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Human Anatomy · The trunk

Heart and Mediastinum

A muscular pump the size of a fist, slung in a tough bag in the middle of the chest. Its wiring and its blood supply are laid out so logically that you can predict what a blockage will damage. This chapter works from the outside in.

10Sections
3Diagrams
3Illustrations
9Tables
10Questions

What you will be able to do

  • Name the four divisions of the mediastinum and what sits in each.
  • Say what the sternal angle marks, and use it to count ribs.
  • Explain tamponade and pericardial shoulder pain from the layers of the sac.
  • Name the chambers, surfaces and borders, and find the apex on a living person.
  • Say what each valve prevents, and why it is not heard where it lies.
  • Set out the conducting system in order and what each step contributes.
  • Name the coronary branches and the territory each supplies.
  • Predict which wall a blockage of each main branch threatens.

The room before the organ

The chest holds two pleural sacs, one per lung. Between them runs a corridor from the thoracic inlet, the ring of bone at the root of the neck, down to the diaphragm: the mediastinum. Everything in the chest that is not lung or pleura sits in it.

One plane divides it, through the sternal angle in front and the disc between the fourth and fifth thoracic vertebrae behind. Above is the superior mediastinum; below, the inferior mediastinum, which the pericardium divides into three.

Figure 1 · The mediastinum, divided

How the mediastinum is divided A side view of the mediastinum as a box, split by the plane of the sternal angle into a superior part above, and anterior, middle and posterior parts below. THE MEDIASTINUM IS THE ROOM. THE HEART IS ONE OF ITS TENANTS. Side view. Front of the body on the left. SUPERIOR MEDIASTINUM everything above the plane sternal angle plane ANTERIOR in front of the pericardium MIDDLE the pericardium, and the heart inside it POSTERIOR behind the pericardium FRONT BACK the three parts of the inferior mediastinum
One plane does all the work. The table below lists what sits in each part.
DivisionWhere it isWhat sits there
Superior Superior thoracic aperture, the thoracic inlet, down to the sternal angle plane Aortic arch and branches, brachiocephalic veins, upper superior vena cava, trachea, oesophagus, thoracic duct, vagus and phrenic nerves, thymus
AnteriorSternum to pericardium Fat, lymph nodes, the last of the thymus. The narrowest part
MiddleThe pericardium and its contents Heart, roots of the great vessels, phrenic nerves, main bronchi
PosteriorPericardium to vertebrae five to twelve Descending aorta, oesophagus, thoracic duct, azygos and hemiazygos veins

Why the sternal angle is the best landmark in the chest

It is the ridge where the manubrium meets the body of the sternum. Find it and you have found:

  • the second costal cartilage, so you can count ribs down from there;
  • the disc between the fourth and fifth thoracic vertebrae;
  • where the arch of the aorta begins, and where it ends;
  • where the trachea divides into the two main bronchi;
  • the arch of the azygos vein passing forwards to the superior vena cava.

The pericardium

The heart hangs inside a double-walled bag. Almost every pericardial problem follows from its three layers and the one space between two of them.

LayerWhat it isWhy it matters
Fibrous pericardium A tough outer sac, fused below to the central tendon of the diaphragm and blended above with the great vessels Anchors the heart. It will not stretch at short notice
Parietal serous layer A smooth membrane lining that sac One half of the sliding surface
Pericardial cavity The gap between the serous layers: a potential space holding a film of fluid The heart moves inside it almost without friction
Visceral serous layer The same membrane reflected onto the heart, the epicardium The other half. Coronary vessels run beneath it in fat

Picture a fist pushed into a partly inflated balloon. The fist is the heart, the layer on your knuckles is the visceral layer, the outer wall the parietal layer, and the trapped air the cavity.

Where the great vessels enter and leave, the visceral layer turns back on itself to become the parietal layer, and the turn leaves two blind recesses. The transverse sinus runs behind the aorta and pulmonary trunk, so a surgeon can pass a finger or a tape around both together. The oblique sinus is a cul-de-sac behind the left atrium.

Watch that word. It is doing three other jobs in this chapter: the aortic sinuses are bulges in an artery wall, the coronary sinus is a vein, and the sinuatrial node is muscle.

Figure 2 · The heart in the middle mediastinum, with the pericardium opened

Illustration to be added

Two panels from the front. Panel one: chest wall cut away, showing the heart inside an intact fibrous pericardium, lungs drawn back either side, the sac fused below to the central tendon of the diaphragm, and the phrenic nerve on its lateral surface. Panel two: a window cut in the fibrous sac with the flaps folded out, showing the parietal serous layer lining the flaps, the visceral layer on the heart, the thin cavity between them marked by a bracket, and the aorta, pulmonary trunk and superior vena cava leaving through the roof where the serous layers turn back. Pericardium pale grey-blue, muscle brick, bone ivory, nerves gold, artery red, vein blue, navy outlines on white, no text.

Two consequences you should be able to explain

The outer layers are supplied by the phrenic nerve, from the third to fifth cervical nerves. Its third and fourth cervical fibres share segments with the supraclavicular nerves, which supply the skin over the shoulder tip — so pericardial pain is felt there. And fluid in the cavity cannot push the fibrous sac outwards, so pressure rises instead and the thin-walled right chambers stop filling.

The heart in the chest

The heart sits behind the sternum, not on the left. Two thirds of its mass lies left of the midline and the apex points that way, which is where the impression comes from. It is tilted, so the right ventricle lies nearest the front.

The next table is worth the trouble because a chest film shows only an outline. Knowing which chamber makes each edge is how an enlarged left ventricle or a stretched right atrium is spotted on a plain film.

Surface or borderFormed mainly by
Anterior surface, against the sternum The right ventricle
Inferior surface, on the diaphragm The left ventricle, with part of the right
Base, facing backwards The left atrium, in front of the oesophagus
ApexThe left ventricle
Right border on a chest film The right atrium, superior vena cava above
Left border on a chest film The left ventricle, with the left auricle — the small ear-shaped pouch of the left atrium — and the pulmonary trunk above, and the aortic arch above those
Inferior border on a chest film Mostly the right ventricle

The apex beat is the one part you can find with a fingertip: fifth left intercostal space, just medial to the midclavicular line, about nine centimetres from the midline.

Four chambers, one circuit

Two pumps sit side by side in one organ. The right sends blood a short way to the lungs; the left drives it round the whole body. They beat together but do not work equally hard, and the walls show it.

ChamberReceives fromSends to Worth noticing
Right atrium Both venae cavae and the coronary sinusRight ventricle Thin walled. The fossa ovalis marks the opening that bypassed the lungs before birth
Right ventricleRight atrium Pulmonary trunk Forms most of the front. The moderator band crosses it carrying conducting tissue
Left atriumFour pulmonary veins Left ventricleLies at the back, against the oesophagus
Left ventricleLeft atriumAorta The thickest wall, two to three times the right. It forms the apex

Figure 3 · The chambers and valves of the heart

Illustration to be added

Three panels. Panel one: the heart opened from the front with the front wall of both ventricles removed, showing the three tricuspid cusps with chordae running to the papillary muscles of the right ventricle, the two mitral cusps with larger papillary muscles, and the septum between; draw the left ventricular wall roughly two to three times the thickness of the right. Panel two: the right atrium opened, showing the openings of both venae cavae and the coronary sinus, the pectinate muscles ridging the inside of the right auricle, the ear-shaped pouch of the atrium, and the fossa ovalis. Panel three: the four valve rings from above with the atria removed, pulmonary in front and left, aortic just behind it, mitral behind and left, tricuspid behind and right, set in the fibrous ring, with the coronary openings in the aortic sinuses. Muscle brick, cusps pale ivory, fibrous ring navy, cavities white, no text.

The valves, and where they are heard

Four valves, one job each: stop blood going backwards.

ValveBetweenCuspsPrevents
TricuspidRight atrium and right ventricle ThreeBackflow into the atrium as the ventricle contracts
Mitral, or bicuspid Left atrium and left ventricleTwo Backflow into the atrium as the ventricle contracts
PulmonaryRight ventricle and pulmonary trunk Three, half-moon Backflow into the ventricle as it relaxes
AorticLeft ventricle and aorta Three, half-moon Backflow into the ventricle as it relaxes

The two kinds are held shut differently. Atrioventricular cusps are tethered by fine cords, the chordae tendineae, running to papillary muscles in the ventricular wall. Those muscles contract with the ventricle and hold the cords tight, so the cusps cannot flip back. The half-moon cusps need none of that: blood falling back fills their pockets and forces them shut.

All four rings sit in a band of dense fibrous tissue, which also insulates the atria electrically from the ventricles.

Figure 4 · Where a valve lies, and where it is heard

Valve position compared with the place it is best heard Two schematic front views of the chest wall. On the left the four valves are clustered behind the sternum. On the right the four listening places are spread apart, each downstream of its valve. TWO DIFFERENT PLACES, AND THAT IS NOT AN ACCIDENT WHERE THE VALVE ACTUALLY LIES R L All four sit close together behind the sternum. WHERE IT IS BEST HEARD R L You listen downstream, where the blood is going. Aortic Pulmonary Mitral Tricuspid
The patient is facing you, so their right side is on the left.

Now the point that confuses everybody. A valve is not heard where it lies. All four are crowded behind the sternum, and sound travels the way the blood is going. So you listen downstream, where the vessel beyond it comes nearest the chest wall.

ValveLies behindBest heard at
Pulmonary Medial end of the left third costal cartilage Left second space, at the sternal edge
Aortic The sternum at the third space, just left of the midline Right second space, at the sternal edge
Mitral Left half of the sternum at the fourth costal cartilage The apex, fifth left space, midclavicular line
Tricuspid The sternum at the fourth space, just right of the midline Lower left sternal edge, fourth or fifth space

The conducting system

Cardiac muscle does not wait to be told; isolated heart muscle beats on its own. The conducting system adds not the beat but its order, so the atria empty before the ventricles squeeze, and the ventricles squeeze from the bottom up.

It is not nerve, either, but modified cardiac muscle. Nerves change the rate the heart chooses; they do not carry the impulse.

Figure 5 · The conducting system, step by step

The conducting system of the heart, in order Six numbered steps from the sinuatrial node, through the atria, the atrioventricular node, the atrioventricular bundle and the bundle branches, to the Purkinje fibres, each with what it contributes. ONE IMPULSE, SIX STEPS, ALWAYS IN THIS ORDER 1 Sinuatrial node In the right atrial wall beside the superior vena cava. It fires fastest, so it sets the rate. 2 Across the atria The impulse spreads through atrial muscle itself, and both atria contract. 3 Atrioventricular node Low in the wall between the atria. It conducts slowly on purpose, and that pause lets the atria empty. 4 Atrioventricular bundle Pierces the fibrous ring into the septum between the ventricles. The only normal route to the ventricles. 5 Bundle branches Run down each side of that septum. The right crosses to the far wall in the moderator band. 6 Purkinje fibres Spread into ventricular muscle from the apex upwards, so the squeeze runs towards the outflow valves.
The order is the point. The node sets the rate, the delay lets the atria empty, and the ventricles squeeze from the apex upwards.

Two steps repay a second look. The delay at the atrioventricular node stops the ventricles contracting on top of the atria. The atrioventricular bundle is the only muscular bridge across the insulating ring in a normal heart, so interrupting it separates the two halves of the heart.

A few people are born with an extra strand of muscle crossing that ring elsewhere. It gives the impulse a second, abnormal route to the ventricles, which is why the hedge "in a normal heart" belongs in that sentence.

The blood supply of the heart

A chamber full of blood cannot feed its own wall. Two arteries leave the aorta almost at once, from bulges above the aortic valve called the aortic sinuses. Learn each branch together with its territory.

ArteryCourseSupplies
Right coronary Right aortic sinus, along the groove between right atrium and ventricle, then to the back Right atrium, most of the right ventricle, and in most people both nodes
Right marginal branch Along the inferior, or acute, margin towards the apex, which it usually does not reach Wall of the right ventricle
Posterior interventricular branch Down the posterior interventricular groove, between the two ventricles. From the right coronary in most people Inferior wall of both ventricles, back third of the septum
Left coronary Left aortic sinus. A short stem dividing at once into the two branches below Most of the left side of the heart
Anterior interventricular branch, or left anterior descending Down the anterior interventricular groove, all the way to the apex Front wall of the left ventricle, front two thirds of the septum, part of the right
Circumflex branch Left in the atrioventricular groove, then to the back Left atrium and the side wall of the left ventricle

Dominance means simply this: which of the two coronary arteries gives the posterior interventricular branch. In most people it is the right coronary, which is why a right coronary blockage damages the inferior wall of the left ventricle too.

The left side of the heart feeds itself while it is resting

When the left ventricle contracts — systole, the squeeze — its thick wall clamps the vessels running through it and flow almost stops. Most left coronary filling therefore happens in diastole, the resting phase between beats. Diastole shortens far more than systole as the rate rises, and that is the anatomical basis of effort-related chest pain.

The right ventricle pumps against far lower pressure, so its wall never squeezes hard enough to shut its own vessels. Right coronary flow carries on through systole and is fairly even across the whole cycle.

Venous return follows the arteries back. Most collects into the coronary sinus, a short wide vein lying in the back part of the atrioventricular groove, between the left atrium and the left ventricle. It opens into the right atrium beside the inferior caval opening.

It receives the great cardiac vein from the anterior interventricular groove, the middle from the posterior interventricular groove and the small from the right border.

Figure 6 · The coronary arteries and the veins of the heart

Illustration to be added

Three panels. Panel one: the front of the heart, with the right coronary artery leaving the right aortic sinus, running in the atrioventricular groove and giving the right marginal branch; and the left coronary leaving the left aortic sinus behind the pulmonary trunk, dividing into the anterior interventricular branch down the anterior interventricular groove to the apex and the circumflex turning left. Panel two: the back and diaphragmatic surface, with the right coronary giving the posterior interventricular branch down the posterior interventricular groove, and the coronary sinus lying separately in the back part of the atrioventricular groove between left atrium and left ventricle, opening into the right atrium and receiving the great, middle and small cardiac veins. Panel three: a short-axis section of the ventricles seen from below, divided into three shaded territories -- anterior interventricular, the front wall of the left ventricle and the front two thirds of the septum, in pale red; circumflex, the side wall, in pale gold; right coronary, the inferior wall, the back third of the septum and the whole right ventricular free wall, in pale blue -- with the two interventricular grooves marked as the boundary points between territories. Arteries red, veins blue, muscle brick, navy outlines on white, no text.

The great vessels

The traffic runs in the direction that surprises students most. Pulmonary arteries carry blood low in oxygen; pulmonary veins carry it rich. A vessel is named for direction of travel, never for contents.

The venae cavae empty into the right atrium, and four pulmonary veins into the left. The pulmonary trunk leaves the right ventricle and divides right under the aortic arch, which is why the left pulmonary artery ends up tethered to the arch by the cord described below.

The ascending aorta gives the two coronary arteries and nothing else. That is why the heart wall takes the highest-pressure blood in the body, and takes it before any other organ. The aorta then becomes the arch, which gives the brachiocephalic trunk, the left common carotid and the left subclavian, in that order — so the left subclavian is the last branch before the aorta turns down behind the heart.

The ligamentum arteriosum runs from the pulmonary trunk to the underside of the arch, the remnant of a vessel that bypassed the unused lungs before birth. The left recurrent laryngeal nerve hooks under the arch beside it, which is why a chest problem can change the voice.

What goes wrong here

One word first, because it runs through the rest of this section. When a branch is blocked the muscle it fed dies, and that is an infarction. The wall that dies is simply the wall that branch supplied.

ProblemAnatomy behind itWhat you find
Blocked anterior interventricular branch Front wall of the left ventricle and front of the septum The largest territory of any branch, so the greatest loss of muscle
Blocked right coronary artery Inferior wall and, in most people, both nodes Inferior damage, often with a slow rate or heart block
Blocked circumflex branch Side wall of the left ventricle Lateral damage, the least common of the three
Complete heart block The atrioventricular bundle is the only normal route across the insulating ring Atria and ventricles beat independently and far apart in rate
A leaking mitral valve after infarction The cusps are held by chordae from papillary muscles If a papillary muscle fails, the cusp is unheld and blood escapes backwards
Cardiac tamponade The fibrous sac does not stretch at short notice Pressure rises, the right chambers cannot fill, output falls
Pericarditis The outer layers are supplied by the phrenic nerve Sharp pain behind the sternum, sometimes referred to the shoulder tip or the ridge of the trapezius, easier sitting forward
Cardiac pain felt elsewhere Cardiac sensation enters the cord at upper thoracic levels Pain reported in the chest wall and inner arm, not at the heart

That last row deserves an explanation, because patients ask about it. The heart cannot tell the brain where it is. Its sensory fibres enter the first few thoracic segments, which also carry sensation from the front of the chest and the inner arm, so the brain reports it there. Other fibres run in the vagus nerve, and their connections explain pain in the neck and jaw.

Why a physiotherapist needs this chapter

You will meet these patients again in cardiac rehabilitation. Which artery was involved tells you which wall of muscle was lost. Because the right coronary artery usually supplies both nodes, a blockage there can slow the heart or block conduction as well as killing the inferior wall. And left coronary filling in diastole explains why symptoms appear at one heart rate and not below it.

Where students get this wrong

Placing the heart on the left

It lies centrally, behind the sternum. Two thirds of its bulk is left of the midline and the apex points that way. That is all the "left" there is to it.

Calling the front of the heart the left ventricle

The chamber against the sternum is the right ventricle. The left forms the apex, the left border and the diaphragmatic surface.

Listening over the valve

They are crowded together behind the sternum. You listen downstream, because that is the way the sound travels.

Assuming the pulmonary artery carries oxygenated blood

It does not. The trunk leaves the heart with blood low in oxygen; the pulmonary veins return it rich.

Thinking the left coronary artery fills during systole

The contracting left ventricular wall squeezes its own vessels shut, so most of its filling happens between beats. That is why a fast rate provokes symptoms in a narrowed artery. Do not stretch the rule to the whole heart: the right ventricle squeezes far more gently, and right coronary flow continues through systole.

Treating the conducting system as nerve

It is modified cardiac muscle. Nerves alter the rate the heart chooses; they do not carry the impulse.

Check yourself

Tap a question to see the answer and the reasoning.

Q1. The plane separating the superior from the inferior mediastinum passes through the:
  1. (A) Jugular notch
  2. (B) Sternal angle and the fourth to fifth thoracic disc
  3. (C) Xiphisternal joint
  4. (D) Body of the sixth thoracic vertebra

Answer: (B) It also marks the second costal cartilage, both ends of the aortic arch, and the tracheal bifurcation.

Q2. The descending thoracic aorta, the oesophagus and the thoracic duct all lie in the:
  1. (A) Superior mediastinum
  2. (B) Anterior mediastinum
  3. (C) Middle mediastinum
  4. (D) Posterior mediastinum

Answer: (D) It lies between the pericardium and vertebrae five to twelve.

Q3. Cardiac tamponade develops because the:
  1. (A) Serous pericardium tears
  2. (B) Fibrous pericardium will not stretch at short notice
  3. (C) Heart muscle stiffens
  4. (D) Coronary arteries are compressed first

Answer: (B) Fluid cannot push the tough sac outwards, so pressure rises and the right chambers stop filling.

Q4. Pericardial pain may be felt at the shoulder tip because the pericardium is supplied by the:
  1. (A) Vagus nerve
  2. (B) Intercostal nerves
  3. (C) Phrenic nerve
  4. (D) Sympathetic trunk

Answer: (C) It carries fibres from the third to fifth cervical nerves. Its third and fourth cervical fibres share segments with the supraclavicular nerves, which supply the skin over the shoulder tip.

Q5. The chamber forming most of the anterior surface of the heart is the:
  1. (A) Right atrium
  2. (B) Right ventricle
  3. (C) Left atrium
  4. (D) Left ventricle

Answer: (B) The heart is tilted, so the right ventricle lies closest to the sternum.

Q6. The apex beat is normally felt in the:
  1. (A) Fourth left intercostal space at the sternal edge
  2. (B) Fifth left intercostal space, just medial to the midclavicular line
  3. (C) Fifth right intercostal space
  4. (D) Second left intercostal space

Answer: (B) About nine centimetres from the midline. Further out means an enlarged or displaced heart.

Q7. The mitral valve is heard at the apex rather than over the valve because:
  1. (A) The apex is thinner
  2. (B) Sound is carried in the direction the blood is flowing
  3. (C) The valve moves towards the apex
  4. (D) The mitral valve lies at the apex

Answer: (B) All four are crowded behind the sternum. The mitral valve itself lies behind the left half of the sternum at the fourth costal cartilage. Listening downstream separates them.

Q8. The delay at the atrioventricular node exists so that:
  1. (A) The ventricles contract before the atria
  2. (B) The atria can finish emptying before the ventricles contract
  3. (C) The coronary arteries can fill
  4. (D) The valves can open

Answer: (B) Without the pause the ventricles would squeeze while the atria were still filling them.

Q9. The anterior interventricular branch supplies the front wall of the left ventricle and:
  1. (A) The back third of the septum
  2. (B) The front two thirds of the interventricular septum
  3. (C) The left atrium only
  4. (D) The sinuatrial node

Answer: (B) It is the largest territory of any branch, so a blockage costs the most muscle.

Q10. Most venous blood from the heart wall reaches the right atrium through the:
  1. (A) Superior vena cava
  2. (B) Coronary sinus
  3. (C) Anterior cardiac veins
  4. (D) Inferior vena cava

Answer: (B) It lies in the back part of the atrioventricular groove and opens beside the inferior caval opening.

Quick review

Everything on this page, in one screen

  • The mediastinum holds everything in the chest that is not lung or pleura.
  • The sternal angle plane splits superior from inferior, and marks the second costal cartilage, the aortic arch and the tracheal bifurcation.
  • Below it: anterior, middle (pericardium and heart), posterior.
  • Pericardium: fibrous sac, parietal serous lining, a potential cavity, visceral serous layer on the heart.
  • The fibrous sac will not stretch quickly — hence tamponade; it is fed by the phrenic nerve — hence shoulder-tip pain.
  • The right ventricle lies in front; the left makes the apex, felt in the fifth left space.
  • Atrioventricular cusps are held by chordae and papillary muscles; the half-moon cusps are not. A valve is heard downstream, not where it lies.
  • Conduction: sinuatrial node, atria, atrioventricular node, bundle, bundle branches, Purkinje fibres. The delay is deliberate.
  • Anterior interventricular: front wall and septum. Circumflex: side wall. Right coronary: inferior wall and usually both nodes.
  • Left coronary filling happens mainly in diastole, the resting phase between beats; right coronary flow continues through systole. Return leaves by the coronary sinus.
  • Pulmonary arteries carry blood low in oxygen; the veins carry it rich.

Further reading

BookWhat it adds here
Clinically Oriented Anatomy
Moore, Dalley and Agur
The clearest account of the mediastinum and pericardium.
Gray's Anatomy for Students
Drake, Vogl and Mitchell
Schematic drawings of the chambers, valves and coronary territories.
Clinical Anatomy by Regions
Snell
Surface anatomy of the heart and the valve areas.
Last's Anatomy: Regional and Applied
Sinnatamby
Precise on the great vessels and mediastinal relations.

Reviewed by the Physiotherapist India Team. · Human Anatomy contents