Triggering of the macrophage and neutrophil respiratory burst by antibody bound to a spin-label phospholipid hapten in model lipid bilayer membranes.
Triggering of the macrophage and neutrophil respiratory burst by antibody bound to a spin-label phospholipid hapten in model lipid bilayer membranes.
复制标题
通过与模型脂质双层膜中的自旋标记磷脂半抗原结合的抗体触发巨噬细胞和中性粒细胞呼吸爆发。
DOI:
10.1021/bi00564a037
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发表时间:
1980
期刊:
影响因子:
2.9
通讯作者:
McConnell,HM
中科院分区:
文献类型:
--
作者:
Hafeman,DG;Lewis,JT;McConnell,HM
1-C-glucose oxidation) of RAW264 macrophage cell line by haptenated lipid vesicles depends strongly on the physical properties of the lipid membrane, as well as the surface density of antibodies on the vesicles. Lipid membranes that are “solid” at 37 C (dipalmitoylphosphatidylcholine, DPPC) are much more effective, per vesicle bound, than are “fluid” membranes (dimyristoylphosphatidylcholine, DMPC). Vesicle membranes.^^. t present a variety of studies have been reported on the interactions of various components of the immune system with model membranes (lipid bilayers forming vesicles or liposomes) containing specific haptens or antigens (Esser et al, 1979; Finberg et al., 1978; Geiger & Schreiber, 1979; Hale et al., 1980; Kinsky & Nicolotti, 1977; Hafeman et al., 1979; Henkart & Blumenthal, 1975; Henry et al., 1978; Hollander et al., 1979; Lewis & McConnell, 1978; Loh et al., 1979; McConnell, 1978; Parce et al., 1978, 1980). Some of these studies have described a dependence of immune response on the physical-chemical properties of the hostbilayer membranes (Esser et al., 1979; Hafeman et al., 1979; Lewis & McConnell, 1978; Parce et al., 1980; McConnell, 1978). For example, the activation of the first component of complement Q and com-plement depletion are enhanced in “fluid” DMPC1 membranes relative to “solid” DPPC membranes (Esser et al., 1979; Parce et al., 1980). Likewise the inclusion of cholesterol in otherwise solid DPPC membranesleads to an enhancement in complement depletion (Humphries & McConnell, 1975; Brulet & McConnell, 1977). We refer to bilayer membranes as “fluid” or “solid”, depending on whether the lateral diffusion coef-ficients of lipid haptens, and antibodies bound to these haptens, are> 10~ 8 cm2/s or< 10~ 10 cm2/s (Smith et al., 1979). In the accompanying paper (Lewis et al., 1980) we show that the kinetics of specific antibody-dependent binding of haptenated lipid vesicles is likewise enhanced in fluid DMPC vesicles compared to solid DPPC vesicles and is enhanced when cholesterol is included in DPPC vesicles. In the present paper we report an unexpected reversal of these correlations, in that solid haptenated DPPC vesicles are found to be far more effective than fluid DMPC vesicles (per vesicle bound) in stimulating the respiratory burst in the macrophage cell line RAW264. Likewise, inclusion of cholesterol in DPPC decreases this re-spiratory burst. Thus, markedly different membrane molecular properties are involved in recognition (binding) and in cell triggering.