Top Banner
Neural Signaling: The Membrane Potential Lesson 9
30
Welcome message from author
This document is posted to help you gain knowledge. Please leave a comment to let me know what you think about it! Share it to your friends and learn new things together.
Transcript
Page 1: Neural Signaling: The Membrane Potential Lesson 9.

Neural Signaling:The Membrane

PotentialLesson 9

Page 2: Neural Signaling: The Membrane Potential Lesson 9.

Membrane Structure

Barrier Compartmentalization

Semipermeable selectively leaky

Fluid Mosaic Model Phospholipids Proteins ~

Page 3: Neural Signaling: The Membrane Potential Lesson 9.

Phospholipid Bilayer

Hydrophilic heads

(phosphate)

Hydrophobic tails (lipid)

Page 4: Neural Signaling: The Membrane Potential Lesson 9.

Membrane Proteins

Channels Pumps

active transport Receptor protein sites

bind messenger molecules Transducer proteins:

2d messenger systems Structural proteins

form junctions with other neurons ~

Page 5: Neural Signaling: The Membrane Potential Lesson 9.

Membrane Proteins: Ionophores

Ion Channels Non-gated

always open Gated

chemically-gated electrically-gated mechanically-gated ~

Page 6: Neural Signaling: The Membrane Potential Lesson 9.

Chemically-Gated Channels

ligand-gated Ionotropic

receptor protein = channel direct control ---> fast

Metabotropic second messenger system indirect ---> slow ~

Page 7: Neural Signaling: The Membrane Potential Lesson 9.

Membrane Proteins

OUTSIDE

INSIDE

Page 8: Neural Signaling: The Membrane Potential Lesson 9.

Metabolic pumps: Active Transport

Membrane proteins Pump ions

require energy Na+ - K+ Ca++ (calcium)

Also various molecules nutrients neurotransmitters ~

Page 9: Neural Signaling: The Membrane Potential Lesson 9.

Biolelectric Potential

Communication within neuron electrical signal

electric current = movement of electrons

Bioelectric: movement of ions ~

Page 10: Neural Signaling: The Membrane Potential Lesson 9.

Ion Distribution

Particles / molecules electrically charged

Anions negatively charged

Cations positively charged ~

Page 11: Neural Signaling: The Membrane Potential Lesson 9.

Anions (-) Large intracellular proteins Chloride ions Cl-

Cations (+) Sodium Na+ Potassium K+ ~

Ion Distribution

Page 12: Neural Signaling: The Membrane Potential Lesson 9.

Resting Membrane Potential

Membrane

outside

inside

Na+

Na+

Cl-

Cl-K+

K+

A-

+ + + + + + + + + + +

-----------

+ + + + + + + + + + +

-----------

Page 13: Neural Signaling: The Membrane Potential Lesson 9.

more negative particles in than out Bioelectric Potential

like a battery Potential for ion movement

• current ~

Membrane is polarized

Page 14: Neural Signaling: The Membrane Potential Lesson 9.

INSIDE

POS

NEG

Bioelectric Potential

OUTSIDE

Page 15: Neural Signaling: The Membrane Potential Lesson 9.

Forces That Move Ions

Concentration (C) particles in fluid move from area of

high to area of low concentration diffusion, random movement

Electrostatic (E) ions = charged particles like charges repel opposite charges attract ~

Page 16: Neural Signaling: The Membrane Potential Lesson 9.

Equilibrium Potential

Also called reversal potential Distribution of single ion across

membrane e.g., EK+, ENa+, ECl-

Potential for movement of ion if channel opens units millivolts (mV) Potential outside = 0, by convention ~

Page 17: Neural Signaling: The Membrane Potential Lesson 9.

Equilibrium Potential

R = gas constant F = Faraday constant T = temperature (K) Z = valence (charge) of ion ~

i

o

K K

K

ZF

RTE

][

][log

Page 18: Neural Signaling: The Membrane Potential Lesson 9.

Equilibrium Potential

i

o

K K

K

Z

mVE

][

][log

58

K+: z = +1

Cl-: z = -1

Mg++: z = +2

Page 19: Neural Signaling: The Membrane Potential Lesson 9.

Equilibrium Potential

Constants never change Assume 25 oC (298 oK) Use log10 ~

mVmVEK

75400

20log58

Page 20: Neural Signaling: The Membrane Potential Lesson 9.

Equilibrium Potential

mVmVENa

5550

440log58

10

i

o

Na Na

Na

ZF

RTE

][

][log

Page 21: Neural Signaling: The Membrane Potential Lesson 9.

Membrane Potential

Net bioelectric potential for all ions units = millivolts (mV)

Balance of both gradients concentration & electrostatic

Vm = -65 mV given by Goldman equation ~

Page 22: Neural Signaling: The Membrane Potential Lesson 9.

icliNaiK

ocloNaoK

m ClPNaPKP

ClPNaPKP

F

RTV

][][][

][][][log

Membrane Potential: Goldman Equation

P = permeability at rest: PK: PNa: PCl = 1.0 : 0.04 : 0.45

Net potential movement for all ions known Vm:Can predict direction of movement of any ion ~

Page 23: Neural Signaling: The Membrane Potential Lesson 9.

C

Organic anions - Membrane impermeableOpposing electrical force not required

A-

Vm = -65 mV

Page 24: Neural Signaling: The Membrane Potential Lesson 9.

Chloride ion

C

E

Cl-

Vm = -65 mV

Concentration gradient equal to electrostatic gradient.

Leaks out neuron ECl- = - 65 mV ~

Page 25: Neural Signaling: The Membrane Potential Lesson 9.

K+ C

EVm = -65 mV

Potassium ion

Concentration gradient greater than electrostatic gradient.

Leaks out neuron EK = - 75 mV ~

Page 26: Neural Signaling: The Membrane Potential Lesson 9.

Sodium ion

Na+

C EVm = -65 mV

Concentration gradient and electrostatic gradient into neuron.

ENa+ = +55 mV ~

Page 27: Neural Signaling: The Membrane Potential Lesson 9.

Metabolic Pumps

Active Transport mechanisms Require energy

Move materials against gradient Na+ - K+ Calcium - Ca++ Nutrients, etc.~

Page 28: Neural Signaling: The Membrane Potential Lesson 9.

Na+ - K+ Pump

Moves ions against gradients Pumps 3 Na+ out of cell 2 K+ into cell

Maintains gradients at rest no active role in signalling Energy = ATP ~

Page 29: Neural Signaling: The Membrane Potential Lesson 9.

Inside Outside

Na+

Na+

Na+

K+

K+K+K+

Na+

Na+

Na+

ATP

Page 30: Neural Signaling: The Membrane Potential Lesson 9.

Inside Outside

Na+ Na

+Na+

K+

K+

K+

K+