State and location dependence of action potential metabolic cost (Hallermann et al., 2012)


Hallermann S, de Kock CP, Stuart GJ, Kole MH. (2012). State and location dependence of action potential metabolic cost in cortical pyramidal neurons. Nature neuroscience. 15 [PubMed]

See more from authors: Hallermann S · de Kock CP · Stuart GJ · Kole MH

References and models cited by this paper

Aiello L, Wheeler P. (1995). The expensive-tissue hypothesis: the brain and the digestive system in human and primate evolution Curr Anthropol. 36

Alle H, Kubota H, Geiger JR. (2011). Sparse but highly efficient Kv3 outpace BKCa channels in action potential repolarization at hippocampal mossy fiber boutons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 31 [PubMed]

Alle H, Roth A, Geiger JR. (2009). Energy-efficient action potentials in hippocampal mossy fibers. Science (New York, N.Y.). 325 [PubMed]

Attwell D, Laughlin SB. (2001). An energy budget for signaling in the grey matter of the brain. Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism. 21 [PubMed]

Awatramani GB, Price GD, Trussell LO. (2005). Modulation of transmitter release by presynaptic resting potential and background calcium levels. Neuron. 48 [PubMed]

Bekkers JM, Delaney AJ. (2001). Modulation of excitability by alpha-dendrotoxin-sensitive potassium channels in neocortical pyramidal neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 21 [PubMed]

Braitenberg V, Schuz A. (1998). Cortex Statistics and Geometry of Neuronal Connectivity 2nd ed.

Carter BC, Bean BP. (2009). Sodium entry during action potentials of mammalian neurons: incomplete inactivation and reduced metabolic efficiency in fast-spiking neurons. Neuron. 64 [PubMed]

Carter BC, Bean BP. (2011). Incomplete inactivation and rapid recovery of voltage-dependent sodium channels during high-frequency firing in cerebellar Purkinje neurons. Journal of neurophysiology. 105 [PubMed]

Christie JM, Chiu DN, Jahr CE. (2011). Ca(2+)-dependent enhancement of release by subthreshold somatic depolarization. Nature neuroscience. 14 [PubMed]

Cole KS, Curtis HJ. (1939). ELECTRIC IMPEDANCE OF THE SQUID GIANT AXON DURING ACTIVITY. The Journal of general physiology. 22 [PubMed]

Crotty P, Sangrey T, Levy WB. (2006). Metabolic energy cost of action potential velocity. Journal of neurophysiology. 96 [PubMed]

Engel D, Jonas P. (2005). Presynaptic action potential amplification by voltage-gated Na+ channels in hippocampal mossy fiber boutons. Neuron. 45 [PubMed]

FRANKENHAEUSER B, HUXLEY AF. (1964). THE ACTION POTENTIAL IN THE MYELINATED NERVE FIBER OF XENOPUS LAEVIS AS COMPUTED ON THE BASIS OF VOLTAGE CLAMP DATA. The Journal of physiology. 171 [PubMed]

Geiger JR, Jonas P. (2000). Dynamic control of presynaptic Ca(2+) inflow by fast-inactivating K(+) channels in hippocampal mossy fiber boutons. Neuron. 28 [PubMed]

Gittis AH, Moghadam SH, du Lac S. (2010). Mechanisms of sustained high firing rates in two classes of vestibular nucleus neurons: differential contributions of resurgent Na, Kv3, and BK currents. Journal of neurophysiology. 104 [PubMed]

Guan D, Tkatch T, Surmeier DJ, Armstrong WE, Foehring RC. (2007). Kv2 subunits underlie slowly inactivating potassium current in rat neocortical pyramidal neurons. The Journal of physiology. 581 [PubMed]

HODGKIN AL, HUXLEY AF. (1952). A quantitative description of membrane current and its application to conduction and excitation in nerve. The Journal of physiology. 117 [PubMed]

Hallermann S et al. (2010). Bassoon speeds vesicle reloading at a central excitatory synapse. Neuron. 68 [PubMed]

Harris JJ, Attwell D. (2012). The energetics of CNS white matter. The Journal of neuroscience : the official journal of the Society for Neuroscience. 32 [PubMed]

Hasenstaub A, Otte S, Callaway E, Sejnowski TJ. (2010). Metabolic cost as a unifying principle governing neuronal biophysics. Proceedings of the National Academy of Sciences of the United States of America. 107 [PubMed]

Herculano-Houzel S. (2011). Scaling of brain metabolism with a fixed energy budget per neuron: implications for neuronal activity, plasticity and evolution. PloS one. 6 [PubMed]

Hines ML, Carnevale NT. (2006). The NEURON Book.

Hodgkin A. (1975). The optimum density of sodium channels in an unmyelinated nerve. Philosophical transactions of the Royal Society of London. Series B, Biological sciences. 270 [PubMed]

Hopkins WF. (1998). Toxin and subunit specificity of blocking affinity of three peptide toxins for heteromultimeric, voltage-gated potassium channels expressed in Xenopus oocytes. The Journal of pharmacology and experimental therapeutics. 285 [PubMed]

Juusola M, Robinson HP, de Polavieja GG. (2007). Coding with spike shapes and graded potentials in cortical networks. BioEssays : news and reviews in molecular, cellular and developmental biology. 29 [PubMed]

Keren N, Bar-Yehuda D, Korngreen A. (2009). Experimentally guided modelling of dendritic excitability in rat neocortical pyramidal neurones. The Journal of physiology. 587 [PubMed]

Kole MH. (2011). First node of Ranvier facilitates high-frequency burst encoding. Neuron. 71 [PubMed]

Kole MH, Hallermann S, Stuart GJ. (2006). Single Ih channels in pyramidal neuron dendrites: properties, distribution, and impact on action potential output. The Journal of neuroscience : the official journal of the Society for Neuroscience. 26 [PubMed]

Kole MH et al. (2008). Action potential generation requires a high sodium channel density in the axon initial segment. Nature neuroscience. 11 [PubMed]

Kole MH, Letzkus JJ, Stuart GJ. (2007). Axon initial segment Kv1 channels control axonal action potential waveform and synaptic efficacy. Neuron. 55 [PubMed]

Kole MH, Stuart GJ. (2008). Is action potential threshold lowest in the axon? Nature neuroscience. 11 [PubMed]

Kole MH, Stuart GJ. (2012). Signal processing in the axon initial segment. Neuron. 73 [PubMed]

Lennie P. (2003). The cost of cortical computation. Current biology : CB. 13 [PubMed]

Levy WB, Baxter RA. (1996). Energy efficient neural codes. Neural computation. 8 [PubMed]

Lohmann H, Rörig B. (1994). Long-range horizontal connections between supragranular pyramidal cells in the extrastriate visual cortex of the rat. The Journal of comparative neurology. 344 [PubMed]

Lorincz A, Nusser Z. (2008). Cell-type-dependent molecular composition of the axon initial segment. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Lorincz A, Nusser Z. (2010). Molecular identity of dendritic voltage-gated sodium channels. Science (New York, N.Y.). 328 [PubMed]

Mainen ZF, Sejnowski TJ. (1996). Influence of dendritic structure on firing pattern in model neocortical neurons. Nature. 382 [PubMed]

Markram H, Lübke J, Frotscher M, Roth A, Sakmann B. (1997). Physiology and anatomy of synaptic connections between thick tufted pyramidal neurones in the developing rat neocortex. The Journal of physiology. 500 ( Pt 2) [PubMed]

Niven JE, Laughlin SB. (2008). Energy limitation as a selective pressure on the evolution of sensory systems. The Journal of experimental biology. 211 [PubMed]

Oberlaender M et al. (2011). Three-dimensional axon morphologies of individual layer 5 neurons indicate cell type-specific intracortical pathways for whisker motion and touch. Proceedings of the National Academy of Sciences of the United States of America. 108 [PubMed]

Oberlaender M et al. (2012). Cell type-specific three-dimensional structure of thalamocortical circuits in a column of rat vibrissal cortex. Cerebral cortex (New York, N.Y. : 1991). 22 [PubMed]

Ogawa Y et al. (2008). Postsynaptic density-93 clusters Kv1 channels at axon initial segments independently of Caspr2. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Popovic MA, Foust AJ, McCormick DA, Zecevic D. (2011). The spatio-temporal characteristics of action potential initiation in layer 5 pyramidal neurons: a voltage imaging study. The Journal of physiology. 589 [PubMed]

Raman IM, Bean BP. (1997). Resurgent sodium current and action potential formation in dissociated cerebellar Purkinje neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 17 [PubMed]

Rhodes KJ et al. (1997). Association and colocalization of the Kvbeta1 and Kvbeta2 beta-subunits with Kv1 alpha-subunits in mammalian brain K+ channel complexes. The Journal of neuroscience : the official journal of the Society for Neuroscience. 17 [PubMed]

Schmidt-Hieber C, Bischofberger J. (2010). Fast sodium channel gating supports localized and efficient axonal action potential initiation. The Journal of neuroscience : the official journal of the Society for Neuroscience. 30 [PubMed]

Schoppa NE, Sigworth FJ. (1998). Activation of Shaker potassium channels. III. An activation gating model for wild-type and V2 mutant channels. The Journal of general physiology. 111 [PubMed]

Sengupta B, Stemmler M, Laughlin SB, Niven JE. (2010). Action potential energy efficiency varies among neuron types in vertebrates and invertebrates. PLoS computational biology. 6 [PubMed]

Shu Y, Hasenstaub A, Duque A, Yu Y, McCormick DA. (2006). Modulation of intracortical synaptic potentials by presynaptic somatic membrane potential. Nature. 441 [PubMed]

Shu Y, Yu Y, Yang J, McCormick DA. (2007). Selective control of cortical axonal spikes by a slowly inactivating K+ current. Proceedings of the National Academy of Sciences of the United States of America. 104 [PubMed]

Stühmer W et al. (1989). Molecular basis of functional diversity of voltage-gated potassium channels in mammalian brain. The EMBO journal. 8 [PubMed]

Wang H, Kunkel DD, Schwartzkroin PA, Tempel BL. (1994). Localization of Kv1.1 and Kv1.2, two K channel proteins, to synaptic terminals, somata, and dendrites in the mouse brain. The Journal of neuroscience : the official journal of the Society for Neuroscience. 14 [PubMed]

Wang SS et al. (2008). Functional trade-offs in white matter axonal scaling. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Yellen G. (2002). The voltage-gated potassium channels and their relatives. Nature. 419 [PubMed]

Zagotta WN, Hoshi T, Aldrich RW. (1994). Shaker potassium channel gating. III: Evaluation of kinetic models for activation. The Journal of general physiology. 103 [PubMed]

de Haas V, Vogel W. (1989). Sodium and potassium currents recorded during an action potential. European biophysics journal : EBJ. 17 [PubMed]

de Kock CP, Sakmann B. (2008). High frequency action potential bursts (>or= 100 Hz) in L2/3 and L5B thick tufted neurons in anaesthetized and awake rat primary somatosensory cortex. The Journal of physiology. 586 [PubMed]

References and models that cite this paper

Ben-Shalom R et al. (2017). Opposing Effects on NaV1.2 Function Underlie Differences Between SCN2A Variants Observed in Individuals With Autism Spectrum Disorder or Infantile Seizures. Biological psychiatry. 82 [PubMed]

Ben-Shalom R et al. (2022). NeuroGPU: Accelerating multi-compartment, biophysically detailed neuron simulations on GPUs Journal of neuroscience methods. 366 [PubMed]

Ju H, Hines ML, Yu Y. (2016). Cable energy function of cortical axons. Scientific reports. 6 [PubMed]

Oláh VJ, Tarcsay G, Brunner J. (2021). Small size of recorded neuronal structures confines the accuracy in direct axonal voltage measurements. eNeuro. 8 [PubMed]

Singh C, Levy WB. (2017). A consensus layer V pyramidal neuron can sustain interpulse-interval coding. PloS one. 12 [PubMed]

Spratt PWE et al. (2021). Paradoxical hyperexcitability from NaV1.2 sodium channel loss in neocortical pyramidal cells Cell reports. 36 [PubMed]

Telenczuk M, Fontaine B, Brette R. (2017). The basis of sharp spike onset in standard biophysical models. PloS one. 12 [PubMed]

Teleńczuk M, Brette R, Destexhe A, Teleńczuk B. (2018). Contribution of the Axon Initial Segment to Action Potentials Recorded Extracellularly. eNeuro. 5 [PubMed]

Vascak M, Sun J, Baer M, Jacobs KM, Povlishock JT. (2017). Mild Traumatic Brain Injury Evokes Pyramidal Neuron Axon Initial Segment Plasticity and Diffuse Presynaptic Inhibitory Terminal Loss. Frontiers in cellular neuroscience. 11 [PubMed]

This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.