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Thermal and Photoinduced Long Distance Electron Transfer in Proteins and in Model Systems

George L McLendon, John R.A Miller, Kenneth P. Simolo, Karen Taylor, A. Grant Mauk, Ann M. English

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Abstract

All biological energy (and, thus, all fossil energy) is ultimately derived from a series of basic electron transfer reactions, starting with the primary charge separation in photosynthesis. The subsequent energy flow proceeds through a series of subsequent redox reactions, largely involving metallo-proteins in which the energy of reduction is coupled to proton transport and manufacture of ATP for biosyntheses. (Fig 1). 1 1. Mitochondral electron transport chain. High Resolution Image Download MS PowerPoint Slide Despite the obvious importance of such redox reactions, until recently such reactions remained rather poorly characterised, and poorly understood. Within the past few years, however, rapid advances have occurred in several key areas, including: 1) electron transfer theory 1-3 2) experiments on model reactions (eg: electron transfer at long, fixed distance), 4-6 3) experimental techniques for monitoring rapid biological electron transfer, 7-10 and 4) structural charaterization of the redox proteins themselves, 11-15 including detailed models for the protein-protein complexes within which electron transfer occurs. As a result of these advances, rapid experimental

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All biological energy (and, thus, all fossil energy) is ultimately derived from a series of basic electron transfer reactions, starting with the primary charge separation in photosynthesis. The subsequent energy flow proceeds through a series of subsequent redox reactions, largely involving metallo-proteins in which the energy of reduction is coupled to proton transport and manufacture of ATP for biosyntheses. (Fig 1). 1 1. Mitochondral electron transport chain. High Resolution Image Download MS PowerPoint Slide Despite the obvious importance of such redox reactions, until recently such reactions remained rather poorly characterised, and poorly understood. Within the past few years, however, rapid advances have occurred in several key areas, including: 1) electron transfer theory 1-3 2) experiments on model reactions (eg: electron transfer at long, fixed distance), 4-6 3) experimental techniques for monitoring rapid biological electron transfer, 7-10 and 4) structural charaterization of the redox proteins themselves, 11-15 including detailed models for the protein-protein complexes within which electron transfer occurs. As a result of these advances, rapid experimental

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Available abstract

All biological energy (and, thus, all fossil energy) is ultimately derived from a series of basic electron transfer reactions, starting with the primary charge separation in photosynthesis. The subsequent energy flow proceeds through a series of subsequent redox reactions, largely involving metallo-proteins in which the energy of reduction is coupled to proton transport and manufacture of ATP for biosyntheses. (Fig 1). 1 1. Mitochondral electron transport chain. High Resolution Image Download MS PowerPoint Slide Despite the obvious importance of such redox reactions, until recently such reactions remained rather poorly characterised, and poorly understood. Within the past few years, however, rapid advances have occurred in several key areas, including: 1) electron transfer theory 1-3 2) experiments on model reactions (eg: electron transfer at long, fixed distance), 4-6 3) experimental techniques for monitoring rapid biological electron transfer, 7-10 and 4) structural charaterization of the redox proteins themselves, 11-15 including detailed models for the protein-protein complexes within which electron transfer occurs. As a result of these advances, rapid experimental

Key concepts: Redox, Electron transfer, Electron transport chain, Chemical physics, Electron, Photosynthetic reaction centre, Chemistry, Electron flow

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