Table of Contents
ToggleLearning outcomes
By the end of this lesson, the emergency medicine student should be able to:
- Define cardiovascular medicines and relate drug action to cardiac output, preload, afterload, contractility, heart rate and rhythm.
- Classify medicines used for hypertension, angina, acute coronary syndromes, heart failure, dysrhythmias, thrombosis, shock and cardiac arrest.
- Explain the mechanisms, indications, major contraindications, adverse effects and monitoring requirements of common cardiovascular drug groups.
- Recognise when chest pain, dyspnoea, syncope, hypotension, bradycardia, tachycardia or oedema may represent a life-threatening cardiovascular emergency.
- Apply ABCDE, ECG, vital-sign and perfusion assessment before and after cardiovascular medicine administration.
- Explain why the same medicine can be beneficial in one patient and dangerous in another.
- Describe the emergency roles of antiplatelets, anticoagulants, fibrinolytics, vasopressors, inotropes and antiarrhythmics.
- Identify high-risk interactions, dose errors, infusion hazards and situations requiring senior or specialist review.
- Document cardiovascular medicines and communicate response, adverse effects and next actions during handover.
1. Cardiovascular system and drug targets
The cardiovascular system consists of the heart, blood vessels and circulating blood. The heart generates pressure; vessels distribute and regulate flow; blood carries oxygen, nutrients, hormones and waste. Cardiovascular medicines change one or more of these functions.
| Physiological variable | Meaning | Drug effect that may change it |
|---|---|---|
| Heart rate (chronotropy) | Number of cardiac cycles per minute. | Beta-blockers, some calcium-channel blockers and ivabradine reduce rate; beta agonists and anticholinergics may increase it. |
| Conduction (dromotropy) | Speed of impulse transmission through the conducting system. | AV-nodal blockers slow conduction; adenosine produces transient AV-nodal block. |
| Contractility (inotropy) | Force of myocardial contraction. | Inotropes increase force; beta-blockers and some calcium-channel blockers reduce it. |
| Preload | Ventricular filling and wall stretch before contraction. | Diuretics and venodilators reduce volume; fluids may increase it. |
| Afterload | Resistance the ventricle must overcome to eject blood. | Arterial vasodilators, ACE inhibitors and ARBs reduce it; vasoconstrictors increase it. |
| Stroke volume | Blood ejected per beat. | Changes with preload, afterload and contractility. |
| Cardiac output | Heart rate × stroke volume. | Many cardiovascular emergencies are problems of rate, rhythm, filling, resistance or pump strength. |
| Vascular tone | Degree of constriction or dilation in vessels. | Vasopressors constrict; nitrates and calcium-channel blockers dilate selected vascular beds. |
| Coagulation and platelet activity | Processes that form or prevent clots. | Antiplatelets, anticoagulants and fibrinolytics reduce clot formation or dissolve clot. |
FILL = preload and volume; PUMP = contractility and cardiac output; PIPE = vascular resistance and blood pressure; CLOT = platelets and coagulation; RHYTHM = rate and conduction.
2. Cardiovascular emergencies that require rapid recognition
WHO identifies cardiovascular diseases as disorders of the heart and blood vessels, including coronary heart disease, cerebrovascular disease, peripheral arterial disease, rheumatic and congenital heart disease, deep-vein thrombosis and pulmonary embolism. Heart attacks and strokes are acute events that require immediate care.
| Presentation | Red flags | Medication-related priorities |
|---|---|---|
| Chest pain/possible ACS | Pressure, radiation, sweating, nausea, dyspnoea, syncope, shock or new ECG changes. | Rapid assessment, ECG, antiplatelet/anti-ischaemic treatment under protocol, bleeding/allergy checks and urgent referral. |
| Acute pulmonary oedema | Severe breathlessness, orthopnoea, crackles, pink froth, hypoxia and hypertension or shock. | Position, oxygen if indicated, ventilatory support, diuretic/vasodilator decisions and close BP monitoring. |
| Cardiogenic shock | Hypotension, cold clammy skin, altered mental status, oliguria and weak pulse. | Support perfusion, avoid indiscriminate fluids, consider vasoactive therapy under advanced care. |
| Bradycardia | Low rate with hypotension, altered consciousness, chest pain, shock or acute heart failure. | Identify reversible causes; atropine/pacing pathway may be needed according to protocol. |
| Tachyarrhythmia | Very rapid rhythm with instability, chest pain, pulmonary oedema, syncope or hypotension. | Synchronised cardioversion may be time-critical; medicines depend on rhythm and stability. |
| Cardiac arrest | Unresponsive, absent/abnormal breathing and no signs of circulation. | High-quality CPR, defibrillation when indicated and guideline-directed medicines; never let drug preparation delay CPR. |
| Hypertensive emergency | Severe BP elevation with encephalopathy, stroke, ACS, pulmonary oedema, renal injury or aortic syndrome. | Controlled reduction with titratable therapy and organ-specific monitoring—not abrupt normalisation. |
| Thromboembolism | Sudden dyspnoea, pleuritic pain, hypoxia, unilateral swelling or neurological deficit. | Urgent diagnosis, anticoagulation or reperfusion decisions under specialist protocol. |
3. General safety principles before giving cardiovascular medicines
- Assess airway, breathing, circulation, disability and exposure before focusing on a medicine.
- Record BP in both arms when clinically relevant, pulse rate and regularity, respiratory rate, oxygen saturation, temperature, mental status, urine output and perfusion.
- Obtain a 12-lead ECG or rhythm strip when indicated and do not give an AV-nodal blocker without considering the rhythm.
- Ask about allergies, pregnancy, kidney/liver disease, bleeding, erectile-dysfunction medicines, anticoagulants, stimulants and recent doses.
- Confirm the indication, product, concentration, dose, route, infusion rate, monitoring and prescriber/protocol authority.
- Check whether hypotension, bradycardia, dehydration, right-ventricular infarction, aortic stenosis, asthma or conduction disease changes the risk.
- Reassess after administration; the desired effect is not merely a lower number on the monitor but improved perfusion and patient condition.
4. Classification of cardiovascular medicines
| Group | Main purpose | Examples |
|---|---|---|
| Antihypertensives | Reduce arterial pressure and long-term cardiovascular risk. | ACE inhibitors, ARBs, calcium-channel blockers, thiazide-like diuretics, beta-blockers and others. |
| Antianginals | Reduce myocardial oxygen demand or improve coronary supply. | Nitrates, beta-blockers, calcium-channel blockers and selected metabolic agents. |
| Heart-failure medicines | Reduce congestion, afterload, neurohormonal injury and hospitalisation; improve symptoms and survival. | Diuretics, ACE inhibitors/ARBs/ARNI, beta-blockers, mineralocorticoid antagonists, SGLT2 inhibitors and vasodilators. |
| Antiarrhythmics | Control rate, rhythm or conduction. | Adenosine, amiodarone, lidocaine, beta-blockers, selected calcium-channel blockers, magnesium and atropine. |
| Antiplatelets | Reduce platelet aggregation in arterial thrombosis. | Aspirin, clopidogrel and other P2Y12 inhibitors. |
| Anticoagulants | Reduce thrombin/factor activity and clot extension. | Heparins, low-molecular-weight heparin, warfarin and direct oral anticoagulants. |
| Fibrinolytics | Convert plasminogen to plasmin and dissolve selected clots. | Alteplase and other protocol-specific agents. |
| Vasopressors | Increase vascular tone and perfusion pressure. | Norepinephrine, epinephrine, vasopressin and selected agents. |
| Inotropes | Increase myocardial contractility when pump function is inadequate. | Dobutamine and other specialist-use agents. |
| Lipid-lowering medicines | Reduce atherosclerotic cardiovascular risk. | Statins, ezetimibe and other specialist therapies. |
5. Antihypertensive medicines
Antihypertensives lower blood pressure by reducing vascular resistance, circulating volume, cardiac output or neurohormonal activation. Long-term control prevents stroke, heart failure, kidney disease and coronary events; emergency treatment is reserved for severe pressure elevation with acute organ injury or other defined indications.
5.1 ACE inhibitors
Examples: enalapril, lisinopril, captopril and ramipril.
Mechanism: inhibit conversion of angiotensin I to angiotensin II and reduce aldosterone. This promotes vasodilation, reduces sodium/water retention and lowers afterload and preload.
| Uses | Important adverse effects | Major precautions/contraindications | Monitor |
|---|---|---|---|
| Hypertension, heart failure, diabetic kidney protection in selected patients, post-MI therapy. | Dry cough, hypotension, dizziness, hyperkalaemia, increased creatinine, angioedema. | Pregnancy; previous ACE-inhibitor angioedema; severe hyperkalaemia; bilateral renal-artery stenosis; acute kidney injury requires review. | BP, creatinine/eGFR, potassium, cough, facial/tongue swelling and urine output. |
5.2 Angiotensin-receptor blockers (ARBs)
Examples: losartan, valsartan and candesartan. ARBs block the angiotensin-II receptor and generally do not cause bradykinin-related cough, but can still cause hypotension, hyperkalaemia and kidney injury. Do not combine ACE inhibitors and ARBs routinely; combination increases renal and potassium risk without routine benefit.
5.3 Calcium-channel blockers
| Subclass | Examples | Main actions | Safety points |
|---|---|---|---|
| Dihydropyridines | Amlodipine, nifedipine, nicardipine. | Predominantly arterial vasodilation; reduce afterload. | Headache, flushing, ankle oedema, tachycardia or hypotension. Short-acting sublingual nifedipine is unsafe for rapid unmonitored BP reduction. |
| Non-dihydropyridines | Verapamil, diltiazem. | Slow AV-node conduction, reduce heart rate and contractility. | Bradycardia, AV block, constipation, hypotension and worsening systolic failure. Avoid in certain conduction disorders and with interacting AV-nodal blockers. |
5.4 Diuretics
| Class | Examples | Site/action | Emergency and monitoring points |
|---|---|---|---|
| Loop diuretics | Furosemide. | Block sodium-potassium-chloride transport in the thick ascending limb; powerful natriuresis and diuresis. | Useful for congestion/pulmonary oedema when indicated; monitor BP, urine output, potassium, sodium, magnesium, renal function and ototoxicity risk with rapid/high exposure. |
| Thiazide/thiazide-like | Hydrochlorothiazide, bendroflumethiazide, indapamide. | Reduce sodium reabsorption in the distal tubule. | Long-term hypertension; may cause hyponatraemia, hypokalaemia, hyperuricaemia, dehydration and glucose changes. |
| Potassium-sparing | Spironolactone, eplerenone, amiloride. | Reduce aldosterone-mediated sodium retention or block distal sodium channels. | Hyperkalaemia and renal injury; spironolactone may cause gynaecomastia. Check potassium/renal function and interacting medicines. |
| Osmotic | Mannitol in selected specialist indications. | Raises tubular osmolality and draws water into urine. | Requires careful diagnosis and monitoring; can worsen pulmonary oedema or renal failure in inappropriate patients. |
5.5 Beta-blockers
Examples: metoprolol, atenolol, bisoprolol, propranolol, carvedilol and labetalol. They reduce sympathetic stimulation, heart rate, contractility and renin release. Some are beta-1 selective; selectivity is dose-dependent.
- Uses: hypertension, angina, selected arrhythmias, post-MI care, chronic heart failure with specialist titration, thyrotoxicosis and some aortic conditions.
- Adverse effects: bradycardia, hypotension, fatigue, bronchospasm, cold extremities, depression of exercise response and masking of hypoglycaemia.
- Avoid or seek urgent review: cardiogenic shock, acute decompensated heart failure, severe bradycardia, high-grade AV block and active bronchospasm.
- Do not stop abruptly: withdrawal may cause rebound tachycardia, hypertension, angina or infarction.
5.6 Alpha-1 blockers and centrally acting agents
Alpha-1 blockers such as prazosin relax arterial and venous smooth muscle but can cause first-dose postural hypotension and syncope. Centrally acting medicines such as clonidine reduce sympathetic outflow; sedation, dry mouth and rebound hypertension after abrupt withdrawal are important safety concerns. These are not usually first-line emergency choices without an authorised plan.
6. Antianginal medicines
Angina occurs when myocardial oxygen demand exceeds coronary oxygen supply. Medicines either reduce demand by lowering heart rate, contractility or wall stress, or improve supply by dilating coronary/venous vessels. New, prolonged or rest pain must be treated as possible acute coronary syndrome until assessed.
6.1 Nitrates
Examples: glyceryl trinitrate (nitroglycerin) sublingual spray/tablet, transdermal patches and IV infusion; isosorbide dinitrate/mononitrate.
Mechanism: release nitric oxide, increase cyclic GMP and relax vascular smooth muscle. Venodilation reduces preload; at higher exposure arterial dilation reduces afterload and myocardial work.
| Uses | Adverse effects | Do not give or urgently clarify | Monitor |
|---|---|---|---|
| Angina/ACS symptom relief, acute pulmonary oedema with adequate BP, controlled hypertensive cardiac ischaemia. | Headache, flushing, dizziness, hypotension, reflex tachycardia and syncope. | Hypotension/shock, suspected right-ventricular infarction or severe preload dependence, recent PDE-5 inhibitor use, severe anaemia or raised intracranial pressure without specialist direction. | BP before and after, pain, mental status, pulse, perfusion and response. |
6.2 Other antianginals
- Beta-blockers: lower heart rate and contractility; useful for exertional angina when not contraindicated.
- Calcium-channel blockers: reduce afterload and/or AV conduction; useful when beta-blockers are unsuitable or for vasospastic angina.
- Ranolazine: reduces late sodium current and wall tension; specialist use, with QT and interaction precautions.
- Ivabradine: slows sinus-node rate in selected patients; requires sinus rhythm and specialist criteria.
- Antiplatelet/statin therapy: does not immediately relieve pain but reduces thrombotic and long-term atherosclerotic risk when indicated.
7. Heart-failure medicines
Heart failure is a syndrome in which the heart cannot provide adequate output or can do so only at high filling pressures. Acute decompensation may present with pulmonary oedema, peripheral congestion, fatigue, hypotension, cool extremities or altered consciousness.
| Group | Long-term role | Acute-care considerations |
|---|---|---|
| Loop diuretics | Relieve fluid congestion and oedema. | Assess BP, renal function, urine output and electrolytes; response is clinical, not just a single dose. |
| ACE inhibitor/ARB/ARNI | Reduce afterload and maladaptive neurohormonal activity; improve outcomes in selected patients. | Hold or seek review in shock, severe hypotension, acute kidney injury or severe hyperkalaemia. |
| Evidence-based beta-blocker | Reduces chronic sympathetic injury and improves survival in stable patients. | Do not initiate or increase during shock or acute decompensation without specialist direction. |
| Mineralocorticoid antagonist | Reduces aldosterone-related remodelling and mortality in selected patients. | Monitor potassium and renal function. |
| SGLT2 inhibitor | Provides heart-failure and renal benefits in selected patients, with or without diabetes. | Consider dehydration, ketoacidosis risk and acute illness; follow local guidance. |
| Vasodilators | Reduce preload/afterload in selected patients. | Require adequate BP; avoid precipitous hypotension. |
| Inotropes | Temporarily improve contractility in selected low-output states. | Specialist/critical-care use; can cause arrhythmia and increase myocardial oxygen demand. |
| Digoxin | Slows AV conduction and increases contractility modestly; selected heart-failure or rate-control use. | Narrow therapeutic index; toxicity risk rises with renal impairment, hypokalaemia and interacting medicines. |
8. Antiplatelet medicines
Platelets are central to arterial thrombus formation after plaque rupture. Antiplatelets reduce platelet activation and aggregation; they do not dissolve an established clot and they increase bleeding risk.
8.1 Aspirin
Aspirin irreversibly inhibits platelet cyclooxygenase and reduces thromboxane A₂ formation for the life of the platelet. It is used in selected acute coronary syndromes and secondary prevention.
- Check: true allergy, active major bleeding, suspected aortic dissection, severe thrombocytopenia, recent haemorrhagic stroke, peptic-ulcer risk and concurrent anticoagulation.
- Adverse effects: dyspepsia, gastrointestinal bleeding, bronchospasm in aspirin-sensitive asthma, renal effects and hypersensitivity.
- Emergency teaching: do not give an antiplatelet for undifferentiated chest pain until contraindications and aortic/dissection features have been assessed according to protocol.
8.2 P2Y12 inhibitors
Examples: clopidogrel, prasugrel and ticagrelor. They block ADP-mediated platelet activation and are used with aspirin in selected ACS or after coronary intervention.
| Safety issue | Why it matters | Action |
|---|---|---|
| Bleeding | Risk increases with anticoagulants, thrombolytics, trauma, surgery and older age. | Check bleeding, haemoglobin/platelets when available and invasive-procedure plans. |
| Upcoming surgery/procedure | Platelet inhibition may persist after the dose. | Notify the team; never stop dual therapy without authorised specialist advice. |
| Drug interactions | Metabolism and absorption may be altered by other medicines. | Review the complete medicine history. |
| Stroke mimic | Not every neurological deficit is an ischaemic stroke; intracranial bleeding must be considered. | Follow the stroke pathway and imaging/specialist decision. |
9. Anticoagulant medicines
Anticoagulants reduce thrombin generation or activity and limit clot extension. They are used for venous thromboembolism, atrial fibrillation, mechanical valves, ACS and other indications. Anticoagulants do not directly dissolve a clot and can cause life-threatening bleeding.
| Class | Examples | Mechanism/monitoring | Important risks |
|---|---|---|---|
| Unfractionated heparin | Heparin infusion/injection. | Enhances antithrombin activity; monitor aPTT or anti-Xa according to protocol, platelets and clinical bleeding. | Bleeding, heparin-induced thrombocytopenia, hyperkalaemia and osteoporosis with prolonged use. |
| Low-molecular-weight heparin | Enoxaparin and similar agents. | Predominantly factor Xa inhibition; dose depends on indication, weight and renal function. | Bleeding, accumulation in renal impairment and HIT risk. |
| Vitamin K antagonist | Warfarin. | Reduces vitamin-K-dependent clotting factors; monitor INR. | Many food/drug interactions, delayed onset/offset and major bleeding. |
| Direct oral anticoagulants | Apixaban, rivaroxaban, dabigatran and others. | Direct factor Xa or thrombin inhibition; routine INR is not a reliable measure of effect. | Bleeding, renal/hepatic dosing issues, adherence and procedure timing. |
| Direct thrombin inhibitor | Dabigatran or specialist parenteral agents. | Blocks thrombin activity. | Renal clearance and interactions; reversal/urgent-procedure planning. |
Anticoagulant emergency assessment
- Ask which anticoagulant, dose, last administration time, indication and adherence.
- Look for gastrointestinal, urinary, vaginal, respiratory, intracranial, wound or retroperitoneal bleeding.
- After trauma or a fall, consider occult intracranial bleeding even if the patient initially looks well.
- Check BP, pulse, mental state, skin, puncture sites, urine/stool and haemodynamic status.
- Bring the medication packaging or anticoagulation record to the receiving team.
- Do not give reversal agents or blood products outside authorised advanced-care protocols.
10. Fibrinolytic (thrombolytic) medicines
Fibrinolytics convert plasminogen to plasmin, which breaks down fibrin in a thrombus. They may be considered in selected STEMI, ischaemic stroke or massive pulmonary embolism pathways where eligibility, timing, imaging and specialist oversight are confirmed.
| Potential indication | Critical checks | Major danger |
|---|---|---|
| Selected acute ischaemic stroke | Time last known well, imaging excluding haemorrhage, BP, anticoagulant use, surgery and stroke criteria. | Intracranial haemorrhage and systemic bleeding. |
| Selected STEMI | ECG, symptom timing, PCI availability, contraindications and bleeding risk. | Intracranial or internal bleeding, reperfusion arrhythmias. |
| Massive/high-risk pulmonary embolism | Haemodynamic instability, imaging/clinical criteria and bleeding risk. | Major haemorrhage and procedural complications. |
11. Lipid-lowering and vascular-protection medicines
Statins inhibit HMG-CoA reductase, lower LDL cholesterol and reduce atherosclerotic cardiovascular risk. They are preventive medicines, not immediate pain-relief drugs. Ezetimibe reduces intestinal cholesterol absorption and may be added or used when statins are not tolerated. Monitor for muscle symptoms, liver concerns and interactions according to local guidance.
12. Antiarrhythmic medicines
Antiarrhythmics alter automaticity, conduction, refractory period or AV-node activity. The ECG diagnosis and haemodynamic stability determine whether a medicine is appropriate. A drug that treats one rhythm can worsen another.
12.1 Adenosine
Adenosine produces a very brief AV-nodal block and may terminate selected regular narrow-complex supraventricular tachycardias. It does not treat ventricular fibrillation or irregular wide-complex tachycardia.
- Explain the short-lived flushing, chest discomfort or sense of impending doom before administration when the patient is conscious.
- Use rapid administration through a suitable proximal access followed by a flush only under authorised protocol.
- Continuous ECG and resuscitation equipment must be available.
- Use caution or specialist advice in asthma/bronchospasm, pre-excited atrial fibrillation, transplant patients and interacting medicines.
12.2 Amiodarone
Amiodarone has class III potassium-channel effects plus sodium-channel, calcium-channel and beta-blocking actions. It may be used for selected ventricular or supraventricular arrhythmias and refractory VF/pulseless VT under advanced life-support protocols.
- Acute adverse effects: hypotension, bradycardia, QT prolongation and infusion-related reactions.
- Long-term toxicities: thyroid, lung, liver, eye, skin and neurological effects.
- Interactions: warfarin, digoxin and other QT-prolonging medicines require careful review.
- Monitoring: ECG/QT, BP, rhythm, liver/thyroid/pulmonary review for ongoing therapy and infusion-site safety.
12.3 Lidocaine
Lidocaine blocks fast sodium channels and can suppress selected ventricular arrhythmias. It may be considered for VF/pulseless VT unresponsive to defibrillation under current resuscitation protocols. Neurological toxicity, seizures, hypotension and bradycardia are important risks.
12.4 Beta-blockers and non-dihydropyridine calcium-channel blockers
These slow AV-node conduction and can control ventricular rate in selected atrial fibrillation/flutter or supraventricular tachycardia. Do not give blindly to an unstable patient, a patient with pre-excited AF, severe heart failure, high-grade block, hypotension or a wide-complex rhythm of uncertain origin.
12.5 Magnesium
Magnesium is important in torsades de pointes due to prolonged QT and selected electrolyte-related arrhythmias. Routine magnesium is not beneficial for every cardiac arrest or every ventricular tachyarrhythmia; use the indication and protocol.
12.6 Digoxin
Digoxin increases vagal activity and has positive inotropic effects. It has a narrow therapeutic index. Toxicity may present with nausea, vomiting, confusion, visual disturbance, bradyarrhythmia, AV block or ventricular arrhythmias. Risk increases with renal impairment, hypokalaemia, hypomagnesaemia and interacting medicines.
13. Vasopressors and inotropes
Vasoactive medicines are high-alert infusions. They require a monitored environment, an infusion pump, reliable vascular access and a team able to recognise arrhythmia, extravasation and rapid changes in perfusion.
| Medicine/group | Main action | Typical specialist indication | Key hazards |
|---|---|---|---|
| Norepinephrine | Predominantly alpha-1 vasoconstriction with some beta-1 activity. | Severe vasodilatory shock after appropriate assessment and fluid strategy. | Ischaemia, arrhythmia, extravasation necrosis and excessive afterload. |
| Epinephrine | Alpha and beta agonist; increases vascular tone, heart rate and contractility. | Cardiac arrest, anaphylaxis, selected shock and bronchospasm protocols. | Tachyarrhythmia, myocardial ischaemia, hyperglycaemia, hypokalaemia and dosing-concentration errors. |
| Dobutamine | Predominantly beta-1 inotropy with some vasodilation. | Selected low-output cardiogenic states with adequate pressure. | Arrhythmia, hypotension, increased oxygen demand and worsening obstruction. |
| Vasopressin | V1-mediated vasoconstriction. | Selected specialist shock or endocrine indications; not a routine substitute for epinephrine in adult cardiac arrest. | Ischaemia, hyponatraemia and excessive vasoconstriction. |
| Dopamine | Dose-dependent dopaminergic, beta and alpha effects; use is protocol-specific. | Selected bradycardic or shock states where alternatives and monitoring are available. | Arrhythmia, tachycardia, extravasation and variable response. |
Vasoactive infusion safety
- Confirm patient, indication, concentration, dose units, pump rate and target parameters.
- Use standard concentrations and an independent double-check.
- Use a dedicated line where possible and label the tubing and syringe/bag.
- Monitor BP frequently or continuously, rhythm, peripheral perfusion, urine output, mental status and lactate/other perfusion markers as available.
- Check the access site frequently; stop and escalate for pain, swelling, blanching or coolness suggesting extravasation.
- Never abruptly stop a prolonged vasopressor infusion without an authorised plan; rebound hypotension may occur.
14. Cardiovascular medicines in cardiac arrest
High-quality CPR and early defibrillation remain the foundation of cardiac-arrest care. The 2025 AHA adult advanced-life-support guidance recommends epinephrine for adult cardiac arrest, with timing linked to shockable versus non-shockable rhythms, and allows amiodarone or lidocaine for VF/pulseless VT unresponsive to defibrillation. Routine calcium, sodium bicarbonate or magnesium is not recommended for undifferentiated arrest; these may be used for selected causes such as hyperkalaemia or toxic exposure.
| Situation | Medication principle | What must not be delayed |
|---|---|---|
| Non-shockable arrest | Give guideline-directed epinephrine as soon as feasible while continuing CPR. | High-quality compressions, airway/ventilation and reversible-cause search. |
| Shockable VF/pulseless VT | Defibrillate and continue CPR; epinephrine and antiarrhythmic timing follow current algorithm. | Defibrillation and minimal interruptions. |
| Suspected hyperkalaemia | Calcium, insulin/glucose and other therapies only under the hyperkalaemia protocol. | CPR, ECG, rapid cause recognition and definitive treatment. |
| Toxicological arrest | Use poison-specific antidotes or adjuncts when indicated. | Resuscitation, decontamination decisions and toxicology advice. |
| Post-ROSC | Manage BP, oxygenation, ventilation, rhythm, glucose, temperature and cause. | Continuous monitoring, ECG, transfer to definitive care and documentation. |
15. Bradycardia medicines and pacing pathway
Bradycardia is dangerous when it causes hypotension, altered mental status, ischaemic chest discomfort, acute heart failure or shock. Determine whether it is sinus bradycardia, AV block, medication effect, hypoxia, hypothermia, hyperkalaemia or another reversible cause.
- Atropine: blocks muscarinic activity and may increase sinus rate and AV conduction in selected symptomatic bradycardia. It may be ineffective in infranodal high-grade block.
- Transcutaneous pacing: may be required when medication is ineffective or the patient is unstable; provide analgesia/sedation only with appropriate monitoring and authorised expertise.
- Epinephrine or dopamine infusion: may support rate and perfusion while awaiting pacing or definitive treatment under advanced protocol.
- Correct reversible causes: hypoxia, hypothermia, myocardial infarction, medication toxicity and electrolyte abnormality.
16. Tachyarrhythmia medicines and cardioversion
First decide whether the patient is unstable. Hypotension, altered mental state, shock, ongoing ischaemic chest discomfort or acute pulmonary oedema indicate an emergency pathway, often requiring synchronised cardioversion rather than repeated medication trials.
| Rhythm pattern | Possible medicine principle | Critical warning |
|---|---|---|
| Regular narrow-complex SVT | Vagal manoeuvres, then adenosine under ECG-monitored protocol when appropriate. | Do not use adenosine blindly for irregular or polymorphic rhythms. |
| Atrial fibrillation/flutter with rapid rate | Rate control or rhythm strategy depends on stability, ventricular function, pre-excitation and duration. | AV-nodal blockade can be dangerous in pre-excited AF. |
| Monomorphic wide-complex tachycardia | Treat as VT until proven otherwise; antiarrhythmic or cardioversion under advanced care. | Do not assume it is benign SVT with aberrancy. |
| Torsades/polymorphic VT with long QT | Immediate defibrillation if pulseless/unstable; magnesium and correction of causes in the protocol. | Stop QT-prolonging medicines and correct electrolytes. |
| VF/pulseless VT | Defibrillation, CPR, epinephrine and amiodarone/lidocaine according to current algorithm. | Drug preparation must not delay shock or compressions. |
17. Acute coronary syndrome (ACS) medicine principles
ACS includes unstable angina, NSTEMI and STEMI. The emergency team must obtain ECG and urgent clinician/cardiology input; medicine choices depend on diagnosis, bleeding risk, renal function, timing and reperfusion pathway.
- Recognise possible ACS from symptoms and atypical presentations, especially in women, older adults and people with diabetes.
- Obtain and communicate a 12-lead ECG promptly; repeat if symptoms or the clinical picture changes.
- Assess BP, oxygen saturation, pulmonary oedema, shock, bleeding, allergy, anticoagulant use and recent PDE-5 inhibitor use.
- Use antiplatelet and anti-ischaemic treatment only under the authorised ACS pathway.
- Provide oxygen when indicated by hypoxaemia or respiratory distress rather than automatically for every chest-pain patient.
- Arrange urgent reperfusion/transfer when STEMI or high-risk ACS is suspected.
- Document symptom onset/last known well, ECG time, medicines, doses, response and contraindications.
18. Hypertensive urgency versus emergency
Severe BP elevation without acute organ injury is managed differently from a hypertensive emergency with encephalopathy, stroke, ACS, pulmonary oedema, aortic dissection, renal injury or eclampsia. Rapid unmonitored reduction can reduce cerebral, coronary or renal perfusion.
| Assessment | Questions |
|---|---|
| Neurological | Confusion, seizures, focal deficit, severe headache, visual change or reduced consciousness? |
| Cardiac | Chest pain, new ECG changes, arrhythmia, heart failure or aortic pain? |
| Respiratory | Hypoxia, crackles, frothy sputum or severe work of breathing? |
| Renal | Oliguria, haematuria, acute kidney injury or severe proteinuria? |
| Pregnancy | Pregnancy/postpartum, headache, visual symptoms, seizures or epigastric pain suggesting pre-eclampsia/eclampsia? |
| Medication factors | Missed medicines, stimulant use, withdrawal, interaction or incorrect measurement? |
19. Cardiovascular drug interactions and contraindication patterns
| Combination/problem | Potential harm | Safety action |
|---|---|---|
| Nitrate + PDE-5 inhibitor | Profound hypotension and cardiovascular collapse. | Ask specifically about sildenafil, tadalafil or similar medicines; escalate before nitrates. |
| ACE inhibitor/ARB + potassium-sparing diuretic | Hyperkalaemia and renal injury. | Review potassium/renal function and avoid casual duplication. |
| Beta-blocker + verapamil/diltiazem | Bradycardia, AV block, hypotension and heart failure. | Use only with an authorised indication and close monitoring. |
| Antiplatelet + anticoagulant + NSAID | Major gastrointestinal or intracranial bleeding. | Check indication, bleeding history and prescriber plan. |
| Amiodarone + warfarin/digoxin | Increased anticoagulant or digoxin effect and toxicity. | Specialist monitoring and dose review. |
| Diuretic + digoxin | Hypokalaemia increases digoxin toxicity and arrhythmia. | Monitor electrolytes and rhythm. |
| QT-prolonging medicines together | Torsades de pointes and sudden death. | Review ECG, electrolytes and alternatives. |
| Vasopressor extravasation | Local ischaemia and tissue necrosis. | Check line frequently and follow extravasation protocol. |
20. Special populations and cardiovascular medicines
| Patient group | Key risks | Practical precautions |
|---|---|---|
| Children | Weight-based dosing, narrow physiological reserve, congenital disease and different normal vital signs. | Use current paediatric protocol, actual weight, appropriate concentration and independent calculation. |
| Pregnancy/postpartum | Fetal exposure, altered haemodynamics, pre-eclampsia/eclampsia and postpartum cardiomyopathy. | Use obstetric emergency guidance and avoid assuming adult cardiovascular protocols are interchangeable. |
| Older/frail adults | Reduced renal clearance, orthostatic hypotension, falls, polypharmacy and sensitivity. | Review all medicines, measure postural symptoms where safe and reassess after small changes. |
| Renal impairment | Accumulation of digoxin, anticoagulants and some antihypertensives; electrolyte instability. | Check creatinine/eGFR, urine output, potassium and dose guidance. |
| Liver disease | Altered metabolism, albumin and coagulation. | Review bleeding risk, protein binding and interactions. |
| Asthma/COPD | Non-selective beta-blockade may precipitate bronchospasm. | Confirm indication and use a selective option only when authorised and appropriate. |
| Right-ventricular infarction/preload dependence | Nitrates/diuresis can reduce preload and worsen output. | Assess ECG, lungs, BP and clinical context before venodilators. |
| Shock | Hypotension may worsen with antihypertensives, nitrates, sedatives or excessive diuresis. | Prioritise perfusion and senior review; do not treat hypertension history blindly. |
21. Cardiovascular medicine calculations
Use the prescribed dose, actual product concentration and current protocol. Cardiovascular infusions are high-alert medicines; calculate, label and independently check them.
Volume =
(prescribed dose ÷ dose available) × volume containing the available doseWeight-based dose =
dose/kg × weight in kgInfusion rate =
total volume ÷ timeDose delivered per minute =
concentration × infusion rate- Write the order and units without abbreviations.
- Confirm whether the prescription uses mg/min, micrograms/min, micrograms/kg/min or another unit.
- Check the final concentration after dilution, not only the amount in the ampoule.
- Verify pump settings, line label, target BP/rate and maximum dose.
- Ask for independent verification for epinephrine, norepinephrine, insulin, heparin, paediatric doses and antiarrhythmic infusions.
- Recalculate whenever the bag, syringe, patient weight or pump setting changes.
22. Monitoring and documentation
| Medicine group | Baseline checks | Follow-up monitoring |
|---|---|---|
| Antihypertensive/vasodilator | BP, perfusion, renal function, electrolytes and indication. | BP trend, dizziness, syncope, urine output, potassium/creatinine and symptom response. |
| Diuretic | Congestion, BP, renal function, potassium, sodium and weight. | Urine output, fluid balance, electrolytes, renal function, hearing symptoms for selected high-dose IV use. |
| Antiarrhythmic | 12-lead ECG, rhythm, QT, BP, electrolytes and drug interactions. | Continuous ECG where indicated, rhythm conversion, bradycardia, hypotension and recurrence. |
| Antiplatelet/anticoagulant | Bleeding history, trauma, surgery, platelet/renal data and indication. | Bleeding, neurological change, puncture sites, haemoglobin/platelets/INR or other ordered tests. |
| Vasopressor/inotrope | Perfusion, access, rhythm, BP and indication. | Continuous BP/rhythm, perfusion, urine output, mental state and extravasation. |
| Thrombolytic | Imaging/ECG criteria, time, BP, contraindications and bleeding risk. | Neurological status, puncture sites, BP, bleeding and reperfusion complications. |
Document
- Indication, diagnosis or emergency protocol.
- Medicine, concentration, dose, route, rate, time and prescriber/authorising clinician.
- Baseline vital signs, ECG/rhythm and relevant laboratory or history findings.
- Response: pain, BP, pulse, rhythm, oxygenation, perfusion, urine output and mental status.
- Adverse effects, withheld doses, contraindications, escalation and communication.
- For infusions: concentration, pump setting, line/site checks, titration target and handover.
23. Clinical scenarios
24. Examination and revision questions
- Define preload, afterload, contractility, chronotropy, dromotropy and cardiac output.
- Classify cardiovascular medicines by their main physiological target.
- Explain the mechanism and major adverse effects of ACE inhibitors.
- Compare ACE inhibitors and ARBs.
- Differentiate dihydropyridine and non-dihydropyridine calcium-channel blockers.
- List the major monitoring requirements for furosemide.
- Explain the role and contraindications of nitrates in acute chest pain.
- Why can beta-blockers be dangerous in shock, bradycardia or acute decompensated heart failure?
- Differentiate antiplatelets, anticoagulants and fibrinolytics.
- What bleeding checks are needed before anticoagulant or thrombolytic therapy?
- Explain the main emergency role of adenosine.
- Why must an irregular wide-complex tachycardia not be treated blindly with AV-nodal blockers?
- Describe the important toxicities and interactions of amiodarone.
- When may magnesium be useful in arrhythmia?
- Describe the cardiovascular arrest roles of epinephrine, amiodarone and lidocaine.
- Why are routine calcium, sodium bicarbonate and magnesium not given in every cardiac arrest?
- List the safety checks for a norepinephrine infusion.
- Explain how pregnancy, renal impairment and older age alter cardiovascular medicine safety.
- What should be documented after administering an emergency cardiovascular medicine?
- Describe the first actions for a patient with chest pain, hypotension and suspected ACS.
25. Key takeaways
- Cardiovascular medicines act on filling, pump function, vascular tone, clotting or rhythm.
- Always assess the patient, ECG, BP, perfusion, indication and contraindications before administration.
- Nitrates, antihypertensives and diuretics can worsen hypotension or preload-dependent states.
- Antiplatelets, anticoagulants and fibrinolytics prevent or treat thrombosis but can cause major bleeding.
- Antiarrhythmics are rhythm-specific; the wrong drug can worsen conduction or cause fatal arrhythmia.
- High-quality CPR and early defibrillation take priority over medication preparation during cardiac arrest.
- Vasoactive infusions require standard concentrations, independent checks, pumps, secure access and continuous monitoring.
- Children, pregnancy, renal disease, liver disease, frailty, asthma and shock require patient-specific review.
- Document every dose, route, rate, response, adverse effect and handover concern.
References and further study
- Cardiovascular Drugs — supplied SlideShare resource
- Unit 10 Cardiovascular Drugs — supplied SlideShare resource
- WHO — Cardiovascular diseases fact sheet
- American Heart Association — 2025 resuscitation algorithms
- AHA — 2025 Adult Advanced Life Support
- NICE — Acute coronary syndromes
- NICE — Acute heart failure
- NICE — Atrial fibrillation: diagnosis and management