Literature DB >> 23042175

Engineering filamentous fungi for conversion of D-galacturonic acid to L-galactonic acid.

Joosu Kuivanen1, Dominik Mojzita, Yanming Wang, Satu Hilditch, Merja Penttilä, Peter Richard, Marilyn G Wiebe.   

Abstract

D-Galacturonic acid, the main monomer of pectin, is an attractive substrate for bioconversions, since pectin-rich biomass is abundantly available and pectin is easily hydrolyzed. l-Galactonic acid is an intermediate in the eukaryotic pathway for d-galacturonic acid catabolism, but extracellular accumulation of l-galactonic acid has not been reported. By deleting the gene encoding l-galactonic acid dehydratase (lgd1 or gaaB) in two filamentous fungi, strains were obtained that converted d-galacturonic acid to l-galactonic acid. Both Trichoderma reesei Δlgd1 and Aspergillus niger ΔgaaB strains produced l-galactonate at yields of 0.6 to 0.9 g per g of substrate consumed. Although T. reesei Δlgd1 could produce l-galactonate at pH 5.5, a lower pH was necessary for A. niger ΔgaaB. Provision of a cosubstrate improved the production rate and titer in both strains. Intracellular accumulation of l-galactonate (40 to 70 mg g biomass(-1)) suggested that export may be limiting. Deletion of the l-galactonate dehydratase from A. niger was found to delay induction of d-galacturonate reductase and overexpression of the reductase improved initial production rates. Deletion of the l-galactonate dehydratase from A. niger also delayed or prevented induction of the putative d-galacturonate transporter An14g04280. In addition, A. niger ΔgaaB produced l-galactonate from polygalacturonate as efficiently as from the monomer.

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Year:  2012        PMID: 23042175      PMCID: PMC3502896          DOI: 10.1128/AEM.02171-12

Source DB:  PubMed          Journal:  Appl Environ Microbiol        ISSN: 0099-2240            Impact factor:   4.792


  15 in total

Review 1.  D-galacturonic acid catabolism in microorganisms and its biotechnological relevance.

Authors:  Peter Richard; Satu Hilditch
Journal:  Appl Microbiol Biotechnol       Date:  2009-01-22       Impact factor: 4.813

2.  L-galactonate dehydratase is part of the fungal path for D-galacturonic acid catabolism.

Authors:  Satu Kuorelahti; Paula Jouhten; Hannu Maaheimo; Merja Penttilä; Peter Richard
Journal:  Mol Microbiol       Date:  2006-08       Impact factor: 3.501

3.  Enzymes for the NADPH-dependent reduction of dihydroxyacetone and D-glyceraldehyde and L-glyceraldehyde in the mould Hypocrea jecorina.

Authors:  Janis Liepins; Satu Kuorelahti; Merja Penttilä; Peter Richard
Journal:  FEBS J       Date:  2006-08-23       Impact factor: 5.542

4.  Wild-type and mutant stocks of Aspergillus nidulans.

Authors:  R W Barratt; G B Johnson; W N Ogata
Journal:  Genetics       Date:  1965-07       Impact factor: 4.562

5.  Identification in the mold Hypocrea jecorina of the first fungal D-galacturonic acid reductase.

Authors:  Satu Kuorelahti; Nisse Kalkkinen; Merja Penttilä; John Londesborough; Peter Richard
Journal:  Biochemistry       Date:  2005-08-23       Impact factor: 3.162

6.  Bioconversion of D-galacturonate to keto-deoxy-L-galactonate (3-deoxy-L-threo-hex-2-ulosonate) using filamentous fungi.

Authors:  Marilyn G Wiebe; Dominik Mojzita; Satu Hilditch; Laura Ruohonen; Merja Penttilä
Journal:  BMC Biotechnol       Date:  2010-08-26       Impact factor: 2.563

7.  An evolutionary conserved d-galacturonic acid metabolic pathway operates across filamentous fungi capable of pectin degradation.

Authors:  Elena S Martens-Uzunova; Peter J Schaap
Journal:  Fungal Genet Biol       Date:  2008-08-14       Impact factor: 3.495

8.  Microbial conversion of sugars from plant biomass to lactic acid or ethanol.

Authors:  Joy Doran-Peterson; Dana M Cook; Sarah K Brandon
Journal:  Plant J       Date:  2008-05       Impact factor: 6.417

9.  Metabolic engineering of fungal strains for conversion of D-galacturonate to meso-galactarate.

Authors:  Dominik Mojzita; Marilyn Wiebe; Satu Hilditch; Harry Boer; Merja Penttilä; Peter Richard
Journal:  Appl Environ Microbiol       Date:  2009-11-06       Impact factor: 4.792

10.  The missing link in the fungal D-galacturonate pathway: identification of the L-threo-3-deoxy-hexulosonate aldolase.

Authors:  Satu Hilditch; Suvi Berghäll; Nisse Kalkkinen; Merja Penttilä; Peter Richard
Journal:  J Biol Chem       Date:  2007-07-03       Impact factor: 5.157

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  14 in total

1.  Pathway transfer in fungi.

Authors:  Laura van der Straat; Leo H de Graaff
Journal:  Bioengineered       Date:  2014 Sep-Oct       Impact factor: 3.269

2.  Identification and characterization of a galacturonic acid transporter from Neurospora crassa and its application for Saccharomyces cerevisiae fermentation processes.

Authors:  J Philipp Benz; Ryan J Protzko; Jonas Ms Andrich; Stefan Bauer; John E Dueber; Chris R Somerville
Journal:  Biotechnol Biofuels       Date:  2014-02-06       Impact factor: 6.040

3.  Metabolic engineering of the fungal D-galacturonate pathway for L-ascorbic acid production.

Authors:  Joosu Kuivanen; Merja Penttilä; Peter Richard
Journal:  Microb Cell Fact       Date:  2015-01-08       Impact factor: 5.328

4.  The transcriptional activator GaaR of Aspergillus niger is required for release and utilization of d-galacturonic acid from pectin.

Authors:  Ebru Alazi; Jing Niu; Joanna E Kowalczyk; Mao Peng; Maria Victoria Aguilar Pontes; Jan A L van Kan; Jaap Visser; Ronald P de Vries; Arthur F J Ram
Journal:  FEBS Lett       Date:  2016-05-30       Impact factor: 4.124

5.  The pathway intermediate 2-keto-3-deoxy-L-galactonate mediates the induction of genes involved in D-galacturonic acid utilization in Aspergillus niger.

Authors:  Ebru Alazi; Claire Khosravi; Tim G Homan; Saskia du Pré; Mark Arentshorst; Marcos Di Falco; Thi T M Pham; Mao Peng; Maria Victoria Aguilar-Pontes; Jaap Visser; Adrian Tsang; Ronald P de Vries; Arthur F J Ram
Journal:  FEBS Lett       Date:  2017-05-06       Impact factor: 4.124

6.  Molecular and biochemical characterization of recombinant cel12B, cel8C, and peh28 overexpressed in Escherichia coli and their potential in biofuel production.

Authors:  Eman Ibrahim; Kim D Jones; Keith E Taylor; Ebtesam N Hosseney; Patrick L Mills; Jean M Escudero
Journal:  Biotechnol Biofuels       Date:  2017-02-27       Impact factor: 6.040

7.  NADPH-dependent 5-keto-D-gluconate reductase is a part of the fungal pathway for D-glucuronate catabolism.

Authors:  Joosu Kuivanen; Peter Richard
Journal:  FEBS Lett       Date:  2017-12-30       Impact factor: 4.124

8.  Conversion of orange peel to L-galactonic acid in a consolidated process using engineered strains of Aspergillus niger.

Authors:  Joosu Kuivanen; Hugo Dantas; Dominik Mojzita; Edgar Mallmann; Alessandra Biz; Nadia Krieger; David Mitchell; Peter Richard
Journal:  AMB Express       Date:  2014-03-18       Impact factor: 3.298

9.  Overexpression of the Aspergillus niger GatA transporter leads to preferential use of D-galacturonic acid over D-xylose.

Authors:  Jasper Sloothaak; Mike Schilders; Peter J Schaap; Leo H de Graaff
Journal:  AMB Express       Date:  2014-08-23       Impact factor: 3.298

10.  A novel pathway for fungal D-glucuronate catabolism contains an L-idonate forming 2-keto-L-gulonate reductase.

Authors:  Joosu Kuivanen; Maura H Sugai-Guérios; Mikko Arvas; Peter Richard
Journal:  Sci Rep       Date:  2016-05-18       Impact factor: 4.379

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