Landini P, Corti E, Goldstein B P, Denaro M
Marion Merrel Dow Research Institute, Lepetit Research Center, Varese, Italy.
Biochem J. 1992 May 15;284 ( Pt 1)(Pt 1):47-52. doi: 10.1042/bj2840047.
Purpuromycin, an antibiotic active against both fungi and bacteria, shows different modes of action against these two kinds of micro-organisms; in Candida albicans it inhibits RNA synthesis, whereas in Bacillus subtilis protein synthesis is primarily affected, with DNA and RNA synthesis blocked at higher concentrations of the drug. In bacterial cell-free protein-synthesis systems, purpuromycin did not inhibit synthesis from endogenous mRNA (elongation of peptides initiated within the intact cell) but inhibited MS2-phase RNA-dependent protein synthesis (which requires initiation) by 50% at 0.1 mg/l. Poly(U)-directed polyphenylalanine synthesis was 50% inhibited by 20 mg of purpuromycin/l when added to a complete system; however, when purpuromycin was preincubated with ribosomes dissociated into 30 S and 50 S subunits, the concentration for 50% inhibition fell to 0.1 mg/l. By contrast, in a C. albicans cell-free system poly(U)-directed polyphenylalanine synthesis was partially inhibited only at 200 mg/l. Purpuromycin also inhibited polynucleotide synthesis in vitro in reactions using Escherichia coli or wheat-germ RNA polymerases or E. coli DNA polymerase I. We suggest that in bacteria the primary target of purpuromycin is on ribosomes and that its action precedes the elongation step of protein synthesis. The effect on nucleic acid synthesis in both fungi and bacteria may be due to interaction of purpuromycin with DNA.
紫霉素是一种对真菌和细菌均有活性的抗生素,对这两类微生物表现出不同的作用模式;在白色念珠菌中它抑制RNA合成,而在枯草芽孢杆菌中主要影响蛋白质合成,在较高药物浓度下DNA和RNA合成受阻。在细菌无细胞蛋白质合成系统中,紫霉素不抑制内源性mRNA的合成(完整细胞内起始的肽链延伸),但在0.1毫克/升时抑制MS2期RNA依赖性蛋白质合成(这需要起始)达50%。当添加到完整系统中时,20毫克/升的紫霉素可抑制50%的聚(U)指导的聚苯丙氨酸合成;然而,当紫霉素与解离成30 S和50 S亚基的核糖体预孵育时,50%抑制的浓度降至0.1毫克/升。相比之下,在白色念珠菌无细胞系统中,聚(U)指导的聚苯丙氨酸合成仅在200毫克/升时受到部分抑制。紫霉素还在使用大肠杆菌或小麦胚芽RNA聚合酶或大肠杆菌DNA聚合酶I的反应中体外抑制多核苷酸合成。我们认为在细菌中紫霉素的主要靶点在核糖体上,其作用先于蛋白质合成的延伸步骤。对真菌和细菌核酸合成的影响可能是由于紫霉素与DNA的相互作用。