ASTHMA

 

ASTHMA DETAILED PHARMACOLOGY & PHARMACOTHERAPEUTICS NOTES

1. Definition

Asthma is a chronic inflammatory disease of the airways characterized by:

  • Variable and recurrent airflow obstruction
  • Bronchial hyperresponsiveness
  • Airway inflammation
  • Episodes of wheezing, breathlessness, chest tightness and cough
  • Symptoms and airflow limitation that vary over time and in intensity

Simple concept

Asthma = Inflamed + Hyperresponsive + Narrowed airways

The important point is that airway narrowing is usually variable and reversible, either spontaneously or with treatment.

2. Normal Airway vs Asthmatic Airway

Normal airway

Airway open
↓
Normal airflow
↓
Easy breathing

Asthmatic airway

Trigger
↓
Airway inflammation
↓
Bronchial smooth-muscle contraction
+
Mucosal edema
+
Excess mucus
↓
Airway narrowing
↓
Reduced airflow
↓
Wheezing + Breathlessness + Cough

3. Etiology / Causes

Asthma is usually multifactorial.

A. Genetic factors

A person may inherit a tendency toward:

  • Allergy
  • IgE-mediated responses
  • Airway hyperresponsiveness
  • Atopy

Atopy = genetic tendency to develop allergic diseases such as asthma, allergic rhinitis and eczema.

B. Allergic triggers

Common allergens include:

  • House dust mites
  • Pollen
  • Animal dander
  • Cockroach allergens
  • Mold/fungi
  • Certain occupational allergens

These can produce IgE-mediated airway inflammation.

C. Respiratory infections

Especially:

  • Viral respiratory infections
  • Rhinovirus
  • Influenza
  • Respiratory syncytial virus and others

Respiratory infections can trigger acute worsening.

D. Environmental irritants

  • Tobacco smoke
  • Air pollution
  • Dust
  • Strong perfumes
  • Chemical fumes
  • Smoke
  • Aerosols

E. Occupational exposure

Examples:

  • Flour dust → baker's asthma
  • Latex
  • Isocyanates
  • Wood dust
  • Chemical fumes
  • Animal proteins

F. Drugs

Important drug triggers:

  • Aspirin and other NSAIDs in susceptible individuals
  • β-blockers
  • Some drugs may worsen bronchospasm in susceptible patients

G. Exercise

Exercise-induced bronchoconstriction may occur, particularly in poorly controlled asthma.

4. Risk Factors

Patient-related factors

  • Family history
  • Atopy
  • Allergic rhinitis
  • Obesity
  • Previous respiratory infections
  • Airway hyperresponsiveness

Environmental factors

  • Air pollution
  • Tobacco smoke
  • Occupational exposure
  • Indoor allergens
  • Outdoor allergens
  • Climate/weather changes

Medication-related

  • Aspirin/NSAIDs in susceptible patients
  • Non-selective β-blockers

5. Clinical Manifestations

The classical symptoms are:

1. Wheezing

A musical/whistling sound, particularly during expiration.

2. Dyspnea

Difficulty in breathing.

3. Chest tightness

Patient may describe a feeling of pressure or tightness in the chest.

4. Cough

Often:

  • Dry
  • Worse at night
  • Worse early in the morning
  • May be the only symptom in some patients

Characteristic feature

Symptoms are variable and may worsen:

  • At night
  • During exercise
  • After allergen exposure
  • During respiratory infection
  • With cold air
  • With smoke or pollution

6. Pathophysiology of Asthma

This is one of the most important pharmacology exam topics.

Step 1 — Trigger exposure

Allergen / infection / exercise / irritant
↓
Activation of airway immune cells

Step 2 — Immune response

Important cells include:

  • Mast cells
  • Eosinophils
  • T lymphocytes
  • Dendritic cells
  • Macrophages

Important inflammatory mediators include:

  • Histamine
  • Leukotrienes
  • Prostaglandins
  • Cytokines
  • Chemokines

Step 3 — Bronchoconstriction

Mediators stimulate bronchial smooth muscle.

Bronchial smooth muscle contraction
↓
Airway diameter decreases
↓
Airflow resistance increases

Step 4 — Airway edema

Inflammation causes:

Increased vascular permeability
↓
Mucosal edema
↓
Further airway narrowing

Step 5 — Excess mucus

Goblet cells and mucus glands become more active.

↓
Excess thick mucus
↓
Mucus plugging
↓
Airflow obstruction

Step 6 — Airway hyperresponsiveness

Inflamed airways become excessively sensitive to stimuli.

Therefore, even relatively mild stimuli can cause:

Bronchoconstriction

7. Airway Remodeling

Repeated or chronic inflammation can cause structural changes.

Changes include:

  • Smooth-muscle hypertrophy
  • Increased mucus glands
  • Goblet-cell hyperplasia
  • Subepithelial fibrosis
  • Thickening of the basement membrane
  • Increased vascularity

Consequence

Persistent airway changes
↓
Reduced reversibility of airflow obstruction
↓
Decline in lung function in some patients

8. Important Asthma Mediators

Mediator

Major effect

Histamine

Bronchoconstriction, vascular permeability

Leukotrienes C₄/D₄/E₄

Powerful bronchoconstriction + mucus secretion + edema

Prostaglandins

Modulate bronchial inflammation and tone

Cytokines

Promote and maintain inflammation

Eosinophil mediators

Airway epithelial injury and inflammation

High-yield point

Cysteinyl leukotrienes are particularly important bronchoconstrictor mediators.

9. Diagnosis

Asthma should be suspected from the clinical pattern and confirmed by demonstrating variable expiratory airflow limitation.

Important investigations

A. Spirometry

Important parameters:

  • FEV₁ = Forced expiratory volume in first second
  • FVC = Forced vital capacity
  • FEV₁/FVC ratio

Asthma generally produces an obstructive pattern.

B. Bronchodilator reversibility

Spirometry is performed before and after administration of a bronchodilator.

Improvement in expiratory airflow supports asthma.

C. Peak Expiratory Flow Rate — PEFR

Useful for:

  • Monitoring disease
  • Detecting variability
  • Assessing response to treatment
  • Patient self-monitoring

D. Bronchial provocation testing

May be used when asthma is suspected but routine spirometry is not diagnostic.

Examples:

  • Methacholine challenge
  • Exercise challenge

E. Allergy testing

May include:

  • Skin-prick testing
  • Specific IgE testing

Useful for identifying allergic triggers.

F. FeNO

Fractional exhaled nitric oxide (FeNO) can help identify type 2/eosinophilic airway inflammation in appropriate clinical settings.

10. Classification of Anti-Asthmatic Drugs

A. Bronchodilators

1. β₂-adrenergic agonists

Short-acting β₂ agonists (SABA)

  • Salbutamol/albuterol
  • Terbutaline

Long-acting β₂ agonists (LABA)

  • Salmeterol
  • Formoterol

2. Antimuscarinic drugs

Short-acting

  • Ipratropium

Long-acting

  • Tiotropium

3. Methylxanthines

  • Theophylline
  • Aminophylline

B. Anti-inflammatory drugs

1. Corticosteroids

Inhaled corticosteroids — ICS

  • Budesonide
  • Beclometasone
  • Fluticasone
  • Ciclesonide
  • Mometasone

Systemic corticosteroids

  • Prednisolone
  • Hydrocortisone
  • Methylprednisolone

2. Leukotriene modifiers

Leukotriene receptor antagonists

  • Montelukast
  • Zafirlukast

5-lipoxygenase inhibitor

  • Zileuton

3. Mast-cell stabilizer

  • Cromolyn

C. Biologic drugs

Examples:

  • Omalizumab
  • Mepolizumab
  • Reslizumab
  • Benralizumab
  • Dupilumab
  • Tezepelumab

These are generally reserved for selected patients with severe asthma despite optimized standard therapy.












11. Mechanism of Action of Important Drugs

A. β₂-Agonists

Example: Salbutamol

MOA

β₂ agonist
↓
Stimulates β₂ receptors on bronchial smooth muscle
↓
Activates Gs protein
↓
Activates adenylyl cyclase
↓
↑ cAMP
↓
Activates protein kinase A
↓
↓ intracellular Ca²⁺ availability / promotes smooth-muscle relaxation
↓
Bronchodilation

Easy memory

β₂ → Gs → cAMP ↑ → Bronchodilation

12. Corticosteroids

Example: Budesonide

Corticosteroid
↓
Enters airway cells
↓
Binds intracellular glucocorticoid receptor
↓
Receptor complex enters nucleus
↓
Changes gene transcription
↓
↓ Pro-inflammatory cytokines
↓ Inflammatory cell activity
↓ Airway edema
↓ Mucus production
↓ Airway hyperresponsiveness
↓
Improved asthma control

Important point

ICS are the cornerstone of anti-inflammatory controller therapy for asthma.

They are not primarily rescue bronchodilators.

13. Leukotriene Receptor Antagonists

Example: Montelukast

Montelukast
↓
Blocks CysLT₁ receptors
↓
Prevents effects of cysteinyl leukotrienes
↓
↓ Bronchoconstriction
↓ Mucus secretion
↓ Airway edema
↓
Improved airflow

Useful particularly in selected patients with:

  • Allergic asthma
  • Exercise-induced bronchoconstriction
  • Aspirin/NSAID-associated respiratory disease

14. Antimuscarinic Drugs

Example: Ipratropium

Acetylcholine
↓
M₃ receptors
↓
Gq pathway
↓
↑ intracellular Ca²⁺
↓
Bronchial smooth-muscle contraction

Ipratropium
↓
Blocks muscarinic receptors
↓
↓ cholinergic bronchoconstriction
↓
Bronchodilation

High-yield

M₃ blockade → ↓ bronchoconstriction

15. Methylxanthines

Example: Theophylline

Theophylline
↓
Inhibits phosphodiesterase enzymes
↓
↓ cAMP breakdown
↓
↑ intracellular cAMP
↓
Bronchial smooth-muscle relaxation
↓
Bronchodilation

It also has anti-inflammatory effects at therapeutic concentrations.

Important limitation

Theophylline has a narrow therapeutic index and significant drug-interaction/toxicity concerns, so its use is limited.

16. Mast-Cell Stabilizer

Cromolyn

Cromolyn
↓
Stabilizes mast cells
↓
Prevents mediator release
↓
↓ Histamine and other inflammatory mediators
↓
↓ Bronchoconstriction
↓
Prevention of asthma symptoms

It is mainly a preventive/controller-type drug, not a rescue drug.

17. Biologics

These are used in selected patients with severe asthma based on phenotype and biomarkers.

Omalizumab

Anti-IgE monoclonal antibody

IgE
↓
Omalizumab binds free IgE
↓
↓ IgE available to bind FcεRI receptors
↓
↓ Mast-cell/basophil activation
↓
↓ Allergic inflammation

Mepolizumab / Reslizumab

Target IL-5.

↓
Reduce eosinophil growth/survival
↓
↓ Eosinophilic inflammation

Benralizumab

Targets IL-5 receptor α.

↓
Promotes depletion of eosinophils
↓
↓ Eosinophilic airway inflammation

Dupilumab

Blocks signaling through:

IL-4 receptor α

↓
Inhibits IL-4 and IL-13 signaling
↓
↓ Type-2 inflammation

Tezepelumab

Targets TSLP, an epithelial-derived cytokine involved early in airway inflammation.

18. Reliever vs Controller Therapy

This distinction is extremely important.

Reliever

Used for rapid relief of symptoms/bronchoconstriction.

Examples:

  • SABA in appropriate treatment settings
  • ICS-formoterol when used as reliever in guideline-based regimens

Controller

Used regularly to reduce airway inflammation and prevent exacerbations.

Examples:

  • ICS
  • ICS-LABA
  • Leukotriene receptor antagonists in selected patients
  • Biologics in severe asthma

Key concept

Bronchodilator = opens the airway

Anti-inflammatory controller = treats the underlying airway inflammation

19. Pharmacotherapeutic Management

Modern asthma treatment is based on severity, symptom control, exacerbation risk, phenotype, age, inhaler technique, adherence and patient preferences.

The basic principle is:

Do not rely on bronchodilator-only treatment; anti-inflammatory therapy is central to asthma management.

20. Stepwise Treatment Concept

A simplified adult/adolescent framework:

Step 1

For patients with infrequent symptoms:

Low-dose ICS-containing therapy, commonly using as-needed low-dose ICS-formoterol where guideline-appropriate.

Step 2

As-needed low-dose ICS-formoterol or another appropriate low-dose ICS-containing regimen.

Step 3

Low-dose maintenance ICS-LABA

or an appropriate MART/SMART-type ICS-formoterol strategy where indicated.

Step 4

Medium-dose ICS-LABA

with specialist assessment and consideration of additional therapy if uncontrolled.

Step 5

Severe/uncontrolled asthma:

Specialist referral

Consider:

  • Phenotyping
  • Biologic therapy
  • Add-on LAMA
  • Other selected therapies
  • Minimization of long-term systemic corticosteroid exposure

Remember

Treatment should be stepped up when asthma is uncontrolled and stepped down when control is maintained, after reviewing adherence, inhaler technique, comorbidities and risk factors.

21. Acute Asthma Exacerbation

An exacerbation means acute or subacute worsening of symptoms and lung function from the patient's usual state.

Common features

  • Increasing breathlessness
  • Wheezing
  • Cough
  • Chest tightness
  • Reduced PEFR/FEV₁

22. Management of Acute Exacerbation

Step 1 — Rapid assessment

Assess:

  • Severity
  • Respiratory rate
  • Pulse
  • Oxygen saturation
  • Ability to speak
  • Mental status
  • PEFR/FEV₁ when feasible

Step 2 — Rapid bronchodilation

Inhaled short-acting β₂ agonist

Example:

Salbutamol

↓
Rapid bronchodilation

Repeated administration may be required according to severity and treatment setting.

Step 3 — Oxygen

Supplemental oxygen is given when clinically indicated to correct hypoxemia.

Step 4 — Systemic corticosteroid

Example:

Prednisolone

↓
Reduces airway inflammation
↓
Improves recovery
↓
Reduces risk of relapse

Step 5 — Ipratropium

In moderate-to-severe exacerbations, inhaled ipratropium may be added to a SABA.

Step 6 — Severe/refractory cases

Hospital-level management may include:

  • Repeated or continuous inhaled bronchodilators
  • Oxygen
  • Systemic corticosteroids
  • Ipratropium
  • IV magnesium sulfate in selected severe cases
  • Close monitoring

Important

Sedatives should generally be avoided in acute severe asthma because of the risk of respiratory depression.

23. Inhaled Route — Why Preferred?

For many asthma drugs, inhalation is preferred because it delivers drug directly to the respiratory tract.

Advantages

  • Rapid local action
  • Smaller systemic exposure
  • Lower systemic adverse effects
  • Smaller doses required

Examples

  • MDI
  • DPI
  • Nebulizer
  • Soft-mist inhaler

24. Spacer Device

A spacer is particularly useful with a pressurized metered-dose inhaler (pMDI).

Benefits

  • Improves drug delivery
  • Reduces oropharyngeal deposition
  • Helps patients with poor hand-breath coordination
  • Can improve inhaled corticosteroid administration

25. Adverse Drug Reactions

β₂ agonists

Common:

  • Tremor
  • Palpitations
  • Tachycardia
  • Headache
  • Hypokalemia at higher systemic exposure

Corticosteroids

Inhaled

  • Oral candidiasis
  • Dysphonia
  • Throat irritation

Prevention: rinse mouth after ICS use; proper inhaler technique and spacer use can help.

Long-term systemic corticosteroids

  • Hyperglycemia
  • Hypertension
  • Osteoporosis
  • Weight gain
  • Adrenal suppression
  • Cataracts
  • Increased infection risk

Theophylline

Toxicity may cause:

  • Nausea/vomiting
  • Tremor
  • Insomnia
  • Tachycardia
  • Arrhythmias
  • Seizures

Montelukast

Generally well tolerated, but neuropsychiatric adverse effects can occur and should be discussed/monitored.

26. Drug Interactions

β-blockers

Non-selective β-blockers can:

Block β₂ receptors
↓
Bronchoconstriction / reduced response to β₂ agonists

Therefore, they can be problematic in asthma.

NSAIDs/Aspirin

In susceptible patients:

NSAID
↓
COX inhibition
↓
Arachidonic acid metabolism shifts toward leukotriene production
↓
Bronchoconstriction

This is associated with NSAID-exacerbated respiratory disease (NERD).

Theophylline

Many drugs can alter theophylline concentrations because of its metabolism and narrow therapeutic index.

Examples include certain:

  • Macrolides
  • Fluoroquinolones
  • CYP enzyme inhibitors/inducers

Therefore, interaction checking is important.

27. Non-Pharmacological Management

Medication alone is not enough.

Important measures

  • Avoid known triggers where practical
  • Stop tobacco exposure
  • Reduce occupational exposure when relevant
  • Manage allergic rhinitis
  • Maintain healthy body weight
  • Exercise appropriately
  • Vaccination according to recommendations
  • Correct inhaler technique
  • Improve adherence
  • Written asthma action plan
  • Regular follow-up

28. Patient Counselling

A pharmacist has a major role.

Teach:

1. Correct inhaler technique

2. Difference between controller and reliever

3. When to seek emergency care

4. Importance of adherence

5. Rinse mouth after ICS

6. Avoid unnecessary NSAIDs if known to trigger symptoms

7. Recognize worsening symptoms

29. Asthma Action Plan

Patient should know:

Green zone

Asthma well controlled.

→ Continue regular treatment.

Yellow zone

Symptoms increasing.

→ Follow individualized action plan and seek advice as instructed.

Red zone

Severe symptoms / marked breathing difficulty / poor response to reliever.

→ Urgent/emergency medical care.

30. Asthma vs COPD — High-Yield Difference

Feature

Asthma

COPD

Typical onset

Often childhood/young age, but any age

Usually adulthood

Airflow limitation

Variable, often reversible

Persistent, incompletely reversible

Symptoms

Variable

More persistent

Trigger

Allergens, exercise, infections, irritants

Smoking, occupational exposure, pollutants

Inflammation

Often eosinophilic/type 2 in many phenotypes

Often neutrophilic/macrophage predominant

Bronchodilator response

Often significant

Usually limited/incomplete

Main anti-inflammatory therapy

ICS important

ICS only for selected COPD patients

 

31. Important Pharmacology Exam Points

Remember these:

1. β₂ agonist
→ Gs → ↑ cAMP → Bronchodilation

2. Antimuscarinic
→ M₃ blockade → ↓ Ca²⁺-mediated contraction → Bronchodilation

3. Corticosteroid
→ Changes gene transcription → ↓ airway inflammation

4. Montelukast
→ CysLT₁ receptor antagonist

5. Omalizumab
→ Anti-IgE

6. Mepolizumab
→ Anti-IL-5

7. Benralizumab
→ Anti-IL-5 receptor α

8. Dupilumab
→ Blocks IL-4Rα → inhibits IL-4/IL-13 signaling

9. Tezepelumab
→ Anti-TSLP

10. Theophylline
→ Phosphodiesterase inhibition + other mechanisms

32. Very Important Viva Questions

Q1. What is asthma?

A chronic inflammatory airway disease characterized by variable respiratory symptoms and variable expiratory airflow limitation.

Q2. What are the classical symptoms?

Wheezing, dyspnea, chest tightness and cough.

Q3. Which drug class is the cornerstone of anti-inflammatory controller treatment?

Inhaled corticosteroids.

Q4. What is the MOA of salbutamol?

β₂ receptor stimulation → Gs → adenylyl cyclase → ↑cAMP → bronchial smooth-muscle relaxation.

Q5. Why are corticosteroids used?

To suppress airway inflammation and reduce airway hyperresponsiveness and exacerbations.

Q6. What is montelukast?

A cysteinyl leukotriene CysLT₁ receptor antagonist.

Q7. What is omalizumab?

A monoclonal antibody against IgE, used in selected severe allergic asthma.

Q8. Why should non-selective β-blockers be avoided/cautioned?

They can cause bronchoconstriction and reduce the response to β₂ agonists.

Q9. Why rinse the mouth after inhaled corticosteroids?

To reduce local adverse effects, particularly oral candidiasis and dysphonia.

Q10. What is the role of a spacer?

It improves delivery from a pMDI and reduces oropharyngeal deposition.

33. One-Line Pathophysiology for Exams

Trigger → immune activation → inflammatory mediator release → bronchoconstriction + mucosal edema + mucus hypersecretion → airway narrowing → variable airflow obstruction → wheezing, cough and dyspnea.

34. One-Line Treatment Concept

Control inflammation with ICS-containing therapy + relieve bronchoconstriction appropriately + avoid triggers + correct inhaler technique/adherence + step therapy according to control and severity.

Final Memory Trick

ASTHMA = "AIRWAY"

A → Airway inflammation
I → Increased bronchial responsiveness
R → Reversible/variable airflow limitation
W → Wheezing
A → Airway remodeling
Y → Your triggers → allergens, infection, exercise, smoke, drugs

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