In pediatric and adult respiratory care units, nosocomial pneumonia is a leading cause of patient morbidity, mortality and economic loss. Clinical investigations suggest that this infectious complication is due to diminished numbers and decreased function of the resident lung phagocyte, the pulmonary alveolar macrophage (PAM). We hypothesize that these alterations in the PAM are induced by hyperoxia, and the mechanisms involved include 1) injury to antioxidant enzyme systems, 2) damage to DNA, and 3) depressed protein synthesis. We postulate that 1) cimetidine prevents oxidant injury by decreasing hydrogen peroxide production via the cytochrome P-450 oxygenase system, and 2) deferoxamine blocks hydroxyl and perferryl radical production in metal-catalyzed reactions, thereby reducing oxidant injury to the lung during normobaric, hyperoxic exposures. To test these hypotheses, the following investigations will be performed in rabbits who receive cimetidine, deferoxamine, or drug placebo during exposure to hyperoxia: 1. In vivo pulmonary clearance of inhaled Staphylococcus aureus and Escherichia coli 2. Assessment of 02-dependent and 02-independent bactericidal mechanisms by the PAM 3. Determination of cell kinetics of the PAM population 4. Measurement of antioxidant enzyme systems of the PAM 5. Assessment of DNA damage and repair in the PAM population 6. Determination of polyamine metabolism by the PAM 7. Evaluation of lung morphometrics during acute injury, convalescence, and recovery The PAM has a secretory repertoire that includes over 50 mediators of pulmonary host defense, growth, and repair. The findings derived from these investigations should enhance our understanding of pulmonary alveolar macrophage injury and repair during hyperoxia. In addition, our observations will have broad applications to the fields of cancer biology and aging.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Project (R01)
Project #
1R01HL040675-01
Application #
3357945
Study Section
Pathology A Study Section (PTHA)
Project Start
1988-04-01
Project End
1991-03-31
Budget Start
1988-04-01
Budget End
1989-03-31
Support Year
1
Fiscal Year
1988
Total Cost
Indirect Cost
Name
University of California Los Angeles
Department
Type
Schools of Medicine
DUNS #
119132785
City
Los Angeles
State
CA
Country
United States
Zip Code
90095
Ihnken, K; Morita, K; Buckberg, G D (1998) Delayed cardioplegic reoxygenation reduces reoxygenation injury in cyanotic immature hearts. Ann Thorac Surg 66:177-82
Morita, K; Ihnken, K; Buckberg, G D et al. (1996) Oxidative insult associated with hyperoxic cardiopulmonary bypass in the infantile heart and lung. Jpn Circ J 60:355-63
Ihnken, K; Morita, K; Buckberg, G D et al. (1996) Reduced oxygen tension during cardiopulmonary bypass limits myocardial damage in acute hypoxic immature piglet hearts. Eur J Cardiothorac Surg 10:1127-34;discussion 1135
Morita, K; Ihnken, K; Buckberg, G D et al. (1996) Pulmonary vasoconstriction due to impaired nitric oxide production after cardiopulmonary bypass. Ann Thorac Surg 61:1775-80
Ihnken, K; Morita, K; Buckberg, G D et al. (1995) Reduction of reoxygenation injury and nitric oxide production in the cyanotic immature heart by controlling pO2. Eur J Cardiothorac Surg 9:410-8
Morita, K; Ihnken, K; Buckberg, G D et al. (1994) Role of controlled cardiac reoxygenation in reducing nitric oxide production and cardiac oxidant damage in cyanotic infantile hearts. J Clin Invest 93:2658-66
Sherman, M P; Campbell, L A; Merritt, T A et al. (1994) Effect of different surfactants on pulmonary group B streptococcal infection in premature rabbits. J Pediatr 125:939-47
Gilliam, M B; Sherman, M P; Griscavage, J M et al. (1993) A spectrophotometric assay for nitrate using NADPH oxidation by Aspergillus nitrate reductase. Anal Biochem 212:359-65
Mah, M P; Aeberhard, E E; Gilliam, M B et al. (1993) Effects of pentoxifylline on in vivo leukocyte function and clearance of group B streptococci from preterm rabbit lungs. Crit Care Med 21:712-20
Matheis, G; Sherman, M P; Buckberg, G D et al. (1992) Role of L-arginine-nitric oxide pathway in myocardial reoxygenation injury. Am J Physiol 262:H616-20

Showing the most recent 10 out of 20 publications