Veterinary ECG Interpretation: A Systematic Approach — GlobalVetCo

Veterinary ECG Interpretation: A Systematic Approach

Global Vet & Co · Educational Series · Physiology
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Narration for: Veterinary ECG Interpretation: A Systematic Approach
~24 min read · Clinically structured · Updated for practice & exams
Veterinary ECG Interpretation: A Systematic Approach — clinical illustration (GlobalVetCo)
Six-lead veterinary ECG tracing with normal sinus rhythm in a dog — systematic interpretation overlay with rate, rhythm, axis, interval, and morphology callouts.

Rate, rhythm, axis, intervals — a step-by-step clinical method with species-specific normal values for dogs, cats, and horses, plus common arrhythmias described with annotated strip interpretations.

Key takeaways
  • Always follow a systematic five-step method: rate → rhythm → axis → intervals → P-QRS-T morphology.
  • Species-specific normal values are critical — a normal canine PR interval is prolonged in a horse.
  • Mean electrical axis (MEA) shifts reveal chamber enlargement and conduction blocks before morphology changes.
  • Wide QRS complexes (>70 ms in dogs) indicate ventricular origin; narrow QRS indicates supraventricular origin.
  • A lead-II rhythm strip alone identifies 85% of arrhythmias — add chest leads for chamber enlargement.
  • Sinus arrhythmia is NORMAL in dogs (vagal tone); its absence in a stressed dog may indicate autonomic dysfunction.
Red flags / do not miss
  • Ventricular tachycardia with a rate >250 bpm — can deteriorate to ventricular fibrillation within minutes.
  • Third-degree AV block with ventricular escape rate <40 bpm in a dog — pacemaker emergency.
  • Pulseless electrical activity (PEA) — rhythm on ECG but no cardiac output; CPR, not cardioversion.
  • Hyperkalemia (spiked T waves → wide QRS → sine wave) — treat before cardiac arrest ensues.
  • Atrial fibrillation with a ventricular response rate >240 bpm — risk of tachycardia-induced cardiomyopathy.

Introduction: Why a Systematic Approach Matters

Electrocardiography is the most accessible cardiac diagnostic in veterinary practice — a single lead-II rhythm strip obtained in under 60 seconds can reveal life-threatening arrhythmias, electrolyte disturbances, and chamber enlargement patterns. Yet ECG misinterpretation is one of the commonest sources of diagnostic error in small-animal and equine practice. The problem is rarely the tracing quality; it is the absence of a systematic, species-aware reading method.

This article presents a five-step method — rate, rhythm, axis, intervals, morphology — that transforms an ECG from an intimidating squiggle into a structured clinical narrative. Each step builds on the last: rate quantifies cardiac output adequacy; rhythm identifies the pacemaker origin; axis reveals chamber enlargement; intervals expose conduction system disease; and P-QRS-T morphology localises myocardial pathology.

We cover normal values for dogs, cats, and horses; guide you through common arrhythmia patterns with annotated strip descriptions; and provide clinical correlations that connect what you see on paper to what you should do at the cage-side.

Clinical scenario
A 9-year-old Miniature Schnauzer presents for weakness and syncope. The lead-II strip shows a ventricular rate of 38 bpm with no relationship between P waves and QRS complexes — P waves march at 140 bpm, QRS complexes at 38 bpm. This is third-degree (complete) AV block. The ventricular escape rhythm is wide and slow. Without a pacemaker, survival beyond 6 months is <20%. This five-step method will help you recognise this in under 10 seconds.

Step 1: Heart Rate — The First Number

The 300-150-100-75-60-50 Method

On standard 25 mm/s paper (the universal veterinary recording speed), each large square = 0.2 s, each small square = 0.04 s. The 300 rule is the fastest bedside method: count the number of large squares between two consecutive R waves and divide 300 by that number. For irregular rhythms, count R waves in a 6-second strip (30 large squares) and multiply by 10.

Rate from R–R interval
HR = 300 / (number of large squares between R–R)
On 25 mm/s paper. For irregular rhythms: HR = (R waves in 6 s) × 10.
Species Normal resting HR (bpm) Tachycardia threshold Bradycardia threshold
Dog (awake) 70–160 >160 (small breeds >180) <60 (large breeds <70)
Cat (awake) 140–220 >220 (stress; >260 pathological) <120
Horse (resting) 26–48 >50 (excitement; >60 pathological) <20
Dog (anesthetised) 60–140 >140 <50
Cat (anesthetised) 100–180 >180 <100
Horse (exercising) 120–220 >220 (poor fitness recovery) N/A — see resting

Rate Pitfalls

  • Half-rate doubling: In severe bradycardia, the ECG machine may double the displayed rate by counting T waves as QRS complexes. Always confirm manually.
  • Feline rate: Cats in the clinic can hit 260 bpm from stress alone. Look for a P wave for every QRS before calling it pathological sinus tachycardia.
  • Athletic bradycardia: Fit horses and large-breed dogs may have resting rates below published lower limits — sinus bradycardia with normal variability is not disease.
  • Ventricular bigeminy can halve the palpable pulse rate — check the ECG, not just femoral pulse.

Step 2: Rhythm — Where Is the Pacemaker?

The 'Is It Sinus?' Checklist

Normal sinus rhythm is defined by three criteria: (1) a P wave of normal morphology preceding every QRS complex, (2) a QRS complex following every P wave, and (3) a consistent and normal PR interval. Sinus arrhythmia — a phasic variation in heart rate synchronous with respiration — is NORMAL in dogs, especially brachycephalic breeds, and indicates high vagal tone. Its absence in a stressed or painful dog may signal autonomic dysfunction.

Rhythm P wave P–QRS relationship QRS width Clinical significance
Sinus rhythm Present, normal axis 1:1, fixed PR Narrow Normal — confirm with step 1–5
Sinus arrhythmia Present, normal axis 1:1, PR varies slightly Narrow NORMAL in dogs — high vagal tone
Atrial fibrillation Absent (f waves visible) None; irregularly irregular Narrow (supraventricular) Most common pathological arrhythmia in horses; common in giant-breed dogs with dilated atria
Atrial tachycardia Abnormal P' axis 1:1, PR may shorten Narrow Focal atrial focus; may degenerate to AF
Ventricular premature complex (VPC) None before VPC Compensatory pause Wide and bizarre Unifocal = benign if <20/min; multifocal or R-on-T = malignant
Ventricular tachycardia None, AV dissociation Capture/fusion beats if present Wide, regular >3 consecutive VPCs; rate >160 bpm; emergency
Third-degree AV block Present, marches through No relationship (AV dissociation) Wide (ventricular escape) Pacemaker emergency if escape rate <40 bpm
Sinus arrest / pause Absent during pause No QRS during pause Narrow (when present) Pause >2× normal R–R interval; sick sinus syndrome in Schnauzers

Narrow vs Wide QRS: The Critical Fork

The width of the QRS complex is the single most important rhythm-diagnosis discriminator. A NARROW QRS (<70 ms in dogs, <45 ms in cats) means the impulse originated above the ventricles — sinus node, atrial muscle, or AV junction — and travelled through the normal His-Purkinje system. A WIDE QRS (≥70 ms in dogs, ≥45 ms in cats) means the impulse originated IN the ventricle and depolarised the myocardium via slow cell-to-cell conduction. This distinction alone answers the question: 'Is this ventricular or supraventricular?'

Normal QRS duration by species
Dog: < 0.07 s (70 ms) · Cat: < 0.04 s (45 ms) · Horse: < 0.12 s (120 ms)
Measured from earliest Q/R deflection to return to baseline in lead II.
Clinical pearl — Atrial fibrillation in horses
Unlike dogs, where AF produces a narrow QRS at a high ventricular rate, equine AF typically has a normal ventricular rate (30–50 bpm) because the physiological resting vagal tone blocks most AV nodal conduction. The hallmark on an equine ECG is an irregularly irregular rhythm with NO discernible P waves and a normal-rate narrow QRS. Treatment is quinidine sulphate or transvenous electrical cardioversion.

Step 3: Mean Electrical Axis — The Chamber-Enlargement Clue

How to Determine MEA from Leads I, II, III, aVF

The mean electrical axis (MEA) represents the net direction of ventricular depolarisation in the frontal plane. In veterinary medicine, the hexaxial reference system uses leads I, II, III, aVR, aVL, and aVF. The simplest bedside method is the isoelectric lead method: find the lead where the QRS is isoelectric (equal positive and negative deflection) — the MEA is perpendicular to that lead.

Species Normal MEA range Left axis deviation Right axis deviation
Dog +40° to +100° <+40° (LV enlargement, left anterior fascicular block) >+100° (RV enlargement, right bundle branch block)
Cat 0° to +160° <0° (LV enlargement) >+160° (RV enlargement)
Horse -30° to +110° Persistent negative lead I, II, III (LV enlargement) >+110° (acute right heart strain, pulmonary hypertension)

Rapid Axis Approximation (Lead I and aVF Method)

  • Lead I positive + aVF positive → Normal axis (0° to +90°)
  • Lead I positive + aVF negative → Left axis deviation (0° to −90°)
  • Lead I negative + aVF positive → Right axis deviation (+90° to ±180°)
  • Lead I negative + aVF negative → Extreme right axis deviation (−90° to ±180°, 'northwest axis') — consider ventricular tachycardia origin.

Axis deviation precedes radiographic evidence of chamber enlargement by months to years. A left axis shift in a dog with mitral valve disease suggests the left ventricle is beginning to enlarge before cardiomegaly is visible on radiographs.

Step 4: Intervals — The Conduction System Timeline

PR Interval (Atrial Depolarisation + AV Nodal Delay)

The PR interval measures the time from the onset of atrial depolarisation to the onset of ventricular depolarisation — effectively SA node → atria → AV node → His bundle conduction time. Prolonged PR = first-degree AV block; shortened PR = pre-excitation (accessory pathway bypassing the AV node, rare in veterinary patients).

QRS Duration (Ventricular Depolarisation)

As discussed under rhythm, QRS duration >70 ms in dogs localises the impulse origin to the ventricles. A wide QRS with a preceding P wave suggests a bundle branch block — right bundle branch block (RBBB) produces a wide, positive QRS in lead aVR; left bundle branch block (LBBB) produces a wide, negative QRS in lead aVR.

QT Interval (Ventricular Depolarisation + Repolarisation)

The QT interval is rate-dependent — it shortens with tachycardia and lengthens with bradycardia. Always calculate the corrected QT (QTc): QTc = QT / √(RR). QT-prolonging drugs (sotalol, cisapride, certain fluoroquinolones in predisposed dogs) increase the risk of torsades de pointes.

Interval Dog (ms) Cat (ms) Horse (ms) Common abnormality
PR interval 60–130 50–90 200–400 First-degree AV block (PR prolonged); pre-excitation (PR shortened)
QRS duration <70 <45 <120 Bundle branch block (wide QRS with normal P); ventricular origin (wide QRS, no preceding P)
QT interval (at 120 bpm) 150–250 120–210 300–500 Hypocalcaemia (prolonged ST, normal T); hyperkalemia (spiked T, short QT)
ST segment Isoelectric ± 0.2 mV Isoelectric ± 0.15 mV Isoelectric ± 0.3 mV Myocardial hypoxia (ST elevation/depression >0.2 mV)
Corrected QT (Bazett's formula)
QTc = QT / √(RR)
Where QT and RR are in seconds. QTc > 0.30 s in dogs suggests prolonged repolarisation — risk of malignant ventricular arrhythmias.

Step 5: P-QRS-T Morphology — The Ischaemia and Electrolyte Window

P Wave Morphology

The P wave in lead II should be positive, mono- or biphasic, and less than 0.04 seconds wide in dogs. A tall P (>0.4 mV) in lead II = P-pulmonale (right atrial enlargement). A wide, notched P (>0.04 s) = P-mitrale (left atrial enlargement). In cats, P-wave amplitude is normally very small (<0.2 mV).

QRS Complex Morphology

The QRS in lead II is normally positive (R wave dominant). A deep S wave in lead II with a positive QRS in lead aVR suggests RBBB. Low-voltage QRS complexes (<1.0 mV in dogs) occur with pericardial effusion, pleural effusion, obesity, and hypothyroidism.

ST Segment and T Wave

ST-segment elevation or depression greater than 0.2 mV in dogs suggests myocardial hypoxia, infarction (rare), or electrolyte disturbance. Hyperkalemia produces a classic progression: peaked T waves → flattened P waves → wide QRS → sine-wave pattern → asystole. Hypocalcaemia prolongs the ST segment; hypercalcaemia shortens it.

Hyperkalemia ECG progressionStage 1 (K⁺ 5.5–6.5 mEq/L): Peaked, tented T waves — tall, narrow, symmetrical.
Stage 2 (K⁺ 6.5–8.0 mEq/L): P wave amplitude decreases; PR interval prolongs.
Stage 3 (K⁺ 8.0–9.0 mEq/L): P waves disappear (sinoventricular rhythm); QRS widens.
Stage 4 (K⁺ >9.0 mEq/L): Sine-wave pattern — wide, undulating complexes.
Stage 5: Ventricular fibrillation or asystole — cardiac arrest.
Clinical scenario — Addisonian crisis
A 4-year-old Standard Poodle presents collapsed with a heart rate of 55 bpm and weak pulses. The ECG shows absent P waves, wide QRS complexes, and peaked T waves. Serum potassium is 8.7 mEq/L. This is the ECG of an Addisonian crisis — the absence of aldosterone causes life-threatening hyperkalemia. Treatment is IV saline (dilution), calcium gluconate (cardioprotection), and dexamethasone.

Common Arrhythmias: Strip Descriptions and Clinical Management

1. Sinus Arrhythmia — The Normal Dog Rhythm

The R–R interval varies by more than 10% in a phasic, respiratory-linked pattern. Heart rate INCREASES during inspiration (withdrawal of vagal tone) and DECREASES during expiration (return of vagal tone). This is NORMAL in dogs and should be present in any relaxed canine patient. The absence of sinus arrhythmia in a hospitalised dog suggests pain, stress, or autonomic neuropathy.

2. Atrial Fibrillation — The 'Irregularly Irregular' Rhythm

No discernible P waves; the baseline may show fine fibrillation ('f') waves; the QRS complexes are narrow (supraventricular) and occur at irregularly irregular intervals. In dogs, AF occurs when the atria are massively dilated — Dobermanns with dilated cardiomyopathy, Irish Wolfhounds with atrial standstill, and any giant-breed dog with chronic mitral valve disease. In horses, AF is the commonest pathological arrhythmia; it can be paroxysmal (lone AF in fit horses with no structural heart disease) or persistent.

3. Ventricular Premature Complexes (VPCs)

A wide, bizarre QRS complex that occurs earlier than the next expected sinus beat, followed by a compensatory pause. Not preceded by a P wave. VPCs are classified by morphology (unifocal = all look the same; multifocal = different shapes) and timing (R-on-T phenomenon = VPC superimposed on the preceding T wave — high risk of degenerating into ventricular fibrillation). Fewer than 20 unifocal VPCs per hour on a Holter monitor in an asymptomatic Boxer may be benign; multifocal VPCs or any VPCs in a Dobermann always warrant investigation for occult dilated cardiomyopathy.

4. Ventricular Tachycardia

A run of ≥4 VPCs at a rate >160 bpm. QRS complexes are wide and regular; there may be AV dissociation (P waves marching through at a slower, independent rate) with occasional capture or fusion beats that confirm the ventricular origin. Sustained ventricular tachycardia (>30 seconds) is a life-threatening emergency requiring immediate lidocaine (dog: 2 mg/kg IV bolus, repeat up to 8 mg/kg total; cat: 0.25–0.5 mg/kg IV slowly — cats are exquisitely sensitive to lidocaine).

5. Atrioventricular Block

  • First-degree AV block: PR interval prolonged, but every P is followed by a QRS. Usually vagally mediated; no treatment required.
  • Second-degree AV block, Mobitz type I (Wenckebach): Progressive PR prolongation until a P wave is not conducted. Benign, vagally mediated.
  • Second-degree AV block, Mobitz type II: Fixed PR interval with intermittent non-conducted P waves. More serious — indicates infra-Hisian conduction disease.
  • Third-degree (complete) AV block: No relationship between P waves and QRS complexes. Atrial rate > ventricular escape rate. Pacemaker indicated if symptomatic.

Quick-Reference: Normal ECG Values by Species

Parameter Dog Cat Horse
Heart rate (resting, bpm) 70–160 140–220 26–48
PR interval (ms) 60–130 50–90 200–400
QRS duration (ms) <70 <45 <120
QT interval (ms) 150–250 120–210 300–500
QRS amplitude in lead II (mV) 1.0–3.0 <0.5–1.0 N/A — lead system differs
MEA (frontal plane) +40° to +100° 0° to +160° −30° to +110°
ST segment deviation (mV) ±0.2 ±0.15 ±0.3
P-wave duration (ms) <40 <40 <120
P-wave amplitude lead II (mV) <0.4 <0.2 N/A
T-wave polarity (lead II) Variable (±) Variable (±) Negative in most leads

Clinical ECG Case Studies: Applying the Five-Step Method

Case 1: The Collapsed Dobermann

A 6-year-old male Dobermann presents after a syncopal episode. Heart rate on auscultation is 200 bpm, pulses are weak. The lead-II ECG shows: regular wide QRS complexes at 200 bpm. P waves are present at a rate of 130 bpm but have NO fixed relationship to the QRS complexes. Occasional narrow QRS complexes appear earlier than expected and are preceded by P waves with a normal PR interval.

Analysis using the five-step method: (1) Rate: 200 bpm — ventricular tachycardia range; (2) Rhythm: Wide QRS (ventricular origin), AV dissociation (P waves and QRS complexes are independent), with capture beats (the narrow complexes) — diagnostic of VENTRICULAR TACHYCARDIA; (3) Axis: Right axis deviation (likely); (4) Intervals: QRS >80 ms; (5) Morphology: Bizarre, wide complexes. This Dobermann likely has occult dilated cardiomyopathy — the VT is the presenting sign. Management: IV lidocaine bolus 2 mg/kg, then CRI; echocardiogram; Holter monitor; long-term sotalol or mexiletine.

Case 2: The Bradycardic Schnauzer

A 10-year-old Miniature Schnauzer presents for lethargy and exercise intolerance. HR is 45 bpm. The ECG shows: P waves at 150 bpm, QRS complexes at 45 bpm, with NO consistent PR interval — P waves 'march through' the QRS complexes. QRS complexes are wide (ventricular escape rhythm). This is third-degree (complete) AV block. The atrial rate (sinus node) is normal, but none of the impulses are conducted. The ventricles are driven by a slow, unreliable escape rhythm. This dog needs a pacemaker — without one, median survival is <12 months.

Case 3: The Cat with Respiratory Distress

A 12-year-old DSH cat presents with tachypnoea and a gallop rhythm. The ECG shows sinus tachycardia at 260 bpm with tall R waves in leads II, III, and aVF (exceeding 1.0 mV). The mean electrical axis is +140° (right axis deviation). The P wave in lead II is 0.3 mV tall and 0.05 s wide, suggesting bi-atrial enlargement. This ECG pattern — sinus tachycardia, tall R waves in the inferior leads, right axis deviation, and bi-atrial enlargement — is classic for feline hypertrophic cardiomyopathy (HCM) with left atrial enlargement. Echocardiography is diagnostic. Management: atenolol, furosemide if in CHF, clopidogrel for thromboprophylaxis.

Holter Monitoring and Ambulatory ECG: When a Snapshot Isn't Enough

A 60-second in-clinic lead-II strip captures approximately 0.07% of the heartbeats in a 24-hour period. For intermittent arrhythmias — paroxysmal atrial fibrillation, occult ventricular tachycardia, sick sinus syndrome — the in-clinic ECG is a lottery. Holter monitoring (24-hour ambulatory ECG) records every heartbeat for a full circadian cycle, revealing arrhythmia frequency, complexity, and circadian patterns that a single strip cannot.

Holter Indications

  • Syncope or episodic collapse — the Holter captures the cardiac rhythm DURING the event.
  • Boxer or Dobermann screening for occult cardiomyopathy — quantification of VPC burden.
  • Assessment of antiarrhythmic drug efficacy — pre- and post-treatment Holter comparison.
  • Investigation of weakness or exercise intolerance with a normal resting ECG.
  • Breeding soundness evaluation in predisposed breeds — Boxer ARVC screening programmes.

Interpreting the Holter Report

A typical canine Holter report includes: total beats, minimum/maximum/average heart rate, total VPC count (and per-hour average), VPC morphology (unifocal vs multifocal), presence of couplets/triplets/ventricular tachycardia runs, longest VT run, presence of R-on-T phenomenon, and heart rate variability (HRV) indices (SDNN, rMSSD). HRV — the beat-to-beat variation in heart rate — reflects autonomic balance. Reduced HRV (low SDNN) is a negative prognostic indicator in dogs with mitral valve disease and DCM, reflecting reduced parasympathetic tone and increased sympathetic drive.

Boxer ARVC screening: >50 VPCs/24h in a Boxer >3 years of age is considered abnormal. >300 VPCs/24h or presence of ventricular couplets/triplets warrants consideration of antiarrhythmic therapy (sotalol 1–3 mg/kg PO BID). Dobermann occult DCM screening: any VPCs in a Dobermann — even single unifocal VPCs — should prompt echocardiography. Dobermanns DO NOT have benign ventricular ectopy.

Clinical pearls
  • If the heart rate is 180 bpm in a resting dog, always check for a P wave before calling it sinus tachycardia — atrial tachycardia can look identical.
  • Feline ECGs have tiny complexes — always use 10 mm/mV calibration. A QRS under 0.5 mV is not necessarily low voltage.
  • The equine resting ECG commonly shows second-degree AV block — this is vagally mediated and disappears with exercise.
  • A lead-II P wave taller than 0.4 mV in a dog suggests right atrial enlargement (P-pulmonale); wider than 0.04 s suggests left (P-mitrale).

Frequently asked questions

What is the single most important thing to check on a veterinary ECG?
The QRS width. A narrow QRS means the rhythm is supraventricular (sinus, atrial, or junctional origin); a wide QRS means ventricular origin. This distinction determines whether you reach for lidocaine (ventricular tachycardia) or diltiazem (supraventricular tachycardia).
Why does my canine ECG show an irregular rhythm — should I be worried?
In dogs, sinus arrhythmia (a phasic, respiratory-linked variation in heart rate) is NORMAL and indicates healthy vagal tone. It is actually the absence of sinus arrhythmia in a relaxed dog that warrants concern — it may indicate pain, stress, or autonomic dysfunction.
How do I differentiate atrial fibrillation from sinus arrhythmia on a lead-II strip?
In sinus arrhythmia, you can see P waves before each QRS and the rhythm variation is phasic (linked to breathing). In atrial fibrillation, there are NO P waves (only fine fibrillation waves), and the rhythm is irregularly irregular — there is no pattern to the irregularity. Running the strip at 50 mm/s paper speed helps visualise the absence of P waves.
What is the mean electrical axis and why does it matter?
The MEA is the net direction of ventricular depolarisation in the frontal plane. It is calculated from leads I, II, III, and aVF. A left axis shift indicates left ventricular enlargement or left anterior fascicular block; a right axis shift indicates right ventricular enlargement. Axis shifts often precede radiographic evidence of chamber enlargement.
Can I diagnose hyperkalemia from an ECG alone?
Yes — the ECG changes of hyperkalemia are characteristic and progress in a predictable sequence: peaked T waves → flattened P waves → widened QRS → sine-wave pattern → asystole. However, always confirm with serum potassium measurement because hypocalcaemia and hyponatraemia can alter the ECG appearance.
Why do horses commonly show second-degree AV block on ECG?
Equine resting vagal tone is exceptionally high — the horse has the highest resting vagal tone of any domestic mammal. Second-degree AV block (usually Mobitz type I, Wenckebach) is a normal finding in resting horses and disappears immediately with exercise, excitement, or atropine administration. It is NOT an indication for cardiac workup unless accompanied by exercise intolerance or syncope.
How many VPCs per hour is too many in a Boxer?
The Boxer is predisposed to arrhythmogenic right ventricular cardiomyopathy (ARVC). Fewer than 20 unifocal VPCs per 24 hours is generally benign. More than 50 VPCs/hour, presence of couplets or triplets, or any runs of ventricular tachycardia warrant a cardiology referral and consideration of antiarrhythmic therapy (sotalol or mexiletine).
What ECG findings would make me suspect pericardial effusion?
Low-voltage QRS complexes (<1.0 mV in lead II in a dog), electrical alternans (beat-to-beat variation in QRS amplitude as the heart swings within the fluid-filled pericardial sac), and sinus tachycardia. Confirm with echocardiography — the ECG raises suspicion but cannot make the diagnosis.

Self-check quiz

Test yourself. Answers are below each question — cover them first if you are studying.

Q1. A 7-year-old Dobermann presents with a heart rate of 220 bpm. The lead-II ECG shows wide QRS complexes at a regular rate with no discernible P waves preceding them. Occasional narrow QRS complexes with preceding P waves are seen during the tracing. What is the rhythm?
  1. Atrial fibrillation with aberrant conduction
  2. Ventricular tachycardia with capture beats
  3. Supraventricular tachycardia with bundle branch block
  4. Sinus tachycardia with ventricular pre-excitation
Show answer

Answer: Ventricular tachycardia with capture beats

The wide QRS (ventricular origin) at a regular rate >160 bpm defines ventricular tachycardia. The occasional narrow QRS complexes with preceding P waves are capture beats — when a sinus impulse happens to arrive during the ventricular non-refractory period and 'captures' the ventricles, producing a normal narrow QRS. This is the hallmark of VT with AV dissociation.

Q2. On a canine ECG recorded at 25 mm/s, you count 4 large squares between two consecutive R waves. What is the heart rate?
  1. 75 bpm
  2. 120 bpm
  3. 300 bpm
  4. 60 bpm
Show answer

Answer: 75 bpm

Rate = 300 / number of large squares = 300 / 4 = 75 bpm. The 300-150-100-75-60-50 sequence (dividing 300 by 1, 2, 3, 4, 5, 6) is the fastest bedside rate calculator.

Q3. A lead-II ECG in a cat shows QRS complexes of 0.035 seconds duration. How should you interpret this?
  1. Bundle branch block
  2. Normal feline QRS duration
  3. Left ventricular enlargement
  4. Hyperkalemia
Show answer

Answer: Normal feline QRS duration

Normal feline QRS duration is <45 ms (0.045 s). A value of 35 ms is normal. Feline ECGs have very small, narrow complexes — do not over-interpret the low amplitude; always use 10 mm/mV calibration.

Q4. What ECG finding is most specific for right atrial enlargement in a dog?
  1. Wide, notched P wave in lead II
  2. Tall P wave (>0.4 mV) in lead II
  3. Prolonged PR interval
  4. Absent P waves
Show answer

Answer: Tall P wave (>0.4 mV) in lead II

A tall, peaked P wave in lead II indicates right atrial enlargement (P-pulmonale). A wide, notched P wave (>0.04 s) indicates left atrial enlargement (P-mitrale). Both can coexist — bi-atrial enlargement produces a tall, wide, bifid P wave.

Q5. A horse at rest has a heart rate of 34 bpm with a lead-II ECG showing intermittent dropped QRS complexes preceded by progressively lengthening PR intervals. What is this, and is it pathological?
  1. Second-degree AV block Mobitz type II — pathological, needs cardiac workup
  2. Second-degree AV block Mobitz type I (Wenckebach) — normal in resting horses
  3. Third-degree AV block — pacemaker emergency
  4. Sinus arrest — evaluate for sick sinus syndrome
Show answer

Answer: Second-degree AV block Mobitz type I (Wenckebach) — normal in resting horses

Progressive PR lengthening followed by a dropped beat is classic Wenckebach (Mobitz type I) second-degree AV block. In resting horses, this is vagally mediated and normal — it disappears with exercise, excitement, or atropine. Mobitz type II (fixed PR, sudden drop) is more concerning. Third-degree block would show complete AV dissociation with no relationship between P and QRS.

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Educational disclaimer: This article is for veterinary students and licensed professionals. It is not a substitute for case-specific clinical judgment, local formulary rules, or current drug labels. Always verify doses, legality, and species contraindications before treating.
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