Metabolic energy cost of action potential velocity

被引:50
作者
Crotty, Patrick
Sangrey, Thomas
Levy, William B.
机构
[1] Univ Virginia Hlth Syst, Dept Neurol Surg, Charlottesville, VA 22908 USA
[2] Univ Virginia, Dept Psychol, Charlottesville, VA 22903 USA
[3] Emory Univ, Dept Biol, Atlanta, GA 30322 USA
关键词
D O I
10.1152/jn.01204.2005
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The action potential of the unmyelinated nerve is metabolically expensive. Using the energetic cost per unit length for the biophysically modeled action potential of the squid giant axon, we analyze this cost and identify one possible optimization. The energetic cost arising from an action potential is divided into three separate components: 1) the depolarization of the rising phase; 2) the hyperpolarization of the falling phase; and 3) the largest component, the overlapping of positive and negative currents, which has no electrical effect. Using both the Hodgkin-Huxley (HH) model and an improved version of the HH model (HHSFL), we investigate the variation of these three components as a function of easily evolvable parameters, axon diameter and ion channel densities. Assuming conduction velocity is well designed for each organism, the energy component associated with the rising phase attains a minimum near the biological values of the diameter and channel densities. This optimization is explained by the membrane capacitance per unit length. The functional capacitance is the sum of the intrinsic membrane capacitance and the gating capacitance associated with the sodium channel, and this capacitance minimizes at nearly the same values of diameter and channel density. Because capacitance is temperature independent and because this result is independent of the assumed velocity, the result generalizes to unmyelinated mammalian axons. That is, channel density is arguably an evolved property that goes hand-in-hand with the evolutionary stability of the sodium channel.
引用
收藏
页码:1237 / 1246
页数:10
相关论文
共 35 条
  • [1] ADRIAN RH, 1975, PROC R SOC SER B-BIO, V189, P81, DOI 10.1098/rspb.1975.0043
  • [2] An energy budget for signaling in the grey matter of the brain
    Attwell, D
    Laughlin, SB
    [J]. JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2001, 21 (10) : 1133 - 1145
  • [3] A test of metabolically efficient coding in the retina
    Balasubramanian, V
    Berry, MJ
    [J]. NETWORK-COMPUTATION IN NEURAL SYSTEMS, 2002, 13 (04) : 531 - 552
  • [4] MODEL OF THE NERVE ACTION POTENTIAL
    BELL, J
    COOK, LP
    [J]. MATHEMATICAL BIOSCIENCES, 1979, 46 (1-2) : 11 - 36
  • [5] COMBINED VOLTAGE-CLAMP AND DIALYSIS OF MYXICOLA AXONS - BEHAVIOR OF MEMBRANE ASYMMETRY CURRENTS
    BULLOCK, JO
    SCHAUF, CL
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 1978, 278 (MAY): : 309 - 324
  • [6] Axonal excitability revisited
    Clay, JR
    [J]. PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 2005, 88 (01) : 59 - 90
  • [7] Molecular diversity of K+ channels
    Coetzee, WA
    Amarillo, Y
    Chiu, J
    Chow, A
    Lau, D
    McCormack, T
    Moreno, H
    Nadal, MS
    Ozaita, A
    Pountney, D
    Saganich, M
    Vega-Saenz de Miera, E
    Rudy, B
    [J]. MOLECULAR AND FUNCTIONAL DIVERSITY OF ION CHANNELS AND RECEPTORS, 1999, 868 : 233 - 285
  • [8] POTASSIUM AND SODIUM ION CURRENT NOISE IN MEMBRANE OF SQUID GIANT-AXON
    CONTI, F
    DEFELICE, LJ
    WANKE, E
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 1975, 248 (01): : 45 - 82
  • [9] DISTRIBUTION AND KINETICS OF MEMBRANE DIELECTRIC POLARIZATION .2. FREQUENCY-DOMAIN STUDIES OF GATING CURRENTS
    FERNANDEZ, JM
    BEZANILLA, F
    TAYLOR, RE
    [J]. JOURNAL OF GENERAL PHYSIOLOGY, 1982, 79 (01) : 41 - 67
  • [10] HIGH-RESOLUTION RECORDING OF ASYMMETRY CURRENTS FROM THE SQUID GIANT-AXON - TECHNICAL ASPECTS OF VOLTAGE CLAMP DESIGN
    FORSTER, IC
    GREEFF, NG
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 1990, 33 (2-3) : 185 - 205