PHYSIOLOGY AND GENETICS OF ANTIBIOTIC PRODUCTION AND RESISTANCE

被引:10
作者
ALDERSON, G
RITCHIE, DA
CAPPELLANO, C
COOL, RH
IVANOVA, NM
HUDDLESTON, AS
FLAXMAN, CS
KRISTUFEK, V
LOUNES, A
机构
[1] UNIV LIVERPOOL, DEPT GENET & MICROBIOL, LIVERPOOL L69 3BX, ENGLAND
[2] UNIV PALERMO, DEPT BIOL CELLULARE SVILUPPO, I-90123 PALERMO, ITALY
[3] LEIDEN UNIV, DEPT BIOCHEM, GORLAENS LABS, 2300 RA LEIDEN, NETHERLANDS
[4] RES INST ANTIBIOT, RAZGRAD, BULGARIA
[5] UNIV WARWICK, DEPT BIOL SCI, COVENTRY CV4 7AL, W MIDLANDS, ENGLAND
[6] ACAD SCI CZECH REPUBL, INST SOIL BIOL, CS-37005 CESKE BUDEJOVICE, CZECHOSLOVAKIA
[7] INST NATL POLYTECH LORRAINE, ENSAIA, MICROBIOL IND & ALIMENTAIRE LAB, F-54500 VANDOEUVRE LES NANCY, FRANCE
关键词
D O I
10.1016/0923-2508(93)90072-A
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Actinomycetes have the genetic capability to synthesize many different biologically active secondary metabolites and of these compounds, antibiotics predominate in therapeutic and commercial importance. Intensive research often centres on the use of molecular techniques to investigate the physiology and genetics of antibiotic biosynthesis with a view to improving production. The isolation of clones of Streptomyces hygroscopicus, the producer of geldanamycin, which synthesizes geldanamycin in S. lividans, is reported. Molecular approaches using genes for elongation factors (tuf) were used in attempts to increase the fermentation yield of kirromycin, whilst probes for aphD and sph, genes for streptomycin phosphotransferases, were used to gather information on streptomycin genes in soil. Actinomycete populations in soil and earthworms may help in developing a strategy for discovering additional antimicrobials in soil. The relationship of proline metabolism to the secondary metabolite undecylprodigiosin and the carbon regulation of spiramycin biosynthesis in S. ambofaciens is also reported.
引用
收藏
页码:665 / 670
页数:6
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