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NSG 3850 Exam 4 Pathophysiology Practice Test | QUESTIONS AND VERIFIED ANSWERS WITH RATIONALES JUST RELEASED.pdf

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This NSG 3850 Exam 4 Pathophysiology practice set contains 150 original exam-style questions designed to strengthen clinical reasoning, disease-process recognition, interpretation of patient findings, and understanding of pathophysiologic mechanisms. Each question includes four answer choices, the correct answer, and a concise rationale. Coverage  Cardiovascular: Heart failure, myocardial infarction, hypertension, shock, arrhythmias, valvular disorders, vascular disease, DVT  Respiratory: Asthma, COPD, pneumonia, pulmonary embolism, pneumothorax, ARDS, pulmonary fibrosis, respiratory failure  Renal/Urinary: Acute kidney injury, chronic kidney disease, nephrotic/nephritic syndromes, renal stones, diabetes insipidus, uremia  Endocrine: Diabetes mellitus, DKA, HHS, thyroid disorders, adrenal disorders, hyperparathyroidism, electrolyte abnormalities  Gastrointestinal: GERD, peptic ulcers, pancreatitis, cirrhosis, cholecystitis, Crohn disease, ulcerative colitis, bowel obstruction  Neurologic: Stroke, TIA, seizures, meningitis, multiple sclerosis, Parkinson disease, increased intracranial pressure  Hematologic: Anemia, leukemia, thrombocytopenia, hemophilia, sickle cell disease, DIC  Immune/Inflammatory: Sepsis, anaphylaxis, autoimmune disorders, SLE, rheumatoid arthritis, HIV-related immune dysfunction  Musculoskeletal: Osteoporosis, osteoarthritis, gout, herniated disks  Acid–Base & Fluids: Metabolic and respiratory acidosis/alkalosis, sodium, potassium, calcium, fluid shifts  Clinical Reasoning: Disease mechanisms, manifestations, complications, pathophysiologic relationships, prioritization, and recognition of serious deterioration

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NSG 3850 Exam 4 Pathophysiology Practice Test |
QUESTIONS AND VERIFIED ANSWERS WITH
RATIONALES JUST RELEASED.pdf

Overview
This NSG 3850 Exam 4 Pathophysiology practice set contains 150 original exam-style
questions designed to strengthen clinical reasoning, disease-process recognition, interpretation
of patient findings, and understanding of pathophysiologic mechanisms. Each question includes
four answer choices, the correct answer, and a concise rationale.

Coverage
 Cardiovascular: Heart failure, myocardial infarction, hypertension, shock, arrhythmias,
valvular disorders, vascular disease, DVT
 Respiratory: Asthma, COPD, pneumonia, pulmonary embolism, pneumothorax, ARDS,
pulmonary fibrosis, respiratory failure
 Renal/Urinary: Acute kidney injury, chronic kidney disease, nephrotic/nephritic
syndromes, renal stones, diabetes insipidus, uremia
 Endocrine: Diabetes mellitus, DKA, HHS, thyroid disorders, adrenal disorders,
hyperparathyroidism, electrolyte abnormalities
 Gastrointestinal: GERD, peptic ulcers, pancreatitis, cirrhosis, cholecystitis, Crohn
disease, ulcerative colitis, bowel obstruction
 Neurologic: Stroke, TIA, seizures, meningitis, multiple sclerosis, Parkinson disease,
increased intracranial pressure
 Hematologic: Anemia, leukemia, thrombocytopenia, hemophilia, sickle cell disease, DIC
 Immune/Inflammatory: Sepsis, anaphylaxis, autoimmune disorders, SLE, rheumatoid
arthritis, HIV-related immune dysfunction
 Musculoskeletal: Osteoporosis, osteoarthritis, gout, herniated disks
 Acid–Base & Fluids: Metabolic and respiratory acidosis/alkalosis, sodium, potassium,
calcium, fluid shifts
 Clinical Reasoning: Disease mechanisms, manifestations, complications,
pathophysiologic relationships, prioritization, and recognition of serious deterioration




1.

,A patient with chronic left-sided heart failure develops worsening dyspnea, orthopnea, and
bilateral crackles. Which pathophysiologic mechanism best explains these findings?

A. Decreased systemic vascular resistance
B. Increased right ventricular preload
C. ✓ Increased pulmonary venous pressure causing pulmonary congestion
D. Reduced pulmonary capillary permeability

Rationale: Left ventricular dysfunction causes blood to back up into the pulmonary
circulation, increasing pulmonary venous and capillary pressure and promoting pulmonary
edema.

2.

A patient with an acute myocardial infarction develops hypotension, cool extremities, and
altered mental status. Which mechanism most directly explains these findings?

A. Increased cardiac output
B. ✓ Reduced myocardial contractility causing decreased cardiac output and tissue
hypoperfusion
C. Increased renal perfusion
D. Increased circulating blood volume

Rationale: Extensive myocardial injury can impair ventricular contractility, decreasing
cardiac output and producing cardiogenic shock with systemic hypoperfusion.

3.

A patient with long-standing hypertension develops left ventricular hypertrophy. Which
process primarily causes this structural change?

,A. Chronic volume depletion
B. Decreased ventricular workload
C. ✓ Increased afterload producing compensatory myocardial hypertrophy
D. Reduced sympathetic stimulation

Rationale: Chronic systemic hypertension increases ventricular afterload. The myocardium
adapts by increasing muscle mass to generate greater contractile force.

4.

A patient with atrial fibrillation is at increased risk for ischemic stroke primarily because of
which mechanism?

A. Increased cerebral oxygen production
B. ✓ Blood stasis in the atria promoting thrombus formation and embolization
C. Increased platelet destruction
D. Decreased systemic vascular resistance

Rationale: Ineffective atrial contraction causes blood stasis, particularly in the left atrial
appendage, increasing the risk of thrombus formation and systemic embolization.

5.

A patient with infective endocarditis develops a new heart murmur and fever. Which
pathophysiologic process is most likely occurring?

A. Coronary artery dilation
B. ✓ Infection and vegetative growth on a cardiac valve
C. Destruction of skeletal muscle
D. Increased pulmonary surfactant production

, Rationale: Infective endocarditis involves microbial infection of the endocardial surface,
commonly affecting valves and producing vegetations that can impair valve function.

6.

A patient with an acute asthma exacerbation develops wheezing and prolonged expiration.
Which mechanism is primarily responsible?

A. Permanent alveolar destruction
B. ✓ Bronchial smooth-muscle constriction, mucosal edema, and increased mucus
production
C. Reduced airway inflammation
D. Increased pulmonary vascular resistance alone

Rationale: Asthma involves reversible airway narrowing caused by bronchoconstriction,
airway inflammation, edema, and mucus hypersecretion.

7.

A patient with emphysema has progressive dyspnea and decreased breath sounds. Which
pathophysiologic change is most characteristic?

A. Increased alveolar surface area
B. ✓ Destruction of alveolar walls causing loss of elastic recoil and surface area
C. Increased airway cartilage strength
D. Increased pulmonary surfactant production

Rationale: Emphysema destroys alveolar septa and reduces elastic recoil, impairing
expiratory airflow and gas exchange.

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