NEURON { SUFFIX naf }
NEURON { USEION na WRITE ina }
ASSIGNED { ina }
PARAMETER {
erev = 55. (mV)
gmax = 0.035 (mho/cm2)
vrest = 0.
exptemp = 27
maflag = 3
malphaA = -0.1
malphaB = -10.
malphaV0 = -35.
mbflag = 1
mbetaA = 4.
mbetaB = -18.
mbetaV0 = -60.
mq10 = 5
mexp = 3
haflag = 1
halphaA = 0.07
halphaB = -20
halphaV0 = -58.
hbflag = 2
hbetaA = 1.
hbetaB = -10.
hbetaV0 = -28.
hq10 = 5
hexp = 1
cao (mM)
cai (mM)
celsius (degC)
dt (ms)
v (mV)
vmax = 100 (mV)
vmin = -100 (mV)
}
TITLE Kevins Cvode modified Generalized Hodgkin-Huxley eqn Channel Model
COMMENT
ENDCOMMENT
INDEPENDENT {t FROM 0 TO 1 WITH 1 (ms)}
NEURON {
RANGE gmax, g, i
GLOBAL erev, Inf, Tau, vmin, vmax, vrest, qq10
}
CONSTANT {
FARADAY = 96489.0 R= 8.31441
}
UNITS {
(mA) = (milliamp)
(mV) = (millivolt)
(umho) = (micromho)
}
ASSIGNED {
i (mA/cm^2)
g (mho/cm^2)
Inf[2] Tau[2] qq10[2]
}
STATE { h }
INITIAL {
mh(v)
h = Inf[1]
}
BREAKPOINT {
SOLVE states METHOD cnexp
mh(v)
g = gmax * Inf[0]*Inf[0]*Inf[0] * h
i = g*(v-erev)
ina=i
}
DERIVATIVE states {
mh(v)
h' = (-h + Inf[1]) / Tau[1]
}
PROCEDURE mh (v) {
LOCAL a, b, j
TABLE Inf, Tau DEPEND maflag, malphaA, malphaB, malphaV0, mbflag, mbetaA, mbetaB, mbetaV0, exptemp, haflag, halphaA, halphaB, halphaV0, hbflag, hbetaA, hbetaB, hbetaV0, celsius, mq10, hq10, vrest, vmin, vmax FROM vmin TO vmax WITH 200
qq10[0] = mq10^((celsius-exptemp)/10.)
qq10[1] = hq10^((celsius-exptemp)/10.)
FROM j = 0 TO 1 {
a = alpha (v, j)
b = beta (v, j)
Inf[j] = a / (a + b)
Tau[j] = 1. / (a + b) / qq10[j]
if (hexp==0) { Tau[1] = 1. Inf[1] = 1.}
}
}
FUNCTION alpha(v,j) {
LOCAL flag, A, B, V0
if (j==1 && hexp==0) {
alpha = 0
} else {
if (j == 1) {
A = halphaA B = halphaB V0 = halphaV0+vrest flag = haflag
} else {
A = malphaA B = malphaB V0 = malphaV0+vrest flag = maflag
}
if (flag == 1) { alpha = A*exp((v-V0)/B)
} else if (flag == 2) { alpha = A/(exp((v-V0)/B)+1)
} else if (flag == 3) { if(v == V0) {
alpha = A*B
} else {
alpha = A*(v-V0)/(exp((v-V0)/B)-1) }
}
}
}
FUNCTION beta (v,j) {
LOCAL flag, A, B, V0
if (j==1 && hexp==0) {
beta = 1
} else {
if (j == 1) {
A = hbetaA B = hbetaB V0 = hbetaV0+vrest flag = hbflag
} else {
A = mbetaA B = mbetaB V0 = mbetaV0+vrest flag = mbflag
}
if (flag == 1) { beta = A*exp((v-V0)/B)
} else if (flag == 2) { beta = A/(exp((v-V0)/B)+1)
} else if (flag == 3) { if(v == V0) {
beta = A*B
} else {
beta = A*(v-V0)/(exp((v-V0)/B)-1) }
}
}
}