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Structural and functional analysis of lignostilbene dioxygenases from Sphingobium sp. SYK-6
- Source :
- The Journal of Biological Chemistry
- Publication Year :
- 2021
- Publisher :
- American Society for Biochemistry and Molecular Biology, 2021.
-
Abstract
- Lignostilbene-α,β-dioxygenases (LSDs) are iron-dependent oxygenases involved in the catabolism of lignin-derived stilbenes. Sphingobium sp. SYK-6 contains eight LSD homologs with undetermined physiological roles. To investigate which homologs are involved in the catabolism of dehydrodiconiferyl alcohol (DCA), derived from β-5 linked lignin subunits, we heterologously produced the enzymes and screened their activities in lysates. The seven soluble enzymes all cleaved lignostilbene, but only LSD2, LSD3, and LSD4 exhibited high specific activity for 3-(4-hydroxy-3-(4-hydroxy-3-methoxystyryl)-5-methoxyphenyl) acrylate (DCA-S) relative to lignostilbene. LSD4 catalyzed the cleavage of DCA-S to 5-formylferulate and vanillin and cleaved lignostilbene and DCA-S (∼106 M−1 s−1) with tenfold greater specificity than pterostilbene and resveratrol. X-ray crystal structures of native LSD4 and the catalytically inactive cobalt-substituted Co-LSD4 at 1.45 A resolution revealed the same fold, metal ion coordination, and edge-to-edge dimeric structure as observed in related enzymes. Key catalytic residues, Phe-59, Tyr-101, and Lys-134, were also conserved. Structures of Co-LSD4·vanillin, Co-LSD4·lignostilbene, and Co-LSD4·DCA-S complexes revealed that Ser-283 forms a hydrogen bond with the hydroxyl group of the ferulyl portion of DCA-S. This residue is conserved in LSD2 and LSD4 but is alanine in LSD3. Substitution of Ser-283 with Ala minimally affected the specificity of LSD4 for either lignostilbene or DCA-S. By contrast, substitution with phenylalanine, as occurs in LSD5 and LSD6, reduced the specificity of the enzyme for both substrates by an order of magnitude. This study expands our understanding of an LSD critical to DCA catabolism as well as the physiological roles of other LSDs and their determinants of substrate specificity.
- Subjects :
- 0301 basic medicine
Models, Molecular
Oxygenase
Pterostilbene
Protein Conformation
SYK-6, Sphingobium sp. SYK-6
Protein Data Bank (RCSB PDB)
lignostilbene
Phenylalanine
Crystallography, X-Ray
Biochemistry
Lignin
Substrate Specificity
chemistry.chemical_compound
DMF, dimethyformamide
DCA-S, 3-(4-hydroxy-3-(4-hydroxy-3-methoxystyryl)-5-methoxyphenyl) acrylate
SEC-MALS, size-exclusion chromatography–multiangle light scattering
TMY1009, Sphingomonas paucimobilis TMY1009
PDB, protein data bank
chemistry.chemical_classification
Alanine
DCM, dichloromethane
Sphingomonadaceae
HEPPS, 4-(2-hydroxyethyl)-1-piperazinepropanesulfonic acid
ICP-MS, inductively coupled plasma–mass spectrometry
Research Article
aromatic catabolism
Stereochemistry
Cleavage (embryo)
CCD, carotenoid cleavage dioxygenases
Dioxygenases
03 medical and health sciences
I, ionic strength
Bacterial Proteins
lignin degradation
DCA, dehydrodiconiferyl alcohol
RMSD, root-mean-square deviation
Molecular Biology
030102 biochemistry & molecular biology
Catabolism
GC-MS, gas chromatography–mass spectrometry
carotenoid cleavage oxygenase
5-formylferulate, 4-[(E)-2-carboxyethenyl]-2-formyl-6-methoxyphenolate
Cell Biology
bacterial catabolism
tR, retention time
030104 developmental biology
Enzyme
chemistry
LSD, lignostilbene-α,β-dioxygenase
Subjects
Details
- Language :
- English
- ISSN :
- 1083351X and 00219258
- Volume :
- 296
- Database :
- OpenAIRE
- Journal :
- The Journal of Biological Chemistry
- Accession number :
- edsair.doi.dedup.....58b43759759486fe9c487965b4216b6c