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This deck focuses on Shock Recognition And Management, giving you a quick way to review the definitions, rules, and examples that matter most for NREMT AEMT Level.
Study Shock Recognition And Management in NREMT AEMT Level with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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What does narrowing pulse pressure most strongly suggest in early hypovolemic shock?
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Compensatory vasoconstriction with falling stroke volume. Rising diastolic pressure from vasoconstriction narrows the gap with systolic pressure as cardiac output declines.
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This deck focuses on Shock Recognition And Management, giving you a quick way to review the definitions, rules, and examples that matter most for NREMT AEMT Level.
Work through these flashcards in short sessions. Try to answer each prompt before flipping the card, then revisit any cards you miss until the explanation feels automatic.
Answer: Compensatory vasoconstriction with falling stroke volume. Rising diastolic pressure from vasoconstriction narrows the gap with systolic pressure as cardiac output declines.
Answer: 70 mmHg. Applying the MAP formula to these values yields 70 mmHg, a threshold for adequate perfusion in many organs.
Answer: Improving mental status and stronger peripheral pulses. These signs reflect restored cerebral and peripheral perfusion, indicating effective resuscitation efforts.
Answer: Hemorrhage (hypovolemic shock). Traumatic blood loss rapidly depletes intravascular volume, leading to hypovolemic shock if uncontrolled.
Answer: High-concentration oxygen to maintain adequate oxygenation/ventilation. High-flow oxygen supports oxygen delivery in shock states where hypoxia exacerbates cellular dysfunction.
Answer: MAP = rac{SBP + 2(DBP)}{3}. MAP estimates average arterial pressure driving organ perfusion, weighted toward diastolic phase duration.
Answer: Inadequate tissue perfusion causing cellular hypoxia and dysfunction. Shock occurs when perfusion fails to deliver adequate oxygen and nutrients, leading to cellular injury and potential organ failure in emergency settings.
Answer: Cardiogenic shock. Myocardial dysfunction decreases ejection fraction and cardiac output, failing to maintain systemic perfusion despite adequate preload.
Answer: Cool, pale, diaphoretic skin. Sympathetic activation causes peripheral vasoconstriction, resulting in these skin changes to preserve core perfusion.
Answer: Recent allergen exposure with urticaria or airway swelling. IgE-mediated reaction to allergens triggers massive histamine release, causing vasodilation and capillary leak.
Answer: Avoid large boluses; use cautious small bolus only if clearly indicated. Excess fluid can worsen pulmonary edema in low-output states, so titration prevents overload while supporting perfusion if needed.
Answer: Beck triad: hypotension, JVD, muffled heart sounds. These signs indicate pericardial effusion compressing the heart, reducing diastolic filling and cardiac output.
Answer: Distributive shock. Vasodilation from sepsis or anaphylaxis increases vascular capacity, causing relative hypovolemia and hypotension.
Answer: Tachycardia. The sympathetic response increases heart rate to compensate for reduced stroke volume or preload in early shock stages.
Answer: Altered mental status (anxiety, restlessness, confusion). Brain hypoperfusion manifests as these symptoms before hypotension in compensated shock, making it a sensitive indicator.
Answer: Isotonic crystalloid (normal saline or lactated Ringer solution). These fluids expand intravascular volume effectively without causing osmotic shifts in most hypotensive patients.
Answer: Obstructive shock. Conditions like tamponade or tension pneumothorax impede venous return or ventricular ejection, reducing cardiac output.
Answer: Distributive shock (especially early septic shock). Vasodilation in distributive shock increases skin blood flow initially, contrasting with vasoconstriction in other types.
Answer: Hypovolemic shock. Absolute volume loss from hemorrhage or dehydration reduces preload and cardiac output, impairing tissue perfusion.
Answer: Airway, breathing, circulation, rapid transport while treating cause. Following ABC priorities stabilizes oxygenation and circulation while addressing underlying causes en route to definitive care.
Answer: Approximately 1 L isotonic crystalloid, then reassess. A 1 L bolus restores preload in hypovolemia, with reassessment to avoid overload or confirm need for more.
Answer: Hypotension with bradycardia after spinal cord injury. Loss of sympathetic tone in neurogenic shock causes unopposed parasympathetic activity, leading to bradycardia despite hypotension.
Answer: Sufficient oxygen delivery to meet metabolic demand (aerobic metabolism). Adequate perfusion ensures cells receive enough oxygen for aerobic processes, preventing anaerobic metabolism and acidosis.
Answer: Absent breath sounds on one side. Unilateral lung collapse shifts mediastinum, compressing vena cava and reducing cardiac preload in tension pneumothorax.
Answer: Direct pressure and tourniquet as indicated. These methods rapidly control bleeding to prevent further volume loss and stabilize hemodynamics in hemorrhagic shock.