A model for accelerated uptake and accumulation of sugars arising from phosphorylation at the inner surface of the cell membrane (original) (raw)

A model for sugar transport across red cell membranes without carriers

Richard Naftalin

Biochimica Et Biophysica Acta - Biomembranes, 1970

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A critique of the alternating access transporter model of uniport glucose transport

Richard Naftalin

Biophysics reports, 2018

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Relevance of Sugar Transport across the Cell Membrane

Roxana Carbó

International Journal of Molecular Sciences

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Mechanism of glucose transport across the yeast cell membrane

Vincent Cirillo

Journal of bacteriology, 1962

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Novel Arguments in Favor of the Substrate-Transport Model of Glucose-6-Phosphatase

Emile Schaftingen

Diabetes, 2001

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ATP-dependent sugar transport complexity in human erythrocytes

Anthony Carruthers

American journal of physiology. Cell physiology, 2007

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In Silico Kinetic Study of the Glucose Transporter

Débora González

Journal of Biological Physics, 2007

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Formulation of a coupled mechanism between solute diffusion, phosphatase–kinase reactions and membrane potentials for the primary active transport of phosphorylated substrates through biological membranes

Roger Koffi

Progress in Biophysics & Molecular Biology, 2002

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Net sugar transport is a multistep process. Evidence for cytosolic sugar binding sites in erythrocytes

Anthony Carruthers

Biochemistry, 1995

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A molecular mathematical model of glucose mobilization and uptake

Fusheng Tang

Mathematical Biosciences, 2009

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Computer modelling of sugar transport in Saccharomyces cerevisiae

Klaus-Heinrich Röhm

Journal of Biotechnology, 1992

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Stochastic steps in secondary active sugar transport

John Rosenberg

Proceedings of the National Academy of Sciences of the United States of America, 2016

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ATP-dependent active transport simulations based on a phosphatase-channel-kinase membrane structure

Roger Koffi

Journal of Computational Chemistry, 2004

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Human Erythrocyte Sugar Transport is Incompatible with Available Carrier Models

Anthony Carruthers

Biochemistry, 1996

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The Structure of a Sugar Transporter of the Glucose EIIC Superfamily Provides Insight into the Elevator Mechanism of Membrane Transport

Zhenning Ren

Structure, 2016

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High‐affinity Glucose Uptake in Saccharomyces cerevisiae is not Dependent on the Presence of Glucose‐Phosphorylating Enzymes

Gertien Smits

Yeast, 1996

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Molecular determinants of sugar transport regulation by ATP

Anthony Carruthers

Biochemistry, 2002

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Alternating Carrier Models of Asymmetric Glucose Transport Violate the Energy Conservation Laws

Richard Naftalin

Biophysical Journal, 2008

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Intracellular glucose concentration in derepressed yeast cells consuming glucose is high enough to reduce the glucose transport rate by 50%

Jasper Diderich

Journal of bacteriology, 1998

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Gibbs Free-Energy Gradient along the Path of Glucose Transport through Human Glucose Transporter 3

George Perry

ACS chemical neuroscience, 2018

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Intracellular glucose concentration in derepressed yeast cells consuming glucose is high enough to reduce glucose transport rate by 50%

Jasper Diderich

Journal of Bacteriology

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Transport of glucose and fructose in rat hepatocytes at 37°C

Madison A Peschen

Biochimica et Biophysica Acta (BBA) - Biomembranes, 1986

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The pre-steady-state kinetics of conformational changes in sugar transporters

Peter Henderson

Biochemical Society transactions, 1994

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Steady-state brain glucose transport kinetics re-evaluated with a four-state conformational model

Hongxia Lei

Frontiers in Neuroenergetics, 2009

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The kinetics and thermodynamics of the binding of cytochalasin B to sugar transporters

Adrian Walmsley

European Journal of Biochemistry, 1994

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Membrane potential accelerates sugar uptake by stabilizing the outward facing conformation of the Na/glucose symporter vSGLT

Natalia Ermolova

Nature Communications

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A kinetic model with ordered cytoplasmic dissociation for SUC1, an Arabidopsis H+/sucrose cotransporter expressed in Xenopus oocytes

Frederica Theodoulou

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Kinetic Basis of Cis- and Trans-Allostery in GLUT1-Mediated Sugar Transport

Julie De Zutter

The Journal of membrane biology, 2017

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Pre-steady-state uptake of d-glucose by the human erythrocyte is inconsistent with a circulating carrier mechanism

Richard Naftalin

Biochimica et Biophysica Acta (BBA) - Biomembranes, 1988

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Project 2: Glucose and Metabolism Levels in Cells

David von Rudisill

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Evidence from studies of temperature-dependent changes of d-glucose, d-mannose and l-sorbose permeability that different states of activation of the human erythrocyte hexose transporter exist for good and bad substrates

Richard Naftalin

Biochimica et Biophysica Acta (BBA) - Biomembranes, 1997

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INTESTINAL SUGAR TRANSPORT: STUDIES WITH ISOLATED PLASMA MEMBRANES

Heini Murer

Annals of the New York Academy of Sciences, 1975

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Evidence for non-uniform distribution of d-glucose within human red cells during net exit and counterflow

Richard Naftalin

Biochimica et Biophysica Acta (BBA) - Biomembranes, 1985

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