Gas exchange and transport in humans
IB Biology SLΒ· 5 min read
1. Structure of the Gas Exchange Systemβ β ββββ± 15 min
Air travels through a series of conducting structures before reaching the site of gas exchange: nasal cavity β pharynx β larynx β trachea β bronchi β bronchioles β alveoli. Conducting structures warm, filter, and moisten air but do not exchange gas themselves.
Alveoli
Tiny, thin-walled air sacs that are the exclusive site of gas exchange between air and blood in the lungs.
Example:
Human lungs have ~480 million alveoli, providing ~70 mΒ² of surface area for gas exchange.
Identify three adaptations of alveoli that make them efficient for gas exchange, and explain each adaptation.
- 1
- Large total surface area
- 2
The combined surface area of all alveoli maximizes the total rate of diffusion of respiratory gases.
- 3
- Walls made of a single layer of squamous epithelium
- 4
This creates a very short diffusion distance between air in the alveolus and blood in surrounding capillaries, increasing diffusion rate.
- 5
- Dense capillary network
- 6
Constant flow of blood maintains a steep concentration gradient: deoxygenated blood continuously arrives to pick up oxygen, and oxygenated blood is removed, keeping diffusion fast.
2. Mechanism of Ventilationβ β β βββ± 15 min
Ventilation is the movement of air in and out of the lungs, required to refresh alveolar air and maintain the concentration gradient needed for gas exchange. It follows Boyle's Law: for a fixed amount of gas, pressure and volume are inversely related.
Ventilation
Bulk flow of air driven by pressure changes in the thoracic cavity, consisting of inspiration (inhalation) and expiration (exhalation).
Explain how resting inspiration occurs in humans.
- 1
- The external intercostal muscles and diaphragm contract
- 2
Contraction flattens the diaphragm downwards and pulls the rib cage up and out, increasing the volume of the thoracic cavity.
- 3
- Pressure in the alveoli drops below atmospheric pressure
- 4
By Boyle's Law, increasing volume decreases pressure, creating a pressure gradient between the atmosphere and the lungs.
- 5
- Air flows into the lungs
- 6
Air moves down the pressure gradient until alveolar pressure equals atmospheric pressure, stopping inflow.
Resting expiration: Passive process: inspiratory muscles relax, thoracic volume decreases, pressure rises above atmospheric pressure, air flows out
Active expiration (exercise): Requires contraction of abdominal muscles to push the diaphragm up further, increasing air outflow
3. Transport of Respiratory Gasesβ β β βββ± 20 min
After oxygen diffuses into blood from alveoli, it is transported to respiring tissues, and waste carbon dioxide is transported back to the lungs for exhalation. Gases are transported in different forms depending on their solubility and reactivity.
Hemoglobin
A quaternary protein in red blood cells that can bind up to four oxygen molecules, greatly increasing the oxygen carrying capacity of blood.
State and describe the three forms of carbon dioxide transport in human blood, including approximate percentages for each.
- 1
- Dissolved in blood plasma (β7-10%)
- 2
A small fraction of carbon dioxide is directly soluble in plasma and carried in this form.
- 3
- Bound to hemoglobin as carbaminohemoglobin (β20-23%)
- 4
Carbon dioxide binds to the amino groups on the globin (protein) chains of hemoglobin (not the heme group that binds oxygen), forming carbaminohemoglobin for transport.
- 5
- As bicarbonate ions (β70%)
- 6
Most carbon dioxide diffuses into red blood cells, reacts with water catalyzed by the enzyme carbonic anhydrase to form carbonic acid, which dissociates into hydrogen ions and bicarbonate ions. Bicarbonate then diffuses out into plasma for transport.
4. Oxygen Dissociation Curve and Bohr Shiftβ β β β ββ± 15 min
Hemoglobin's affinity for oxygen changes with partial pressure of oxygen and pH. This is shown by the oxygen dissociation curve, which plots percentage of hemoglobin saturated with oxygen against partial pressure of oxygen.
Explain how the Bohr shift adapts oxygen delivery to the needs of actively respiring tissues.
- 1
- Active tissues produce more carbon dioxide
- 2
High rates of aerobic respiration produce more COβ, which lowers blood pH by forming carbonic acid.
- 3
- Lower pH reduces hemoglobin's affinity for oxygen
- 4
This causes the entire oxygen dissociation curve to shift to the right, an effect called the Bohr shift.
- 5
- More oxygen is unloaded in active tissues
- 6
At the partial pressure of oxygen found in active tissues, a right-shifted curve means hemoglobin holds less oxygen, so more oxygen is released to meet the high demand of respiring cells.
5. Common Pitfalls
Wrong move:
Confusing ventilation with gas exchange
Why:
Ventilation is bulk movement of air, gas exchange is diffusion of Oβ/COβ across cell membranes
Correct move:
Ventilation maintains the concentration gradient required for gas exchange; they are separate processes
Wrong move:
Claiming most oxygen is transported dissolved in plasma
Why:
Only ~1.5% of oxygen is soluble in plasma
Correct move:
~98.5% of oxygen is bound to hemoglobin in red blood cells
Wrong move:
Stating expiration requires muscle contraction at rest
Why:
Resting expiration is a passive process that does not require energy
Correct move:
Only active expiration during exercise requires muscle contraction; resting expiration occurs when inspiratory muscles relax
Wrong move:
Claiming carbon dioxide binds to the heme group of hemoglobin
Why:
Oxygen binds the heme group, carbon dioxide binds a different site
Correct move:
Carbon dioxide binds to the globin (protein) chains of hemoglobin to form carbaminohemoglobin
Wrong move:
Thinking the Bohr shift increases hemoglobin's affinity for oxygen
Why:
The shift right corresponds to lower affinity, not higher
Correct move:
Lower pH from high COβ reduces affinity, allowing more oxygen to be released to active tissues
6. Quick Reference Cheatsheet
Component/Process | Key Exam Fact |
|---|---|
Alveoli adaptations | Large SA, 1-cell thick wall, dense capillaries, moist surface |
Resting inspiration | Diaphragm/external intercostals contract β volume up β pressure down β air in |
Resting expiration | Inspiratory muscles relax β volume down β pressure up β air out |
Oxygen transport | ~98.5% bound to Hb, ~1.5% dissolved in plasma |
Carbon dioxide transport | ~70% HCOββ», ~20% carbaminoHb, ~10% dissolved |
Bohr shift | Low pH shifts curve right β more Oβ released to active tissues |
When this came up on past exams
AI-estimated based on syllabus patterns β cross-check with official past papers for accuracy. Use only as revision-focus signals.
- 2022 Β· Paper 1
Alveoli adaptation multiple choice
- 2023 Β· Paper 2
Gas transport essay question
- 2021 Β· Paper 1
Bohr shift concept check
What's Next
This sub-topic forms the foundation of human respiratory physiology, explaining how the body supplies oxygen to cells for aerobic respiration and removes waste carbon dioxide. This knowledge connects to understanding how the body adapts to different conditions like exercise and high altitude, and how diseases such as emphysema and asthma impair gas exchange. It also integrates closely with other topics in IB Biology SL, including the structure and function of the circulatory system, cell respiration, and whole-body homeostasis. Explore the related links below to build a complete understanding of how human organ systems work together.
