Questions And Answers 2026/2027 Walden University
NRNP 6566 Final Exam Practice Bank
Course: NRNP 6566
University: Walden University
Assessment: Final Exam
Area: Advanced Care of Adults in Acute Settings I
1.
A 62-year-old patient presents with acute respiratory distress. ABG results
are pH 7.28, PaCO₂ 55 mmHg, HCO₃⁻ 24 mEq/L. How should these results be
interpreted?
A) Uncompensated respiratory acidosis
B) Partially compensated respiratory acidosis
C) Uncompensated metabolic acidosis
D) Compensated respiratory alkalosis
Answer: A) Uncompensated respiratory acidosis
Rationale: The pH is acidemic, PaCO₂ is elevated, and bicarbonate remains
normal, indicating a primary respiratory acidosis without metabolic
compensation.
2.
A patient with COPD has an ABG showing pH 7.32, PaCO₂ 65 mmHg, HCO₃⁻
32 mEq/L. Which interpretation is most appropriate?
A) Uncompensated respiratory acidosis
B) Partially compensated respiratory acidosis
C) Uncompensated metabolic alkalosis
D) Respiratory alkalosis
Answer: B) Partially compensated respiratory acidosis
Rationale: The low pH and elevated PaCO₂ indicate respiratory acidosis,
while the elevated bicarbonate reflects renal compensation.
3.
Which ABG pattern is most consistent with metabolic acidosis?
A) pH 7.28, PaCO₂ 30, HCO₃⁻ 15
B) pH 7.50, PaCO₂ 30, HCO₃⁻ 24
,C) pH 7.48, PaCO₂ 48, HCO₃⁻ 34
D) pH 7.40, PaCO₂ 40, HCO₃⁻ 24
Answer: A) pH 7.28, PaCO₂ 30, HCO₃⁻ 15
Rationale: The low pH and low bicarbonate indicate metabolic acidosis. The
decreased PaCO₂ reflects respiratory compensation.
4.
A patient is hyperventilating because of severe anxiety. Which ABG finding is
expected?
A) Increased PaCO₂
B) Decreased PaCO₂
C) Increased HCO₃⁻ immediately
D) Decreased pH from metabolic acidosis
Answer: B) Decreased PaCO₂
Rationale: Hyperventilation removes carbon dioxide from the blood,
producing respiratory alkalosis.
5.
A patient with severe metabolic acidosis develops deep, rapid respirations.
Which compensatory response is occurring?
A) Hypoventilation
B) Increased bicarbonate retention
C) Increased ventilation to remove CO₂
D) Renal retention of hydrogen ions
Answer: C) Increased ventilation to remove CO₂
Rationale: The respiratory system compensates for metabolic acidosis by
increasing ventilation and lowering PaCO₂.
6.
A patient has a pH of 7.51, PaCO₂ of 28 mmHg, and HCO₃⁻ of 23 mEq/L.
Which disorder is present?
A) Respiratory alkalosis
B) Respiratory acidosis
C) Metabolic alkalosis
D) Metabolic acidosis
Answer: A) Respiratory alkalosis
, Rationale: Alkalemia with decreased PaCO₂ indicates a primary respiratory
alkalosis.
7.
Which condition most commonly produces a ventilation-perfusion mismatch?
A) Pulmonary embolism
B) Primary hypothyroidism
C) Acute cystitis
D) Iron-deficiency anemia
Answer: A) Pulmonary embolism
Rationale: A pulmonary embolus creates ventilated but inadequately
perfused alveoli, producing V/Q mismatch.
8.
A patient with pneumonia has alveoli filled with inflammatory exudate. Which
mechanism is most responsible for the resulting hypoxemia?
A) Increased inspired oxygen concentration
B) V/Q mismatch and shunting
C) Increased hemoglobin production
D) Increased alveolar ventilation
Answer: B) V/Q mismatch and shunting
Rationale: Consolidated alveoli receive inadequate ventilation despite
continued perfusion, impairing oxygen exchange.
9.
Which condition is most likely to produce a widened alveolar-arterial oxygen
gradient?
A) Pulmonary embolism
B) Pure hypoventilation from opioid overdose
C) High altitude alone
D) Normal aging
Answer: A) Pulmonary embolism
Rationale: V/Q abnormalities such as pulmonary embolism can create an
increased A–a gradient. Pure hypoventilation typically produces a normal A–a
gradient.