A polyketide synthase in glycopeptide biosynthesis -: The biosynthesis of the non-proteinogenic amino acid (S)-3,5-dihydroxyphenylglycine

被引:130
作者
Pfeifer, V
Nicholson, GJ
Ries, J
Recktenwald, J
Schefer, AB
Shawky, RM
Schröder, J
Wohlleben, W
Pelzer, S
机构
[1] Univ Tubingen, Inst Mikrobiol & Biotechnol, D-72076 Tubingen, Germany
[2] Univ Tubingen, Inst Organ Chem, D-72076 Tubingen, Germany
[3] Univ Freiburg, Inst Biol 2, D-79104 Freiburg, Germany
关键词
D O I
10.1074/jbc.M106580200
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
Balhimycin, a vancomycin-type antibiotic from Amycolatopsis mediterranei, contains the unusual amino acid (S)-3,5-dihydroxyphenylglycine (Dpg), with an acetate-derived carbon backbone. After sequence analysis of the biosynthetic gene cluster, one gene, dpgA, for a predicted polyketide synthase (PKS) was identified, sharing 20-30% identity with plant chalcone synthases. Inactivation of dpgA resulted in loss of balhimycin production, and restoration was achieved by supplementation with 3,5-dihydroxyphenylacetic acid, which is both a possible product of a PKS reaction and a likely precursor of Dpg. Enzyme assays with the protein expressed in Streptomyces lividans showed that this PKS uses only malonyl-CoA as substrate to synthesize 3,5-dihydroxyphenylacetic acid. The PKS gene is organized in an operon-like structure with three downstream genes that are similar to enoyl-CoA-hydratase genes and a dehydrogenase gene. The heterologous co-expression of all four genes led to accumulation of 3,5-dihydroxy-phenylglyoxylic acid. Therefore, we now propose a reaction sequence. The final step in the pathway to Dpg is a transamination. A predicted transaminase gene was inactivated, resulting in abolished antibiotic production and accumulation of 3,5-dihydroxyphenylglyoxylic acid. Interestingly, restoration was only possible by simultaneous supplementation with (S)-3,5-dihydroxyphenylglycine and (S)-4-hydroxyphenylglycine, indicating that the transaminase is essential for the formation of both amino acids.
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页码:38370 / 38377
页数:8
相关论文
共 39 条
[11]   New pathway to polyketides in plants [J].
Eckermann, S ;
Schröder, G ;
Schmidt, J ;
Strack, D ;
Edrada, RA ;
Helariutta, Y ;
Elomaa, P ;
Kotilainen, M ;
Kilpeläinen, I ;
Proksch, P ;
Teeri, TH ;
Schröder, J .
NATURE, 1998, 396 (6709) :387-390
[12]   MOLECULAR CHARACTERIZATION OF THE CAI OPERON NECESSARY FOR CARNITINE METABOLISM IN ESCHERICHIA-COLI [J].
EICHLER, K ;
BOURGIS, F ;
BUCHET, A ;
KLEBER, HP ;
MANDRANDBERTHELOT, MA .
MOLECULAR MICROBIOLOGY, 1994, 13 (05) :775-786
[13]   Structure of chalcone synthase and the molecular basis of plant polyketide biosynthesis [J].
Ferrer, JL ;
Jez, JM ;
Bowman, ME ;
Dixon, RA ;
Noel, JP .
NATURE STRUCTURAL BIOLOGY, 1999, 6 (08) :775-784
[14]   INVITRO EFFECTS OF VANCOMYCIN, RIFAMPICIN, AND FUSIDIC ACID, ALONE AND IN COMBINATION, AGAINST METHICILLIN-RESISTANT STAPHYLOCOCCUS-AUREUS [J].
FOLDES, M ;
MUNRO, R ;
SORRELL, TC ;
SHANKER, S ;
TOOHEY, M .
JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 1983, 11 (01) :21-26
[15]   A new pathway for polyketide synthesis in microorganisms [J].
Funa, N ;
Ohnishi, Y ;
Fujii, I ;
Shibuya, M ;
Ebizuka, Y ;
Horinouchi, S .
NATURE, 1999, 400 (6747) :897-899
[16]   ON THE BIOSYNTHESIS OF THE ANTIBIOTIC VANCOMYCIN [J].
HAMMOND, SJ ;
WILLIAMSON, MP ;
WILLIAMS, DH ;
BOECK, LD ;
MARCONI, GG .
JOURNAL OF THE CHEMICAL SOCIETY-CHEMICAL COMMUNICATIONS, 1982, (06) :344-346
[17]  
Henne A, 1999, APPL ENVIRON MICROB, V65, P3901
[18]  
Hopwood D.A., 1985, GENETIC MANIPULATION
[19]   MOLECULAR-GENETICS OF POLYKETIDES AND ITS COMPARISON TO FATTY-ACID BIOSYNTHESIS [J].
HOPWOOD, DA .
ANNUAL REVIEW OF GENETICS, 1990, 24 :37-66
[20]  
HUBBARD BK, 1980, CHEM BIOL LOND, V42, P1