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72 Chapter 4 Haemostasis and thromboembolic disorders
7) How are the two processes of coagulation and platelet plug formation integrated?
8a) List three chemical mediators involved in platelet recruitment during thrombus formation.
8b) Which receptor on platelets plays the most prominent and final role in platelet aggregation?
9a) What are the main differences in formation and content between arterial and venous thrombi?
9b) What are the consequences of these differences for choosing first-line drugs to treat
thromboembolic disorders?
Sunita and Dr Brown also mention thrombin and antithrombin.
10) Identify and list four roles that are played by thrombin (factor IIa) in the coagulation which has led to Monique’s DVT formation.
The pharmacist on call is asked to supply some more heparin for the infusion. She introduces herself as Jo.
Jo talks to Monique about heparin. She tells Monique that her body itself produces some heparin to prevent uncontrolled clotting.
11a) List three chemicals in Monique’s blood that are involved in preventing uncontrolled coagulation.
11b) Describe how they interact.
When Monique asks how heparin works, the nurse tries to explain.
12) Which substances in Monique’s blood does unfractionated heparin interact with in order to be effective? How does this reduce coagulation? (Figure 4.4)
Monique is moved to ward 17. This is awkward, involving the movement of the drip stand down the long corridor.
Monique asks Sunita why heparin was not given to her in tablet form, or as a quick injection.
13a) Why has Monique been given unfractionated heparin as a continuous infusion and not as an intravenous, or subcutaneous injection (Section 4.2.1)?
Note:
Intravenous infusion = a solution of a drug administered directly into a vein continuously over more than 8–10min.
Intravenous injection = a solution of a drug administered into a vein by injection over a short period.
Subcutaneous injection = a solution of a drug administered under the skin.
Hint: What is the half-life of unfractionated heparin? How long after subcutaneous injection is the effect of unfractionated heparin evident?
WORKBOOK 1 Thromboembolic disorders 73
13b) Could Monique have been given heparin orally? Explain your answer.
Moniqueisalsofedupbecauseevery6hoursthenursecomesroundandtakesbloodtocheck
what they refer to as her aPTT.
14) What does aPTT stand for and what does it measure?
After Monique becomes stable and does not require oxygen, Jo suggests that the unfractionated heparin is changed to low molecular weight heparin (LMWH).
The doctor agrees to do this, and LMWH is started as a subcutaneous injection to be given once a day only.
15) What is the difference in action of unfractionated heparin and LMWH?
16) Why is the pharmacokinetic profile of unfractionated heparin less predictable than that of LMWH?
17) List two advantages of LMWH over unfractionated heparin.
Monique could actually name one!
18) List one advantage of unfractionated heparin over LMWH.
Hint: What drug is used to reverse bleeding with heparin?
19) Why was unfractionated heparin given first, rather than administering LMWH from the outset?
Much later the consultant on call stops to see Monique during his rounds. He checks her INR to decide how to proceed with the warfarin dosing. The student nurse asks whether the heparin can be stopped as the aPTT is in range.
The consultant explains that warfarin and heparin should be given simultaneously for at least 5 days, and that Monique’s target INR must be maintained for at least 24 hours.
The next day Monique is surprised when Andreas, her boss, comes to visit her in hospital. She has secretly liked him since he started at the pharmaceutical company where she works.
They chat about work and then Monique’s illness.
Andreas says his dad has been taking warfarin since he was diagnosed with pulmonary embolism after a second DVT two years ago. He and Sunita, who is also visiting, start to discuss warfarin and clotting factors.
They explain to Monique that warfarin affects several of the factors involved in blood clotting.
20) Explain how these clotting factors are involved in the mechanism of action of warfarin. Refer in particular to the role of vitamin K.
Jo, the pharmacist, drops by and explains why the consultant had insisted that Monique should still be given LMWH injections during the first few days of taking warfarin tablets.
74 Chapter 4 Haemostasis and thromboembolic disorders
21) What does Jo say is the reason for giving LMWH and warfarin simultaneously?
How long does it take before the effect of warfarin is experienced? What is warfarin’s effect on protein C?
22) What is the name of the test used to monitor warfarin? Explain what this test measures.
Refer back to the biochemistry section of clinical clerking.
Onday5postadmission,Monique’sINRis2.5andhasbeenbetween2and3for2days.The
LMWH is discontinued, and it is decided to discharge her in 2 days if her INR is maintained at this level.
But Monique develops a chest infection, and because she is allergic to penicillin antibiotics, she is started on the non-penicillin antibiotic erythromycin.
Her INR result 2 days later is 5.5, and she has had several nosebleeds.
Vitamin K is given orally.
23) What could have caused Monique’s nosebleeds?
Warfarin is metabolized by hepatic microsomal enzymes (P450/CYP enzymes) that are affected by many drugs. The interaction of drugs with these enzymes can either increase or decrease the rate of metabolism of warfarin, to alter its anticoagulant effect.
24) How will the vitamin K that Monique is given influence her INR? Explain the mechanism.
Vitamin K, found in some green vegetables, counteracts the effect of warfarin.
25) List four other drugs that could increase the activity of warfarin. (See for example, warfarin in Appendix 1 of the British National Formulary.)
Andreas had been told that warfarin was better than aspirin for his dad. He wonders, though, if aspirin could be an option to treat Monique’s DVT, and asks Jo the pharmacist when she comes round.
26) Which of the two drugs do you think Jo would recommend for Monique’s DVT?
Andreas tells Monique that his father has to avoid certain foods and drinks. He asks if anyone has talked to her about this.
27) Referring back to Monique’s social history, what do you think Jo will tell her when she counsels her about warfarin and her lifestyle?
Monique’sINRnormalizesafter5days,anditisdecidedthatshecanbedischarged.
Sheistoldthatsheshouldcontinuetotakewarfarinfor6months.Shewillhavetoattenda
clinic regularly for blood tests, after which her dose of warfarin could be modified.
She is given a warfarin booklet with more information about the drug. Jo explains the content and recommends that she carries the booklet around with her, and that she always tells any healthcare professional attending to her that she takes warfarin.
WORKBOOK 1 Thromboembolic disorders 75
28) List six other things which patients on warfarin must be educated about.
Andreas insists on taking Monique home. She is concerned that the clot in her leg is still there, as she wasn’t given drugs to get rid of it, only ones to stop more clotting.
29) What has happened to the thrombus in Monique’s vein?
30) How do thrombolytic drugs act?
31) Why was Monique not given a thrombolytic drug?
Before they leave, Monique wants to say goodbye to Mrs Goodfellow, a retired GP who had been in the bed next to Monique for 2 days. She was moved to intensive care after a nasty reaction to heparin. The nurses told Monique that the name of the reaction is type II HIT.
32a) What does HIT mean? How does it manifest itself?
32b) What is the difference between type I HIT and type II HIT in terms of mechanism and severity?
Monique is pleased to see an improvement in Mrs Goodfellow, who is waiting to be taken back to the ward. Because she knows how interested Monique is in the medication, she tells her that the heparin was replaced with argatroban.
33) What is argatroban and how does it differ from heparin and warfarin?
34) Why was Mrs Goodfellow not given a low molecular weight heparin instead of argatroban?
Mrs Goodfellow tells Monique that the doctors had considered dabigatran as an alternative to argatroban.
Dabigatran can be taken by mouth and is an example of a novel oral anticoagulant (NOAC).
35) List two other NOACs and explain how they differ from dabigatran.
Monique promises Mrs Goodfellow she will come back and visit her in a couple of days. She leaves the hospital with Andreas. She completes her six-month course of warfarin with no further problems.
Chapter 5
Hypertension
Useful terms for this topic
Afterload: Pressure inside the aorta, against which
the left ventricle has to pump.
Cardiac output: Volume of blood being pumped by
the heart per minute.
Chronotropy: Affecting heart rate—chronotropic
effects can be either positive or negative.
Diastole: Phase in the cardiac cycle when ventricles
relax and rell.
End diastolic volume: Volume of blood in ventricle
just before systole.
Essential hypertension: High blood pressure of no
known cause.
Heart rate: Number of heart beats per minute.
Inotropy: Force of heart muscle contraction—
inotropic effects can be either positive or negative.
Pacemaker/sinoatrial node: Patch of tissue in upper
segment of right atrium, origin of electrical excitation of heart.
Pre-capillary arterioles: Narrowest blood vessels
with smooth muscle in walls; their diameter is the main determinant of total peripheral resistance.
Preload: Degree of stretch of ventricle walls just
before they contract in systole.
Stroke volume: Volume of blood pumped from the left
ventricle per heart beat.
Systole: Phase in the cardiac cycle when the
ventricles contract and blood is ejected from the heart.
Total peripheral resistance: Resistance to ow of
blood offered by the blood vessels.
Ventricular/cardiac myocytes: Heart muscle cells.
Imagine you feel perfectly well, you go to your doctor for a routine check, and are told you must start taking drugs every day for the rest of your life for a condition with no symptoms. Furthermore, you could be told that as time
goes by you may need to increase the number of dierent drugs you take, perhaps to four a day, despite no perceptible increase in your wellbeing. Millions of people worldwide have experienced such a situation, having been diagnosed with high blood pressure or hypertension. If asked by the patient about the criteria used to decide whether they should receive treatment, the doctor may, in the spirit of openness, advance the view that the dividing line between who is, and who is not, to be treated for hypertension is arbitrary.
e consequences of hypertension, if left untreated, are profound, with a greater probability of major cardiovascular and kidney disease, and consequently a shorter lifespan (see Table 5.1). e potentially disastrous cardiovascular events referred to are familiar ones; they include atherosclerotic disease (‘clogged-up’ arteries, Chapter 6), stroke (Chapter 17), ischaemic heart disease in the form of angina and myocardial infarction (heart attack, Chapter 6), arrhythmias, and heart failure (Chapter 7). Treatment that lowers blood pressure
Table 5.1 Hypertension is a risk factor for various
conditions
Primary condition Secondary consequence
Atherosclerosis of coronary arteries
Myocardial infarct Heart failure
Kidney disease
Hypertension
Retinal disease
Diabetes
a
Kidney disease can be caused by hypertension, but can itself be a cause
of hypertension.
a
a
Angina
Myocardial infarct
Stroke (ischaemic or haemorrhagic)
Arrhythmias
Hypertension
Kidney disease
a
a
Chapter 5 Hypertension 77
Table 5.2 Two schemes for designating blood pressure ranges (note their uses in different parts of the world)
A. Version 1. Used in Europe (including UK)
Systolic (mmHg) Diastolic (mmHg)
Optimal
Normal 121–129 80–84
High normal 130–139 85–89
Hypertension Grade 1 140–159 90–99
Hypertension Grade 2 160–179 100–109
Hypertension Grade 3
B. Version 2. Used in USA
Normal
Pre-hypertension 121–139 80–89
Stage I 140–159 90–99
Stage II
<120 <80
>180 >110
Systolic (mmHg) Diastolic (mmHg)
<120 <80
>160 >100
therefore aims to reduce the risk of suering such conditions, and this explains why the patient may not be directly aware of the benets of such therapy. is lack of perceived benet can in turn lead to problems with compliance; patient education is therefore paramount and requires a solid understanding of the biological basis of hypertension and its consequences, and of how it is modied by the profusion of drugs available.
e objective of this chapter is to provide the healthcare professional with this secure foundation. is understanding can then be applied to planning individualized therapeutic strategies, and to advising patients on their drug usage.
Hypertension is an extremely common condition, aecting about 25% of the total population, with a higher prevalence in people of African origin. Other risk factors include family history, ageing, lifestyle (e.g. stress, diet, alcohol), and obesity. In the vast majority of cases, the cause is unknown (so-called essential hypertension). In other rare cases there is an identiable cause (secondary hypertension), such as renal disease or a tumour of the catecholamine-secreting cells of the adrenal medulla (phaeochromocytoma).
1. Minimum arterial pressure (diastolic) during the cardiac cycle corresponds to the phase of ventricular relaxation and relling (diastole).
2. Peak arterial pressure (systolic) corresponds to the phase in the cardiac cycle when the ventricles contract and blood is ejected.
Readings are conventionally presented as systolic/ diastolic.
e clinical denition of hypertension is based on data which relate elevated blood pressures to increased risk of cardiovascular disease (CVD). For example, a 55-year-old non-smoking man with normal blood lipids (see Chapter
1
6) and a systolic blood pressure of 120 mmHg
has a 1 in 10 chance of CVD within 10 years. However, this risk rises to over 1 in 5 if his systolic blood pressure is over 160 mmHg. Table 5.2 sets out two schemes for dening optimal to high blood pressure readings which are used in dierent geographical regions. In both, sustained blood pressures over 140 mmHg systolic and 90 mmHg diastolic are diagnostic of hypertension, and the patient should therefore be considered for drug treatment. In practice, the decision to treat is based not only on these blood pressure schemes, but also on other factors (e.g.
Blood pressure is measured in the aortic side of the vasculature, and while pulmonary hypertension is a recognized condition, here we are concerned only with hypertension of the systemic circulation. Blood pressure readings comprise two values.
1 e universal unit for recording blood pressure is millimetres of mercury (mmHg) in a mercury column. is reects the use of the mercury sphygmomanometer as the rst choice for blood pressure measurements for many decades. Alternative mercury-free devices are now in routine use, but readings are still given as mmHg.
78 Chapter 5 Hypertension
=××
coexisting conditions) and potential benet from lifestyle changes.
It should also be noted that patients with extremely high blood pressures, such as Andreas the ctional patient in Workbook 2, may be classied as having a hypertensive crisis, requiring a more urgent and separate approach to treatment.
Later in this chapter and in Workbook 2 we will consider how decisions and choices in the drug treatment of individual patients are made. Before that, however, we must review how arterial blood pressure is generated and controlled, and then examine the fundamental mechanisms by which antihypertensive drugs act.

5.1 The physiological control of arterial blood pressure

Antihypertensive drugs can only be understood by reference to the mechanisms that regulate and set our blood pressures. ese mechanisms have their basis in the blood vessels and heart, and are inuenced by both the nervous system (the brain acting via the sympathetic and parasympathetic branches of the autonomic nervous system) and the endocrine system (acting via the release of hormones into the blood). Drugs in common use for hypertension act at all these levels of control.
5.1.1 What determines our blood pressure:
heart and blood vessels
Arterial blood pressure is largely determined by only two factors, cardiac output (determined by the heart) and total peripheral resistance (a function of blood vessels).
Contraction of the ventricles in the heart provides most of the driving force for pumping blood around the body. Cardiac output (CO), then, is a measure of how much blood is being pumped by each ventricle per minute, and is the product of two factors: heart rate (HR; the number of beats per minute) and stroke volume (SV; the volume of blood pumped out of each ventricle per heart beat).
Arterial blood pressure is determined by both cardiac output and the resistance to the ow of blood oered by the blood vessels, called the total peripheral resistance (TPR). is resistance is dependent on the degree of contraction of the smooth muscle in the walls of the pre-capillary arterioles. ese are the narrowest blood vessels which contain smooth muscle in their walls, unlike capillaries. eir diameter can be regulated through contraction or relaxation of this muscle to inuence the ow of blood through them (see Section
5.1.4):
CO HR SV (5.1)
BP CO TPR (5.2)
Combining equations (5.1) and (5.2), we see that arterial blood pressure has three components—heart rate, stroke volume, and total peripheral resistance:
BP HR SV TPR
We shall consider the aspects of these three parameters which enable us to devise an individual drug treatment plan for a patient with hypertension.
5.1.2 What determines the heart rate?
In a healthy heart, the electrical excitation of each heart beat has its origin in a patch of tissue at the upper segment of the right atrium called the sinoatrial (SA) node or pacemaker. From here the wave of excitation (or depolarization) spreads through the atria. It is then held up for a moment by the barrier formed between the atria and the ventricles before it gathers at the atrioventricular node at the base of the right atrium, from where it passes down specialized conduction cells to rapidly spread throughout the ventricles (Figure 5.1).
e cells of the SA node re action potentials on their own. at is, they do not require a neuronal input to tell them when to re—they show automaticity. It is the frequency with which they re action potentials that determines your heart rate. As seen in Figure 5.2, SA node cells do not have a steady resting potential, but are slowly depolarized until a threshold is reached for action potential generation. is slow depolarization is called the pacemaker potential. It is apparent from Figure 5.2 that heart rate is determined by the steepness of the pacemaker slope of the SA node action potentials; if the slope is steep it takes less time to reach threshold and action potentials re more frequently, resulting in an increase in heart rate.
e pacemaker potential is the sum of the activity through three sets of ion channels for Na+, K+, and Ca2+; it is some of these proteins, localized in the membrane of
5.1 The physiological control of arterial blood pressure 79
Left and right atria
Sinoatrial node
Atrioventricular plane
Atrioventricular node
Left ventricle
Purkinje bres
Bundle of His
Figure 5.1 The origin and spread of excitation in the
heart.
In a healthy heart, the excitation arises spontaneously as depolarization in the sinoatrial (SA) node. A wave of depolarization spreads through the muscle cells of the atria. The atrioventricular plane is impermeable to depolarization, except at the atrioventricular (AV) node. From here the excitation is transmitted along the bundle of His, which divides into left and right branches, before connecting with Purkinje fibres which conduct the impulses to the heart muscle cells. The specialized conducting cells enable extremely rapid spread of the impulse throughout the ventricles so as to ensure coordinated contraction. (See also Chapter 7, Box 7.1.)
the SA node cells, which are the molecular target of drugs that regulate heart rate. e physiological determinants of heart rate, such as activity in the sympathetic and parasympathetic branches of the autonomic nervous system, also act here. In brief, the release of noradrenaline from the sympathetic nerve terminals (or adrenaline from the adrenal medulla via the bloodstream) increases the steepness of the slope, and therefore increases heart rate (positive chronotropic eect). Conversely, the release of acetylcholine (ACh) from the parasympathetic nervous system decreases the steepness of the slope and so decreases heart rate (negative chronotropic eect).
Receptors for noradrenaline and adrenaline in the SA node cells are mainly of the 1-adrenoceptor subtype
(although other subtypes are also found). ese receptors are Gi-coupled receptors (GPCRs; see Chapter 2, Section
2.2.4), whose activation leads to a stimulation of cyclic AMP synthesis inside the cell. is ultimately increases the size of the inward Na+ and Ca2+ currents carried by the SA node ion channels. is is achieved by various mechanisms including an increase in their phosphorylation state. e eects collude to steepen the pacemaker slope (Figure 5.2).
0
Threshold
–65
Membrane potential (mV)
Sympathetic nervous system
Figure 5.2 The sinoatrial node action potential.
The action potentials are characterized by the pacemaker slope which controls the heart rate. The steepness of the slope may be increased by stimulation from the sympathetic nervous system (red lines compared with black) to reach threshold more quickly, and so the heart rate rises. Where parasympathetic stimulation dominates (blue lines) the slope becomes more shallow, and the heart rate falls. Note also that under the influence of the parasympathetic nervous system the pacemaker slope starts from a more negative value as the SA node cells are hyperpolarized. The pacemaker slope is formed by activity at several ion channels, including those carrying the If current (f for funny; these voltage-gated channels are unusual in that they open when the membrane potential is negative). These channels are the target of the anti-angina drug, ivabradine (Chapter 6).
0
Steep slope Heart rate
100
Time (msec)
Pacemaker
slopes
200
Parasympathetic nervous system
Shallow slope
Heart rate
80 Chapter 5 Hypertension
Membrane potential (mV)
Receptors for ACh in the SA node cells are muscarinic ACh receptors (mAChR) of the M2 subtype. ACh stimulates these GPCRs, and activation results in a reduction in cyclic AMP synthesis. is aects ion channels by reducing phosphorylation, which leads to a decrease in the Ca2+ current whilst enhancing K+ channel activity. e increased permeability favours entry of K+ into the cell, which consequently becomes hyperpolarized. e pacemaker potential therefore starts from a more negative value, and this, combined with its decreased slope, means that threshold is reached more slowly and heart rate falls (Figure 5.2).
Although the parasympathetic inuence on the pacemaker slope is profound (and unopposed can cause a very substantial lowering of heart rate), it is noteworthy that the -adrenoceptors are a more signicant target for therapeutic agents, for example the antihypertensive -adrenoceptor antagonists described later.
5.1.3 What determines stroke volume?
e determinants of stroke volume are complex, and here we will only cover those issues necessary to understand the action of therapeutic agents. We will divide the factors aecting stroke volume into two groups: those directly inuencing the ventricular myocytes (or heart muscle cells), and those acting via the blood vessels.
Direct inuences on cardiac myocytes mainly involve changes to their action potentials which drive the contraction of these cells. In a healthy heart, the ventricular action potential is characterized by (1) the absence of a pacemaker slope (depolarization is dependent on action potentials which originate in the SA node, and which pass down from the atria) and (2) a Ca2+ plateau (Figure 5.3). Ventricular myocytes have a large number of L-type voltage-dependent Ca2+ channels (named L-type because of their long-lasting eect). When the upsweep of the action potential occurs and the membrane depolarizes, they open and Ca2+ ows into the cell. e channels remain open for a prolonged period, which maintains the depolarization (hence the plateau) and provides the raised intracellular Ca2+ to stimulate the muscle contractile mechanism.
Receptors for noradrenaline or adrenaline in the ventricles are -adrenoceptors: clinically they are
mainly considered to be 1-adrenoceptors (although 2 subtypes are also found and may become more important in certain pathologies, e.g. heart failure). ese GPCRs are
0
2
Na+ in
–90
Figure 5.3 The action potential of a ventricular myocyte.
Plot of membrane potential (mV) against time. A negative potential indicates that the cell is electrically negative inside the membrane compared with outside. Notable points are: (1) the absence of a pacemaker slope; (2) the rapid rise caused by opening of fast voltage-sensitive Na+ channels, giving a rapid depolarizing influx of Na+; (3) the Ca2+ plateau in which depolarization is maintained by a sustained influx of Ca2+; (4) the eventual return to a negative potential when the inward Na+ and Ca2+ currents have both been shut down. At the same time, increased K+ permeability means that K+ ions leave the cell and the membrane potential returns to the resting level (5).
1
coupled to a stimulation of cyclic AMP synthesis, which ultimately leads to enhanced phosphorylation of the L-type voltage-dependent Ca2+ channels. is phosphorylation results in an increased probability of the channels opening and therefore a higher Ca2+ plateau. is increases the force of contraction of the myocytes (positive inotropic eect) which means an increase in stroke volume (more blood is ejected from the ventricles with each heart beat). Additional inuences on the myocyte ion channels combine to shorten the overall length of the action potential. is allows a simultaneous increased rate of action potential ring which is being directed by the concurrent inuence of noradrenaline/ adrenaline on the SA node (the positive chronotropic eect; see previous section). e overall eect, then, of noradrenaline/adrenaline is increased strength of contraction combined with increased heart rate; both eects can be felt in situations where an adrenaline surge is experienced (ght-or-ight response).
e cardiac -adrenoceptors whose activation underlies these eects are a major target for drugs.
Other mechanisms may increase cyclic AMP and intracellular Ca2+, leading to increased force of
contraction. For example caeine increases cAMP levels in cells by inhibiting the phosphodiesterase enzymes responsible for breaking it down. is then leads to
Ca
3
2+
in
4
+
K
out
5
5.1 The physiological control of arterial blood pressure 81
→↑
Stroke volume
increased force (and rate) of contraction. Agents which activate other receptors coupled to enhanced cyclic AMP synthesis include histamine acting at cardiac H2­receptors, explaining a direct eect of histamine to increase cardiac output. Digoxin is a clinically useful drug (see Chapter 7), which includes in its action an increase in Ca2+ that is independent of cyclic AMP, and consequently increases force of contraction of cardiac myocytes.
Receptors for ACh in the ventricles are of the M2 subtype and are coupled to a decrease in cyclic AMP and
reduced force of contraction. However, the direct
End-diastolic volume
inuence of the parasympathetic system on ventricular stroke volume is weak and may in fact be due to decreased contraction of the atria.
Indirect inuences on stroke volume are mainly due to changes in blood vessels. ese aect the heart in a number of ways—two of them are explored here: changes
Figure 5.4 Ventricular function curve.
The relationship between end-diastolic volume and stroke volume. When the end-diastolic volume is increased, the walls of the ventricle are more stretched before the contraction begins, and so the muscle will contract with greater force, leading to an increase in stroke volume.
to the venous side, or the arterial side, of the circulation.
Changes to the venous side: the importance of venous return, preload, and end-diastolic volume
e sympathetic inuence on the large capacitance vessels2 will cause contraction of smooth muscle, leading to vasoconstriction. e valves in the large veins ensure that the blood is forced in one direction only—back to the heart. So, enhanced sympathetic stimulation gives an increased ow of blood through the veins back to the heart, known as venous return. As a result, just before they contract, the walls of the ventricles will be more stretched (sometimes referred to as an increase in preload) and the volume of blood in the ventricles (end-diastolic volume) will be increased. is has an eect on stroke volume as explained by Starling’s law, which states that the more a muscle is stretched before it begins to contract, the greater the force of the subsequent contraction (Figure 5.4).
So we can sum up the situation as follows:
sympatheticstimulation of largeveins venous
→↑ →↑
return enddiastolic volume stretching
of theventricle walls forceof
-
→↑
→↑
contractionincreased stroke volume
Preload is also augmented by an overall increase in blood volume, which explains the involvement of the kidney
2 e large veins in the body contain 60–70% of the total blood volume, and so are described as capacitance vessels; contraction of these vessels leads to increases in venous pressure.
and salt-retaining hormones such as aldosterone in the physiological regulation of cardiovascular function. e eect of blood volume on preload underlies the usefulness of drugs crucial to the management of hypertension, such as the thiazide diuretics used to treat Andreas in Workbook 2. e enhanced elimination of water and sodium by diuretics decreases blood volume, and consequently reduces preload and therefore stroke volume. However, note that in addition, thiazide diuretics have an unrelated and benecial vasodilatory eect that contributes to their blood-pressure-lowering activity (see below).
Changes to the arterial side: the importance of arterial blood pressure and afterload
When the left ventricle begins to contract at the start of systole, the pressure within the ventricle rises rapidly because the valves which allow the blood to leave remain closed. ere is therefore a short delay until the blood is ejected into the aorta. Within a few milliseconds, the pressure inside the ventricle rises above the pressure in the aorta, the aortic valve is forced open, and blood is ejected from the heart. If the arterial blood pressure (i.e. the pressure inside the aorta) is increased, the ventricular pressure will have to reach a higher level for blood ow to begin (Figure 5.5). is is referred to as an increase in afterload. Similarly, as the contraction phase passes its peak and the blood ow begins to fall, the aortic valve will close earlier if aortic pressure is raised. Both of these