Alveolar surface tension and surfactant

Last updated: November 01, 2022

Alveolar surface tension and surfactant

Physiology Review

Physiology Review

Cardiovascular system anatomy and physiology
Lymphatic system anatomy and physiology
Normal heart sounds
Abnormal heart sounds
Blood pressure, blood flow, and resistance
Resistance to blood flow
Laminar flow and Reynolds number
Compliance of blood vessels
Pressures in the cardiovascular system
Physiological changes during exercise
Cardiovascular changes during hemorrhage
Cardiovascular changes during postural change
Measuring cardiac output (Fick principle)
Cardiac and vascular function curves
Altering cardiac and vascular function curves
Stroke volume, ejection fraction, and cardiac output
Frank-Starling relationship
Pressure-volume loops
Changes in pressure-volume loops
Cardiac work
Cardiac preload
Cardiac afterload
Law of Laplace
Baroreceptors
Renin-angiotensin-aldosterone system
Chemoreceptors
Cardiac conduction system
Action potentials in pacemaker cells
Action potentials in myocytes
Cardiac conduction velocity
Excitability and refractory periods
Cardiac excitation-contraction coupling
Cardiac contractility
ECG basics
ECG normal sinus rhythm
ECG rate and rhythm
ECG intervals
ECG axis
ECG QRS transition
ECG cardiac hypertrophy and enlargement
ECG cardiac infarction and ischemia
Cerebral circulation
Coronary circulation
Control of blood flow circulation
Microcirculation and Starling forces
Human development days 4-7
Hedgehog signaling pathway
Hardy-Weinberg equilibrium
Pharyngeal arches, pouches, and clefts
Growth hormone and somatostatin
Antidiuretic hormone
Synthesis of adrenocortical hormones
Cortisol
Vestibulo-ocular reflex and nystagmus
Eye conditions: Refractive errors, lens disorders and glaucoma: Pathology review
Gastrointestinal hormones
Bile secretion and enterohepatic circulation
Jaundice: Pathology review
Neuromuscular junction and motor unit
Sliding filament model of muscle contraction
Slow twitch and fast twitch muscle fibers
Muscle contraction
Basal ganglia: Direct and indirect pathway of movement
Body fluid compartments
Renal clearance
Glomerular filtration
TF/Px ratio and TF/Pinulin
Measuring renal plasma flow and renal blood flow
Regulation of renal blood flow
Tubular reabsorption and secretion
Tubular secretion of PAH
Tubular reabsorption of glucose
Urea recycling
Proximal convoluted tubule
Loop of Henle
Distal convoluted tubule
Sodium homeostasis
Potassium homeostasis
Phosphate, calcium and magnesium homeostasis
Osmoregulation
Kidney countercurrent multiplication
Vitamin D
Erythropoietin
Physiologic pH and buffers
Buffering and Henderson-Hasselbalch equation
The role of the kidney in acid-base balance
Acid-base map and compensatory mechanisms
Respiratory acidosis
Metabolic acidosis
Plasma anion gap
Respiratory alkalosis
Metabolic alkalosis
Lung volumes and capacities
Anatomic and physiologic dead space
Alveolar surface tension and surfactant
Compliance of lungs and chest wall
Combined pressure-volume curves for the lung and chest wall
Ventilation
Zones of pulmonary blood flow
Regulation of pulmonary blood flow
Pulmonary shunts
Ventilation-perfusion ratios and V/Q mismatch
Breathing cycle
Airflow, pressure, and resistance
Diffusion-limited and perfusion-limited gas exchange
Alveolar gas equation
Oxygen binding capacity and oxygen content
Oxygen-hemoglobin dissociation curve
Carbon dioxide transport in blood
Breathing control
Pulmonary chemoreceptors and mechanoreceptors
Pulmonary changes at high altitude and altitude sickness
Pulmonary changes during exercise

Transcript

Watch video only

The alveoli are the tiny air sacs in the lungs where gas exchange happens. And their walls are lined by a thin film of water, which creates a force at their surface called surface tension.

Surface tension tends to collapse the pulmonary alveoli, and, as you can imagine, this could turn into a big problem - not being able to breathe in.

Luckily, alveolar cells have found a way to counteract surface tension by producing surfactant, which is a phospholipoprotein that reduces the surface tension, keeping the alveoli open so that we can breathe properly.

That being said, take a deep breath, because we’re about to delve into the physics of surface tension.

The water molecules, known as H2O to their friends, stay close together because of hydrogen bonds that form between the negatively charged oxygen ion of one molecule and the positively charged hydrogen ion of another molecule.

Within the bulk of water, the molecules are equally pulled in every direction by neighboring molecules, so the resulting net force is zero.

However, when you add air into the mix, the whole system becomes unbalanced, because at the water-air interface, water molecules are not surrounded by other water molecules.

This creates too many cohesive forces between water molecules at the surface, that pull the water molecules at the surface closer together, making the surface of the water shrink to the minimum surface area possible.

Now, the interior of the alveoli is also spherical, so the net force of surface tension is directed to the center of the alveoli, which tends to collapse the alveolar walls towards the center.

The magnitude of this force is predicted by Laplace law, which states that the pressure collapsing the alveolus is directly proportional to the surface tension generated by molecules of fluid lining the alveolus, and inversely proportional to the radius of the alveoli. So the smaller the alveoli, the larger the collapsing pressure.

Now, when we breathe out, alveolar size decreases, because the air that was inflating it is now expelled from the lungs.

This means that the alveolar radius reduces, which increases the collapsing pressure according to Laplace.

It also means that for inspiration to occur – which is literally trying to inflate the alveoli, it will take too much force to first overcome this collapsing pressure, meaning the entire inspiration process will be quite difficult.

Difficulty in inflating individual lung alveoli results in reduced lung compliance, which is the ability of the lung to stretch and inflate as a whole.

Luckily enough, this doesn’t happen in normal individuals, because human alveoli synthesize a lipoprotein compound called pulmonary surfactant.

The surfactant lines the alveolar walls over the water film, and then reduces the surface tension and thus the collapsing pressure.

Diving deep into this, let’s zoom in and look at a cross-section of the wall of the pulmonary alveoli. It largely consists of type I pneumocytes, which are flat squamous epithelial cells.

These cells are very thin and widespread making up to 97 % of the whole alveolar surface, which ensures an efficient diffusion needed in gas exchange between the alveoli and blood within a surrounding capillary network.

Next to type I pneumocytes lies type II pneumocytes, which are cuboidal cells that contain lamellar bodies - the organelles that secrete pulmonary surfactant.

In humans, lamellar bodies start producing surfactant at 24 to 28 weeks of gestational age, and usually by the week of 35, alveoli have enough surfactant to keep them from collapsing.

Now, let's have a look at the pulmonary surfactant itself. It is a phospholipoprotein complex, consisting mainly of Dipalmitoyl phosphatidylcholine or just DPPC, and some proteins such as surfactant proteins – A and D.

Key Takeaways

Alveolar surface tension is the tension that results from the forces acting on the liquid surfaces of the alveoli. The primary force acting on the liquid surface is due to the cohesive forces between neighboring water molecules.

These forces are called "hydrogen bonds" and they are responsible for water's unique properties, such as its ability to form droplets ( rain, dew, etc.). Surface tension tends to collapse the alveoli, but this is countered by a kind of "coating" that covers the alveolar surface called surfactant. Surfactant reduces the surface tension of water, keeping the alveoli open so that we can breathe easily.

Sources

  1. "Medical Physiology" Elsevier (2016)
  2. "Physiology" Elsevier (2017)
  3. "Human Anatomy & Physiology" Pearson (2018)
  4. "Principles of Anatomy and Physiology" Wiley (2014)
  5. "Beyond Navier–Stokes equations: capillarity of ideal gas" Contemporary Physics (2016)
  6. "Host Defense Functions of Pulmonary Surfactant" Neonatology (2004)
  7. "Multiple Courses of Antenatal Corticosteroids for Preterm Birth Study" JAMA Pediatrics (2013)