Affiliation:
1. Department
of Chemical and Biomolecular Engineering, North Carolina State
University, Raleigh, North Carolina 27695-7905
Abstract
ABSTRACT
Comprehensive
analysis of genome-wide expression patterns during growth of the
hyperthermophilic bacterium
Thermotoga maritima
on 14
monosaccharide and polysaccharide substrates was undertaken with the
goal of proposing carbohydrate specificities for transport systems and
putative transcriptional regulators. Saccharide-induced regulons were
predicted through the complementary use of comparative genomics,
mixed-model analysis of genome-wide microarray expression data, and
examination of upstream sequence patterns. The results indicate that
T. maritima
relies extensively on ABC transporters for
carbohydrate uptake, many of which are likely controlled by local
regulators responsive to either the transport substrate or a key
metabolic degradation product. Roles in uptake of specific
carbohydrates were suggested for members of the expanded Opp/Dpp family
of ABC transporters. In this family, phylogenetic relationships among
transport systems revealed patterns of possible duplication and
divergence as a strategy for the evolution of new uptake capabilities.
The presence of GC-rich hairpin sequences between substrate-binding
proteins and other components of Opp/Dpp family transporters offers a
possible explanation for differential regulation of transporter subunit
genes. Numerous improvements to
T. maritima
genome annotations
were proposed, including the identification of ABC transport systems
originally annotated as oligopeptide transporters as candidate
transporters for rhamnose, xylose, β-xylan, andβ
-glucans and identification of genes likely to encode proteins
missing from current annotations of the pentose phosphate pathway.
Beyond the information obtained for
T. maritima
, the present
study illustrates how expression-based strategies can be used for
improving genome annotation in other microorganisms, especially those
for which genetic systems are
unavailable.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Cited by
73 articles.
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