Chapter 11 The Cardiovascular System, Physiology.
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Transcript of Chapter 11 The Cardiovascular System, Physiology.
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Chapter 11The Cardiovascular System, Physiology
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The Cardiovascular SystemThe Cardiovascular System
A closed system of the heart and blood vessels The heart pumps blood Blood vessels allow blood to circulate to all
parts of the body The function of the cardiovascular
system is to deliver oxygen and nutrients and to remove carbon dioxide and other waste products
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The Heart: Conduction SystemThe Heart: Conduction System Intrinsic conduction system
(nodal system) Heart muscle cells
contract, without nerve impulses, in a
regular, continuous way
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Heart ContractionsHeart Contractions
Contraction is initiated by the sinoatrial node
Sequential stimulation occurs at other autorhythmic cells
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Figure 11.5
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Filling of Heart Chambers – Filling of Heart Chambers – the Cardiac Cyclethe Cardiac Cycle
Figure 11.6
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The Heart: Cardiac CycleThe Heart: Cardiac Cycle
Atria contract simultaneously Atria relax, then ventricles contract Systole = contraction Diastole = relaxation
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The Heart: Cardiac CycleThe Heart: Cardiac Cycle
Cardiac cycle – events of one complete heart beat Mid-to-late diastole – blood flows into
ventricles Ventricular systole – blood pressure builds
before ventricle contracts, pushing out blood
Early diastole – atria finish re-filling, ventricular pressure is low
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Electrocardiograms (ECG’s)Electrocardiograms (ECG’s) ECG Video 1
ECG Video 2
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The Heart: ValvesThe Heart: Valves
Valves open as blood is pumped through Held in place by
chordae tendineae (“heart strings”)
Close to prevent backflow
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The Heart: Cardiac OutputThe Heart: Cardiac Output Cardiac output (CO)
Amount of blood pumped by each side of the heart in one minute
CO = (heart rate [HR]) x (stroke volume [SV])
Average adult:
CO = 75 (beats/min) x 70 (mL/beat)
= 5250 mL/min
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The Heart: Regulation of Heart RateThe Heart: Regulation of Heart Rate Stroke volume
Volume of blood pumped by each ventricle in one contraction
Stroke volume usually remains relatively constant
Starling’s law of the heart – the more that the cardiac muscle is stretched, the stronger the contraction
Changing heart rate is the most common way to change cardiac output
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The Heart: Regulation of Heart RateThe Heart: Regulation of Heart Rate Increased heart rate
Sympathetic nervous system Crisis Low blood pressure
Hormones Epinephrine Thyroxine
Exercise Decreased blood volume
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The Heart: Regulation of Heart RateThe Heart: Regulation of Heart Rate
Decreased heart rate Parasympathetic nervous system High blood pressure or blood volume Decreased venous return
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Cardiac Output RegulationCardiac Output Regulation
Figure 11.7
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The Vascular SystemThe Vascular System
Figure 11.8b
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Movement of Blood Through Movement of Blood Through VesselsVessels
Most arterial blood is pumped by the heart
Veins use the milking action of muscles to help move blood
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Capillary ExchangeCapillary Exchange
Substances exchanged due to concentration gradients Oxygen and nutrients leave the blood Carbon dioxide and other wastes leave the
cells
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Capillary Exchange: MechanismsCapillary Exchange: Mechanisms Direct diffusion across plasma
membranes Endocytosis or exocytosis Some capillaries have gaps (intercellular
clefts) Plasma membrane not joined by tight
junctions Fenestrations of some capillaries
Fenestrations = pores
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Diffusion at Capillary BedsDiffusion at Capillary Beds
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PulsePulse
Pulse – pressure wave of blood
Monitored at “pressure points” where pulse is easily palpated
Figure 11.16
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Blood PressureBlood Pressure
Measurements by health professionals are made on the pressure in large arteries Systolic – pressure at the peak of
ventricular contraction Diastolic – pressure when ventricles relax
Pressure in blood vessels decreases as the distance away from the heart increases
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Measuring Arterial Blood PressureMeasuring Arterial Blood Pressure
Figure 11.18
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Comparison of Blood Pressures in Comparison of Blood Pressures in Different VesselsDifferent Vessels
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Variations in Blood PressureVariations in Blood Pressure Human normal range is variable
Normal 140–110 mm Hg systolic 85–65 mm Hg diastolic
Hypotension Low systolic (below 110 mm HG) Often associated with illness
Hypertension High systolic (above 140 mm HG) Can be dangerous if it is chronic
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Blood Pressure: Effects of FactorsBlood Pressure: Effects of Factors
Neural factors Autonomic nervous system adjustments
(sympathetic division) Renal factors
Regulation by altering blood volume Renin – hormonal control
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Blood Pressure: Effects of FactorsBlood Pressure: Effects of Factors
Temperature Heat has a vasodilation effect Cold has a vasoconstricting effect
Chemicals Various substances can cause increases or
decreases
Diet
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Factors Determining Blood PressureFactors Determining Blood Pressure
Figure 11.19