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NCERT Exercises and Solutions: Body Fluids and Circulation

🎓 Class 11 Biology CBSE Theory Ch 15 – Body Fluids and Circulation ⏱ ~8 min
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NCERT Exercises and Solutions — Body Fluids and Circulation

This closing part gathers Chapter 15 into a revision summary and then works through all fourteen NCERT exercise questions. Question 3 is a matching exercise, Question 7 asks for four sets of differences, and Question 14 requires you to draw — so keep a pencil beside you.

Chapter Summary

Vertebrates circulate blood, a fluid connective tissue, in their body, to transport essential substances to the cells and to carry waste substances from there. Another fluid, lymph (tissue fluid), is also used for the transport of certain substances.

Blood comprises a fluid matrix, plasma, and formed elements. Red blood cells (RBCs, erythrocytes), white blood cells (WBCs, leucocytes) and platelets (thrombocytes) constitute the formed elements. Blood of humans is grouped into A, B, AB and O systems based on the presence or absence of two surface antigens, A and B, on the RBCs. Another blood grouping is also done based on the presence or absence of another antigen called Rhesus factor (Rh) on the surface of RBCs. The spaces between cells in the tissues contain a fluid derived from blood called tissue fluid. This fluid, called lymph, is almost similar to blood except for the protein content and the formed elements.

All vertebrates and a few invertebrates have a closed circulatory system. Our circulatory system consists of a muscular pumping organ, heart, a network of vessels and a fluid, blood. Heart has two atria and two ventricles. Cardiac musculature is auto-excitable. Sino-atrial node (SAN) generates the maximum number of action potentials per minute (70–75/min) and therefore it sets the pace of the activities of the heart. Hence it is called the Pacemaker. The action potential causes the atria and then the ventricles to undergo contraction (systole) followed by their relaxation (diastole). The systole forces the blood to move from the atria to the ventricles and to the pulmonary artery and the aorta.

The cardiac cycle is formed by sequential events in the heart which is cyclically repeated. A healthy person shows 72 such cycles per minute. About 70 mL of blood is pumped out by each ventricle during a cardiac cycle and it is called the stroke or beat volume. Volume of blood pumped out by each ventricle of heart per minute is called the cardiac output and it is equal to the product of stroke volume and heart rate (approx 5 litres). The electrical activity of the heart can be recorded from the body surface by using electrocardiograph, and the recording is called electrocardiogram (ECG), which is of clinical importance.

We have a complete double circulation, i.e., two circulatory pathways, namely pulmonary and systemic, are present. The pulmonary circulation starts by the pumping of deoxygenated blood by the right ventricle, which is carried to the lungs where it is oxygenated and returned to the left atrium. The systemic circulation starts with the pumping of oxygenated blood by the left ventricle to the aorta, which is carried to all the body tissues, and the deoxygenated blood from there is collected by the veins and returned to the right atrium. Though the heart is autoexcitable, its functions can be moderated by neural and hormonal mechanisms.

Chapter 15 at a glance
ItemFact to remember
Plasma / formed elements55% / 45% of blood; plasma is 90–92% water, 6–8% protein
Plasma proteinsFibrinogen (clotting), globulins (defense), albumins (osmotic balance)
RBC count / Hb / life span5–5.5 million mm⁻³ / 12–16 g per 100 mL / 120 days, destroyed in the spleen
WBC count6000–8000 mm⁻³
WBC percentagesNeutrophils 60–65, lymphocytes 20–25, monocytes 6–8, eosinophils 2–3, basophils 0.5–1
Platelet count1,50,000–3,50,000 mm⁻³
Universal donor / recipientO / AB
Rh positiveNearly 80 per cent of humans
Clotting sequenceInjury → thrombokinase → prothrombin to thrombin → fibrinogen to fibrin; needs Ca²⁺
Chambers by groupFish 2; amphibians and most reptiles 3; crocodiles, birds, mammals 4
SAN rate / heart rate70–75 min⁻¹ / average 72 beats min⁻¹
Cardiac cycle / stroke volume / output0.8 s / 70 mL / 5 litres min⁻¹
Heart soundsLub = tricuspid and bicuspid close; dub = semilunar close
Normal BP120/80; hypertension at 140/90 or higher

NCERT Exercises — Complete Solutions

Question 1

Name the components of the formed elements in the blood and mention one major function of each of them.

The formed elements are erythrocytes, leucocytes and platelets, constituting nearly 45 per cent of the blood.

ComponentCountOne major function
Erythrocytes (RBCs)5–5.5 million mm⁻³Carry haemoglobin, which plays a significant role in the transport of respiratory gases
Neutrophils60–65% of WBCsPhagocytic cells which destroy foreign organisms entering the body
Eosinophils2–3% of WBCsResist infections and are associated with allergic reactions
Basophils0.5–1% of WBCsSecrete histamine, serotonin, heparin and are involved in inflammatory reactions
Lymphocytes20–25% of WBCsB and T forms are responsible for immune responses of the body
Monocytes6–8% of WBCsPhagocytic — destroy foreign organisms
Platelets (thrombocytes)1,50,000–3,50,000 mm⁻³Release substances involved in the coagulation or clotting of blood

If only three components are wanted: RBCs for transport of respiratory gases, WBCs for defence and immunity, and platelets for blood clotting.

Question 2

What is the importance of plasma proteins?

Proteins contribute 6–8 per cent of plasma, and fibrinogen, globulins and albumins are the major proteins. Each has a distinct importance:

  • Fibrinogens are needed for clotting or coagulation of blood. They are the precursor that thrombin converts into the fibrin threads of the clot, so without them a wound would continue to bleed. Note that plasma without the clotting factors is called serum — and cannot clot.
  • Globulins are primarily involved in defense mechanisms of the body, forming the antibody fraction of the plasma proteins and so underlying immunity.
  • Albumins help in osmotic balance. Being the most abundant and smallest of the three, they hold water within the vessels; if albumin falls, fluid leaks into the tissue spaces and swelling results.

A further importance worth adding: the plasma proteins also give plasma its viscosity, which helps maintain blood pressure, and they act as carriers for many substances in transit.

Question 3

Match Column I with Column II:
(a) Eosinophils  (b) RBC  (c) AB Group  (d) Platelets  (e) Systole
(i) Coagulation  (ii) Universal Recipient  (iii) Resist Infections  (iv) Contraction of Heart  (v) Gas transport

Column IColumn IIWhy
(a) Eosinophils(iii) Resist InfectionsEosinophils resist infections and are also associated with allergic reactions
(b) RBC(v) Gas transportRBCs carry haemoglobin, which plays a significant role in the transport of respiratory gases
(c) AB Group(ii) Universal RecipientAB plasma has nil antibodies, so such persons can accept blood from AB as well as the other groups
(d) Platelets(i) CoagulationPlatelets release a variety of substances, most of which are involved in the coagulation or clotting of blood
(e) Systole(iv) Contraction of HeartSystole is contraction; diastole is relaxation
(a)–(iii), (b)–(v), (c)–(ii), (d)–(i), (e)–(iv)

Question 4

Why do we consider blood as a connective tissue?

Because blood satisfies the defining criteria of a connective tissue. Blood is a special connective tissue consisting of a fluid matrix, plasma, and formed elements.

The reasons, set out:

  • It has cells suspended in an extracellular matrix — the defining structural feature of a connective tissue. Here the formed elements (erythrocytes, leucocytes and platelets) are the cells and plasma is the matrix.
  • It is mesodermal in origin, like all connective tissues.
  • Its cells are not in direct contact with one another but are separated by the matrix — again characteristic of connective tissue, and unlike epithelium, where cells are packed tightly together.
  • It performs a connective function, linking every tissue of the body to every other by transporting nutrients, O₂ and other essential substances to the cells and carrying waste substances away.
Why it is called a special connective tissue. The only unusual feature is that its matrix is a liquid rather than a jelly or a solid. Compare the range within the category: bone has a hard mineralised matrix, cartilage a firm one, areolar tissue a soft jelly, and blood a fluid. Blood lies at one end of a continuum, not outside it. Also unlike other connective tissues, blood contains no fibres in its matrix — fibrin appears only when the blood clots.

Question 5

What is the difference between lymph and blood?

As the chapter's summary puts it, lymph is almost similar to blood except for the protein content and the formed elements. In detail:

FeatureBloodLymph
ColourRed, because of haemoglobin in the RBCsColourless
RBCsPresent — 5–5.5 million mm⁻³Absent
WBCsAll five types presentContains specialised lymphocytes
PlateletsPresentAbsent
Protein contentHigh — 6–8 per cent, including the larger proteinsLow — the larger proteins remain in the blood vessels
MineralsNa⁺, Ca⁺⁺, Mg⁺⁺, HCO₃⁻, Cl⁻ etc.Same mineral distribution as that in plasma
VesselsFlows in arteries, veins and capillaries, pumped by the heartFlows in the lymphatic system, which drains it back to the major veins
Direction of flowCirculates in a closed circuitFlows in one direction only — tissues towards the veins
Main functionsTransport of respiratory gases, nutrients, hormones and wastes; clotting; regulation of temperatureImmune responses; carrier for nutrients and hormones; absorption of fats through the lacteals in the intestinal villi

And their relationship. Lymph is derived from blood: as the blood passes through the capillaries in tissues, some water along with many small water soluble substances move out into the spaces between the cells of tissues, leaving the larger proteins and most of the formed elements in the blood vessels. That single sentence explains every difference in the table — lymph lacks RBCs, platelets and the larger proteins simply because those were too large to leave the capillary.

Question 6

What is meant by double circulation? What is its significance?

Double circulation means that two separate circulatory pathways are present, so that blood passes through the heart twice in one complete circuit of the body. We have a complete double circulation, i.e., two circulatory pathways, namely pulmonary and systemic, are present.

The two pathways

  • Pulmonary circulation. The blood pumped by the right ventricle enters the pulmonary artery. The deoxygenated blood pumped into the pulmonary artery is passed on to the lungs, from where the oxygenated blood is carried by the pulmonary veins into the left atrium.
  • Systemic circulation. The left ventricle pumps blood into the aorta. The oxygenated blood entering the aorta is carried by a network of arteries, arterioles and capillaries to the tissues, from where the deoxygenated blood is collected by a system of venules, veins and vena cava and emptied into the right atrium.

Its significance

  • No mixing of blood. Oxygenated and deoxygenated blood received by the left and right atria respectively passes on to the ventricles of the same sides, and the ventricles pump it out without any mixing up. Tissues therefore receive fully oxygenated blood, not the mixed blood that a three-chambered heart delivers.
  • A steep oxygen gradient at the tissues. Because arterial blood is fully oxygenated, the partial pressure difference driving O₂ into the tissues is as large as possible — which is what allows a high rate of oxygen delivery.
  • Support for a high metabolic rate. This is why the arrangement is found in crocodiles, birds and mammals, the animals with the highest and most sustained energy demands.
  • Two circuits at appropriate pressures. The systemic circuit needs high pressure to reach the whole body; the pulmonary circuit needs gentler pressure so as not to damage the delicate alveolar capillaries. Separate pumps — the thick-walled left ventricle and the thinner right — allow each circuit its own pressure.
  • Efficient and complete re-oxygenation. Every unit of blood returning from the tissues must pass through the lungs before being sent out again.

Question 7

Write the differences between: (a) Blood and Lymph (b) Open and Closed system of circulation (c) Systole and Diastole (d) P-wave and T-wave

(a) Blood and Lymph

FeatureBloodLymph
ColourRedColourless
RBCs and plateletsPresentAbsent
WBCsAll types presentMainly specialised lymphocytes
ProteinsMore, including the larger proteinsLess — larger proteins left behind in the vessels
FlowCirculates in a closed circuit, pumped by the heartOne-way flow, drained back to the major veins
Special functionTransport of respiratory gasesAbsorption of fats in the lacteals of the intestinal villi

(b) Open and Closed system of circulation

FeatureOpen systemClosed system
Path of bloodBlood pumped by the heart passes through large vessels into open spaces or body cavities called sinusesBlood pumped by the heart is always circulated through a closed network of blood vessels
Found inArthropods and molluscsAnnelids and chordates
Contact with tissuesBlood bathes the tissues directlyExchange occurs through the tissue fluid, blood staying within vessels
Regulation of flowCannot be precisely regulatedThe flow of fluid can be more precisely regulated — hence considered more advantageous
PressureLowCan be maintained high

(c) Systole and Diastole

FeatureSystoleDiastole
MeaningContraction of a heart chamberRelaxation of a heart chamber
Effect on chamber volumeDecreasesIncreases
Effect on pressureRisesFalls
Movement of bloodForces the blood to move from the atria to the ventricles, and from the ventricles to the pulmonary artery and aortaChamber fills with blood
ValvesVentricular systole closes the tricuspid and bicuspid valves and forces open the semilunar valvesVentricular diastole closes the semilunar valves; the AV valves are pushed open
Blood pressure reading120 mm Hg — the systolic or pumping pressure80 mm Hg — the diastolic or resting pressure

(d) P-wave and T-wave

FeatureP-waveT-wave
Chambers involvedThe atriaThe ventricles
Electrical eventElectrical excitation, or depolarisationReturn from excited to normal state — repolarisation
Mechanical consequenceLeads to the contraction of both the atriaVentricles relax; the end of the T-wave marks the end of systole
Position in the traceThe first wave of the cycleThe last wave of the cycle
SizeSmallLarger than P but smaller than the QRS complex

Question 8

Describe the evolutionary change in the pattern of heart among the vertebrates.

All vertebrates possess a muscular chambered heart, but the number of chambers rises through the series, and with it the degree to which oxygenated and deoxygenated blood are kept apart.

Fishes — two chambers, single circulation

Fishes have a 2-chambered heart with an atrium and a ventricle. In fishes the heart pumps out deoxygenated blood, which is oxygenated by the gills and supplied to the body parts, from where deoxygenated blood is returned to the heartsingle circulation. Blood passes through the heart only once per complete circuit, and only deoxygenated blood ever enters the heart.

Amphibians and reptiles — three chambers, incomplete double circulation

Amphibians and the reptiles (except crocodiles) have a 3-chambered heart with two atria and a single ventricle. The left atrium receives oxygenated blood from the gills/lungs/skin and the right atrium gets the deoxygenated blood from other body parts. However, they get mixed up in the single ventricle, which pumps out mixed bloodincomplete double circulation. The advance over fishes is the division of the atrium into two; the limitation is the undivided ventricle.

Crocodiles, birds and mammals — four chambers, complete double circulation

Crocodiles, birds and mammals possess a 4-chambered heart with two atria and two ventricles. Oxygenated and deoxygenated blood received by the left and right atria respectively passes on to the ventricles of the same sides. The ventricles pump it out without any mixing up, i.e., two separate circulatory pathways are present in these organisms; hence these animals have double circulation.

The progression summarised
GroupChambersCirculationBlood pumped to the body
Fishes2SingleOxygenated (but by the gills, after leaving the heart)
Amphibians, reptiles except crocodiles3Incomplete doubleMixed
Crocodiles, birds, mammals4Complete doubleFully oxygenated

The trend, in one sentence: progressive separation of the oxygenated and deoxygenated streams, from no separation at all, through separate atria with a shared ventricle, to complete separation — which allows the tissues to receive fully oxygenated blood and supports the high metabolic rates of birds and mammals. Note the exception: crocodiles are reptiles yet have four chambers, so the progression is not a simple ladder.

Question 9

Why do we call our heart myogenic?

Because the heartbeat originates in the heart's own muscle and not in any nerve. Normal activities of the heart are regulated intrinsically, i.e., auto regulated by specialised muscles (nodal tissue), hence the heart is called myogenic.

The evidence and mechanism:

  • Cardiac musculature is auto-excitable. The nodal musculature has the ability to generate action potentials without any external stimuli.
  • The SAN generates the maximum number of action potentials, 70–75 per minute, and is therefore responsible for initiating and maintaining the rhythmic contractile activity of the heart.
  • Consequently, the heart continues to beat even if its nerve supply is cut, and an excised heart kept in a suitable medium goes on beating for some time — which is what makes heart transplantation possible.
Contrast with a neurogenic heart. In some invertebrates the heartbeat is neurogenic — it is initiated by nerve impulses arriving from outside the heart, and stops when those nerves are cut. Our heart is the opposite: the nerves can only moderate what the nodal tissue has already begun. A special neural centre in the medulla oblongata can moderate the cardiac function through the autonomic nervous system, with sympathetic nerves increasing and parasympathetic signals decreasing the rate and output — but neither starts the beat.

Question 10

Sino-atrial node is called the pacemaker of our heart. Why?

Because it is the fastest of the self-exciting tissues, and therefore sets the rhythm for all the rest. The SAN can generate the maximum number of action potentials, i.e., 70–75 min⁻¹, and is responsible for initiating and maintaining the rhythmic contractile activity of the heart. Therefore, it is called the pacemaker.

The full reasoning:

  • The SAN is a patch of nodal tissue present in the right upper corner of the right atrium.
  • The whole nodal musculature is autoexcitable — it can generate action potentials without any external stimuli — so in principle any part of it could set the pace.
  • But the number of action potentials that could be generated in a minute varies at different parts of the nodal system, and the SAN's rate is the highest.
  • Since its impulse reaches the other parts of the nodal system and triggers them before they can fire on their own, the SAN's rhythm is imposed on the entire heart. Our heart normally beats 70–75 times in a minute (average 72 beats min⁻¹) — exactly the SAN's own rate.
A consequence worth knowing. If the SAN fails, the heart does not stop. The AVN, being the next fastest autoexcitable tissue, takes over — but at its own lower intrinsic rate, so the heart beats too slowly for the body's needs. This is when an artificial pacemaker is fitted, and the name of the device is borrowed from the name of the natural structure.

Question 11

What is the significance of atrio-ventricular node and atrio-ventricular bundle in the functioning of heart?

Their significance is that they form the only electrical route from the atria to the ventricles, and they ensure the ventricles contract in the right way at the right moment.

Their structure and position

  • The AVN is a mass of nodal tissue seen in the lower left corner of the right atrium, close to the atrio-ventricular septum.
  • A bundle of nodal fibres, the atrio-ventricular bundle (AV bundle), continues from the AVN, passes through the atrio-ventricular septa to emerge on the top of the inter-ventricular septum, and immediately divides into a right and left bundle. These branches give rise to minute fibres throughout the ventricular musculature of the respective sides and are called purkinje fibres.

Their significance

  • They conduct the impulse from atria to ventricles. The action potential is conducted to the ventricular side by the AVN and AV bundle, from where the bundle of His transmits it through the entire ventricular musculature, causing ventricular systole. This matters because the atrio-ventricular septum is a thick fibrous tissue that does not itself conduct — without the AV bundle crossing it, the impulse could not reach the ventricles at all.
  • They introduce a necessary delay. Conduction through the AVN is relatively slow, so the ventricles contract only after the atria have finished emptying into them. Without this pause, atrial and ventricular systole would overlap and the ventricles would contract while still filling.
  • They make the ventricle contract as one unit. Through the right and left bundles and the purkinje fibres throughout the ventricular musculature, the impulse reaches the whole ventricle almost simultaneously, so it squeezes as a single coordinated pump rather than in a slow wave — which is what allows it to generate enough pressure to open the semilunar valves.
  • The AVN can act as a reserve pacemaker. Being nodal tissue it too is autoexcitable, so if the SAN fails the AVN takes over, at a slower rate.

Question 12

Define a cardiac cycle and the cardiac output.

Cardiac cycle. The sequential event in the heart which is cyclically repeated is called the cardiac cycle, and it consists of systole and diastole of both the atria and ventricles. Its stages in order are joint diastole → atrial systole → ventricular systole → ventricular diastole, after which the SAN fires again. The heart beats 72 times per minute, i.e., that many cardiac cycles are performed per minute; from this it could be deduced that the duration of a cardiac cycle is 0.8 seconds.

Cardiac output. The cardiac output can be defined as the volume of blood pumped out by each ventricle per minute, and averages 5000 mL or 5 litres in a healthy individual. It is obtained as follows: during a cardiac cycle, each ventricle pumps out approximately 70 mL of blood, which is called the stroke volume, and the stroke volume multiplied by the heart rate (no. of beats per min.) gives the cardiac output.

Cardiac output = Stroke volume × Heart rate
= 70 mL × 72 min⁻¹ ≈ 5000 mL = 5 litres per minute

One point to add: the body has the ability to alter the stroke volume as well as the heart rate, and thereby the cardiac output — which is why the cardiac output of an athlete will be much higher than that of an ordinary man.

Question 13

Explain heart sounds.

During each cardiac cycle two prominent sounds are produced, which can be easily heard through a stethoscope.

SoundCauseWhen it occurs
First heart sound — ‘lub’Associated with the closure of the tricuspid and bicuspid valvesAt the beginning of ventricular systole, when rising ventricular pressure attempts to drive blood back into the atria
Second heart sound — ‘dub’Associated with the closure of the semilunar valvesAt the beginning of ventricular diastole, when falling ventricular pressure would otherwise allow backflow from the aorta and pulmonary artery

Points worth noting.

  • Both sounds are produced by valves closing — not by muscle contracting or blood flowing. The sound is the vibration of the closing cusps and the blood behind them.
  • The interval between lub and dub is therefore the period during which blood is being ejected from the ventricles; the interval from dub to the next lub is ventricular diastole.
  • These sounds are of clinical diagnostic significance. A valve that fails to close properly produces an abnormal sound, a murmur, at precisely the moment that valve should have shut — so a doctor listening with a stethoscope can tell which valve is faulty and whether it is failing to open or failing to close.
  • The first sound is longer and lower-pitched, the second shorter and sharper, because the semilunar valves are smaller and snap shut more quickly.

Question 14

Draw a standard ECG and explain the different segments in it.

A standard ECG P Q R S T the cycle repeats SYSTOLE Three leads are used for a standard ECG — one to each wrist and one to the left ankle. For detailed evaluation, multiple leads are attached to the chest region.

What an ECG is. ECG is a graphical representation of the electrical activity of the heart during a cardiac cycle, obtained with an electro-cardiograph. To obtain a standard ECG, a patient is connected to the machine with three electrical leads — one to each wrist and to the left ankle — that continuously monitor the heart activity. For a detailed evaluation of the heart's function, multiple leads are attached to the chest region. Each peak in the ECG is identified with a letter from P to T that corresponds to a specific electrical activity of the heart.

The segments explained
SegmentElectrical eventMechanical meaning
P-waveThe electrical excitation (or depolarisation) of the atriaLeads to the contraction of both the atria — atrial systole follows
QRS complexThe depolarisation of the ventriclesInitiates the ventricular contraction. The contraction starts shortly after Q and marks the beginning of the systole
T-waveThe return of the ventricles from excited to normal state (repolarisation)The end of the T-wave marks the end of systole

Its clinical uses.

  • By counting the number of QRS complexes that occur in a given time period, one can determine the heart beat rate of an individual.
  • Since the ECGs obtained from different individuals have roughly the same shape for a given lead configuration, any deviation from this shape indicates a possible abnormality or disease. Hence, it is of a great clinical significance.
Revision tip for this chapter. Chapter 15 rewards learning three tables and one sequence. The tables: the WBC percentages, Table 15.1 on blood groups, and the chambers-and-circulation table for the vertebrates. The sequence: the cardiac cycle, told with its valve movements, its two sounds and its numbers — 0.8 s, 70 mL, 5 litres. Almost every exercise in the chapter is answered from one of those four.

Frequently Asked Questions - NCERT Exercises and Solutions: Body Fluids and Circulation

Name the formed elements of blood and one function of each.
Erythrocytes or RBCs carry haemoglobin for the transport of respiratory gases. Leucocytes or WBCs defend the body - neutrophils and monocytes are phagocytic, eosinophils resist infections and are associated with allergy, basophils secrete histamine, serotonin and heparin for inflammation, and B and T lymphocytes carry out immune responses. Platelets release substances involved in the clotting of blood.
What is the importance of plasma proteins?
Fibrinogens are needed for the clotting of blood, globulins are primarily involved in the defense mechanisms of the body, and albumins help in osmotic balance. Together they also give plasma its viscosity and act as carriers for substances in transit.
Why is blood considered a connective tissue?
Because it consists of cells - the formed elements - suspended in an extracellular matrix, namely plasma, and is mesodermal in origin, which is the definition of a connective tissue. It is called a special connective tissue only because its matrix is a fluid rather than a jelly or a solid.
What is the difference between lymph and blood?
Lymph is almost similar to blood except for the protein content and the formed elements. Lymph is colourless, lacks RBCs and platelets, contains specialised lymphocytes, and has less protein because the larger proteins remain in the blood vessels. Blood circulates in a closed circuit while lymph flows one way and is drained back to the major veins.
What is double circulation and why is it significant?
It means two separate circulatory pathways, pulmonary and systemic, so blood passes through the heart twice per circuit. Its significance is that oxygenated and deoxygenated blood never mix, so tissues receive fully oxygenated blood with a steep oxygen gradient, and each circuit can operate at its own appropriate pressure - which supports the high metabolic rates of birds and mammals.
Describe the evolutionary change in the vertebrate heart.
Fishes have two chambers and single circulation, pumping only deoxygenated blood. Amphibians and reptiles other than crocodiles have three chambers, with two atria but a single ventricle in which blood mixes, giving incomplete double circulation. Crocodiles, birds and mammals have four chambers with no mixing at all, giving complete double circulation.
Why is our heart called myogenic?
Because its normal activities are regulated intrinsically, auto-regulated by its own specialised nodal tissue, which is autoexcitable and can generate action potentials without any external stimuli. Nerves only moderate the rate and force; they do not initiate the beat, which is why an excised heart continues to beat.
Why is the sino-atrial node called the pacemaker?
Because although the whole nodal system is autoexcitable, the number of action potentials generated per minute varies between its parts and the SAN generates the maximum, 70 to 75 per minute. It therefore initiates and maintains the rhythmic contractile activity of the heart, whose normal rate of about 72 beats per minute is the SAN's own rate.
What is the significance of the AVN and the AV bundle?
They form the only electrical route across the fibrous atrio-ventricular septum, conducting the action potential from the atria to the ventricles. Their relatively slow conduction introduces the delay that lets the atria empty before the ventricles contract, and through the purkinje fibres they make the whole ventricle contract as a single unit. The AVN can also act as a reserve pacemaker.
Define cardiac cycle and cardiac output.
The cardiac cycle is the sequential event in the heart which is cyclically repeated, consisting of systole and diastole of both atria and ventricles, and lasting 0.8 seconds at 72 beats per minute. Cardiac output is the volume of blood pumped out by each ventricle per minute, equal to stroke volume times heart rate, that is about 70 mL times 72, averaging 5 litres.
Explain the heart sounds.
Two prominent sounds are produced in each cardiac cycle and heard through a stethoscope. The first, lub, is associated with the closure of the tricuspid and bicuspid valves at the start of ventricular systole. The second, dub, is associated with the closure of the semilunar valves at its end. They are of clinical diagnostic significance, since a faulty valve produces an abnormal sound at the moment it should have closed.
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