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Electron-transporting

The term vitamin K2 was applied to 2-methyl-3-difarnesyl-l,4-naphthoquinone, m.p. 54 C, isolated from putrefied fish meal. It now includes a group of related natural compounds ( menaquinones ), differing in the number of isoprene units in the side chain and in their degree of unsaturation. These quinones also appear to be involved in the electron transport chain and oxidative phosphorylation. [Pg.423]

Hwang K C and Mauzerall D C 1993 Photoinduced electron transport across a lipid bilayer mediated by Nature 361 138-40... [Pg.2433]

Electron transfer reactions are conceptually simple. The coupled stmctural changes may be modest, as in tire case of outer-sphere electron transport processes. Otlier electron transfer processes result in bond fonnation or... [Pg.2971]

In solid state materials, single-step electron transport between dopant species is well known. For example, electron-hole recombination accounts for luminescence in some materials [H]. Multistep hopping is also well known. Models for single and multistep transport are enjoying renewed interest in tlie context of DNA electron transfer [12, 13, 14 and 15]. Indeed, tliere are strong links between tire ET literature and tire literature of hopping conductivity in polymers [16]. [Pg.2973]

This section presents tire basic tlieoretical principles of condensed phase electron transport in chemical and biochemical reactions. [Pg.2975]

Bockrath M, Cobden D H, McEuen P L, Chopra N G, Zettl A, Thess A and Smalley R E 1997 Single-electron transport in ropes of nanotubes Science 275 1922-5. [Pg.2989]

Datta S 1997 Electronic Transport in Mesoscopic Systems (Cambridge Cambridge University Press)... [Pg.2994]

An important enzyme in bio logical electron transport called cytochrome P450 gets Its name from its UV absorp tion The P stands for pig ment because it is colored and the 450 corresponds to the 450 nm absorption of one of Its derivatives... [Pg.565]

The ready reversibility of this reaction is essential to the role that qumones play in cellular respiration the process by which an organism uses molecular oxygen to convert Its food to carbon dioxide water and energy Electrons are not transferred directly from the substrate molecule to oxygen but instead are transferred by way of an electron trans port chain involving a succession of oxidation-reduction reactions A key component of this electron transport chain is the substance known as ubiquinone or coenzyme Q... [Pg.1013]

Traditionally, the electron and proton transport pathways of photosynthetic membranes (33) have been represented as a "Z" rotated 90° to the left with noncycHc electron flow from left to right and PSII on the left-most and PSI on the right-most vertical in that orientation (25,34). Other orientations and more complex graphical representations have been used to depict electron transport (29) or the sequence and redox midpoint potentials of the electron carriers. As elucidation of photosynthetic membrane architecture and electron pathways has progressed, PSI has come to be placed on the left as the "Z" convention is being abandoned. Figure 1 describes the orientation in the thylakoid membrane of the components of PSI and PSII with noncycHc electron flow from right to left. [Pg.39]

Electron Transport Between Photosystem I and Photosystem II Inhibitors. The interaction between PSI and PSII reaction centers (Fig. 1) depends on the thermodynamically favored transfer of electrons from low redox potential carriers to carriers of higher redox potential. This process serves to communicate reducing equivalents between the two photosystem complexes. Photosynthetic and respiratory membranes of both eukaryotes and prokaryotes contain stmctures that serve to oxidize low potential quinols while reducing high potential metaHoproteins (40). In plant thylakoid membranes, this complex is usually referred to as the cytochrome b /f complex, or plastoquinolplastocyanin oxidoreductase, which oxidizes plastoquinol reduced in PSII and reduces plastocyanin oxidized in PSI (25,41). Some diphenyl ethers, eg, 2,4-dinitrophenyl 2 -iodo-3 -methyl-4 -nitro-6 -isopropylphenyl ether [69311-70-2] (DNP-INT), and the quinone analogues,... [Pg.40]

Light and photosynthetic electron transport convert DPEs into free radicals of undetermined stmcture. The radicals produced in the presence of the bipyridinium and DPE herbicides decrease leaf chlorophyll and carotenoid content and initiate general destmction of chloroplasts with concomitant formation of short-chain hydrocarbons from polyunsaturated fatty acids (37,97). [Pg.44]

A. Trebst and M. Avron, eds.. Photosynthesis P. Photosynthetic Electron Transport andPhotophosphorylation, Tnyclopedia of Plant Physiolog i, NS., Springer-Vedag, Berlin, 1977. [Pg.57]

Insects poisoned with rotenone exhibit a steady decline ia oxygen consumption and the iasecticide has been shown to have a specific action ia interfering with the electron transport iavolved ia the oxidation of reduced nicotinamide adenine dinucleotide (NADH) to nicotinamide adenine dinucleotide (NAD) by cytochrome b. Poisoning, therefore, inhibits the mitochondrial oxidation of Krebs-cycle iatermediates which is catalysed by NAD. [Pg.270]

Hydramethylnon [67485-29-4] is tetrabydro-5,5-dimetbyl-2-(1 H)-pyrimidinone [bis-l,5-(4-trifluoromethylphenyl)-3-penta-l,4-dienylidene] hydrazone (152) (mp 189°C). It is a slow-acting stomach poison used in baits and traps to control ants and cockroaches. Its mode of action is inhibition of mitochondrial electron transport. [Pg.297]

A compound which is a good choice for an artificial electron relay is one which can reach the reduced FADH2 active site, undergo fast electron transfer, and then transport the electrons to the electrodes as rapidly as possible. Electron-transport rate studies have been done for an enzyme electrode for glucose (G) using interdigitated array electrodes (41). The following mechanism for redox reactions in osmium polymer—GOD biosensor films has... [Pg.45]

The abihty of iron to exist in two stable oxidation states, ie, the ferrous, Fe ", and ferric, Fe ", states in aqueous solutions, is important to the role of iron as a biocatalyst (79) (see Iron compounds). Although the cytochromes of the electron-transport chain contain porphyrins like hemoglobin and myoglobin, the iron ions therein are involved in oxidation—reduction reactions (78). Catalase is a tetramer containing four atoms of iron peroxidase is a monomer having one atom of iron. The iron in these enzymes also undergoes oxidation and reduction (80). [Pg.384]

The decline in immune function may pardy depend on a deficiency of coenzyme Q, a group of closely related quinone compounds (ubiquinones) that participate in the mitochondrial electron transport chain (49). Concentrations of coenzyme Q (specifically coenzyme Q q) appear to decline with age in several organs, most notably the thymus. [Pg.431]

N. E. Mott and E. A. Davis, Electronic Transport in Non-Cystalline Materials Clarendon Press, Oxford, U.K., 1979. [Pg.363]

The main advantages that compound semiconductor electronic devices hold over their siUcon counterparts He in the properties of electron transport, excellent heterojunction capabiUties, and semi-insulating substrates, which can help minimise parasitic capacitances that can negatively impact device performance. The abiUty to integrate materials with different band gaps and electronic properties by epitaxy has made it possible to develop advanced devices in compound semiconductors. The hole transport in compound semiconductors is poorer and more similar to siUcon. Eor this reason the majority of products and research has been in n-ty e or electron-based devices. [Pg.370]

The physical properties of tellurium are generally anistropic. This is so for compressibility, thermal expansion, reflectivity, infrared absorption, and electronic transport. Owing to its weak lateral atomic bonds, crystal imperfections readily occur in single crystals as dislocations and point defects. [Pg.384]

Conducting Polymer Blends, Composites, and Colloids. Incorporation of conducting polymers into multicomponent systems allows the preparation of materials that are electroactive and also possess specific properties contributed by the other components. Dispersion of a conducting polymer into an insulating matrix can be accompHshed as either a miscible or phase-separated blend, a heterogeneous composite, or a coUoidaHy dispersed latex. When the conductor is present in sufftcientiy high composition, electron transport is possible. [Pg.39]


See other pages where Electron-transporting is mentioned: [Pg.90]    [Pg.124]    [Pg.152]    [Pg.293]    [Pg.411]    [Pg.2914]    [Pg.2972]    [Pg.2973]    [Pg.2988]    [Pg.210]    [Pg.243]    [Pg.243]    [Pg.244]    [Pg.28]    [Pg.43]    [Pg.43]    [Pg.44]    [Pg.44]    [Pg.45]    [Pg.46]    [Pg.373]    [Pg.410]    [Pg.482]    [Pg.355]    [Pg.365]    [Pg.545]    [Pg.350]    [Pg.135]    [Pg.621]   
See also in sourсe #XX -- [ Pg.14 ]




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1,2,4-Triazole, electron transport

1,3,4-Oxadiazole, electron transport

Adenosine triphosphate electron transport chain

Aerobic respiration electron transport chain

Alq3 charge transport of molecular glasses, electron

Alternative electron transport chain

Alumina electron transport

Amytal inhibition of electron transport

Automated electron-transport system

Ballistic electron transport

Ballistic electronic transport

Biological Electron Transport Chains

Biological electron transport

Bipolar transport electron mobilities

Carbon monoxide, electron transport chain

Catalyst layer electron transport effects

Cellular electron transport, cytochrome

Charge transport nanocrystal surface electronic

Chemolithotrophic bacteria electron transport

Citric acid cycle electron-transport chain

Coenzyme electron transport chain

Coherent electronic charge transport

Components of the electron transport

Components of the electron transport chain

Copper electron-transport

Coupled light-induced electron transport

Coupling of Electron Transport and ATP Synthesis

Coupling of Electron and Ionic Charge Transport

Cyclic electron transport

Cytochrome P450 electron transport system

Cytochrome electron transport particles and

Cytochrome electron transport pathway

Cytochromes in electron transport

Cytochromes, electron transport

Cytochromes, electron transport chain

Cytochromes, electron transport coupled

Desulfovibrio electron transport

Dioxygen Binding, Proton Translocation, and Electron Transport

Dispersive electronic excitation transport

Down Regulation of Electron Transport Rates

Effect Electron transport

Electroactive films electron transport properties

Electron Transfer and Charge Transport Process in DNA

Electron Transport Creates an Electrochemical Potential Gradient for Protons across the Inner Membrane

Electron Transport and ATP Biosynthesis

Electron Transport in Conductive-Polymer Nanocomposites

Electron Transport in Photosystem

Electron Transport in Two- and Three-terminal Molecular Devices

Electron Transport to Nitrogenase

Electron Transport, Oxidative Phosphorylation, and Hydroxylation

Electron and hole transport

Electron inhomogeneous transport

Electron injection charge transport of molecular glasses

Electron transfer flavoprotein transport chain

Electron transfer process transport

Electron transfer reactions transport

Electron transport (respiratory

Electron transport NADH dehydrogenase

Electron transport ability

Electron transport chain

Electron transport chain (respiratory

Electron transport chain NADH dehydrogenase

Electron transport chain amino acid structure

Electron transport chain and oxidative phosphorylation

Electron transport chain antimycin

Electron transport chain azide

Electron transport chain complex

Electron transport chain complex III

Electron transport chain components

Electron transport chain components, table

Electron transport chain coupling

Electron transport chain cyanide

Electron transport chain cyclic

Electron transport chain cytochrome oxidase

Electron transport chain cytochrome oxidase, complex

Electron transport chain cytochrome reductase

Electron transport chain definition

Electron transport chain diagram

Electron transport chain electrochemical proton gradient

Electron transport chain energy capture

Electron transport chain energy relationships

Electron transport chain generation

Electron transport chain glycerol 3-phosphate shuttle

Electron transport chain history

Electron transport chain inhibition

Electron transport chain inhibitors

Electron transport chain iron-sulfur proteins

Electron transport chain malate-aspartate shuttle

Electron transport chain noncyclic

Electron transport chain observed potential

Electron transport chain of mitochondria

Electron transport chain organization

Electron transport chain overview

Electron transport chain phosphorylation

Electron transport chain potentials

Electron transport chain production

Electron transport chain protein machines

Electron transport chain proton-motive force

Electron transport chain redox potential

Electron transport chain reduction potentials

Electron transport chain respiratory complexes

Electron transport chain respiratory control

Electron transport chain rotenone

Electron transport chain standard redox potential

Electron transport chain tissue

Electron transport chain transfer

Electron transport chain ubiquinone

Electron transport chain uncoupled

Electron transport chain uncouplers

Electron transport chain, bacterial

Electron transport chain, membrane-bound

Electron transport chain, membrane-bound enzymes

Electron transport chemiosmotic coupling

Electron transport coenzymes

Electron transport components

Electron transport connections

Electron transport cytochrome oxidase

Electron transport defined

Electron transport delocalized state

Electron transport diagram

Electron transport dynamics

Electron transport emission, OLEDs

Electron transport energetics

Electron transport equilibria

Electron transport flavoprotein

Electron transport from water to NADP an overview

Electron transport heme proteins

Electron transport in chemolithotrophic organisms

Electron transport in fungi

Electron transport in membranes

Electron transport in mitochondria

Electron transport in plants

Electron transport inhibitors

Electron transport intramolecular

Electron transport iron-containing proteins

Electron transport layer

Electron transport layer doped and hybrid

Electron transport layer performance analysis

Electron transport layer solution-processed

Electron transport layer, ETL

Electron transport localized states

Electron transport materials

Electron transport mechanisms

Electron transport mechanisms small-polaron hopping

Electron transport microsomal

Electron transport mitochondrial, components

Electron transport number

Electron transport of bacteria

Electron transport optimization

Electron transport oxidative phosphorylation

Electron transport oxides

Electron transport partially localized

Electron transport particle

Electron transport particle and

Electron transport pathway

Electron transport phenomena

Electron transport phosphorylation

Electron transport photosynthetic control

Electron transport predicting direction

Electron transport procedure

Electron transport proteins

Electron transport proton pumps

Electron transport pump

Electron transport random motion

Electron transport regulation

Electron transport release from phosphorylation

Electron transport respiratory complexes

Electron transport schematic

Electron transport sequence

Electron transport shuttle mechanisms

Electron transport side reactions

Electron transport silole

Electron transport spinach

Electron transport strategies

Electron transport substrate shuttles

Electron transport system

Electron transport system activity, calculating

Electron transport system assay

Electron transport system components

Electron transport system definition

Electron transport system high-protein concentrations

Electron transport system inhibitors

Electron transport system measurement

Electron transport system thylakoids

Electron transport system, composition

Electron transport system, hepatic

Electron transport system, thylakoid

Electron transport system, thylakoid membrane

Electron transport thiophene-5,5-dioxides

Electron transport through polymer films

Electron transport transfer

Electron transport uncoupled

Electron transport uncouplers

Electron transport uncoupling

Electron transport, NiFe hydrogenase

Electron transport, blue copper proteins

Electron transport, comparative

Electron transport, decreased

Electron transport, decreased reversal

Electron transport, device structures

Electron transport, directed metal oxidation

Electron transport, enhancing

Electron transport, solid-state

Electron transport, theoretical models

Electron transporter

Electron transporter

Electron transporting layer

Electron transporting phase

Electron tunneling transport

Electron-Coupled Transport in a Redox Gradient

Electron-Deficient Polymers - Luminescent Transport Layers

Electron-coupled transport

Electron-hole transporter

Electron-transport assemblies

Electron-transport assemblies protein complexes

Electron-transport chains in zeolites

Electron-transport complexes

Electron-transport moiety

Electron-transport rates

Electron-transport rates in enzyme

Electron-transport system complexes

Electron-transport system mitochondrial respiratory

Electron-transport system oxidative phosphorylation

Electron-transporting channel

Electron-transporting films

Electron-transporting layer conductivity

Electron-transporting layer film preparation

Electron-transporting materials

Electron-transporting organelles

Electron-transporting polymers

Electronic Structure and Transport

Electronic and transport properties

Electronic carrier transport

Electronic charge transport

Electronic charges, transport across

Electronic charges, transport across interface

Electronic energy transport

Electronic excitation transport

Electronic junction transport

Electronic transport

Electronic transport polysilylenes

Electronic transport properties

Electronic transport, general

Electronic transport, general description

Electronically conductive polymers charge transport

Electronics transport phenomena

Electrons in the Electron Transport Chain

Electrons transport

Electrons transport equation

Energy Capture During Electron Transport

Energy electron transport linked

Expanded electron transport

Experiment 14 Electron Transport

Fast Electron Transport in Multilayer Targets

Fast electron transport

Fermentation electron transport chain

Flavin mononucleotide electron transport chain

Free energy electron transport

Glucose, electron-transport rates

Glucose, electron-transport rates enzyme electrode

Incoherent electronic excitation transport

Inhibition electron transport

Inhibition mitochondrial electron transport

Inhibition of mitochondrial electron transport

Inhibitors of electron transport

Insulators electron transport

Iron oxide electron transport

Iron protein electron transport

Krebs cycle electron transport

Lateral electron transport, effect

Lateral electron transport, effect surface

Light electron-transporting layer

Light emitting diode electron transport layer

Long-distance electron transport

Macrophages Electron transport

Magnesium oxide electron transport

Metabolism electron transport

Metal oxides electron transport

Metal photosynthetic electron transport

Metals electron transport

Microsomes electron transport

Mitochondria electron transport

Mitochondria electron transport chain

Mitochondria electron-transport complexes

Mitochondria respiratory electron-transport

Mitochondrial electron transport

Mitochondrial electron transport analogs

Mitochondrial electron transport and oxidative phosphorylation

Mitochondrial electron transport biological activity

Mitochondrial electron transport fungicides

Mitochondrial electron transport inhibitors

Mitochondrial electron transport metabolism

Mitochondrial electron transport stability

Mitochondrial electron transport synthesis

Mitochondrial electron transport system

Mitochondrial electron transporter

Mitochondrial electron-transport chain

Mitochondrion electron transport system

Models of electron transport

Molecular electron transport

Molecular electron transporters

Molecular wires electron transport

Nafion, electron transport

Nanostructured electron transport properties

Nanotubes electron transport

Nitrosomonas, electron transport chain

Noncyclic electron transport

Organic light-emitting diodes electron transport materials

Organization of the Electron-Transport Chain

Oxadiazoles charge transport of molecular glasses, electron

Oxidation, aerobic, site electron transport

Oxidative phosphorylation and the electron transport chain

Oxidative phosphorylation electron transport release from

Oxygen transport through electronically

Photoinduced electron transport

Photosynthesis cyclic electron transport

Photosynthesis cyclic electron-transport chain

Photosynthesis electron transport

Photosynthetic electron transport

Photosynthetic electron transport bacterial

Photosynthetic electron transport biosensor

Photosynthetic electron transport chain

Photosynthetic electron transport inhibition

Photosystem catalyzed electron transport

Planar electron transport

Polymer electrolyte fuel cells electron transport

Polymer light-emitting diode electron injection/transporting layer

Polymer light-emitting diodes electron-transport layer

Properties electron transport

Protein-based machines electron transport chain

Pseudocyclic electron transport

Reactant transport electron-transfer reactions

Reaction center electron transport

Redox coenzymes potential electron transport chain

Redox proteins electron transport

Refractories electron transport

Relation to electron transport

Respiration electron transport system

Respiration, copper electron transport

Respiratory Inhibitors Can Be Used to Study Electron Transport

Respiratory chain and electron transport

Respiratory control of electron transport

Respiratory electron transport system

Responses of Electron-Transporting Films, Including Hydroxylated Island Overlayers

Reverse electron transport

Self-assembling electron-transport chains

Semiconductors electron transport

Single-electron transport

Situ Electron Transport Measurements

Skill 22.1 Using chemical principles (including thermodynamics) to analyze important biochemical processes (e.g., synthesis, degradation, electron transport, oxidative phosphorylation)

Superoxide electron transport

TPBI, electron transport

The Connection between Electron Transport and Phosphorylation

The Electron Transport Chain

The Mitochondrial Electron-Transport Chain

The interplay of electron transfer and mass transport control

The transport of electrons and positive holes

The tricarboxylic acid cycle, and electron transport

Theoretical Models of Electron Transport

Thermodynamics of electron transport

Thermodynamics of ion and electron transport

Thiobacillus electron transport

Thylakoid membrane, electron transport

Transition Metals in Catalysis and Electron Transport

Transport electron migration

Transport mixed protonic-electronic conductors

Transport of ions and electrons in mixed conductors

Type 1 Blue Copper Proteins — Electron Transport

Ubiquinone electron transport

Uncouplers, electron transport release from phosphorylation

Vitamin Electron transport

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