Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE...

46
Membrane channels and pumps Stryer ch 13

Transcript of Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE...

Page 1: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Membrane channels and pumps

Stryer ch 13

Page 2: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Concentration & potential differences across cell membranes

Page 3: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

MEMBRANE TRANSPORT SYSTEMS

Regulate the cellular volume

Control the transfer of metabolites across membranes

Maintain ionic and molecular gradients across membranes

DIFFERENT TYPES OF TRANSPORT SYSTEMS

Passive diffusion e.g, hydrophobic molecules

Facilitated diffusion by channels e.g. transfer of

metabolites and ions

Active transport

Page 4: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

µ’’

!’’, c’’

!’, c’

µ’

The thermodynamics of transport across membranes

µ’ = µ0 + RT ln c’ + zF!’

µ’’ = µ0 + RT ln c’’ + zF!’’

"G = µ’’ - µ’ = RT ln c’’/c’ + zF (!’’ - !’)

"G > 0 active transport

"G < 0 passive transport

Page 5: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

[Na+] [K+]

Outside cell 140 mM 5 mM

Inside cell 10 mM 100 mM

"G = RT ln c’’/c’ + zF "!

Transport of 3 mol Na+ from inside to outside of a cell at a

transmembrane potential of 70 mV

"G = 3 RT ln [Na+]out / [Na+]in + 3 F (!out - !in)

= (20.5 + 20.5) kJ = 41 kJ

Transport of 2 mol K+ from outside to inside of a cell

"G = 2 RT ln [K+]in / [K+]out + 2 F (!in - !out)

= (15.5 - 13.5) kJ = 2 kJ

At physiological conditions ATP ADP + P "G = -60 kJ

Page 6: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Conditions required for a protein to work as a

transmembrane pump

• Protein must contain binding sites to fix substances

which should be transported

• Protein must exist in two conformations

• Binding sites must have different affinities in the two

conformations

Page 7: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Free energy changes for transport processes

"G = RT ln c’’/c’ + zF "!

Page 8: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Structure of the Ca2+ ATPase

Page 9: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

The transport mechanism of the Ca2+ ATPase

Page 10: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

The transport mechanism of the Ca2+ ATPase

Page 11: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

The transport mechanism

of the Na+- K+ ATPase

[Na+] [K+]

Outside cell 140 mM 5 mM

Inside cell 10 mM 100 mM

Page 12: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Some co-transport systems

Molecule Ion gradient Organism

transported or tissue

Glucose Na+ Intestine, kidney

Amino acids Na+ Mouse tumor cells

Lactose H+ E. coli

Page 13: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 14: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Scheme of active transport by Lactose Permease

Page 15: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Scheme of active transport by Lactose Permease

Page 16: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

X-ray structure of Lactose Permease

Page 17: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Structural changes of Lactose Permease during active transport

Page 18: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 19: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Ion Channels

Page 20: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Morphology of two types of mammalian neurons

Page 21: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 22: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Transport rate of ions across membranes

Pumps ca 1000 ions/second

Channels 106 - 107 ions/second

Page 23: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Some properties of ion channels

1. Ion channels can be highly selective

2. They exist in an open and a closed state

3. The transition between open / closed stae is regulated

4. Open states often spontaneously convert to inactivated form

Page 24: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Schematic representation of a synapse

Voltage-gated ion channels

Ligand-gated ion channels

Page 25: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Synaptic vesicles: 104 Ach

300 vesicles release Ach

[Ach] 10 nM > 500 µM in ms

Ach binds to postsynaptic

membrane

Page 26: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 27: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Membrane depolarization

Page 28: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Patch clamp technologyE Neher & B Sakmann 1976

Page 29: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Patch clamp recording of acetylcholine receptor channel

Page 30: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

+

Electrical eel: source of AchR

Torpedo Marmorata

Page 31: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 32: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Action potentials are mediated by transient changes of Na+

and K+ permeabilities

Page 33: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Opening of

AchR channel

Page 34: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Opening of K+ channels &

restoration of resting potential

Page 35: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 36: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Topology of Na+ channel

Page 37: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Sequence relationships of ion channels

Page 38: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Structure of potassium channel

Page 39: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Details of structure of

potassium channel

Page 40: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Considerations on the

energy of ion selectivity

Page 41: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 42: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 43: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites

Summary

Specific channels rapidly transport ions across membranes

Ions flow down their concentration gradient

Responsible for nerve impulses

- Specificity for certain ions

- Existence of open & closed states

- Regulated by ligands or trans-membrane potential

Page 44: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 45: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites
Page 46: Stryer ch 13 · Stryer ch 13. Concentration & potential differences across cell membranes. MEMBRANE TRANSPORT SYSTEMS Regulate the cellular volume Control the transfer of metabolites