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Biology subjects

Dickey, R.

Publications and source records attributed to Dickey, R..

2 recordsLinked to original sources

Reductive amination cascades in cell-free and resting whole cell formats for valorization of lignin deconstruction products

The selective introduction of amine groups within deconstruction products of lignin could provide an avenue for valorizing waste biomass while achieving a green synthesis of industrially relevant building blocks from sustainable sources. Here, we built and characterized enzyme cascades that create aldehydes and subsequently primary amines from diverse lignin-derived carboxylic acids using a carboxylic acid reductase (CAR) and an {omega}-transaminase (TA). Unlike previous studies that have paired CAR and TA enzymes, here we examine multiple homologs of each of these enzymes and a broader set of candidate substrates. In addition, we compare the performance of these systems in cell-free and resting whole-cell biocatalysis formats using the conversion of vanillate to vanillyl amine as model chemistry. We also demonstrate that resting whole cells can be recycled for multiple batch reactions. We used the knowledge gained from this study to produce several amines from carboxylic acid precursors using one-pot biocatalytic reactions, several of which we report for the first time. These results expand our knowledge of these industrially relevant enzyme families to new substrates and contexts for environmentally friendly and potentially low-cost synthesis of diverse aryl aldehydes and amines.

synthetic biology↗

Combinatorial gene inactivation of aldehyde dehydrogenases mitigates aldehyde oxidation catalyzed by resting cells of E. coli RARE strains

Aldehydes are attractive chemical targets given applications as end products in the flavors and fragrances industry and as intermediates due to their propensity for C-C bond formation. While biosynthetic routes to diverse aldehydes have been designed, a common challenge is the stability of these aldehydes in the presence of microbial hosts of engineered pathways. Here, we identify and address unexpected oxidation of a model collection of aromatic aldehydes, including many that originate from biomass degradation, in the presence of Escherichia coli strains that were engineered to minimize aldehyde reduction. Of heightened interest to us were resting cell conditions as they offer numerous advantages for the bioconversion of toxic metabolites. Surprisingly, when diverse aldehydes are supplemented to E. coli RARE cells grown under aerobic conditions, they remain stabilized on the timescale of days, whereas when these same aldehydes are supplemented to resting cell preparations of E. coli RARE that had been grown under the same conditions, we observe substantial oxidation. By performing combinatorial inactivation of six candidate aldehyde dehydrogenase genes in the E. coli genome using multiplexed automatable genome engineering (MAGE), we demonstrate that this oxidation can be substantially slowed, with greater than 50% retention of 6 out of 8 aldehydes when assayed 4 hours after their addition. Given that our newly engineered strain exhibits Reduced Oxidation And Reduction of aromatic aldehydes, we dubbed it the E. coli ROAR strain. Seeking to apply this new strain to resting cell biocatalysis, we compared the capability to synthesis the aldehyde furfural from 2-furoic acid via the carboxylic acid reductase enzyme from Nocardia iowensis. Here, we found that use of ROAR resting cells achieved 2-fold enhancement in furfural titer after 4 h and nearly 9-fold enhancement after 20 h as compared to resting cells of the RARE strain. Moving forward, the use of this strain to generate resting cells should allow aldehyde product isolation, further enzymatic conversion, or chemical reactivity under cellular contexts that better accommodate aldehyde toxicity. HighlightsO_LIWhen genes that encode aldehyde reductases are knocked out in Escherichia coli strains, supplemented aldehydes can experience oxidation instead of reduction, which is catalyzed by a different set of endogenous enzymes. C_LIO_LIInterestingly, we show for a collection of aromatic aldehydes that this oxidation is far more substantial when using resting cell preparations than during aerobic fermentation. C_LIO_LIWe investigate the identity of the responsible genes by performing combinatorial gene inactivation using multiplex automatable genome engineering. C_LIO_LIThe strain that we engineer exhibits Reduced Oxidation And Reduction (the E. coli ROAR strain) and thereby enables design of more efficient aldehyde bioconversion processes under diverse formats. C_LI

synthetic biology↗