Degradation of (S)-1,3-butanediol in Pseudomonas putida KT2440 reveals a CoA-activation route and enantiomeric crosstalk between (R)- and (S)-3-hydroxybutyrate catabolism

ABSTRACT 1,3-Butanediol (1,3-BDO) exists as (R)- and (S)-enantiomers, yet how aerobic bacteria catabolize the (S)-form has been unknown. Here, we define (S)-1,3-BDO degradation pathway in Pseudomonas putida KT2440 and uncover an enantioselective enzyme that both controls the pathway and enables a chiral resolution. Transcriptomics, quantitative RT-PCR, and systematic gene deletions show that the ped cluster oxidizes (S)-1,3-BDO to (S)-3-hydroxybutyrate [(S)-3-HB] using the same upstream machinery as (R)-1,3-BDO and 1,4-BDO, but that the downstream route then diverges sharply. Rather than the free-acid dehydrogenase route used for (R)-3-HB, (S)-3-HB is catabolized through an acyl-CoA synthetase, Acs (PP_3458): a Δ acs mutant cannot grow on (S)-3-HB, and complementation restores growth, establishing that PP_3458 activates (S)-3-HB to (S)-3-hydroxybutyryl-CoA for β-oxidation. This ATP-dependent CoA-activation route is mechanistically distinct from the ATP-independent (S)-3-hydroxybutyrate dehydrogenase (3SHBDH) pathway of anaerobic Clostridia , identifying a different enzymatic solution to (S)-3-HB assimilation in aerobes. We further show that PP_3458 strongly prefers (S)- over (R)-3-HB and is inhibited by (R)-3-HB, a crosstalk that explains why a (R)-3-HB-accumulating mutant arrests on racemic 3-HB. Two applications follow directly: whole-cell kinetic resolution that converts racemic 3-HB to (S)-3-HB at high enantiomeric excess (ee > 0.99), and, in a strain unable to degrade (S)-3-HB, near-quantitative recovery—providing a chiral pharmaceutical building block; and ped -based biosensors that report 1,3-BDO across both enantiomers and function in P. putida and Escherichia coli . Some mechanistic details—the inhibition mode and the individual downstream β-oxidation steps—remain to be fully resolved. IMPORTANCE 1,3-Butanediol is a commercially important C 4 diol, but the microbial fate of its (S)-enantiomer in aerobic bacteria has been a gap in our understanding of diol metabolism. We show that Pseudomonas putida KT2440 degrades (S)-1,3-BDO through a route that, after a shared ped -dependent oxidation to (S)-3-hydroxybutyrate, depends on an acyl-CoA synthetase (PP_3458) to activate the (S)-acid as its CoA thioester. This ATP-dependent CoA-activation step is a distinct enzymatic strategy from the ATP-independent dehydrogenase route that anaerobic bacteria use for the same substrate, showing that aerobes and anaerobes solve (S)-3-HB assimilation differently. The work also turns this enzymology into utility: because PP_3458 is enantioselective and is inhibited by (R)-3-hydroxybutyrate, the strain can be used for whole-cell kinetic resolution that yields enantiopure (S)-3-hydroxybutyrate—a chiral pharmaceutical building block—from racemic 3-hydroxybutyrate, and the ped -based biosensors reported here detect 1,3-BDO in both P. putida and Escherichia coli , providing a portable tool for strain screening.

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Journal
Applied and Environmental Microbiology
Published
2026-10-08
DOI
https://doi.org/10.1128/aem.01295-26
Primary Topic
Microbial metabolism and enzyme function
Type
article
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article

Degradation of (S)-1,3-butanediol in Pseudomonas putida KT2440 reveals a CoA-activation route and enantiomeric crosstalk between (R)- and (S)-3-hydroxybutyrate catabolism

Tayyab Islam, Mugesh Sankaranarayanan, Sung Kuk Lee, Donghyuk Kim et al.
Applied and Environmental Microbiology
Microbial metabolism and enzyme function
article

Degradation of (S)-1,3-butanediol in Pseudomonas putida KT2440 reveals a CoA-activation route and enantiomeric crosstalk between (R)- and (S)-3-hydroxybutyrate catabolism

Tayyab Islam, Mugesh Sankaranarayanan, Sung Kuk Lee, Donghyuk Kim, Sunghoon Park, Joon Young Park, Minchang Jang, Nandakumar Arumugam
article en

Abstract

ABSTRACT 1,3-Butanediol (1,3-BDO) exists as (R)- and (S)-enantiomers, yet how aerobic bacteria catabolize the (S)-form has been unknown. Here, we define (S)-1,3-BDO degradation pathway in Pseudomonas putida KT2440 and uncover an enantioselective enzyme that both controls the pathway and enables a chiral resolution. Transcriptomics, quantitative RT-PCR, and systematic gene deletions show that the ped cluster oxidizes (S)-1,3-BDO to (S)-3-hydroxybutyrate [(S)-3-HB] using the same upstream machinery as (R)-1,3-BDO and 1,4-BDO, but that the downstream route then diverges sharply. Rather than the free-acid dehydrogenase route used for (R)-3-HB, (S)-3-HB is catabolized through an acyl-CoA synthetase, Acs (PP_3458): a Δ acs mutant cannot grow on (S)-3-HB, and complementation restores growth, establishing that PP_3458 activates (S)-3-HB to (S)-3-hydroxybutyryl-CoA for β-oxidation. This ATP-dependent CoA-activation route is mechanistically distinct from the ATP-independent (S)-3-hydroxybutyrate dehydrogenase (3SHBDH) pathway of anaerobic Clostridia , identifying a different enzymatic solution to (S)-3-HB assimilation in aerobes. We further show that PP_3458 strongly prefers (S)- over (R)-3-HB and is inhibited by (R)-3-HB, a crosstalk that explains why a (R)-3-HB-accumulating mutant arrests on racemic 3-HB. Two applications follow directly: whole-cell kinetic resolution that converts racemic 3-HB to (S)-3-HB at high enantiomeric excess (ee > 0.99), and, in a strain unable to degrade (S)-3-HB, near-quantitative recovery—providing a chiral pharmaceutical building block; and ped -based biosensors that report 1,3-BDO across both enantiomers and function in P. putida and Escherichia coli . Some mechanistic details—the inhibition mode and the individual downstream β-oxidation steps—remain to be fully resolved. IMPORTANCE 1,3-Butanediol is a commercially important C 4 diol, but the microbial fate of its (S)-enantiomer in aerobic bacteria has been a gap in our understanding of diol metabolism. We show that Pseudomonas putida KT2440 degrades (S)-1,3-BDO through a route that, after a shared ped -dependent oxidation to (S)-3-hydroxybutyrate, depends on an acyl-CoA synthetase (PP_3458) to activate the (S)-acid as its CoA thioester. This ATP-dependent CoA-activation step is a distinct enzymatic strategy from the ATP-independent dehydrogenase route that anaerobic bacteria use for the same substrate, showing that aerobes and anaerobes solve (S)-3-HB assimilation differently. The work also turns this enzymology into utility: because PP_3458 is enantioselective and is inhibited by (R)-3-hydroxybutyrate, the strain can be used for whole-cell kinetic resolution that yields enantiopure (S)-3-hydroxybutyrate—a chiral pharmaceutical building block—from racemic 3-hydroxybutyrate, and the ped -based biosensors reported here detect 1,3-BDO in both P. putida and Escherichia coli , providing a portable tool for strain screening.

Applied and Environmental Microbiology
Vel Tech Rangarajan Dr. Sagunthala R&D Institute of Science and Technology (IN), Korea Advanced Institute of Science and Technology (KR), Korea Research Institute of Chemical Technology (KR), Ulsan National Institute of Science and Technology (KR)
Openalex Percentile: Top 22%
Microbial metabolism and enzyme function
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