Respiratory System – NDA Biology Notes

Exam Relevance: High Frequency | Lactic Acid in Anaerobic Respiration, Pyruvate 3-Carbon, ATP Energy Currency, Diaphragm Contracts on Inhalation, Bronchioles No Cartilage, Frog Skin Respiration

Reading Time: 30–35 minutes | Last Updated: 2026

Students often confuse breathing with respiration. They are not the same thing. Breathing is the mechanical process of moving air in and out of the lungs. Respiration is the chemical process of releasing energy from food molecules within cells, occurring at the cellular level in every cell of every living organism.

For the NDA exam, the respiratory chapter delivers consistent, precise questions: the lactic acid chain in anaerobic respiration (tested six times across papers), pyruvate as a 3-carbon molecule, ATP as the energy currency, the diaphragm contracting during inhalation, bronchioles lacking cartilage, smooth muscle vs biceps, Bowman’s capsule as renal, not respiratory, and frog skin respiration. Every section below marks exactly where exam questions originate.

1. What is Respiration?

ProcessTypeWhere It HappensWhat It Does
BreathingPhysical (mechanical)Lungs, diaphragm, intercostal musclesMoves air in and out of the lungs
Cellular RespirationChemicalInside every cellBreaks down glucose to release energy (as ATP)

Every cell needs energy to survive. That energy comes from breaking down glucose. Respiration is how that breakdown happens, and it occurs in every living cell, whether or not the organism has lungs.

2. ATP: The Cellular Energy Currency

When glucose is broken down during respiration, the energy is not released directly into the cell. It would be too much, too fast. It would damage the cell. Instead, the energy is captured in a molecule called ATP (Adenosine Triphosphate).

ATP is the universal energy currency. Every energy-requiring process in every living cell is powered by ATP.

MoleculeWhat It IsRole
ATP (Adenosine Triphosphate)Universal cellular energy currencyPowers all energy-requiring processes in cells; releases energy when hydrolysed to ADP
GlucoseThe fuelBroken down by respiration to MAKE ATP: it is NOT ATP itself
ADP (Adenosine Diphosphate)Discharged form of ATPATP → ADP after releasing energy; recharged back to ATP by respiration
Pyruvic acidMetabolic intermediateAn intermediate in glucose breakdown: NOT the energy currency

When a cell needs energy, it breaks a bond in ATP, releasing the energy and converting ATP to ADP. The cell then uses respiration to regenerate ATP from ADP.

3. Aerobic Respiration: With Oxygen

In aerobic respiration, glucose is completely broken down in the presence of oxygen to produce carbon dioxide, water, and a large amount of ATP.

Glucose  +  Oxygen  →  Carbon dioxide  +  Water  +  ATP (large yield)

This process happens in the mitochondria, specifically at the inner mitochondrial membrane where ATP synthesis occurs. This is why mitochondria are called the powerhouse of the cell. Aerobic respiration is the normal mode when oxygen supply is adequate.

4. Anaerobic Respiration: The Lactic Acid Chain

This is the most tested topic in the chapter, tested six times across papers from different angles. Learn it as one complete, connected chain.

When Does Anaerobic Respiration Happen?

During intense or prolonged exercise, muscles need large amounts of energy very quickly. The heart and lungs cannot deliver oxygen to muscle cells fast enough to meet this demand. When oxygen supply becomes insufficient, muscle cells switch from aerobic to anaerobic respiration.

IMPORTANT The complete anaerobic respiration chain in human muscle: Step 1: Glucose is broken down into pyruvate (pyruvic acid): a 3-carbon molecule. This step (glycolysis) occurs in the cytoplasm and produces a small amount of ATP.   Step 2: In the absence of sufficient oxygen, the enzyme lactate dehydrogenase converts pyruvate into lactic acid.  [NDA 2025-I] Step 3: Lactic acid accumulates in the muscle cells, creating an acidic environment. Step 4: The acid interferes with normal muscle function → leading to muscular fatigue, a burning sensation, cramps, and pain.  [NDA 2009-II] Summary chain: Insufficient O₂ → anaerobic respiration → Glucose → Pyruvate (3-carbon) → Lactic acid → accumulates in muscle → cramps and fatigue

The End Product: Lactic Acid, Not Pyruvate

Lactic acid is the end product of anaerobic respiration in human muscles, not pyruvic acid, not ethanol, not acetic acid.  [NDA 2006-I]

SubstanceIn Anaerobic RespirationIs It the End Product?Why Students Confuse It
Pyruvic acid (pyruvate)The starting material: glucose → pyruvate firstNO: it is the PRECURSOR, not the end productAppears in the same chain; students confuse precursor with product
Lactic acidConverted FROM pyruvate by lactate dehydrogenaseYES: ACCUMULATES in muscle, causes cramps [NDA 2009-I]This is the correct answer
Ethanol (alcohol)Product of anaerobic fermentation in YEASTNO : NOT in human musclesStudents confuse yeast fermentation with human muscle metabolism
CO₂Produced in aerobic respiration (not primarily anaerobic)NOT the primary end product of muscle anaerobic respirationWrong context: CO₂ is an aerobic by-product

Pyruvic acid is NOT the cause of muscle cramps. Lactic acid is. Pyruvate appears before lactic acid in the chain. It is the precursor, not the final product. Pyruvate does not accumulate significantly in muscle tissue during exercise.

5. Respiratory Structures: Anatomy

The Pathway of Air

Nose/Mouth  →  Pharynx  →  Larynx  →  Trachea  →  Bronchi  →  Bronchioles  →  Alveoli

Alveoli are tiny air sacs at the end of the bronchioles. They are the site of gas exchange. Oxygen diffuses from alveoli into the blood, and carbon dioxide diffuses from blood into the alveoli. Their thin walls and enormous combined surface area make them ideal for gas exchange.

Structures Participating in Breathing

The principal structures involved in the mechanical process of breathing are: [NDA 2018-I]

StructureRole in Breathing
TracheaMain airway: carries air to and from bronchi
BronchiAirways branching into each lung
DiaphragmPrimary muscle of breathing: contracts during inhalation, relaxes during exhalation
Intercostal musclesMuscles between ribs: expand and lower the rib cage
Bowman’s capsule (NOT respiratory)Part of the kidney nephron: involved in blood filtration; NO connection to breathing [NDA 2018-I]

Bowman’s capsule is NOT a respiratory structure. It is part of the kidney nephron, a renal structure involved in blood filtration. It has no connection to breathing or the lungs.  [NDA 2018-I]

6. Cartilage in the Respiratory Tract

Cartilage keeps airways open and prevents them from collapsing during breathing. However, it is not present in all parts of the respiratory tract.

StructureCartilage Present?Notes
NoseYesCartilaginous framework supports the external shape
TracheaYesC-shaped cartilage rings maintain airway patency
BronchiYesCartilage plates present in bronchial walls
BronchiolesNo [NDA 2024-II]Walls made of smooth muscle and elastic fibres only: no cartilage
Knee joint (reference)YesArticular cartilage present: non-respiratory but tested in comparison

Bronchioles do NOT contain cartilage. Their walls are made of smooth muscle and elastic fibres. This allows them to dilate and constrict actively to regulate airflow.  [NDA 2024-II]

7. Smooth Muscle Distribution

Smooth muscle is involuntary. It contracts without conscious control. It is found in the walls of many internal organs.

StructureSmooth Muscle?Notes
Bronchi of the lungsYesControls airway diameter
Ureters of the urinary systemYesPeristaltic waves move urine
Iris of the eyeYesControls pupil size
BicepsNoSkeletal (striated, VOLUNTARY) muscle: contracts under conscious control  

The biceps are NOT smooth muscle. The biceps is a skeletal (striated, voluntary) muscle. It contracts under conscious control. The biceps are the correct exclusion in any question asking which structure does NOT contain smooth muscle.

8. Breathing Mechanics: How Air Moves

Inhalation

StepWhat HappensEffect
1Diaphragm contracts: moves downward (flattens)Expands thoracic cavity vertically
2Intercostal muscles contract: lift rib cage outward and upwardExpands thoracic cavity laterally
3Thoracic (chest) cavity expandsLung volume increases
4Pressure inside lungs falls below atmospheric pressureCreates pressure gradient favouring inflow
5Air flows in from outside (high pressure to low pressure)Lungs fill with air

The intra-pleural pressure (pressure in the space between the lung and chest wall) becomes more negative during inhalation. This negative pressure keeps the lungs inflated and prevents them from collapsing.

Exhalation

During normal breathing, exhalation is a passive process. It requires no active muscular effort. The diaphragm and intercostal muscles simply relax. The elastic recoil of the lungs drives air out as the thoracic cavity decreases in volume.

IMPORTANT The diaphragm CONTRACTS during inhalation: it moves downward (flattens). The diaphragm RELAXES during exhalation: it moves upward (domes). The most common breathing mechanics error is reversing this: saying the diaphragm relaxes during inhalation. This is wrong. Normal exhalation is a PASSIVE process: muscles relax; no active effort required.

9. Lung Volumes

TermDefinitionApproximate VolumeWhen It Applies
Tidal volumeAir breathed in and out during one normal, quiet, relaxed breath [NDA 2025-I]~500 mLAt rest: every quiet breath
Vital capacityMaximum volume of air that can be exhaled after a maximum inhalation~4,000–5,000 mLMaximum effort: deepest possible breath

Students confuse these two because both describe “air breathed.” The key difference: tidal volume = quiet normal breathing; vital capacity = maximum effort breathing. These volumes are dramatically different (~500 mL vs ~5,000 mL) and describe completely different breathing conditions.

10. Gas Transport and Blood pH

Haemoglobin in red blood cells transports both oxygen (from lungs to body cells) and carbon dioxide (from body cells back to lungs). The claim that haemoglobin carries only oxygen is wrong. It carries both gases.

When blood becomes more acidic (pH falls), haemoglobin releases oxygen more readily. This is the Bohr effect. Low blood pH reduces the oxygen-carrying capacity of haemoglobin.

The left atrium is the first heart chamber to receive oxygenated blood returning from the lungs via the pulmonary veins.  These facts connect respiratory and circulatory physiology. The two systems work as one integrated unit to deliver oxygen to every cell.

11. Altitude Sickness

At high altitude, atmospheric pressure falls. The partial pressure of all gases, including oxygen, falls with it.

This means haemoglobin in the lungs cannot saturate with oxygen as efficiently. Less oxygen is delivered to body cells. The result is altitude sickness: breathlessness, headache, and fatigue.

Altitude sickness is caused by low partial pressure of oxygen, not by high oxygen levels, not by low haemoglobin count, not by high CO₂ pressure. Only the fall in oxygen partial pressure is the cause.

12. Skin Respiration: The Frog

The frog uses its skin as a respiratory organ, a process called cutaneous respiration. Oxygen from the air dissolves in the moist skin surface and diffuses directly into the blood vessels beneath. Carbon dioxide diffuses out the same way.  [NDA 2008-I]

The skin must remain moist for gas exchange to occur. Skin breathing supplements lung breathing. During winter hibernation underwater, the frog relies almost entirely on skin respiration.

AnimalRespiratory OrganNotes
FishGillsExtract dissolved oxygen from water
CockroachTracheae (tubes opening as spiracles)Air enters through spiracles on the body surface
PigeonLungs onlyStandard bird respiratory system: no skin breathing
FrogSkin + Lungs [NDA 2008-I]Cutaneous respiration supplements lung breathing

13. Respiratory Hazards

Smoke Inhalation

A person rescued from a smoke-filled burning building must be assessed first for respiratory burns, injury to the airways from inhaling hot gases and toxic combustion products. The airway is the immediate priority. Superficial skin burns and other injuries are secondary.  [NDA 2011-II]

Aircraft and Air Pollution

Crew and passengers of flying aircraft are exposed to particulate pollutants at altitude. Long-term exposure to these particles contributes to chronic obstructive pulmonary disease (COPD).


JOVIK Quick Recall

ATP and Respiration Types

  • ATP = universal cellular energy currency | NOT glucose, NOT ADP, NOT pyruvic acid
  • Aerobic: Glucose + O₂ → CO₂ + H₂O + large ATP | in mitochondria
  • Anaerobic: Insufficient O₂ → Glucose → Pyruvate (3-carbon → Lactic acid [NDA 2025-I]
  • End product in human muscle = LACTIC ACID (NOT pyruvic acid, NOT ethanol) [NDA 2006-I]
  • Lactic acid accumulates → acidic environment → cramps and fatigue [NDA 2009-II]
  • Ethanol = yeast anaerobic fermentation product (NOT human muscle)

Respiratory Anatomy and Mechanics

  • Air pathway: Nose → Pharynx → Larynx → Trachea → Bronchi → Bronchioles → Alveoli (gas exchange site)
  • Structures in breathing: trachea, bronchi, diaphragm, intercostal muscles [NDA 2018-I]
  • Bowman’s capsule = kidney nephron: NOT respiratory [NDA 2018-I]
  • Cartilage: nose (Yes) | trachea (Yes) | bronchi (Yes) | bronchioles (No – smooth muscle only) [NDA 2024-II]
  • Smooth muscle in: bronchi (Yes) | ureters (Yes) | iris (Yes) | biceps (No – skeletal/voluntary)
  • Inhalation: diaphragm CONTRACTS → downward → thorax expands → pressure falls → air IN
  • Exhalation: diaphragm RELAXES → passive process: no active muscular effort
  • Intra-pleural pressure becomes MORE NEGATIVE during inhalation

Lung Volumes, Gas Transport, and Special Topics

TopicKey Fact
Tidal volume~500 mL: quiet resting breath [NDA 2025-I]
Vital capacity~4,000–5,000 mL: maximum possible breath
HaemoglobinCarries BOTH O₂ AND CO₂ (not only oxygen)
Blood pH and O₂Acidic blood (low pH) → haemoglobin releases O₂ more readily (Bohr effect)
Altitude sicknessLow partial pressure of O₂ → less O₂ absorbed → breathlessness, headache, fatigue
Frog respirationSkin (cutaneous) + lungs | Skin must be moist [NDA 2008-I]
Fish/Cockroach/PigeonGills / Tracheae / Lungs only
Smoke inhalationPriority = respiratory burns (airway injury) [NDA 2011-II]
Aircraft/COPDParticulate pollutants at altitude → COPD risk

Related Topics

Blood & Circulatory System Excretory System Nutrition & Biomolecules