IBHRE CCDS EXAM COMPLETE 300 QUESTIONS
WITH DETAILED SOLUTIONS JUST RELEASED
THIS YEAR
IBHRE CCDS EXAM – COMPREHESTUDY PRACTICE BANK
EXAM COVERAGE SUMMARY
This comprehensive review covers all core competencies assessed on the IBHRE Certified
Cardiac Device Specialist (CCDS) examination: Fundamentals of Electrophysiology and
Electronics (cardiac anatomy and conduction system, congenital anomalies, pathophysiology
and mechanisms of dysrhythmias, re-entry and triggered arrhythmias, pharmacology,
anticoagulation, basic electrical quantities, Ohm's Law, waveforms); Applied Science and
Technology (pulse generators, battery chemistry and longevity, electronic circuit components,
sensors including accelerometer and minute ventilation, lead insulation and conductor
materials, connectors including IS-1, DF-1, DF4, and LV-4, active and passive fixation, steroid-
eluting electrodes, sensing amplifiers and filters, far-field and cross-chamber sensing,
extracardiac signal interference, stimulation thresholds, strength-duration curve, Wednesday
effect, diaphragmatic and phrenic nerve stimulation, timing cycles for single-chamber, dual-
chamber, and CRT devices, NBG pacing code, leadless device timing, bradycardia and
tachycardia pacing algorithms, SVT discrimination, antitachycardia pacing, CRT programming
strategies, His bundle and left bundle branch pacing, defibrillation concepts, R-on-T
phenomenon, S-ICD screening and limitations, wearable ICD); Electrocardiography (ECG
interpretation, intracardiac electrograms, arrhythmia recognition); Clinical Assessment (history
and physical examination, diagnostic testing); Perioperative Practice/Clinical Practice (implant
techniques, lead management, extraction tools including locking stylets, powered sheaths, laser
and mechanical tools, surgical complications, pediatric pacing considerations, end-of-life issues
including device deactivation and cremation); Safety (infection control, sterile technique,
radiation safety, EMI interactions, electrocautery); Patient and Device Follow-Up
Management (device assessment, rhythm therapy, rate modulation, hemodynamics, capture
and sensing assessment, lead maturation, pulse generator longevity, ERI and EOL indicators,
programming optimization, troubleshooting oversensing and undersensing, failure to capture,
anodal capture, mode switch, pacemaker syndrome, remote monitoring, cybersecurity);
and Radiology (X-ray analysis, fluoroscopy, CT imaging for lead perforation and placement
assessment).
300 RANDOMIZED EXAM-STYLE QUESTIONS
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Question 1: A patient with a dual-chamber pacemaker presents with a paced atrial rate of 100
bpm and a ventricular rate that varies between 50 and 60 bpm on the surface ECG. What is the
most likely explanation for this finding?
A) Normal DDD pacing at the programmed upper tracking rate
B) Pacemaker-mediated tachycardia with 2:1 AV block
C) Mode switch activation due to atrial tachyarrhythmia
D) Wenckebach behavior at the upper tracking rate
E) Loss of atrial capture with conducted sinus rhythm
Answer: D
Wenckebach behavior at the upper tracking rate occurs when the atrial rate exceeds the
programmed upper tracking rate, causing progressive PR prolongation and dropped ventricular
beats, resulting in a variable ventricular response while the atrium is paced at the upper rate
limit.
Question 2: A patient with an ICD presents with a stored episode showing a rapid, regular
ventricular tachycardia at 200 bpm that terminated with antitachycardia pacing (ATP). What is
the most appropriate next step in managing this patient?
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A) Increase the ATP burst cycle length to match the tachycardia cycle length more precisely
B) Decrease the number of ATP pulses to reduce the risk of acceleration
C) Program the device to deliver shock therapy only for all ventricular arrhythmias
D) Increase the detection zone to require longer duration of tachycardia before therapy
E) Change the SVT discrimination algorithm to atrial-ventricular rate comparison
Answer: A
ATP is most effective when the burst cycle length is 84-88% of the tachycardia cycle length.
Adjusting the ATP cycle length to better match the detected tachycardia improves termination
success and reduces the need for shock therapy.
Question 3: A pacemaker-dependent patient's interrogation reveals a sudden increase in pacing
impedance from 550 ohms to over 2000 ohms on the ventricular lead. What is the most likely
cause?
A) Lead insulation break
B) Lead conductor fracture
C) Lead dislodgement
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D) Myocardial perforation
E) Normal lead maturation
Answer: B
A sudden marked increase in lead impedance (typically >2000 ohms) suggests a conductor
fracture. Insulation breaks typically cause low impedance (<200-300 ohms). Lead dislodgement
and perforation may cause variable impedance changes.
Question 4: A patient with an ICD receives a shock during sinus tachycardia at 140 bpm. The
stored electrogram shows the atrial rate is equal to the ventricular rate. What ICD algorithm is
most likely responsible for preventing this inappropriate therapy?
A) Rate stability criterion
B) Sudden onset criterion
C) Morphology discrimination
D) Ventricular-ventricular interval regularity
E) Atrial-ventricular rate comparison
Answer: C
Morphology discrimination compares the stored ventricular electrogram morphology during
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