the na + -k + atpase pump cardiac glycosides: plant and animal steroids ouabain! digitalis!:...

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Page 1: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 2: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 3: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Na+-K+ ATPase Pump

Page 4: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Cardiac glycosides:

plant and animal steroids Ouabain!

Digitalis!: increased Na+ conc inside heart leads to stimulation of Na+-Ca2+ exchanger, which extrudes sodium in exchange for inward movement of calcium. Increased intracellular Calcium stimulates muscle contraction.

Page 5: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Na+-K+ ATPase Pump: Mechanism

Page 6: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Response of a human RBC to changes in osmolarityof the extracellular fluid

Page 7: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Na+-K+ ATPase Pump is required to maintain Osmotic Balance and Stabilize Cell Volume

Sources of Intracellular Osmolarity:

large number of counterions (inorganic ions of opposite charge) that are attracted to large macromolecules (most are charged).

small metabolites (high concentration of small organic molecules, sugars, amino acids, nucleotides) and their counterions

Sources of Extracellular Osmolarity:

Due mainly to small inorganic ions - these leak slowly across the plasma membrane into the cell.

The problem:

Because of above factors, water moves into the cell by osmosis

The Solution: Na+-K+ ATPase Pump

Page 8: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

In vitro Investigation of The Na+-K+ ATPase Pump

Page 9: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Control of acid secretion in the stomach

Page 10: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Potassium channel

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Page 12: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Potassium Channel

Page 13: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Hinge-bending Model for the opening of the Bacterial KcsA Channel.

Page 14: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 15: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 16: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Structure of One subunit of a eukaryotic, Voltage Gated K+ Channel

(Drosophila Shaker K+ Channel)

Page 17: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

3-D Structure of a Voltage Gated Mammalian K+ Channel

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Page 19: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Conformational States of a Voltage Gated K+ Ion Channel

Page 20: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

A typical ion channel fluctuates between open and closed states

Page 21: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The gating of ion channels

Page 22: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The technique of patch clamp recordingMeasuring Ion Channel Conductance

Page 23: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Patch Clamp Recording

Page 24: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Patch Clamp Recording

Page 25: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 26: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The ionic basis of membrane potential

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Page 29: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 30: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 31: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 32: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of
Page 33: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The membrane potential in animal cells depends mainly on K+ Leak channels and

the K+ gradient across the plasma membrane

Page 34: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Gconc= -RT ln [Co] [Ci]

Page 35: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Gvolt=zFV

Page 36: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

Gconc + Gvolt = 0

Ion distribution is at equilibrium across the membrane

Page 37: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Nernst Equation and Ion Flow

V= RT ln Co zF Ci

Page 38: The Na + -K + ATPase Pump Cardiac glycosides: plant and animal steroids Ouabain! Digitalis!: increased Na+ conc inside heart leads to stimulation of

The Resting Potential decays only slowly when the Na+ K+ Pump is stopped