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ABR Radiation Oncology Certification Examination Practice Questions With Verified Answers & Rationale

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ABR Radiation Oncology Certification Examination Practice Questions With Verified Answers & Rationale

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ABR Radiation Oncology Certification
Examination Practice Questions With Verified
Answers & Rationales LATEST UPDATE THIS
YEAR
ABR Radiation Oncology Certification Examination Practice Questions
Exam Coverage Summary (Point Form)
Radiation Biology (≈25%): Cell survival models, LQ model & α/β ratios, cell cycle
radiosensitivity, DNA damage & repair, OER & hypoxia, 5 Rs of radiobiology, LET & RBE,
fractionation effects, bystander effect, apoptosis vs mitotic catastrophe, radiation sensitizers &
protectors
Radiation Physics (≈20%): Photon interactions (photoelectric, Compton, pair production), beam
quality & PDD, dosimetry & calibration, electron beam therapy, proton therapy, TG-51 & TG-43,
isodose curves, MU calculation
Clinical Oncology – Disease Sites (≈35%): Head & neck, breast, lung, prostate, gynecologic, GI,
CNS, lymphoma, sarcoma, pediatric cancers; staging (AJCC), treatment paradigms, combined
modality therapy, target volumes (GTV/CTV/PTV), OAR constraints
Treatment Planning & Delivery (≈15%): 3D-CRT, IMRT/VMAT, SBRT/SRS, brachytherapy
(LDR/HDR), IGRT, motion management, adaptive planning, proton planning
Safety, QA & Professionalism (≈5%): Machine QA, patient safety, incident learning, ethics,
informed consent, error prevention
SECTION 1: RADIATION BIOLOGY (Questions 1–70)
1. A 62-year-old patient with head and neck cancer is receiving conventionally fractionated


radiotherapy. The dominant mechanism of tumor cell death following this treatment is best


described as which of the following?



A. Immediate apoptosis triggered within hours of irradiation

,Page 2 of 173


B. Necrosis due to direct membrane damage



C. Mitotic catastrophe occurring after one or more failed divisions



D. Autophagy-mediated cell clearance



Answer: C. Mitotic catastrophe is the primary mode of radiation-induced cell death in solid


tumors, where cells with unrepaired DNA damage attempt mitosis and die from chromosomal


aberrations, typically after 1–3 divisions. Apoptosis plays a lesser role in most solid tumors


compared to hematologic malignancies.



2. A radiation biologist is studying cell survival curves for a new radiosensitizer. According to the


linear-quadratic model, the equation that best describes cell survival after a single dose of


radiation is which of the following?



A. S = e^(-αD)



B. S = e^(-αD - βD²)



C. S = αD + βD²

,Page 3 of 173


D. S = e^(-βD²)



Answer: B. The LQ model equation is S = e^(-αD - βD²), where the linear (α) component


represents non-repairable lethal damage and the quadratic (β) component represents


repairable damage requiring two sublesions to interact. This model is foundational for


understanding fractionation effects.



3. A clinical trial compares hypofractionated versus conventionally fractionated prostate


radiotherapy. Which α/β ratio is most appropriate for estimating late rectal toxicity in this


comparison?



A. 10 Gy



B. 3 Gy



C. 1.5 Gy



D. 0.5 Gy

, Page 4 of 173


Answer: C. Late-responding tissues such as rectum and spinal cord have low α/β ratios


(approximately 1.5–3 Gy), making them more sensitive to changes in fraction size. This is why


hypofractionation must be carefully evaluated for late effects in prostate cancer.



4. A researcher is evaluating the radiosensitivity of different cell lines. Which phase of the cell


cycle demonstrates the greatest radiosensitivity?



A. S phase



B. G0 phase



C. G2/M phase



D. Early G1 phase



Answer: C. Cells in G2 and M phases are most radiosensitive due to condensed chromatin and


limited DNA repair capacity. S phase is most resistant because of active homologous


recombination repair. This variation underlies the redistribution (reassortment) component of


the 5 Rs.

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