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PMID: 1428126 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Synergism among oxidants, proteinases, phospholipases, microbial hemolysins, cationic proteins, and cytokines.

Inflammation ·Vol. 16 ·No. 5 ·1992-10-00 ·Pages 519-38

Ginsburg I, Misgav R, Pinson A, Varani J, Ward PA, Kohen R

Abstract

A striking similarity exists between the pathogenetic properties of group A streptococci and those of activated mammalian professional phagocytes (neutrophils, macrophages). Both types of cells are endowed by the ability to adhere to target cells; to elaborate oxidants, hydrolases, and membrane-active agents (hemolysins, phospholipases); and to freely invade tissues and destroy cells. From the evolutionary point of view, streptococci might justifiably be considered the forefathers of "modern" leukocytes. Our earlier findings that synergy between a streptococcal hemolysin (streptolysin S, SLS) and a streptococcal thiol-dependent proteinase and between cytotoxic antibodies+complement and streptokinase-activated plasmin readily killed tumor cells, led us to hypothesize that by analogy to the pathogenetic mechanisms of streptococci, the mechanisms of tissue destruction initiated by activated leukocytes in inflammatory sites, as well as in tissues undergoing episodes of ischemia and reperfusion, might also be the result of the synergistic effects among leukocyte-derived oxidants, phospholipases, proteinases, cytokines, and cationic proteins. The current report extends our previous synergy studies with endothelial cells to two additional cell types--monkey kidney epithelial cells and rat beating heart cells. Monolayers of 51Cr-labeled cells that had been treated by combinations of sublytic amounts of hydrogen peroxide (generated either by glucose oxidase, xanthine-xanthine oxidase, or by paraquat) and with sublytic amounts of a variety of membrane-active agents (streptolysin S, phospholipases A2 and C, lysophosphatides, histone, chlorhexidine) were killed in a synergistic manner (double synergy). Crystalline trypsin markedly enhanced cell killing by combinations of oxidant and the membrane-active agents (triple synergy). Injury to the cells was characterized by the appearance of large membrane blebs that detached from the cells and floated freely in the media, looking like lipid droplets. Cytotoxicity induced by the various combinations of agonists was depressed, to a large extent, by scavengers of hydrogen peroxide (catalase, dimethyl thiourea, and by Mn2+) but not by SOD or by deferoxamine. When cationic agents were employed together with hydrogen peroxide, polyanions (heparin, polyanethole sulfonate) were also found to inhibit cell killing. It is proposed that in order to effectively combat the deleterious toxic effects of leukocyte-derived agonists on cells and tissues, antagonistic "cocktails" comprised of cationized catalase, cationized SOD, dimethylthiourea, Mn(2+)+glycine, proteinase inhibitors, putative inhibitors of phospholipases, and polyanions might be concocted. The current literature on synergistic phenomena pertaining to mechanisms of cell and tissue injury in inflammation is selectively reviewed.

MeSH Terms
Animals Bacterial Proteins/toxicity Cations/toxicity Cells, Cultured Cytokines/toxicity Drug Synergism Endopeptidases/toxicity Enzymes/toxicity Epithelial Cells Epithelium/drug effects Haplorhini Heart/drug effects Hemolysin Proteins/toxicity Kidney/cytology,drug effects Oxidants/toxicity Phospholipases/toxicity Rats Streptococcus/enzymology
Chemicals
Bacterial Proteins Cations Cytokines Enzymes Hemolysin Proteins Oxidants Phospholipases Endopeptidases
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Ginsburg I
Department of Oral Biology, Hebrew University-Hadassah School of Dental Medicine, Jerusalem, Israel.
Misgav R
Pinson A
Varani J
Ward P A
Kohen R
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Article Info
Journal
Inflammation
Abbr.
Inflammation
ISSN
0360-3997
Published
1992-10-00
Pages
519-38
Language
English
Region
United States
NLM ID
7600105
Subset
IM
Grants
NIGMS NIH HHS · GM-29507 · United States
NHLBI NIH HHS · HL-31963 · United States
Analysis Services
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