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1.
Biomacromolecules ; 21(6): 2116-2124, 2020 06 08.
Article in English | MEDLINE | ID: mdl-32223220

ABSTRACT

The production of large quantities of artificial spider silk fibers that match the mechanical properties of the native material has turned out to be challenging. Recent advancements in the field make biomimetic spinning approaches an attractive way forward since they allow the spider silk proteins to assemble into the secondary, tertiary, and quaternary structures that are characteristic of the native silk fiber. Straining flow spinning (SFS) is a newly developed and versatile method that allows production under a wide range of processing conditions. Here, we use a recombinant spider silk protein that shows unprecedented water solubility and that is capable of native-like assembly, and we spin it into fibers by the SFS technique. We show that fibers may be spun using different hydrodynamical and chemical conditions and conclude that these spinning conditions affect fiber mechanics. In particular, it was found that the addition of acetonitrile and polyethylene glycol to the collection bath results in fibers with increased ß-sheet content and improved mechanical properties.


Subject(s)
Fibroins , Spiders , Animals , Biomimetics , Recombinant Proteins/genetics , Silk , Stress, Mechanical , Structure-Activity Relationship
2.
Sci Rep ; 8(1): 3637, 2018 02 26.
Article in English | MEDLINE | ID: mdl-29483528

ABSTRACT

Bacterial nitric oxide reductases (NORs) catalyse the reduction of NO to N2O and H2O. NORs are found either in denitrification chains, or in pathogens where their primary role is detoxification of NO produced by the immune defense of the host. Although NORs belong to the heme-copper oxidase superfamily, comprising proton-pumping O2-reducing enzymes, the best studied NORs, cNORs (cytochrome c-dependent), are non-electrogenic. Here, we focus on another type of NOR, qNOR (quinol-dependent). Recombinant qNOR from Neisseria meningitidis, a human pathogen, purified from Escherichia coli, showed high catalytic activity and spectroscopic properties largely similar to cNORs. However, in contrast to cNOR, liposome-reconstituted qNOR showed respiratory control ratios above two, indicating that NO reduction by qNOR was electrogenic. Further, we determined a 4.5 Å crystal structure of the N. meningitidis qNOR, allowing exploration of a potential proton transfer pathway from the cytoplasm by mutagenesis. Most mutations had little effect on the activity, however the E-498 variants were largely inactive, while the corresponding substitution in cNOR was previously shown not to induce significant effects. We thus suggest that, contrary to cNOR, the N. meningitidis qNOR uses cytoplasmic protons for NO reduction. Our results allow possible routes for protons to be discussed.


Subject(s)
Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Neisseria meningitidis/enzymology , Oxidoreductases/chemistry , Oxidoreductases/metabolism , Mutation , Protein Structure, Secondary
3.
Sci Adv ; 3(6): e1700279, 2017 06.
Article in English | MEDLINE | ID: mdl-28630929

ABSTRACT

Heme-copper oxidases catalyze the four-electron reduction of O2 to H2O at a catalytic site that is composed of a heme group, a copper ion (CuB), and a tyrosine residue. Results from earlier experimental studies have shown that the O-O bond is cleaved simultaneously with electron transfer from a low-spin heme (heme a/b), forming a ferryl state (PR ; Fe4+=O2-, CuB2+-OH-). We show that with the Thermus thermophilus ba3 oxidase, at low temperature (10°C, pH 7), electron transfer from the low-spin heme b to the catalytic site is faster by a factor of ~10 (τ ≅ 11 µs) than the formation of the PR ferryl (τ ≅110 µs), which indicates that O2 is reduced before the splitting of the O-O bond. Application of density functional theory indicates that the electron acceptor at the catalytic site is a high-energy peroxy state [Fe3+-O--O-(H+)], which is formed before the PR ferryl. The rates of heme b oxidation and PR ferryl formation were more similar at pH 10, indicating that the formation of the high-energy peroxy state involves proton transfer within the catalytic site, consistent with theory. The combined experimental and theoretical data suggest a general mechanism for O2 reduction by heme-copper oxidases.


Subject(s)
Copper/chemistry , Heme/chemistry , Oxidoreductases/chemistry , Oxygen/chemistry , Algorithms , Catalysis , Copper/metabolism , Electron Transport , Heme/metabolism , Hydrogen-Ion Concentration , Kinetics , Models, Chemical , Oxidoreductases/metabolism , Protons , Structure-Activity Relationship , Temperature
4.
Proc Natl Acad Sci U S A ; 112(11): 3397-402, 2015 Mar 17.
Article in English | MEDLINE | ID: mdl-25733886

ABSTRACT

The ba3-type cytochrome c oxidase from Thermus thermophilus is a membrane-bound protein complex that couples electron transfer to O2 to proton translocation across the membrane. To elucidate the mechanism of the redox-driven proton pumping, we investigated the kinetics of electron and proton transfer in a structural variant of the ba3 oxidase where a putative "pump site" was modified by replacement of Asp372 by Ile. In this structural variant, proton pumping was uncoupled from internal electron transfer and O2 reduction. The results from our studies show that proton uptake to the pump site (time constant ∼65 µs in the wild-type cytochrome c oxidase) was impaired in the Asp372Ile variant. Furthermore, a reaction step that in the wild-type cytochrome c oxidase is linked to simultaneous proton uptake and release with a time constant of ∼1.2 ms was slowed to ∼8.4 ms, and in Asp372Ile was only associated with proton uptake to the catalytic site. These data identify reaction steps that are associated with protonation and deprotonation of the pump site, and point to the area around Asp372 as the location of this site in the ba3 cytochrome c oxidase.


Subject(s)
Aspartic Acid/genetics , Cytochrome b Group/genetics , Electron Transport Complex IV/genetics , Mutation/genetics , Proton Pumps/genetics , Protons , Thermus thermophilus/enzymology , Cytochrome b Group/chemistry , Electron Transport Complex IV/chemistry , Hydrogen-Ion Concentration , Kinetics , Time Factors
5.
Biochim Biophys Acta ; 1817(10): 1914-20, 2012 Oct.
Article in English | MEDLINE | ID: mdl-22538294

ABSTRACT

Bacterial nitric oxide reductases (NOR) are integral membrane proteins that catalyse the reduction of nitric oxide to nitrous oxide, often as a step in the process of denitrification. Most functional data has been obtained with NORs that receive their electrons from a soluble cytochrome c in the periplasm and are hence termed cNOR. Very recently, the structure of a different type of NOR, the quinol-dependent (q)-NOR from the thermophilic bacterium Geobacillus stearothermophilus was solved to atomic resolution [Y. Matsumoto, T. Tosha, A.V. Pisliakov, T. Hino, H. Sugimoto, S. Nagano, Y. Sugita and Y. Shiro, Nat. Struct. Mol. Biol. 19 (2012) 238-246]. In this study, we have investigated the reaction between this qNOR and oxygen. Our results show that, like some cNORs, the G. stearothermophilus qNOR is capable of O(2) reduction with a turnover of ~3electronss(-1) at 40°C. Furthermore, using the so-called flow-flash technique, we show that the fully reduced (with three available electrons) qNOR reacts with oxygen in a reaction with a time constant of 1.8ms that oxidises the low-spin heme b. This reaction is coupled to proton uptake from solution and presumably forms a ferryl intermediate at the active site. The pH dependence of the reaction is markedly different from a corresponding reaction in cNOR from Paracoccus denitrificans, indicating that possibly the proton uptake mechanism and/or pathway differs between qNOR and cNOR. This study furthermore forms the basis for investigation of the proton transfer pathway in qNOR using both variants with putative proton transfer elements modified and measurements of the vectorial nature of the proton transfer. This article is part of a Special Issue entitled: 17th European Bioenergetics Conference (EBEC 2012).


Subject(s)
Bacterial Proteins/metabolism , Geobacillus stearothermophilus/metabolism , Oxidoreductases/metabolism , Oxygen , Protons , Bacterial Proteins/chemistry , Geobacillus stearothermophilus/chemistry , Hydroquinones/chemistry , Hydroquinones/metabolism , Ion Transport/physiology , Oxidoreductases/chemistry , Paracoccus denitrificans/chemistry , Paracoccus denitrificans/metabolism
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