Anatomy & Physiology – The Ciculatory system

DENTAL NTA LEVEL 4 • STUDY NOTES

Anatomy & Physiology – The Ciculatory system

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LESSON CONTENTS — 113 SECTIONS
01  CARDIOVASCULAR SYSTEM02  Introduction03  INTRODUCTION04  GENERAL FUNCTIONS05  GENERAL CHARACTERISTICS OF BLOOD CIRCULATION06  HEART07  HEART08  HEART09  Heart and Great Vessels10  External Heart: Anterior View11  LOCATION AND ORIENTATION WITHIN THE THORAX12  LOCATION AND ORIENTATION WITHIN THE THORAX13  LOCATION AND ORIENTATION WITHIN THE THORAX14  LOCATION AND ORIENTATION WITHIN THE THORAX15  HEART CHAMBERS16  ATRIA OF THE HEART17  VENTRICLES OF THE HEART18  Myocardial Thickness and Function19  Thickness of Cardiac Walls20  HEART VALVES21  HEART VALVES22  HEART CHAMBERS & HEART VALVES23  HEART VALVES24  VALVE FUNCTION25  HEART SOUNDS26  FIRST SOUND (S1)27  SECOND SOUND (S2)28  HEART SOUNDS29  HEART SOUNDS30  HEART SOUNDS31  AREAS ON THE THORACIC SURFACE WHERE HEART SOUNDS ARE HEARD MOST CLEARLY.32  PATHWAY OF BLOOD THROUGH THE HEART33  CORONARY CIRCULATION34  CORONARY ARTERIES35  RIGHT CORONARY ARTERY36  RIGHT CORONARY ARTERY37  BRANCHES OF THE RIGHT CORONARY ARTERY38  BRANCHES OF THE RIGHT CORONARY ARTERY39  BRANCHES OF THE RIGHT CORONARY ARTERY40  LEFT CORONARY ARTERIES41  LEFT CORONARY ARTERIES42  BRANCHES OF THE LEFT CORONARY ARTERY43  BRANCHES OF THE LEFT CORONARY ARTERY44  CORONARY ARTERY ANASTOMOSES45  ARTERIAL SUPPLY TO THE CONDUCTING SYSTEM46  ARTERIAL SUPPLY TO THE CONDUCTING SYSTEM47  NORMAL CORONARY BLOOD FLOW48  PHASIC CHANGES IN CORONARY BLOOD FLOW49  FACTORS REGULATING CORONARY BLOOD FLOW50  NEED FOR OXYGEN51  METABOLIC FACTORS52  CORONARY PERFUSION PRESSURE53  NERVOUS FACTORS54  NERVOUS FACTORS55  APPLIED PHYSIOLOGY – CORONARY ARTERY DISEASE56  CONDUCTION SYSTEM OF THE HEART57  INTRODUCTION58  INTRODUCTION59  COMPONENTS OF CONDUCTIVE SYSTEM IN HEART60  SA NODE61  AV node is situated in right posterior portion of intra-atrial septum62  AV NODE63  AV NODE64  BUNDLE OF HIS65  RIGHT AND LEFT BUNDLE BRANCHES66  PURKINJE FIBERS67  THE CONDUCTION SYSTEM OF THE HEART68  THE CONDUCTION SYSTEM OF THE HEART69  THE CONDUCTION SYSTEM OF THE HEART70  THE CONDUCTION SYSTEM OF THE HEART71  FETAL CIRCULATION72  PHYSIOLOGY OF FETAL73  PHYSIOLOGY OF FETAL74  PHYSIOLOGY OF FETAL75  PHYSIOLOGY OF FETAL76  PHYSIOLOGY OF FETAL77  PHYSIOLOGY OF FETAL78  PHYSIOLOGY OF FETAL79  FETAL CIRCULATORY PATHWAYS80  FETAL CIRCULATORY PATHWAYS81  CLOSURE OF FORAMEN82  CLOSURE OF FORAMEN83  CLOSURE OF DUCTUS84  CLOSURE OF DUCTUS85  CLOSURE OF DUCTUS86  CHANGES IN CIRCULATION AND RESPIRATION AFTER BIRTH87  FETAL CIRCULATORY PATHWAYS88  STRUCTURE AND FUNCTIONS OF BLOOD VESSELS89  TYPES OF BLOOD VESSELS90  STRUCTURE OF A BLOOD VESSEL91  Slide 9192  Slide 9293  Slide 9394  Slide 9495  BLOOD FLOW THROUGH TISSUES96  ARTERIES97  Slide 9798  CAPILLARIES99  VEINS100  SYSTEMIC CIRCULATION101  SYSTEMIC VEINS102  HEPATIC PORTAL SYSTEM103  PHYSIOLOGY OF CIRCULATION104  IMPORTANT TERMS105  BLOOD FLOW106  BLOOD PRESSURE107  CARDIAC OUTPUT108  PERIPHERAL RESISTANCE109  SOURCES AFFECTING RESISTANCE110  HORMONAL REGULATION OF BLOOD PRESSURE111  Key Points112  Thanks for listening113  Evaluation
LEARNING SECTION 1CONTENTS ↑

CARDIOVASCULAR SYSTEM

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LEARNING SECTION 2CONTENTS ↑

Introduction

The cardiovascular system, is a complex network of organs and vessels that is responsible for the transportation of blood, nutrients, oxygen, carbon dioxide, hormones, and waste products throughout the body.

It plays a crucial role in maintaining homeostasis, supporting the immune system, and ensuring the proper functioning of various organs and tissues

LEARNING SECTION 3CONTENTS ↑

INTRODUCTION

Functional components of the cardiovascular system

Heart

Blood Vessels

Blood

LEARNING SECTION 4CONTENTS ↑

GENERAL FUNCTIONS

Transportation

Everything transported by the blood

Regulation

Of the cardiovascular system

Intrinsic v extrinsic

Protection

Against blood loss

Production/Synthesis

LEARNING SECTION 5CONTENTS ↑

GENERAL CHARACTERISTICS OF BLOOD CIRCULATION

The circulation is divided into the systemic or peripheral circulation and the pulmonary circulation

Arteries transport blood under high pressure and their muscular walls are thick.

The veins are conduits for transport of blood from tissues back to the heart.

The pressure in the venous system is very low and the walls of the veins are thin

LEARNING SECTION 6CONTENTS ↑

HEART

The heart is a hollow muscular organ whose wall is thickened to act as a regulated pump.

The heart is the major determinant of systemic blood pressure

LEARNING SECTION 7CONTENTS ↑

HEART

APEX

Formed mainly by left ventricle

Apex beat heard here, Located in the 5th intercostal space in the midclavicular line approximately 9cm from the midline.

It is were the sounds of mitral valve can be heard

Point of maximum pulsation

LEARNING SECTION 8CONTENTS ↑

HEART

The cardiac wall consists of three layers

Endocardium, consisting of an endothelial lining and sub endothelial connective tissue.

Myocardium, a functional syncytium of striated cardiac muscle fibers forming three major types of cardiac muscle: atrial muscle, ventricular muscle, and specialized excitatory and conductive muscle fibers.

Pericardium. The epicardium, the visceral layer of the pericardium, is a low-friction surface lined by a mesothelium in contact with the parietal pericardial space.

LEARNING SECTION 9CONTENTS ↑

Heart and Great Vessels

Vessels returning blood to the heart include

Superior and inferior venae cavae

Right and left pulmonary veins

Vessels conveying blood away from the heart include

Pulmonary trunk, which splits into right and left pulmonary arteries

Ascending aorta (three branches) –

Brachiocephalic

Left common carotid

Left Subclavian artery

LEARNING SECTION 10CONTENTS ↑

External Heart: Anterior View

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LOCATION AND ORIENTATION WITHIN THE THORAX

The heart’s modest size is Only about the size of a fist

Typically it weighs between 250 and 350 grams—less than a pound.

The heart lies in the thorax posterior to the sternum and costal cartilages and rests on the superior surface of the diaphragm

It is the largest organ in the mediastinum, which is the region between the two lungs (and pleural cavities)

LEARNING SECTION 12CONTENTS ↑

LOCATION AND ORIENTATION WITHIN THE THORAX

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LOCATION AND ORIENTATION WITHIN THE THORAX

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LOCATION AND ORIENTATION WITHIN THE THORAX

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LEARNING SECTION 15CONTENTS ↑

HEART CHAMBERS

The four heart chambers are

Right atrium

Left atrium

Right ventricles

Left ventricles

LEARNING SECTION 16CONTENTS ↑

ATRIA OF THE HEART

Atria are the receiving chambers of the heart

Each atrium has a protruding auricle

Pectinate muscles mark atrial walls

Blood enters right atrium from superior and inferior venae cavae and coronary sinus

Blood enters left atrum from pulmonary veins

LEARNING SECTION 17CONTENTS ↑

VENTRICLES OF THE HEART

Ventricles are the discharging chambers of the heart

Papillary muscles and trabeculae carneae muscles mark ventricular walls

Right ventricle pumps blood into the pulmonary trunk

Left ventricle pumps blood into the aorta

LEARNING SECTION 18CONTENTS ↑

Myocardial Thickness and Function

Thickness of myocardium varies according to the function of the chamber

Atria are thin walled, deliver blood to adjacent ventricles

Ventricle walls are much thicker and stronger

right ventricle supplies blood to the lungs (little flow resistance)

left ventricle wall is the thickest to supply systemic circulation

LEARNING SECTION 19CONTENTS ↑

Thickness of Cardiac Walls

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HEART VALVES

The heart valves—the paired atrioventricular (AV) and semilunar valves—enforce the one-way flow of blood through the heart, from the atria to the ventricles and into the great arteries that leave the superior part of the heart.

Each heart valve consists of two or three cusps, which are flaps of endocardium reinforced by cores of dense connective tissue

LEARNING SECTION 21CONTENTS ↑

HEART VALVES

Located at the junctions of the atria and their respective ventricles are the atrioventricular valves:

The right atrioventricular (tricuspid) valve, which has three cusps

The left atrioventricular (bicuspid) valve, or mitral valve which has only two cusps.

LEARNING SECTION 22CONTENTS ↑

HEART CHAMBERS & HEART VALVES

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HEART VALVES

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VALVE FUNCTION

Heart valves open (to allow blood flow) and close (to prevent the backflow of blood) in response to differences in blood pressure on each side of the valves.

The two atrioventricular valves prevent the backflow of blood into the atria during contraction of the ventricle

The two semilunar valves prevent backflow from the great arteries into the ventricles

LEARNING SECTION 25CONTENTS ↑

HEART SOUNDS

The closing of the valves causes vibrations in the adjacent blood and heart walls that account for the familiar “lub dup” sounds of each heartbeat

The “lub” sound is produced by the closing of the AV valves at the start of ventricular contraction; the “dub” is produced by the closing semilunar valves at the end of ventricular contraction

LEARNING SECTION 26CONTENTS ↑

FIRST SOUND (S1)

This corresponds to mitral and tricuspid valve closure at the onset of systole

LEARNING SECTION 27CONTENTS ↑

SECOND SOUND (S2)

This corresponds to aortic and pulmonary valve closure following ventricular ejection

LEARNING SECTION 28CONTENTS ↑

HEART SOUNDS

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HEART SOUNDS

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HEART SOUNDS

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AREAS ON THE THORACIC SURFACE WHERE HEART SOUNDS ARE HEARD MOST CLEARLY.

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PATHWAY OF BLOOD THROUGH THE HEART

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CORONARY CIRCULATION

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CORONARY ARTERIES

Heart muscle is supplied by two coronary arteries which encircle the heart in the manner of a crown.

Latin word corona=crown

Two coronary arteries, namely

Right coronary artery

Left coronary artery

LEARNING SECTION 35CONTENTS ↑

RIGHT CORONARY ARTERY

Originates from the right aortic sinus of the ascending aorta

It passes anteriorly and to the right between the right auricle and the pulmonary trunk and then descends vertically in the coronary sulcus, between the right atrium and right ventricle

Right coronary artery supplies whole of the right ventricle and posterior portion of left ventricle.

LEARNING SECTION 36CONTENTS ↑

RIGHT CORONARY ARTERY

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BRANCHES OF THE RIGHT CORONARY ARTERY

The right conus artery

Supplies the anterior surface of the pulmonary conus (infundibulum of the right ventricle) and the upper part of the anterior wall of the right ventricle

The anterior ventricular branches

Are two or three in number and supply the anterior surface of the right ventricle.

The posterior ventricular branches

Are usually two in number and supply the

diaphragmatic surface of the right ventricle.

LEARNING SECTION 38CONTENTS ↑

BRANCHES OF THE RIGHT CORONARY ARTERY

The posterior interventricular (descending) artery

It supplies branches to the posterior part of the ventricular septum but not to the apical part, which receives its supply from the anterior interventricular branch of the left coronary artery.

The atrial branches

Supply the anterior and lateral surfaces of the right atrium. One branch supplies the posterior surface of both the right and left atria.

Sinu-atrial nodal branch, which passes posteriorly around the superior vena cava to supply the Sinu- atrial node

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BRANCHES OF THE RIGHT CORONARY ARTERY

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LEFT CORONARY ARTERIES

The left coronary artery originates from the left aortic sinus of the ascending aorta.

It passes between the pulmonary trunk and the left auricle before entering the coronary sulcus.

Left coronary artery supplies mainly the anterior and lateral parts of left ventricle.

LEARNING SECTION 41CONTENTS ↑

LEFT CORONARY ARTERIES

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BRANCHES OF THE LEFT CORONARY ARTERY

The anterior interventricular (descending) branch supplies

The right and left ventricles with numerous

branches that also supply the anterior part of the ventricular septum.

The circumflex artery It winds around the

left margin of the heart in the atrioventricular groove. It has the following branches

Left marginal artery

Anterior ventricular and posterior ventricular branches

Atrial branches

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BRANCHES OF THE LEFT CORONARY ARTERY

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CORONARY ARTERY ANASTOMOSES

Anastomoses between the terminal branches of the right and left coronary arteries (collateral circulation) exist, but they are usually not large enough to provide an adequate blood supply to the cardiac muscle should one of the large branches become blocked by disease.

LEARNING SECTION 45CONTENTS ↑

ARTERIAL SUPPLY TO THE CONDUCTING SYSTEM

The sinuatrial node is usually supplied by the right but sometimes by the left coronary artery.

The atrioventricular node and the atrioventricular bundle are supplied by the right coronary artery.

The RBB of the atrioventricular bundle is supplied by the left coronary artery;

The LBB is supplied by the right and left coronary arteries

LEARNING SECTION 46CONTENTS ↑

ARTERIAL SUPPLY TO THE CONDUCTING SYSTEM

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NORMAL CORONARY BLOOD FLOW

Normal blood flow through coronary circulation is about 200 mL/minute.

It forms 4% of cardiac output.

It is about 65 to 70 mL/minute/100 g of cardiac muscle.

LEARNING SECTION 48CONTENTS ↑

PHASIC CHANGES IN CORONARY BLOOD FLOW

Blood flow through coronary arteries is not constant.

It decreases during systole and increases during diastole

Intramural vessels or final arteries supplying

myocardium are perpendicular to the cardiac muscles.

During systole, the intramural vessels are compressed and blood flow is reduced.

During diastole, the compression is released and

the blood vessels are distended. So, the blood flow increases.

LEARNING SECTION 49CONTENTS ↑

FACTORS REGULATING CORONARY BLOOD FLOW

Autoregulation

Coronary blood flow is not affected when

mean arterial pressure varies between 60 and 150 mm Hg

Several factors are involved in the autoregulation mechanism

Need for oxygen

Metabolic factors

Coronary perfusion pressure

Nervous factors.

LEARNING SECTION 50CONTENTS ↑

NEED FOR OXYGEN

Amount of blood passing through coronary circulation is directly proportional to the consumption of oxygen by cardiac muscle.

Thus, the need for oxygen, i.e. hypoxia immediately causes coronary vasodilatation and increases the blood flow to heart

LEARNING SECTION 51CONTENTS ↑

METABOLIC FACTORS

Coronary vasodilatation during hypoxic

conditions occurs because of some

metabolic products, which increase the coronary blood flow by vasodilatation.

Metabolic Products which Increase the Coronary Blood Flow

Adenosine

Potassium

Hydrogen

Carbon dioxide

Adenosine phosphate compounds.

LEARNING SECTION 52CONTENTS ↑

CORONARY PERFUSION PRESSURE

Perfusion pressure is the balance between mean arterial pressure and venous pressure

coronary perfusion pressure is the balance between mean arterial pressure in aorta and the right atrial pressure.

Since right arterial pressure is low, the mean arterial pressure becomes the major factor that maintains the coronary blood flow

LEARNING SECTION 53CONTENTS ↑

NERVOUS FACTORS

Coronary blood vessels are innervated both by parasympathetic and sympathetic divisions of autonomic nervous system.

Stimulation of sympathetic nerves increases the rate and force of contraction of heart.

This in turn, causes liberation of more metabolites which dilate the blood vessels and increase the coronary blood flow.

LEARNING SECTION 54CONTENTS ↑

NERVOUS FACTORS

Similarly, when parasympathetic nerves are stimulated, the cardiac functions are inhibited and the production of metabolites is less.

Coronary blood flow decreases

LEARNING SECTION 55CONTENTS ↑

APPLIED PHYSIOLOGY – CORONARY ARTERY DISEASE

Coronary artery disease (CAD) is the heart disease that is caused by inadequate blood supply to cardiac muscle due to occlusion of coronary artery.

It is also called coronary heart disease.

Myocardial infarction

Cardiac pain – angina pectoris

LEARNING SECTION 56CONTENTS ↑

CONDUCTION SYSTEM OF THE HEART

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INTRODUCTION

Conductive system of the heart is formed by the modified cardiac muscle fibers.

These fibers are the specialized cells, which conduct the impulses rapidly from SA node to the ventricles.

Conductive tissues of the heart are also called the junctional tissues.

LEARNING SECTION 58CONTENTS ↑

INTRODUCTION

The contractions of the various parts of the heart have to be carefully synchronized.

It is the prime function of the electrical conduction system to ensure this synchronization.

The atria should contract first to fill the ventricles before the ventricles pump the blood in the circulation.

LEARNING SECTION 59CONTENTS ↑

COMPONENTS OF CONDUCTIVE SYSTEM IN HEART

Sinoatrial (SA) node

Atrioventricular (AV) node

Bundle of His (and bundle branches)

Purkinje fibers.

LEARNING SECTION 60CONTENTS ↑

SA NODE

SA node is situated in right atrium, just below the opening of superior vena cava.

The sinus node (also called sinoatrial node) is a small, flattened, ellipsoid strip of specialized cardiac muscle about 3 millimeters wide, 15 millimeters long, and 1 millimeter thick.

LEARNING SECTION 61CONTENTS ↑

AV node is situated in right posterior portion of intra-atrial septum

Impulses from SA node are conducted throughout right and left atria.

Impulses also reach the AV node via some specialized fibers called internodal fibers

AV NODE

LEARNING SECTION 62CONTENTS ↑

AV NODE

The excitation starts in the sinus node consisting of special pacemaker cells.

The electrical impulses spread over the right and left atria.

The AV node is normally the only electrical connection between the atria and the ventricles.

The impulses slow down as they travel through the AV node to reach the bundle of His.

LEARNING SECTION 63CONTENTS ↑

AV NODE

There are three types of internodal fibers

Anterior internodal fibers of Bachman

Middle internodal fibers of Wenckebach

Posterior internodal fibers of Thorel.

All these fibers from SA node converge on AV node and interdigitate with fibers of AV node.

LEARNING SECTION 64CONTENTS ↑

BUNDLE OF HIS

The bundle of His, the distal part of the AV junction, conducts the impulses rapidly to the bundle branches.

LEARNING SECTION 65CONTENTS ↑

RIGHT AND LEFT BUNDLE BRANCHES

The fast conducting right and left bundle branches subdivide into smaller and smaller branches, the smallest ones connecting to the Purkinje fibers.

LEARNING SECTION 66CONTENTS ↑

PURKINJE FIBERS

The Purkinje fibers spread out all over the ventricles beneath the endocardium and they bring the electrical impulses very fast to the myocardial cells.

LEARNING SECTION 67CONTENTS ↑

THE CONDUCTION SYSTEM OF THE HEART

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THE CONDUCTION SYSTEM OF THE HEART

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THE CONDUCTION SYSTEM OF THE HEART

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THE CONDUCTION SYSTEM OF THE HEART

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LEARNING SECTION 71CONTENTS ↑

FETAL CIRCULATION

Fetal circulation is the circulatory system of a fetus.

The term usually encompasses the entire fetoplacental circulation, which includes the umbilical cord and the blood vessels within the placenta that carry fetal blood

LEARNING SECTION 72CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

Maternal blood is the source of oxygen and food to fetus through placenta because the fetal lungs and digestive system are non-functional. foetal blood reaches the placenta via two umbilical arteries and returns by one umbilical vein.

LEARNING SECTION 73CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

Blood from the placenta is carried to the foetus by the umbilical vein.

About half of this enters the foetal ductus venosus to bypass the liver carried to the inferior vena cava and remain half enters the liver proper from the inferior border of the liver.

The blood then moves to the right atrium of the heart.

LEARNING SECTION 74CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

In the foetus, there is an opening between the right and left atrium (the foramen ovale), and most of the blood flows through this hole directly into the left atrium from the right atrium, thus bypassing pulmonary circulation.

LEARNING SECTION 75CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

Some of the blood entering the right atrium does not pass directly to the left atrium through the foramen ovale, but enters the right ventricle and is pumped into the pulmonary artery

In the foetus, there is a special connection between the pulmonary artery and the aorta, called the ductus arteriosus, which directs most of this blood away from the lungs

LEARNING SECTION 76CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

The continuation of this blood flow is into the left ventricle, and from there it is pumped through the aorta into the body

At birth, when the infant breathes for the first time, there is a decrease in the resistance in the pulmonary vasculature, which causes the pressure in the left atrium to increase relative to the pressure in the right atrium.

This leads to the closure of the foramen ovale, which is hence referred to as the fossa ovalis.

LEARNING SECTION 77CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

Additionally, the increase in the concentration of oxygen in the blood leads to a decrease in prostaglandins, causing closure of the ductus arteriosus.

These closures prevent blood from bypassing pulmonary circulation, and therefore allow the neonate’s blood to become oxygenated in the newly operational lungs

LEARNING SECTION 78CONTENTS ↑

PHYSIOLOGY OF FETAL

CIRCULATION

12.After closure, the duct becomes the ligamentum arteriosum, which connects the left pulmonary artery (near its origin) with the aortic arch. The ductus venosus shuts down by an unknown mechanism, its fibrous remnant is the ligamentum venosum

LEARNING SECTION 79CONTENTS ↑

FETAL CIRCULATORY PATHWAYS

The fetal circulation consists of parallel systemic and pulmonary pathways in contrast to the normal postnatal circulation, in which the systemic and pulmonary circulations exist in series

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FETAL CIRCULATORY PATHWAYS

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CLOSURE OF FORAMEN

OVALE

When blood starts flowing through the pulmonary circulation, the oxygenated blood from the lungs returns to left atrium.

It causes increase in the left atrial pressure. Simultaneously, due to stoppage of blood from placenta, pressure in inferior vena cava is decreased It leads to fall in right atrial pressure.

LEARNING SECTION 82CONTENTS ↑

CLOSURE OF FORAMEN

OVALE

Thus, the pressure in right atrium is less and the pressure in left atrium is already high.

This causes the closure of foramen ovale.

Within few days after birth, the foramen ovale closes completely and fuses with the atrial wall.

LEARNING SECTION 83CONTENTS ↑

CLOSURE OF DUCTUS

VENOSUS

Due to the contraction of smooth muscle near junction between umbilical vein and ductus venosus, the constriction and closure of ductus venosus occurs.

Later, the ductus venosus becomes fibrous band.

LEARNING SECTION 84CONTENTS ↑

CLOSURE OF DUCTUS

VENOSUS

Ductus arteriosus starts closing due to narrowing.

It closes completely after 2 days and the adult type of circulation starts.

In some rare cases, the ductus arteriosus does not close.

LEARNING SECTION 85CONTENTS ↑

CLOSURE OF DUCTUS

VENOSUS

It remains intact producing a continuous murmur.

This condition with intact ductus arteriosus is known as patent ductus arteriosus

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CHANGES IN CIRCULATION AND RESPIRATION AFTER BIRTH

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FETAL CIRCULATORY PATHWAYS

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STRUCTURE AND FUNCTIONS OF BLOOD VESSELS

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TYPES OF BLOOD VESSELS

Arteries – vessels that transport blood away from the heart

Veins – return blood back to the heart

Capillaries – microscopic blood vessels that allow exchanges between blood and tissues

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STRUCTURE OF A BLOOD VESSEL

Tunica externa (adventitia) – outermost layer made of loose connective tissue. Serves to anchor, protect and prevent overstretching.

Tunica media – middle layer composed of smooth muscle; functions in dilation and constriction of blood vessels.

Tunica interna(intima) – innermost layer made of endothelium (s.squamous epithelium)

LEARNING SECTION 91CONTENTS ↑

Slide 91

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BLOOD FLOW THROUGH TISSUES

From the heart blood flows into

Aorta

Arteries

Arterioles

Capillaries

Venules

Veins

Superior/ Inferior Vena Cava

Back to the heart

LEARNING SECTION 96CONTENTS ↑

ARTERIES

Elastic (conducting) arteries

Larger arteries

Muscular ( distributing) arteries

Medium arterties

Arterioles

Tiny, tiny arteries

Metarteriole

LEARNING SECTION 97CONTENTS ↑

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LEARNING SECTION 98CONTENTS ↑

CAPILLARIES

Microscopic vessels that connect arterioles and Venules.

Walls consist of a single layer of simple squamous epithelial cells that allow the exchange of gases.

Precapillary sphincters regulate blood flow.

Continuous/Fenestrated capillaries

LEARNING SECTION 99CONTENTS ↑

VEINS

Venules merge to form veins.

Have 3 distinct layers; thinner walled than arteries due to thin tunica interna and media.

Large lumens and posses valves.

Varicose veins.

Blood reservoir

LEARNING SECTION 100CONTENTS ↑

SYSTEMIC CIRCULATION

The aorta and its major branches

Arterial supply to neck and head

Arterial supply to upper extremities

Arterial supply to thorax

Arterial supply to abdomen

Arterial supply to pelvic region and lower extremities

LEARNING SECTION 101CONTENTS ↑

SYSTEMIC VEINS

Venous drainage of the head and neck

Major tributaries of the inferior vena cava

Venous drainage of the upper extremities

Venous drainage of the lower extremities

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HEPATIC PORTAL SYSTEM

Routes blood from the stomach, spleen, pancreas, small and large intestines to the liver.

Blood from these structures all drain into the hepatic portal vein, then into the liver.

Blood is returned to the inferior vena cava via the hepatic vein

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PHYSIOLOGY OF CIRCULATION

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IMPORTANT TERMS

Blood Flow

Blood pressure

Resistance

LEARNING SECTION 105CONTENTS ↑

BLOOD FLOW

Blood flow – is the amount of blood flowing through a tissue in a given period of time.

Velocity of blood flow is inversely related to the diameter of the blood vessel.

Blood flows most slowly in areas of greatest width

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BLOOD PRESSURE

Force that the blood exerts against the walls of a blood vessels.

Factors affecting BP include cardiac output, blood volume, viscosity, resistance, and the elasticity of the arteries.

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CARDIAC OUTPUT

CO=Stroke volume X Heart Rate

Any factor that increases SV or HR will increase blood pressure

LEARNING SECTION 108CONTENTS ↑

PERIPHERAL RESISTANCE

Resistance to blood flow due to the force of friction between vessel wall and blood.

Resistance affected by blood viscosity, vessel length and vessel radius.

LEARNING SECTION 109CONTENTS ↑

SOURCES AFFECTING RESISTANCE

Blood viscosity- how thick or thin the blood is. Measured by hematocrit.

Vessel length- longer the vessel, the greater the resistance, the greater the BP

Vessel radius- smaller the vessel the greater the resistance

LEARNING SECTION 110CONTENTS ↑

HORMONAL REGULATION OF BLOOD PRESSURE

Renin- angiotensin pathway

Angiotensin II – powerful vasoconstrictor thus raising resistance.

Stimulates secretion of aldosterone from the adrenal gland promoting sodium retention.

ADH – antidiuretic hormone from the pituitary causing the kidneys to reabsorb more water

LEARNING SECTION 111CONTENTS ↑

Key Points

The function of the heart is to maintain a constant circulation of blood throughout the body.

Cardiac cycle is the term referring to all or any of the events related to the flow of blood that occurs from the beginning of one heartbeat to the beginning of the next.

During ventricular systole, there is closure of atrioventricular valves, producing the first heart sound.

While the second heart sound is produced by closure of aortic and pulmonary valves during diastole.

The frequency of the cardiac cycle is the heart rate.

Cardiac output = stroke volume X heart rate.

LEARNING SECTION 112CONTENTS ↑

Thanks for listening

References• Seeley, R. R., Stephens, T. D., &Tate, P. (2003). Anatomy and Physiology. New York:McGraw-Hill.• Shier, A., Butler, J., & Lewis, R. (2004). Hole’s Human Anatomy & Physiology. NewYork: McGraw-Hill.• Standring, S. (2008). Grays’s Anatomy The anatomical basis of clinical practice. UnitedKingdom: Churchill Livingstone Elservier

LEARNING SECTION 113CONTENTS ↑

Evaluation

What is cardiac circle?

What is the meaning of diastole?

What is the meaning of systole?

Mention 3 factors affecting the heart rate

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