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        <title>Understanding the &amp;#039;cardiac cycle&amp;#039;</title>
        <description> [en.wikipedia.org]:
&amp;quot;The cardiac cycle is a term referring to all or any of the events related to the flow or blood pressure that occurs from the beginning of one heartbeat to the beginning of the next.[1] The frequency of the cardiac cycle is described by the heart rate. Each beat of the heart involves five major stages [phases]&amp;quot; 

[en.wikipedia.org]:
&amp;quot;The standard model used to understand the cardiac action potential is the action potential of the ventricular myocyte. The action potential has 5 phases (numbered 0-4). Phase 4 is the resting membrane potential, and describes the membrane potential when the cell is not being stimulated.&amp;quot;

Definitions:

-- potential = electric potential = voltage [en.wikipedia.org]

-- membrane potential = voltage measured across the cell membrane = ~95 mV (~1/10th volt, negative inside). Picture a flashlight battery projecting through the cell membrane, negative flat end to the inside [en.wikipedia.org]

-- resting membrane potential = phase 4 of the cardiac cycle. At this phase the cell-battery is fully charged, ready to be stimulated for ‘action’. 

-- action potential = &amp;quot;a short-lasting event in which the electrical membrane potential of a cell rapidly rises and falls, following a stereotyped trajectory.&amp;quot; i.e. phases 4 to 0 to 1 to 2 to 3 and back to 4, about 1/5th second, if the heart rate is 60 beats per minute. At 1 second per beat (cardiac cycle), the ‘action potential’ is ~1/5th of the full cardiac cycle. [en.wikipedia.org]

-- refractory period = RP [en.wikipedia.org]
-- effective refractory period = ERP
-- absolute refractory period = ARP
-- atrial effective refractory period = AERP

-- polarized = cell-battery is charged

-- depolarized = cell-battery is discharged

Using the diagram ‘Phases of the cardiac action potential’ at [en.wikipedia.org]:

-- phase 4 = cardiac muscle cell-battery is fully charged, ready for stimulation to &amp;#039;act&amp;#039;.
-- phase 0 = rapid depolarization = QRS complex on the ECG.
-- phase 1 = termination of depolarization
-- phase 2 = depolarized (zero volts) = roughly the same as ‘refractory period’ = roughly the S-T segment on the ECG.
-- phase 3 = gradual repolarization and return to fully polarized phase 4

This is intended as clarification for understanding the trans-membrane movement of electrolytes throughout the cardiac cycle as shown in the diagram. It is a basis for understanding the significance of a high K/Na ratio in the heart muscle cells.  

Excellent for further information: &amp;#039;Structure &amp;amp; Function. Electrical Properties of The Heart&amp;#039; [www.sant.anzca.edu.au]

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            <guid>https://www.afibbers.org/forum/read.php?10,125479,125479#msg-125479</guid>
            <title>Understanding the &#039;cardiac cycle&#039;</title>
            <link>https://www.afibbers.org/forum/read.php?10,125479,125479#msg-125479</link>
            <description><![CDATA[ [<a href="http://en.wikipedia.org/wiki/Cardiac_cycle"  rel="nofollow">en.wikipedia.org</a>]:<br />
&quot;The cardiac cycle is a term referring to all or any of the events related to the flow or blood pressure that occurs from the beginning of one heartbeat to the beginning of the next.[1] The frequency of the cardiac cycle is described by the heart rate. <u>Each beat of the heart involves five major stages [phases]</u>&quot; <br />
<br />
[<a href="http://en.wikipedia.org/wiki/Cardiac_action_potential"  rel="nofollow">en.wikipedia.org</a>]:<br />
&quot;The standard model used to understand the cardiac action potential is the action potential of the ventricular myocyte. <u>The action potential has 5 phases (numbered 0-4).</u> Phase 4 is the resting membrane potential, and describes the membrane potential when the cell is not being stimulated.&quot;<br />
<br />
Definitions:<br />
<br />
-- potential = electric potential = voltage [<a href="http://en.wikipedia.org/wiki/Electric_potential"  rel="nofollow">en.wikipedia.org</a>]<br />
<br />
-- membrane potential = voltage measured across the cell membrane = ~95 mV (~1/10th volt, negative inside). Picture a flashlight battery projecting through the cell membrane, negative flat end to the inside [<a href="http://en.wikipedia.org/wiki/Membrane_potential"  rel="nofollow">en.wikipedia.org</a>]<br />
<br />
-- resting membrane potential = phase 4 of the cardiac cycle. At this phase the cell-battery is fully charged, ready to be stimulated for ‘action’. <br />
<br />
-- action potential = &quot;a short-lasting event in which the electrical membrane potential of a cell rapidly rises and falls, following a stereotyped trajectory.&quot; i.e. phases 4 to 0 to 1 to 2 to 3 and back to 4, about 1/5th second, if the heart rate is 60 beats per minute. At 1 second per beat (cardiac cycle), the ‘action potential’ is ~1/5th of the full cardiac cycle. [<a href="http://en.wikipedia.org/wiki/Action_potential"  rel="nofollow">en.wikipedia.org</a>]<br />
<br />
-- refractory period = RP [<a href="http://en.wikipedia.org/wiki/Refractory_period_%28physiology%29"  rel="nofollow">en.wikipedia.org</a>]<br />
-- effective refractory period = ERP<br />
-- absolute refractory period = ARP<br />
-- atrial effective refractory period = AERP<br />
<br />
-- polarized = cell-battery is charged<br />
<br />
-- depolarized = cell-battery is discharged<br />
<br />
Using the diagram ‘Phases of the cardiac action potential’ at [<a href="http://en.wikipedia.org/wiki/Cardiac_action_potential"  rel="nofollow">en.wikipedia.org</a>]:<br />
<br />
-- phase 4 = cardiac muscle cell-battery is fully charged, ready for stimulation to &#039;act&#039;.<br />
-- phase 0 = rapid depolarization = QRS complex on the ECG.<br />
-- phase 1 = termination of depolarization<br />
-- phase 2 = depolarized (zero volts) = roughly the same as ‘refractory period’ = roughly the S-T segment on the ECG.<br />
-- phase 3 = gradual repolarization and return to fully polarized phase 4<br />
<br />
This is intended as clarification for understanding the trans-membrane movement of electrolytes throughout the cardiac cycle as shown in the diagram. It is a basis for understanding the significance of a high K/Na ratio in the heart muscle cells.  <br />
<br />
Excellent for further information: &#039;Structure &amp; Function. Electrical Properties of The Heart&#039; [<a href="http://www.sant.anzca.edu.au/training/forms/Cardiovascular%20Structure%20-%20function%20-CI-%20Electrical%20Properties%20of%20the%20heart%20-CII-%2026.5.10%20Dr%20S%20Prakash.pdf"  rel="nofollow">www.sant.anzca.edu.au</a>]<br />
<br />
]]></description>
            <dc:creator>Erling</dc:creator>
            <category>GENERAL HEALTH FORUM</category>
            <pubDate>Sat, 08 Jan 2011 18:01:14 +0000</pubDate>
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