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Klebsiella pneumoniae converts glycerol to the specialty chemical 1,3-propanediol (1,3-PDO), which is used for the production of polytrimethylene terepthalate (PTT). In this study, an NAD(+)-dependent gamma-glutamyl-gamma-aminobutyraldehyde dehydrogenase (PuuC) of K. pneumoniae DSM 2026, which oxidizes 3-hydroxypropionaldehyde to a platform chemical 3-hydroxypropionic acid (3-HP), was cloned and overexpressed in K. pneumoniae DSM 2026 for the co-production of 3-HP and 1,3-PDO from glycerol. In addition, the gene dhaT, encoding NADH-dependent 1,3-propanediol oxidoreductase (1,3-PDOR), was deleted from the chromosome for the balanced production of 3-HP and 1,3-PDO. The recombinant K. pneumoniae ∆dhaT, expressing puuC, produced 3.6 g 3-HP and 3.0 g 1,3-PDO per liter with an average yield of 81% on glycerol carbon in shake flask culture under microaerobic conditions. When a fed-batch culture was carried out under microaerobic conditions at pH 7.0 in a 5-l bioreactor, the recombinant K. pneumoniae ∆dhaT (puuC) strain produced 16.0 g 3-HP and 16.8 g 1,3-PDO per liter with a cumulative yield of 51% on glycerol carbon in 24 h. The production of 1,3-PDO in the dhaT-deletion mutant was attributed to the expression of NAD(P)H-dependent hypothetical oxidoreductase. This study demonstrates the feasibility of obtaining two commercially valuable chemicals, 3-HP and 1,3-PDO, at a significant scale.
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http://dx.doi.org/10.1007/s00253-011-3148-z | DOI Listing |
J Biotechnol
August 2025
Carl and Melinda Helwig Department of Biological and Agricultural Engineering, Kansas State University, Manhattan, KS 66506, USA. Electronic address:
3-Hydroxypropionic acid (3-HP) is a versatile platform chemical with wide-ranging industrial applications. This study presents a proof-of-concept approach for producing 3-HP from brewer's spent grain (BSG) using a novel one-pot CaO pretreatment method and an engineered, acid-tolerant Issatchenkia orientalis IoDY01H strain. The effects of acid type for pH adjusting of pretreated slurry, nitrogen supplementation, NaHCO addition, and BSG deproteinization were evaluated.
View Article and Find Full Text PDFJ Bone Joint Surg Am
June 2025
Department of Orthopaedic Surgery, David Geffen School of Medicine at UCLA, Santa Monica, California.
Background: Implant-associated infections (IAIs) require aggressive debridement to eliminate microbial bioburden. The use of irrigants may improve microbial killing during debridement. This study compared the efficacy of surgical irrigants in vitro against Staphylococcus aureus alone and in combination with Candida albicans, in both planktonic and biofilm states.
View Article and Find Full Text PDFACS Synth Biol
August 2025
Leiden Institute of Chemistry, Leiden University, Leiden 2300 RA, The Netherlands.
3-Hydroxypropionic acid (3-HP) serves as a crucial platform chemical with diverse applications across various industries. In this study, the oxaloacetate pathway was utilized for 3-HP production. This pathway involves the decarboxylation of oxaloacetate into malonic semialdehyde, catalyzed by branched-chain α-keto acid decarboxylase (KdcA), which is subsequently reduced to 3-HP by dehydrogenases.
View Article and Find Full Text PDFAppl Environ Microbiol
August 2025
School of Life Sciences, Shandong Province Key Laboratory of Applied Mycology, and Qingdao International Center on Microbes Utilizing Biogas, Qingdao Agricultural University, Qingdao, Shandong, People's Republic of China.
Unlabelled: AM1, a native formate-utilizing bacterium, has exhibited limited capacity to tolerate formate. In this study, we employed an adaptive laboratory evolution (ALE) strategy to develop an evolved strain FT3 derived from AM1, with enhanced formate tolerance. When cultivated with a mixture of carbon sources containing 90 mM formate and 30 mM methanol, the FT3 strain exhibited 5.
View Article and Find Full Text PDFAdv Sci (Weinh)
August 2025
Innovative Center of Cell Signaling Transduction and Synthetic Biology,Guangdong Provincial Key Laboratory of Plant Adaptation and Molecular Design, School of Life Sciences, Guangzhou University, 230 Wai Huan Xi Road, Guangzhou, Guangdong, 510006, P. R. China.
Enhancing microbial tolerance to target chemicals through conventional adaptive laboratory evolution (ALE) is time-consuming, labor-intensive, and further constrained by the challenge of balancing improved tolerance with maintaining optimal biosynthetic efficiency. Here, this work proposes a refined ALE strategy that combines initial mutagenesis with an automated microdroplet cultivation (MMC) system, thereby expediting the acquisition of tolerance phenotypes. Integrating a biosensor-assisted high-throughput screening platform enables identification of strains exhibiting advantageous "win-win" phenotypes, characterized by simultaneous improvements in both tolerance and biosynthetic capacity.
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