Literature DB >> 18497710

Reproducibility of an animal model simulating complex combat-related injury in a multiple-institution format.

S David Cho1, John B Holcomb, Brandon H Tieu, Michael S Englehart, Melanie S Morris, Z Ayhan Karahan, Samantha A Underwood, Patrick J Muller, M Dale Prince, Leticia Medina, Jill Sondeen, Christian Shults, Michael Duggan, Malek Tabbara, Hasan B Alam, Martin A Schreiber.   

Abstract

We developed a complex combat-relevant model of abdominal and extremity trauma, hemorrhagic shock, hypothermia, and acidosis. We then simulated injury, preoperative, and operative phases. We hypothesized that this model is reproducible and useful for randomized multicenter preclinical trials. Yorkshire swine were anesthetized, intubated, and instrumented. They then underwent femur fracture, 60% total blood volume hemorrhage, a 30-min shock period, induced hypothermia to 33 degrees C, and hemorrhage volume replacement with 3:1 isotonic sodium chloride solution (NS) at each of three centers. Hemodynamic parameters were measured continuously. Thromboelastography, arterial blood gas, and laboratory values were collected at baseline, after the shock period, and after NS replacement. Thirty-seven animals were used for model development. Eight (21%) died before completion of the study period. Twenty-nine survivors were included in the analysis. MAP (+/-SEM) after the shock period was 32 +/- 2 mmHg and was similar between centers (P = 0.4). Mean pH, base deficit, and lactate levels were 7.29 +/- 0.02, 8.20 +/- 0.65 mmol/L, and 5.29 +/- 0.44 mmol/L, respectively, after NS replacement. These were similar between centers (P > 0.05). Prothrombin time values increased significantly over time at all centers, reflecting a progressive coagulopathy (P < 0.02). Thromboelastography maximum amplitude values were similar among centers (P > 0.05) and demonstrated progressively weakened platelet interaction over time (P < 0.03). Hematocrit was similar after controlled hemorrhage (P = 0.15) and dilution (P = 0.9). The pH, lactate, base deficit, and coagulation tests reflect a severely injured state. A complex porcine model of polytrauma and shock can be used for multi-institutional study with excellent reproducibility. A consistent severe injury profile was achieved, after which experimental interventions can be applied. This is the first report of a reproducible multicenter trauma and resuscitation-related animal model.

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Year:  2009        PMID: 18497710     DOI: 10.1097/SHK.0b013e3181777ffb

Source DB:  PubMed          Journal:  Shock        ISSN: 1073-2322            Impact factor:   3.454


  19 in total

1.  Recombinant myostatin (GDF-8) propeptide enhances the repair and regeneration of both muscle and bone in a model of deep penetrant musculoskeletal injury.

Authors:  Mark W Hamrick; Phonepasong Arounleut; Ethan Kellum; Matthew Cain; David Immel; Li-Fang Liang
Journal:  J Trauma       Date:  2010-09

2.  Fibrinolysis shutdown phenotype masks changes in rodent coagulation in tissue injury versus hemorrhagic shock.

Authors:  Hunter B Moore; Ernest E Moore; Peter J Lawson; Eduardo Gonzalez; Miguel Fragoso; Alex P Morton; Fabia Gamboni; Michael P Chapman; Angela Sauaia; Anirban Banerjee; Christopher C Silliman
Journal:  Surgery       Date:  2015-06-05       Impact factor: 3.982

3.  A combat casualty relevant dismounted complex blast injury model in swine.

Authors:  Alexis L Cralley; Ernest E Moore; Daniel Kissau; Julia R Coleman; Navin Vigneshwar; Margot DeBot; Terry R Schaid; Hunter B Moore; Mitchell J Cohen; Kirk Hansen; Christopher C Silliman; Angela Sauaia; Charles J Fox
Journal:  J Trauma Acute Care Surg       Date:  2022-05-12       Impact factor: 3.697

4.  Increase in activated protein C mediates acute traumatic coagulopathy in mice.

Authors:  Brian B Chesebro; Pamela Rahn; Michel Carles; Charles T Esmon; Jun Xu; Karim Brohi; Daniel Frith; Jean-François Pittet; Mitchell J Cohen
Journal:  Shock       Date:  2009-12       Impact factor: 3.454

5.  A systematic review of large animal models of combined traumatic brain injury and hemorrhagic shock.

Authors:  Andrew R Mayer; Andrew B Dodd; Meghan S Vermillion; David D Stephenson; Irshad H Chaudry; Denis E Bragin; Andrew P Gigliotti; Rebecca J Dodd; Benjamin C Wasserott; Priyank Shukla; Rachel Kinsler; Sheila M Alonzo
Journal:  Neurosci Biobehav Rev       Date:  2019-06-27       Impact factor: 8.989

6.  Systemic central venous oxygen saturation is associated with clot strength during traumatic hemorrhagic shock: A preclinical observational model.

Authors:  Nathan J White; Erika J Martin; Yongyun Shin; Donald F Brophy; Robert F Diegelmann; Kevin R Ward
Journal:  Scand J Trauma Resusc Emerg Med       Date:  2010-12-07       Impact factor: 2.953

Review 7.  Experimental trauma models: an update.

Authors:  Michael Frink; Hagen Andruszkow; Christian Zeckey; Christian Krettek; Frank Hildebrand
Journal:  J Biomed Biotechnol       Date:  2011-01-26

8.  Evaluation of Prehospital Blood Products to Attenuate Acute Coagulopathy of Trauma in a Model of Severe Injury and Shock in Anesthetized Pigs.

Authors:  Sarah Watts; Giles Nordmann; Karim Brohi; Mark Midwinter; Tom Woolley; Robert Gwyther; Callie Wilson; Henrietta Poon; Emrys Kirkman
Journal:  Shock       Date:  2015-08       Impact factor: 3.454

9.  Effect of Negative Pressure Therapy on the Inflammatory Response of the Intestinal Microenvironment in a Porcine Septic Model.

Authors:  Kenneth C Norbury; Mary Pat Moyer
Journal:  Mediators Inflamm       Date:  2015-07-30       Impact factor: 4.711

10.  Relevance of induced and accidental hypothermia after trauma-haemorrhage-what do we know from experimental models in pigs?

Authors:  Frank Hildebrand; Peter Radermacher; Steffen Ruchholtz; Markus Huber-Lang; Andreas Seekamp; Sascha Flohé; Martijn van Griensven; Hagen Andruszkow; Hans-Christoph Pape
Journal:  Intensive Care Med Exp       Date:  2014-05-15
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