Affiliation:
1. Institut für Molekulare Mikrobiologie und Biotechnologie, Westfälische Wilhelms-Universität Münster, Münster, Germany
2. Genomic and Applied Microbiology and Göttingen Genomics Laboratory, Georg-August University Göttingen, Göttingen, Germany
3. Faculty of Environmental Sciences, King Abdulaziz University, Jeddah, Saudi Arabia
Abstract
ABSTRACT
Recently, we isolated a novel
Streptomyces
strain which can accumulate extraordinarily large amounts of triacylglycerol (TAG) and consists of 64% fatty acids (dry weight) when cultivated with glucose and 50% fatty acids (dry weight) when cultivated with cellobiose. To identify putative gene products responsible for lipid storage and cellobiose utilization, we analyzed its draft genome sequence. A single gene encoding a wax ester synthase/acyl coenzyme A (CoA):diacylglycerol acyltransferase (WS/DGAT) was identified and heterologously expressed in
Escherichia coli
. The purified enzyme Atf
G25
showed acyltransferase activity with C
12
- or C
16
-acyl-CoA, C
12
to C
18
alcohols, or dipalmitoyl glycerol. This acyltransferase exhibits 24% amino acid identity to the model enzyme AtfA from
Acinetobacter baylyi
but has high sequence similarities to WS/DGATs from other
Streptomyces
species. To investigate the impact of Atf
G25
on lipid accumulation, the respective gene,
atf
G25
, was inactivated in
Streptomyces
sp. strain G25. However, cells of the insertion mutant still exhibited DGAT activity and were able to store TAG, albeit in lower quantities and at lower rates than the wild-type strain. These findings clearly indicate that Atf
G25
has an important, but not exclusive, role in TAG biosynthesis in the novel
Streptomyces
isolate and suggest the presence of alternative metabolic pathways for lipid accumulation which are discussed in the present study.
IMPORTANCE
A novel
Streptomyces
strain was isolated from desert soil, which represents an extreme environment with high temperatures, frequent drought, and nutrient scarcity. We believe that these harsh conditions promoted the development of the capacity for this strain to accumulate extraordinarily large amounts of lipids. In this study, we present the analysis of its draft genome sequence with a special focus on enzymes potentially involved in its lipid storage. Furthermore, the activity and importance of the detected acyltransferase were studied. As discussed in this paper, and in contrast to many other bacteria, streptomycetes seem to possess a complex metabolic network to synthesize lipids, whereof crucial steps are still largely unknown. This paper therefore provides insights into a range of topics, including extremophile bacteria, the physiology of lipid accumulation, and the biotechnological production of bacterial lipids.
Publisher
American Society for Microbiology
Subject
Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology
Cited by
15 articles.
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