Biosynthesis of the angiogenesis inhibitor borrelidin by Streptomyces parvulus Tu4055:: insights into nitrile formation

被引:69
作者
Olano, C
Moss, SJ
Braña, AF
Sheridan, RM
Math, V
Weston, AJ
Méndez, C
Leadlay, PF
Wilkinson, B
Salas, JA [1 ]
机构
[1] Univ Oviedo, Dept Biol Func, E-33006 Oviedo, Spain
[2] Univ Oviedo, IUOPA, E-33006 Oviedo, Spain
[3] Biotica Technol Ltd, Saffron Walden CB10 1XL, Essex, England
[4] Univ Cambridge, Dept Biochem, Cambridge CB2 1GA, England
关键词
D O I
10.1111/j.1365-2958.2004.04090.x
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The 18-membered polyketide macrolide borrelidin exhibits a number of important biological activities, including potent angiogenesis inhibition. This has prompted two recent total syntheses as well as the cloning of the biosynthetic gene cluster from Streptomyces parvulus Tu4055. Borrelidin possesses some unusual structural characteristics, including a cyclopentane carboxylic acid moiety at C17 and a nitrile moiety at C12 of the macrocyclic ring. Nitrile groups are relatively rare in nature, and little is known of their biosynthesis during secondary metabolism. The nitrile group of borrelidin is shown here to arise from the methyl group of a methylmalonyl-CoA extender unit incorporated during polyketide chain extension. Insertional inactivation of two genes in the borrelidin gene cluster, borI (coding for a cytochrome P450 monooxygenase) and borJ (coding for an aminotransferase), generated borrelidin non-producing mutants. These mutants accumulated different compounds lacking the C12 nitrile moiety, with the product of the borI-minus mutant (12-desnitrile-12-methyl-borrelidin) possessing a methyl group and that of the borJ-minus mutant (12-desnitrile-12-carboxyl-borrelidin) a carboxyl group at C12. The former but not the latter was converted into borrelidin when biotransformed by an S. parvulus mutant that is deficient in the biosynthesis of the borrelidin starter unit. This suggests that 12-desnitrile-12-methyl-borrelidin is a competent biosynthetic intermediate, whereas the carboxylated derivative is a shunt metabolite. Bioconversion of 12-desnitrile-12-methyl-borrelidin into borrelidin was also achieved in a heterologous system co-expressing borI and borJ in Streptomyces albus J1074. This bioconversion was more efficient when borK, which is believed to encode a dehydrogenase, was simultaneously expressed with borI and borJ. On the basis of these findings, a pathway is proposed for the formation of the nitrile moiety during borrelidin biosynthesis.
引用
收藏
页码:1745 / 1756
页数:12
相关论文
共 59 条
[1]   A UNIFIED MECHANISTIC VIEW OF OXIDATIVE REACTIONS CATALYZED BY P-450 AND RELATED FE-CONTAINING ENZYMES [J].
AKHTAR, M ;
WRIGHT, JN .
NATURAL PRODUCT REPORTS, 1991, 8 (06) :527-551
[2]   MACROLIDE ANTIBIOTIC-STUDIES .18. CRYSTAL AND MOLECULAR-STRUCTURES OF 2 ISOMORPHOUS SOLVATES OF THE MACROLIDE ANTIBIOTIC BORRELIDIN - ABSOLUTE-CONFIGURATION DETERMINATION BY INCORPORATION OF A CHIRAL SOLVENT IN THE CRYSTAL-LATTICE [J].
ANDERSON, BF ;
HERLT, AJ ;
RICKARDS, RW ;
ROBERTSON, GB .
AUSTRALIAN JOURNAL OF CHEMISTRY, 1989, 42 (05) :717-730
[3]   THE STRUCTURE OF A NOVEL ANTI-TUMOR ANTIBIOTIC, SAFRAMYCIN-A [J].
ARAI, T ;
TAKAHASHI, K ;
NAKAHARA, S ;
KUBO, A .
EXPERIENTIA, 1980, 36 (09) :1025-1027
[4]  
ARIMA K, 1965, J ANTIBIOT, V18, P201
[5]  
BERGER J, 1949, ARCH BIOCHEM, V22, P476
[6]   Characterization of the macrolide P-450 hydroxylase from Streptomyces venezuelae which converts narbomycin to picromycin [J].
Betlach, MC ;
Kealey, JT ;
Betlach, MC ;
Ashley, GW ;
McDaniel, R .
BIOCHEMISTRY, 1998, 37 (42) :14937-14942
[7]   THE MESSENGER-RNA FOR THE 23S RIBOSOMAL-RNA METHYLASE ENCODED BY THE ERME GENE OF SACCHAROPOLYSPORA-ERYTHRAEA IS TRANSLATED IN THE ABSENCE OF A CONVENTIONAL RIBOSOME-BINDING SITE [J].
BIBB, MJ ;
WHITE, J ;
WARD, JM ;
JANSSEN, GR .
MOLECULAR MICROBIOLOGY, 1994, 14 (03) :533-545
[8]   Identification of a sugar flexible glycosyltransferase from Streptomyces olivaceus, the producer of the antitumor polyketide elloramycin [J].
Blanco, G ;
Patallo, EP ;
Braña, AF ;
Trefzer, A ;
Bechthold, A ;
Rohr, J ;
Méndez, C ;
Salas, JA .
CHEMISTRY & BIOLOGY, 2001, 8 (03) :253-263
[9]  
BULLOCK WO, 1987, BIOTECHNIQUES, V5, P376
[10]   Metabolism of tyrosine and tryptophan - new genes for old pathways [J].
Celenza, JL .
CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (03) :234-240