INFLUENCE OF SOME METABOLIC-INHIBITORS ON PHAGOCYTIC ACTIVITY OF MOUSE MACROPHAGES INVITRO

被引:11
作者
CIFARELLI, A
PEPE, G
PARADISI, F
PICCOLO, D
机构
[1] UNIV CHIETI,CHIETI,ITALY
[2] UNIV NAPLES,FAC MED 2,INST INTERNAL MED,I-80131 NAPOLI,ITALY
[3] UNIV NAPLES,CTR SPECIALIZZAZ & RIC ECON AGRARIE MEZZOGIORNO,PORTICI,ITALY
关键词
Macrophages; Metabolic inhibitors; Phagocytic activity; Phagocytosis;
D O I
10.1007/BF01851332
中图分类号
R-3 [医学研究方法]; R3 [基础医学];
学科分类号
1001 ;
摘要
The action of different metabolic inhibitors on phagocytosis by macrophages from mouse peritoneal exudate cultured in vitro was studied. The following metabolic inhibitors were tested: sodium iodoacetate, sodium fluoride, sodium fluoroacetate, sodium malonate, 2-4-dinitrophenol, sodium azide, ouabain and cycloheximide, all at the concentration of 10-3 M. Iodoacetate caused a strong inhibitory effect on phagocytosis; this observation confirms that glycolysis is the main source of energy for the phagocytic process. On the contrary, fluoride, although it is an effective inhibitor of glycolysis, did not exert any effect. This difference may be explained by the fact that sodium fluoride blocks anaerobic glycolysis only in vitro at an unphysiological temperature (0°C). Fluoroacetate and malonate, two compounds which interfere with the Krebs cycle, did not inhibit phagocytosis, but it is known that the Krebs cycle activity is poorly developed in the macrophagic cells. Sodium azide and 2-4-dinitrophenol, two inhibitors of oxidative phosphorylation, showed an effect on phagocytosis only after 3 h of contact with the cell cultures. Ouabain blocks Na+ and K+ transport across the plasma membrane and, probably, it inhibited phagocytosis by interfering with the movements of the cell membrane. Finally, the mode of action of cycloheximide on phagocytosis is uncertain. This compound inhibits the protein synthesis and, perhaps, it can act by preventing the renewal of the cell membrane. © 1979 Springer-Verlag.
引用
收藏
页码:197 / 204
页数:8
相关论文
共 34 条
[1]   THE STATISTICAL ANALYSIS OF INSECT COUNTS BASED ON THE NEGATIVE BINOMIAL DISTRIBUTION [J].
ANSCOMBE, FJ .
BIOMETRICS, 1949, 5 (02) :165-173
[2]  
ANSCOMBE FJ, 1950, BIOMETRIKA, V37, P358, DOI 10.1093/biomet/37.3-4.358
[3]   The extra respiration of phagocytosis [J].
Baldridge, CW ;
Gerard, RW .
AMERICAN JOURNAL OF PHYSIOLOGY, 1933, 103 (01) :235-236
[4]  
BECK WS, 1958, J BIOL CHEM, V232, P251
[5]  
BROYEN TD, 1966, IMMUNOL, V10, P137
[6]   PHAGOCYTOSIS BY HUMAN MONOCYTES [J].
CLINE, MJ ;
LEHRER, RI .
BLOOD, 1968, 32 (03) :423-&
[7]   HUMAN ALVEOLAR MACROPHAGE - ISOLATION, CULTIVATION IN-VITRO, AND STUDIES OF MORPHOLOGIC AND FUNCTIONAL CHARACTERISTICS [J].
COHEN, AB ;
CLINE, MJ .
JOURNAL OF CLINICAL INVESTIGATION, 1971, 50 (07) :1390-&
[8]   FUNCTIONAL AND METABOLIC PROPERTIES OF POLY-MORPHONUCLEAR-LEUCOCYTES .1. OBSERVATIONS ON THE REQUIREMENTS AND CONSEQUENCES OF PARTICLE INGESTION [J].
COHN, ZA ;
MORSE, SI .
JOURNAL OF EXPERIMENTAL MEDICINE, 1960, 111 (05) :667-687
[9]   DIFFERENTIATION OF MONONUCLEAR PHAGOCYTES - MORPHOLOGY CYTOCHEMISTRY AND BIOCHEMISTRY [J].
COHN, ZA ;
BENSON, B .
JOURNAL OF EXPERIMENTAL MEDICINE, 1965, 121 (01) :153-&
[10]   REGULATION OF PINOCYTOSIS IN MOUSE MACROPHAGES .2. FACTORS INDUCING VESICLE FORMATION [J].
COHN, ZA ;
PARKS, E .
JOURNAL OF EXPERIMENTAL MEDICINE, 1967, 125 (02) :213-+