Affiliation:
1. Torrey Mesa Research Institute, San Diego, California
Abstract
ABSTRACT
Nonribosomal peptides, made by nonribosomal peptide synthetases, have diverse biological activities, including roles as fungal virulence effectors. Inspection of the genome of
Cochliobolus heterostrophus
, a fungal pathogen of maize and a member of a genus noted for secondary metabolite production, revealed eight multimodular nonribosomal peptide synthase (
NPS
) genes and three monomodular
NPS
-like genes, one of which encodes a nonribosomal peptide synthetase/polyketide synthase hybrid enzyme presumed to be involved in synthesis of a peptide/polyketide molecule. Deletion of each
NPS
gene and phenotypic analyses showed that the product of only one of these genes,
NPS6
, is required for normal virulence on maize. NPS6 is also required for resistance to hydrogen peroxide, suggesting it may protect the fungus from oxidative stress. This and all other
nps
mutants had normal growth, mating ability, and appressoria. Real-time PCR analysis showed that expression of all
NPS
genes is low (relative to that of actin), that all (except possibly
NPS2
) are expressed during vegetative growth, and that expression is induced by nitrogen starvation. Only
NPS6
is unfailingly conserved among euascomycete fungi, including plant and human pathogens and saprobes, suggesting the possibility that NPS6 activity provides oxidative stress protection during both saprobic and parasitic growth.
Publisher
American Society for Microbiology
Subject
Molecular Biology,General Medicine,Microbiology
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