Abstract
Lytic polysaccharide monooxygenases (LPMOs) have a unique ability to activate molecular oxygen for subsequent oxidative cleavage of glycosidic bonds. To provide insight into the mode of action of these industrially important enzymes, we have performed an integrated NMR/electron paramagnetic resonance (EPR) study into the detailed aspects of an AA10 LPMO-substrate interaction. Using NMR spectroscopy, we have elucidated the solution-phase structure of apo-BlLPMO10A from Bacillus licheniformis, along with solution-phase structural characterization of the Cu(I)-LPMO, showing that the presence of the metal has minimal effects on the overall protein structure. We have, moreover, used paramagnetic relaxation enhancement (PRE) to characterize Cu(II)-LPMO by NMR spectroscopy. In addition, a multifrequency continuous-wave (CW)-EPR and 15N-HYSCORE spectroscopy study on the uniformly isotope-labeled 63Cu(II)-bound 15N-BlLPMO10A along with its natural abundance isotopologue determined copper spin-Hamiltonian parameters for LPMOs to markedly improved accuracy. The data demonstrate that large changes in the Cu(II) spin-Hamiltonian parameters are induced upon binding of the substrate. These changes arise from a rearrangement of the copper coordination sphere from a five-coordinate distorted square pyramid to one which is four-coordinate near-square planar. There is also a small reduction in metal-ligand covalency and an attendant increase in the d(x2-y2) character/energy of the singly occupied molecular orbital (SOMO), which we propose from density functional theory (DFT) calculations predisposes the copper active site for the formation of a stable Cu-O2 intermediate. This switch in orbital character upon addition of chitin provides a basis for understanding the coupling of substrate binding with O2 activation in chitin-active AA10 LPMOs.
PMID: 32723819 [PubMed - as supplied by publisher]
[ASAP] Mechanism of the Flavoprotein d-6-Hydroxynicotine Oxidase: Substrate Specificity, pH and Solvent Isotope Effects, and Roles of Key Active-Site Residues
Mechanism of the Flavoprotein d-6-Hydroxynicotine Oxidase: Substrate Specificity, pH and Solvent Isotope Effects, and Roles of Key Active-Site Residues
https://pubs.acs.org/appl/literatum/publisher/achs/journals/content/bichaw/0/bichaw.ahead-of-print/acs.biochem.9b00297/20190509/images/medium/bi-2019-00297r_0007.gif
Biochemistry
DOI: 10.1021/acs.biochem.9b00297
http://feeds.feedburner.com/~ff/acs/bichaw?d=yIl2AUoC8zA
http://feeds.feedburner.com/~r/acs/bichaw/~4/MSi2MrzXdfQ
More...
[NMR paper] NMR Structure of the APOBEC3B Catalytic Domain: Structural Basis for Substrate Binding and DNA Deaminase Activity.
NMR Structure of the APOBEC3B Catalytic Domain: Structural Basis for Substrate Binding and DNA Deaminase Activity.
Related Articles NMR Structure of the APOBEC3B Catalytic Domain: Structural Basis for Substrate Binding and DNA Deaminase Activity.
Biochemistry. 2016 May 10;
Authors: Byeon IL, Byeon CH, Wu T, Mitra M, Singer D, Levin JG, Gronenborn AM
Abstract
Human APOBEC3B (A3B) is a member of the APOBEC3 (A3) family of cytidine deaminases, which function as DNA mutators and restrict viral pathogens and endogenous...
nmrlearner
Journal club
0
05-11-2016 08:04 PM
[NMR paper] Positional specifity of acetylxylan esterases on natural polysaccharide: an NMR study.
Positional specifity of acetylxylan esterases on natural polysaccharide: an NMR study.
http://www.bionmr.com//www.ncbi.nlm.nih.gov/corehtml/query/egifs/http:--linkinghub.elsevier.com-ihub-images-PubMedLink.gif Related Articles Positional specifity of acetylxylan esterases on natural polysaccharide: an NMR study.
Biochim Biophys Acta. 2013 Jun;1830(6):3365-72
Authors: Uhliariková I, Vranská M, McCleary BV, Biely P
Abstract
BACKGROUND: Microbial degradation of acetylated plant hemicelluloses involves besides enzymes cleaving the glycosidic...
Influence of substrate modification and C-terminal truncation on the active site structure of substrate-bound heme oxygenase from Neisseriae meningitidis; A 1H NMR study.
Influence of substrate modification and C-terminal truncation on the active site structure of substrate-bound heme oxygenase from Neisseriae meningitidis; A 1H NMR study.
Influence of substrate modification and C-terminal truncation on the active site structure of substrate-bound heme oxygenase from Neisseriae meningitidis; A 1H NMR study.
Biochemistry. 2011 Aug 27;
Authors: Peng D, Satterlee JD, Ma LH, Dallas JL, Smith KM, Zhang X, Sato M, La Mar GN
Abstract
Heme oxygenase, HO, from the pathogenic bacterium N. meningitidis, NmHO, which...
nmrlearner
Journal club
0
08-30-2011 04:52 PM
[NMR paper] NMR observation of substrate in the binding site of an active sugar-H+ symport protei
NMR observation of substrate in the binding site of an active sugar-H+ symport protein in native membranes.
http://www.ncbi.nlm.nih.gov/corehtml/query/egifs/http:--www.pubmedcentral.nih.gov-corehtml-pmc-pmcgifs-pubmed-pmc.gif Related Articles NMR observation of substrate in the binding site of an active sugar-H+ symport protein in native membranes.
Proc Natl Acad Sci U S A. 1994 Apr 26;91(9):3877-81
Authors: Spooner PJ, Rutherford NG, Watts A, Henderson PJ
NMR methods have been adopted to observe directly the characteristics of substrate...
nmrlearner
Journal club
0
08-22-2010 03:33 AM
[NMR paper] NMR observation of substrate in the binding site of an active sugar-H+ symport protei
NMR observation of substrate in the binding site of an active sugar-H+ symport protein in native membranes.
http://www.ncbi.nlm.nih.gov/corehtml/query/egifs/http:--www.pubmedcentral.nih.gov-corehtml-pmc-pmcgifs-pubmed-pmc.gif Related Articles NMR observation of substrate in the binding site of an active sugar-H+ symport protein in native membranes.
Proc Natl Acad Sci U S A. 1994 Apr 26;91(9):3877-81
Authors: Spooner PJ, Rutherford NG, Watts A, Henderson PJ
NMR methods have been adopted to observe directly the characteristics of substrate...