实验动物与比较医学 ›› 2026, Vol. 46 ›› Issue (4): 507-514.DOI: 10.12300/j.issn.1674-5817.2025.179

• 人类疾病动物模型 • 上一篇    下一篇

寒冷环境对胃肠爆震复合伤模型比格犬的病理生理影响

宫田田, 王馨培, 郭天革, 安洋, 孟子皓, 姚明辉, 张贺()   

  1. 北部战区总医院 实验动物室, 沈阳 110016
  • 收稿日期:2025-11-03 修回日期:2026-02-13 出版日期:2026-08-25 发布日期:2026-08-22
  • 通讯作者: 张贺(1981—),男,博士,副主任医师,从事人类疾病动物模型的制作研究。E-mail:alwayszhh@163.com。ORCID:0000-0002-3830-9228
  • 作者简介:宫田田(1998—),女,硕士,技师,从事人类疾病动物模型的制作研究。E-mail:17624210126@163.com
  • 基金资助:
    北部战区总医院自主科研项目

Pathophysiological Effects of Cold Environment on Gastrointestinal Blast Combined Injury in Beagle Dogs

GONG Tiantian, WANG Xinpei, GUO Tiange, AN Yang, MENG Zihao, YAO Minghui, ZHANG He()   

  1. Department of Laboratory Animal, General Hospital of Northern Theater Command, Shenyang 110016, China
  • Received:2025-11-03 Revised:2026-02-13 Published:2026-08-25 Online:2026-08-22
  • Correspondence to: ZHANG He (ORCID: 0000-0002-3830-9228), E-mail: alwayszhh@163.com

摘要:

目的 探讨寒冷环境对犬腹部胃肠爆震伤后病理生理变化的影响。 方法 选用8只健康普通级成年雄性比格犬,随机分为寒冷组与常温组,每组4只。术前,比格犬禁食、禁水12 h;建立耳缘静脉建立后,采用微量注射泵持续输注丙泊酚(2 mg·kg-1·min-1)维持麻醉,行气管插管,保留自主呼吸,将脑电双频指数维持在40~60以确保麻醉稳定性。通过战创伤多功能造模平台建立比格犬腹部胃肠爆震伤模型,寒冷组犬爆震后暴露于-20 ℃低温舱并联合10%体表面积冰水浸泡40 min;常温组爆震后置于(25±2)℃环境40 min。监测两组比格犬在爆震前、爆震后即时以及爆震后40 min的心率、血压、血氧饱和度等生理指标,并检测动脉血气指标(包括pH、动脉血氧分压、动脉血二氧化碳分压、实际碳酸氢根、乳酸和全血碱剩余);实验结束后采集胃肠组织(胃窦部胃组织和距十二指肠悬韧带5 cm处的空肠上段),采用HE染色结合半定量评分进行病理分析。 结果 生理指标显示,寒冷组比格犬体温显著低于常温组(P<0.01),心率以及收缩压均显著高于常温组(P<0.000 1);动脉血二氧化碳分压显著高于常温组(P<0.000 1),全血碱剩余显著低于常温组(P<0.000 1),提示寒冷组存在更严重的呼吸性酸中毒和代谢性酸中毒。病理分析显示,寒冷组胃肠组织损伤较常温组明显加重,胃黏膜上皮脱落率>60%(常温组<25%),小肠绒毛顶端上皮坏死率达70%以上(常温组<30%),炎症细胞浸润累及黏膜下层(常温组局限于黏膜浅层),半定量评分结果与病理分析结果一致,进一步证实寒冷环境可加剧腹部胃肠爆震伤引起的胃肠组织损伤。 结论 寒冷环境可加剧爆震伤后比格犬的循环功能紊乱以及胃肠组织损伤,为寒冷地区战创伤早期复温干预提供了实验依据。

关键词: 寒冷环境, 胃肠组织, 爆震伤, 复合伤, 比格犬

Abstract:

Objective To investigate the impact of a cold environment on the pathophysiological changes in dogs after abdominal gastrointestinal blast injury. Methods Eight healthy common-grade adult male Beagles were selected and randomly divided into a cold group and a normal temperature group, with 4 dogs in each group. Prior to surgery, Beagles dogs were fasted and deprived of water for 12 hours; after establishing a vein at the edge of the ear, propofol (2 mg·kg-1·min-1) was continuously infused using a microinfusion pump to maintain anesthesia. Tracheal intubation was performed while preserving spontaneous breathing, and the electroencephalogram bifrequency index was maintained at 40-60 to ensure stable anesthesia. A model of abdominal gastrointestinal blast injury in Beagle dogs was established using a multifunctional combat trauma modeling platform. After blast injury, the cold group was exposed to a cold chamber at -20 ℃ combined with 10% body surface area ice water immersion for 40 min, while the normal temperature group was kept in an environment at (25±2) ℃ for 40 min after blast injury. Vital signs such as heart rate, blood pressure, and blood oxygen saturation were monitored in both groups before blast injury, immediately after blast injury, and 40 min after blast injury. And arterial blood gas parameters, including pH, partial pressure of oxygen in arterial blood (PaO2), partial pressure of carbon dioxide in arterial blood (PaCO2), actual bicarbonate radical (HCO3-), lactic acid (Lac), and blood base excess (BEb), were measured. After the experiment, gastrointestinal tissues (gastric antrum and upper jejunum 5 cm distal to the suspensory ligament of the duodenum) were harvested for pathological analysis via hematoxylin-eosin (HE) staining combined with semi-quantitative scoring. Results Physiological indicators showed that the body temperature of the cold group was significantly lower than that of the normal temperature group (P<0.01), and the heart rate and systolic blood pressure of the cold group were significantly higher than those of the normal temperature group (P<0.000 1). PaCO2 was markedly elevated and BEb was markedly decreased in the cold group relative to the normal temperature group (P<0.000 1), suggesting aggravated respiratory acidosis and metabolic acidosis. Pathological analysis showed that gastro-intestinal tissue damage was more severe in the cold group: the gastric mucosal epithelial shedding rate was > 60% (vs. <25% in the normal temperature group), the necrosis rate of the epithelial cells at the tips of intestinal villi reached more than 70% (vs. < 30% in the normal temperature group), and inflammatory cell infiltration involved the submucosa (vs. limited to the superficial mucosa in the normal temperature group). The semi-quantitative scoring results were consistent with the pathological analysis results, further confirming that the cold environment exacerbated gastrointestinal tissue damage caused by abdominal gastrointestinal blast injury. Conclusion A cold environment can exacerbate circulatory dysfunction and gastrointestinal tissue damage in Beagle dogs after blast injury, providing experimental evidence for early rewarming intervention for combat trauma in cold regions.

Key words: Cold environment, Gastrointestinal tissue, Blast injury, Combined injury, Beagle dogs

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