Formation of functional heterologous complexes using subunits from the picromycin, erythromycin and oleandomycin polyketide synthases

被引:63
作者
Tang, L [1 ]
Fu, H [1 ]
McDaniel, R [1 ]
机构
[1] KOSAN Biosci Inc, Hayward, CA 94545 USA
来源
CHEMISTRY & BIOLOGY | 2000年 / 7卷 / 02期
关键词
combinatorial biosynthesis; macrolide; polyketide synthase;
D O I
10.1016/S1074-5521(00)00073-9
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
Background: Recently developed tools for the genetic manipulation of modular polyketide synthases (PKSs) have advanced the development of combinatorial biosynthesis technologies for drug discovery. Although many of the current techniques involve engineering individual domains or modules of the PKS, few experiments have addressed the ability to combine entire protein subunits from different modular PKSs to create hybrid polyketide pathways. We investigated this possibility by in vivo assembly of heterologous PKS complexes using natural and altered subunits from related macrolide PKSs. Results: The pikAl and pikAll genes encoding subunits 1 and 2 (modules 1-4) of the picromycin PKS (PikPKS) and the eryAlll gene encoding subunit 3 (modules 5-6) of the 6-deoxyerythronolide B synthase (DEBS) were cloned in two compatible Streptomyces expression vectors. A strain of Streptomyces lividans co-transformed with the two vectors produced the hybrid macrolactone 3-hydroxynarbonolide. Co-expression of the same pik genes with the gene for subunit 3 of the oleandomycin PKS (OlePKS) was also successful. A series of hybrid polyketide pathways was then constructed by combining PikPKS subunits 1 and 2 with modified DEBS3 subunits containing engineered domains in modules 5 or 6. We also report the effect of junction location in a set of DEBS-PikPKS fusions. Conclusions: We show that natural as well as engineered protein subunits from heterologous modular PKSs can be functionally assembled to create hybrid polyketide pathways. This work represents a new strategy that complements earlier domain engineering approaches for combinatorial biosynthesis in which complete modules or PKS protein subunits, in addition to individual enzymatic domains, are used as building blocks for PKS engineering.
引用
收藏
页码:77 / 84
页数:8
相关论文
共 33 条
[1]   A functional chimeric modular polyketide synthase generated via domain replacement [J].
Bedford, D ;
Jacobsen, JR ;
Luo, GL ;
Cane, DE ;
Khosla, C .
CHEMISTRY & BIOLOGY, 1996, 3 (10) :827-831
[2]   A chain initiation factor common to both modular and aromatic polyketide synthases [J].
Bisang, C ;
Long, PF ;
Cortés, J ;
Westcott, J ;
Crosby, J ;
Matharu, AL ;
Cox, RJ ;
Simpson, TJ ;
Staunton, J ;
Leadlay, PF .
NATURE, 1999, 401 (6752) :502-505
[3]   Engineering of modular polyketide synthases to produce novel polyketides [J].
Carreras, CW ;
Santi, DV .
CURRENT OPINION IN BIOTECHNOLOGY, 1998, 9 (04) :403-411
[4]   REPOSITIONING OF A DOMAIN IN A MODULAR POLYKETIDE SYNTHASE TO PROMOTE SPECIFIC CHAIN CLEAVAGE [J].
CORTES, J ;
WIESMANN, KEH ;
ROBERTS, GA ;
BROWN, MJB ;
STAUNTON, J ;
LEADLAY, PF .
SCIENCE, 1995, 268 (5216) :1487-1489
[5]   AN ERYTHROMYCIN ANALOG PRODUCED BY REPROGRAMMING OF POLYKETIDE SYNTHESIS [J].
DONADIO, S ;
MCALPINE, JB ;
SHELDON, PJ ;
JACKSON, M ;
KATZ, L .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (15) :7119-7123
[6]   MODULAR ORGANIZATION OF GENES REQUIRED FOR COMPLEX POLYKETIDE BIOSYNTHESIS [J].
DONADIO, S ;
STAVER, MJ ;
MCALPINE, JB ;
SWANSON, SJ ;
KATZ, L .
SCIENCE, 1991, 252 (5006) :675-679
[7]   Dissecting and exploiting intermodular communication in polyketide synthases [J].
Gokhale, RS ;
Tsuji, SY ;
Cane, DE ;
Khosla, C .
SCIENCE, 1999, 284 (5413) :482-485
[8]  
Hopwood D.A., 1985, GENETIC MANIPULATION
[9]   Combinatorial biosynthesis for new drug discovery [J].
Hutchinson, CR .
CURRENT OPINION IN MICROBIOLOGY, 1998, 1 (03) :319-329
[10]   Precursor-directed biosynthesis of erythromycin analogs by an engineered polyketide synthase [J].
Jacobsen, JR ;
Hutchinson, CR ;
Cane, DE ;
Khosla, C .
SCIENCE, 1997, 277 (5324) :367-369