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Production of alkanes from CO2 by engineered bacteria
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Abstract
Background
Microbial biosynthesis of alkanes is considered a promising method for the sustainable production of drop-in fuels and chemicals. Carbon dioxide would be an ideal carbon source for these production systems, but efficient production of long carbon chains from CO
2
is difficult to achieve in a single organism. A potential solution is to employ acetogenic bacteria for the reduction of CO
2
to acetate, and engineer a second organism to convert the acetate into long-chain hydrocarbons.
Results
In this study, we demonstrate alkane production from CO
2
by a system combining the acetogen
Acetobacterium woodii
and a non-native alkane producer
Acinetobacter baylyi
ADP1 engineered for alkane production. Nine synthetic two-step alkane biosynthesis pathways consisting of different aldehyde- and alkane-producing enzymes were combinatorically constructed and expressed in
A. baylyi.
The aldehyde-producing enzymes studied were AAR from
Synechococcus elongatus,
Acr1 from
A. baylyi,
and Ramo, a putative dehydrogenase, from
Nevskia ramosa.
The alkane-producing enzymes were ADOs from
S. elongatus
and
Nostoc punctiforme,
and CER1 from
Arabidopsis thaliana.
The performance of the pathways was evaluated with a twin-layer biosensor, which allowed the monitoring of both the intermediate, fatty aldehyde, as well as the alkane production. The highest alkane production, as indicated by the biosensor, was achieved with a pathway consisting of AAR and ADO from
S. elongatus.
The performance of this pathway was further improved by balancing the relative expression levels of the enzymes in order to limit the accumulation of the intermediate fatty aldehyde. Finally, the acetogen
A. woodii
was used to produce acetate from CO
2
and H
2
, and the acetate was used for alkane production by the engineered
A. baylyi,
thereby leading to the net production of long-chain alkanes from CO
2
.
Conclusions
A modular system for the production of drop-in liquid fuels from CO
2
was demonstrated. Among the studied synthetic pathways, the combination of ADO and AAR from
S. elongatus
was found to be the most efficient in heterologous alkane production in
A. baylyi.
Furthermore, limiting the accumulation of the fatty aldehyde intermediate was found to be beneficial for the alkane production.
Title: Production of alkanes from CO2 by engineered bacteria
Description:
Abstract
Background
Microbial biosynthesis of alkanes is considered a promising method for the sustainable production of drop-in fuels and chemicals.
Carbon dioxide would be an ideal carbon source for these production systems, but efficient production of long carbon chains from CO
2
is difficult to achieve in a single organism.
A potential solution is to employ acetogenic bacteria for the reduction of CO
2
to acetate, and engineer a second organism to convert the acetate into long-chain hydrocarbons.
Results
In this study, we demonstrate alkane production from CO
2
by a system combining the acetogen
Acetobacterium woodii
and a non-native alkane producer
Acinetobacter baylyi
ADP1 engineered for alkane production.
Nine synthetic two-step alkane biosynthesis pathways consisting of different aldehyde- and alkane-producing enzymes were combinatorically constructed and expressed in
A.
baylyi.
The aldehyde-producing enzymes studied were AAR from
Synechococcus elongatus,
Acr1 from
A.
baylyi,
and Ramo, a putative dehydrogenase, from
Nevskia ramosa.
The alkane-producing enzymes were ADOs from
S.
elongatus
and
Nostoc punctiforme,
and CER1 from
Arabidopsis thaliana.
The performance of the pathways was evaluated with a twin-layer biosensor, which allowed the monitoring of both the intermediate, fatty aldehyde, as well as the alkane production.
The highest alkane production, as indicated by the biosensor, was achieved with a pathway consisting of AAR and ADO from
S.
elongatus.
The performance of this pathway was further improved by balancing the relative expression levels of the enzymes in order to limit the accumulation of the intermediate fatty aldehyde.
Finally, the acetogen
A.
woodii
was used to produce acetate from CO
2
and H
2
, and the acetate was used for alkane production by the engineered
A.
baylyi,
thereby leading to the net production of long-chain alkanes from CO
2
.
Conclusions
A modular system for the production of drop-in liquid fuels from CO
2
was demonstrated.
Among the studied synthetic pathways, the combination of ADO and AAR from
S.
elongatus
was found to be the most efficient in heterologous alkane production in
A.
baylyi.
Furthermore, limiting the accumulation of the fatty aldehyde intermediate was found to be beneficial for the alkane production.
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