Oxygen-Sensitive MRI: A Predictive Imaging Biomarker for Tumor Radiation Response?
basic_science · Level V
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- Record sourced from PubMed, PMID 33775857.
- Also identified by DOI 10.1016/j.ijrobp.2021.03.039 and PMC identifier 8286313.
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Abstract
To develop a noninvasive prognostic imaging biomarker related to hypoxia to predict SABR tumor control. A total of 145 subcutaneous syngeneic Dunning prostate R3327-AT1 rat tumors were focally irradiated once using cone beam computed tomography guidance on a small animal irradiator at 225 kV. Various doses in the range of 0 to 100 Gy were administered, while rats breathed air or oxygen, and tumor control was assessed up to 200 days. Oxygen-sensitive magnetic resonance imaging (MRI) (T<sub>1</sub>-weighted, ΔR<sub>1</sub>, ΔR<sub>2</sub>*) was applied to 79 of these tumors at 4.7 T to assess response to an oxygen gas breathing challenge on the day before irradiation as a probe of tumor hypoxia. Increasing radiation dose in the range of 0 to 90 Gy enhanced tumor control of air-breathing rats with a TCD<sub>50</sub> estimated at 59.6 ± 1.5 Gy. Control was significantly improved at some doses when rats breathed oxygen during irradiation (eg, 40 Gy; P < .05), and overall there was a modest left shift in the control curve: TCD<sub>50</sub>(oxygen) = 53.1 ± 3.1 Gy (P < .05 vs air). Oxygen-sensitive MRI showed variable response to oxygen gas breathing challenge; the magnitude of T<sub>1</sub>-weighted signal response (%ΔSI) allowed stratification of tumors in terms of local control at 40 Gy. Tumors showing %ΔSI >0.922 with O<sub>2</sub>-gas breathing challenge showed significantly better control at 40 Gy during irradiation while breathing oxygen (75% vs 0%, P < .01). In addition, increased radiation dose (50 Gy) substantially overcame resistance, with 50% control for poorly oxygenated tumors. Stratification of dose-response curves based on %ΔSI >0.922 revealed different survival curves, with TCD<sub>50</sub> = 36.2 ± 3.2 Gy for tumors responsive to oxygen gas breathing challenge; this was significantly less than the 54.7 ± 2.4 Gy for unresponsive tumors (P < .005), irrespective of the gas inhaled during tumor irradiation. Oxygen-sensitive MRI allowed stratification of tumors in terms of local control at 40 Gy, indicating its use as a potential predictive imaging biomarker. Increasing dose to 50 Gy overcame radiation resistance attributable to hypoxia in 50% of tumors.
Medical subject headings
- Magnetic Resonance Imaging
- Oxygen
- Prostatic Neoplasms
- Radiation Tolerance
- Radiotherapy, Image-Guided
- Tumor Hypoxia