanedial,Malonylaldehyde,Malonyldialdehyde,Sodium Malondialdehyde,Malondialdehyde, Sodium
D004195 Disease Models, Animal Naturally-occurring or experimentally-induced animal diseases with pathological processes analogous to human diseases. Animal Disease Model,Animal Disease Models,Disease Model, Animal
D004365 Drugs, Chinese Herbal Chinese herbal or plant extracts which are used as drugs to treat diseases or promote general well-being. The concept does not include synthesized compounds manufactured in China. Chinese Herbal Drugs,Plant Extracts, Chinese,Chinese Drugs, Plant,Chinese Plant Extracts,Extracts, Chinese Plant,Herbal Drugs, Chinese
D005260 Female Females
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D013482 Superoxide Dismutase An oxidoreductase that catalyzes the reaction between SUPEROXIDES and hydrogen to yield molecular oxygen and hydrogen peroxide. The enzyme protects the cell against dangerous levels of superoxide. Hemocuprein,Ag-Zn Superoxide Dismutase,Cobalt Superoxide Dismutase,Cu-Superoxide Dismutase,Erythrocuprein,Fe-Superoxide Dismutase,Fe-Zn Superoxide Dismutase,Iron Superoxide Dismutase,Manganese Superoxide Dismutase,Mn-SOD,Mn-Superoxide Dismutase,Ag Zn Superoxide Dismutase,Cu Superoxide Dismutase,Dismutase, Ag-Zn Superoxide,Dismutase, Cobalt Superoxide,Dismutase, Cu-Superoxide,Dismutase, Fe-Superoxide,Dismutase, Fe-Zn Superoxide,Dismutase, Iron Superoxide,Dismutase, Manganese Superoxide,Dismutase, Mn-Superoxide,Dismutase, Superoxide,Fe Superoxide Dismutase,Fe Zn Superoxide Dismutase,Mn SOD,Mn Superoxide Dismutase,Superoxide Dismutase, Ag-Zn,Superoxide Dismutase, Cobalt,Superoxide Dismutase, Fe-Zn,Superoxide Dismutase, Iron,Superoxide Dismutase, Manganese

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