Rat Strains Bred for Low and High Aerobic Running Capacity do not Differ in Their Survival Time to Hemorrhage

Abstract

Hemorrhagic shock reflects low tissue perfusion that is inadequate to maintain normal metabolic functions. Often associated with this condition are impairments in cellular oxygen delivery and utilization. Rat strains divergent in their running endurance have been artificially selected over 12 generations. As these rats bred for high (HCR) vs low (LCR) aerobic running capacity have greater tissue O2 utilization capacity and improved cardiovascular function, we hypothesized that HCR would be more tolerant (i.e., have greater survivability) to the global ischemia of hemorrhagic shock than LCR. To address this hypothesis, survival time to a severe --as substantiated by dramatic changes in plasma lactate, HCO3 , and base deficit--controlled hemorrhage was measured. Male rats were catheterized and, approximately 24 hours later, an estimated greater than 35% of the calculated blood volume was removed during a 26 min period while the rats were conscious and unrestrained. Rats were observed for 6 hr or until death. Contrary to our hypothesis, survival time in HCR (220 63 min; n=6) did not differ statistically ( P = 0.46 ) from that in LCR (279 + or - 53 min; n = 7). Similarly, there were no statistical differences (P greater than or equal to 0.08) between rat lines in blood pH, lactate, HCO3 , and base deficit pre or post-hemorrhage. In addition, few significant differences between lines in response to hemorrhage were detected by measures of cellular antioxidant status in heart, liver or lung. Since animals with genetically greater tissue oxygen utilization capacity failed to show longer survival times, our results suggest that other mechanisms must play a more dominant role in determining survivability to hemorrhage under conditions of this hemorrhage.

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Document Details

Document Type
Technical Report
Publication Date
Dec 01, 2009
Accession Number
ADA630342

Entities

People

  • Harold G. Klemcke
  • Kathy L. Ryan
  • Lauren G. Koch
  • Michael A. Dubick
  • Steven L. Britton
  • Victor A Convertino

Organizations

  • United States Army Institute of Surgical Research

Tags

DTIC Thesaurus Topics

  • Analysis Of Variance
  • Arteries
  • Blood
  • Blood Volume
  • Body Weight
  • Brain Injuries
  • Cardiovascular Physiological Phenomena
  • Cardiovascular System
  • Chemistry
  • Hemorrhage
  • Hemorrhagic Shock
  • Statistical Analysis
  • Surgery
  • Survival

Fields of Study

  • Biology

Readers

  • Mathematics or Statistics
  • Microbial Pathology
  • Neuroscience

Technology Areas

  • Biotechnology