Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

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Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9

Transcript of Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Page 1: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion Channels and theAction Potential

jdk3

Principles of Neural Science, chaps 8&9

Page 2: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

• The Action Potential– Generation– Conduction

• Voltage-Gated Ion Channels– Diversity – Evolutionary Relationships

Voltage-Gated Ion Channels and theAction Potential

Page 3: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Electrical Signaling in the Nervous System isCaused by the

Opening or Closing of Ion Channels

PNS, Fig 2-11

Page 4: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Electrical Signaling in the Nervous System isCaused by the

Opening or Closing of Ion Channels

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The Resultant Flow of Charge into the CellDrives the Membrane Potential Away From its Resting Value

Page 5: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Electronically Generated Clamp Current Counterbalances the Na+ Membrane Current

Command

g = I/V

PNS, Fig 9-2

Page 6: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Equivalent Circuit of the MembraneConnected to the Voltage Clamp

Im

VC

Imon

Page 7: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

For Large Depolarizations, Both INa and IK Are Activated

PNS, Fig 9-3

Page 8: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Tetrodotoxin

Page 9: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

IK is Isolated By Blocking INa

PNS, Fig 9-3

Page 10: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

INa is Isolated By Blocking IK

PNS, Fig 9-3

Page 11: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Vm = the Value of the Na Battery Plus theVoltage Drop Across gNa

Im

VC

PNS, Fig 9-5

Page 12: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Calculation of gNa

Vm = ENa + INa/gNa

PNS, Fig 9-3

Page 13: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Calculation of gNa

Vm = ENa + INa/gNa

INa = gNa (Vm - ENa)

PNS, Fig 9-3

Page 14: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Calculation of gNa

Vm = ENa + INa/gNa

INa = gNa (Vm - ENa)

gNa = INa/(Vm - ENa)

PNS, Fig 9-3

Page 15: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

gNa and gK Have

Two Similarities and Two Differences

PNS, Fig 9-6

Page 16: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Na+ Channels Have Three States

PNS, Fig 9-9

Page 17: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Total INa is a Population Phenomenon

PNS, Fig 9-3

Page 18: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

The Action Potential is Generated bySequential Activation of gNa and gK

PNS, Fig 9-10

Page 19: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

A Positive Feedback Cycle Underlies the Rising Phase of Action Potential

Depolarization

Open Na+

Channels

Inward INaFast

Page 20: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Slower Negative Feedback Cycle Underlies

Falling Phase of the Action Potential

Depolarization

Open Na+

Channels

Inward INa

Na+ Inactivation

Increased gK+

Fast

Slow

Page 21: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Local Circuit Flow of Current Contributes toAction Potential Propagation

PNS, Fig 8-6

Page 22: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Conduction Velocity Can be Increased by Increased Axon Diameter and by Myelination

Increased Axon Diameter ra I dV/dt

Page 23: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Conduction Velocity Can be Increased by Increased Axon Diameter and by Myelination

Increased Axon Diameter ra I dV/dt

Cm dV/dtMyelination

∆V = ∆Q/C+++ +++

- - - - - -

+ +

- -

Page 24: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Myelin Speeds UpAction Potential Conduction

PNS, Fig 8-8

Page 25: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

• The Action Potential– Generation– Conduction

• Voltage-Gated Ion Channels– Diversity – Evolutionary Relationships

Voltage-Gated Ion Channels and theAction Potential

Page 26: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Opening of Na+ and K + Channels is Sufficient to Generate the Action Potential

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Rising Phase Falling Phase

Na + Channels Open Na + Channels Close;K+ Channels Open

Na +

K+

Na +

Page 27: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

However, a Typical Neuron Has Several Types of

Voltage-Gated Ion Channels

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Page 28: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Functional Properties of Voltage-GatedIon Channels Vary Widely

• Selective permeability

• Kinetics of activation

• Voltage range of activation

• Physiological modulators

Page 29: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion Channels Differ in theirSelective Permeability Properties

Cation PermeableNa+

K+

Ca++

Na+, Ca++, K+

Anion PermeableCl -

Page 30: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Functional properties of Voltage-GatedIon Channels Vary Widely

• Selective permeability

• Kinetics of activation

• Voltage range of activation

• Physiological modulators

Page 31: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

V

I

Time

Voltage-Gated K+ Channels Differ Widely in Their Kinetics of Activation and Inactivation

Page 32: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Functional properties of Voltage-GatedIon Channels Vary Widely

• Selective permeability

• Kinetics of activation

• Voltage range of activation

• Physiological modulators

Page 33: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ca++ Channels Differ in Their Voltage Ranges of Activation

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Page 34: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

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The Inward Rectifier K+ Channels and HCN Channels Are Activated by Hyperpolarization

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Page 35: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Functional properties of Voltage-GatedIon Channels Vary Widely

• Selective permeability

• Kinetics of activation

• Voltage range of activation

• Physiological modulators: e.g., phosphorylation, binding of intracellular Ca++ or cyclic nucleotides, etc.

Page 36: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Physiological Modulation

Page 37: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

HCN Channels That Are Opened by Hyperpolarization Are Also Modulated by cAMP

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Page 38: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion Channels Belong toTwo Major Gene Superfamilies

I. Cation Permeant

II. Anion Permeant

Page 39: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion Channel Gene Superfamilies

I) Channels With Quatrameric Structure Related to Voltage-Gated, Cation-Permeant Channels:

A) Voltage-gated:•K+ permeant•Na+ permeant•Ca++ permeant•Cation non-specific permeant

Page 40: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion Channel Gene Superfamily

I) Channels With Quatrameric Structure Related to Voltage-Gated, Cation-Permeant Channels:

A) Voltage-gated:•K+ permeant•Na+ permeant•Ca++ permeant•Cation non-specific permeant (HCN)

Structurally related to-

B) Cyclic Nucleotide-Gated (Cation non-specific permeant)

C) K+-permeant leakage channels

D) TRP Family (cation non-specific); Gated by various stimuli, such as osmolarity, pH, mechanical force (Stretch or sound), ligand-binding and temperature

Page 41: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

The -Subunits of Voltage-Gated ChannelsHave Been Cloned

PNS, Fig 6-9

Page 42: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Cation-Permeant Channels Have

a Basic Common Structural Motif

That is Repeated Four-fold

PNS, Fig 9-14

Page 43: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Four-Fold Symmetry of Voltage-Gated Channels Arises in Two Ways

I IV

III

I IVII III

x4

K+ Channels, HCN Channels Na+ or Ca++ Channels

II

Page 44: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

P-Loops Form the Selectivity Filter of Voltage-Gated Cation-Permeant Channels

PNS, Fig 9-15

Page 45: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Ion Channels Evolve in a Modular Fashion

Page 46: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Modular Construction of K+ Channels

Page 47: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Ion ChannelGene Superfamilies

II) “CLC” Family of Cl--Permeant Channels (dimeric structure):

Gated by:•Voltage - particularly important in skeletal muscle•Cell Swelling •pH

Page 48: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.

Voltage-Gated Cl- Channels Are DimersThey Differ in Sequence and Structure from

Cation-Permeant Channels

x2

Page 49: Voltage-Gated Ion Channels and the Action Potential jdk3 Principles of Neural Science, chaps 8&9.