Dosimetric impact of 3D motion-compensated SPECT reconstruction for SIRT planning

Vilgrain V, Pereira H, Assenat E, Guiu B, Ilonca AD, Pageaux GP, Sibert A, Bouattour M, Lebtahi R, Allaham W, Barraud H. Efficacy and safety of selective internal radiotherapy with yttrium-90 resin microspheres compared with sorafenib in locally advanced and inoperable. Lancet Oncol. 2017;18(12):1624–36.

Article  CAS  Google Scholar 

Barakat E, Bibok A, Rishi A, Ahmed A, Frakes JM, Hoffe SE, Armaghani AJ, Soyano AE, Costa RLB, El-Haddad G, Choi J, Kis B. Transarterial yttrium-90 glass microsphere radioembolization of chemotherapy-refractory breast cancer liver metastases: results of a single institution retrospective study. Adv Radiat Oncol. 2022. https://doi.org/10.1016/j.adro.2021.100838.

Article  Google Scholar 

Cheng B, Sethi I, Davisson N, Brandon D, Barron B, Galt J, Bercu Z, Schuster DM, Kokabi N. Yttrium-90 dosimetry and implications on tumour response and survival after radioembolisation of chemo-refractory hepatic metastases from breast cancer. Nucl Med Commun. 2021;42(4):402–9.

Article  CAS  Google Scholar 

King J, Quinn R, Glenn DM, Janssen J, Tong D, Liaw W, Morris DL. Radioembolization with selective internal radiation microspheres for neuroendocrine liver metastases. Cancer. 2008;113(5):921–9.

Article  Google Scholar 

Gonsalves CF, Eschelman DJ, Adamo RD, Anne PR, Orloff MM, Terai M, Hage AN, Yi M, Chervoneva I, Sato T. A prospective phase II trial of radioembolization for treatment of uveal melanoma hepatic metastasis. Radiology. 2019;293(1):223–31.

Article  Google Scholar 

Helmberger T, Golfieri R, Pech M, Pfammatter T, Arnold D, Cianni R, Maleux G, Munneke G, Pellerin O, Peynircioglu B, Sangro B. Clinical application of trans-arterial radioembolization in hepatic malignancies in europe: first results from the prospective multicentre observational study CIRSE registry for SIR-spheres therapy (CIRT). CardioVasc Interv Radiol. 2021;44(1):21–35.

Article  Google Scholar 

Garin E, Tselikas L, Guiu B, Chalaye J, Edeline J, De Baere T, Assenat E, Tacher V, Robert C, Terroir-Cassou-Mounat M, Mariano-Goulart D, Amaddeo G, Palard X, Hollebecque A, Kafrouni M, Regnault H, Boudjema K, Grimaldi S, Fourcade M, Kobeiter H, Vibert E, Le Sourd S, Piron L, Sommacale D, Laffont S, Campillo-Gimenez B, Rolland Y, Robert CR, Pracht M, Ardisson V, Lenoir L, Deschamps F, Ducreux M, Gelli M, Cassinotto C, Allimant C, Bonnot-Lours S, Marie M, Itti E, Lerman L, Abulizi M, Luciani A, Costentin CE, Milliner M. Personalised versus standard dosimetry approach of selective internal radiation therapy in patients with locally advanced. Lancet Gastroenterol Hepatol. 2021;6(1):17–29.

Article  Google Scholar 

Leung TWT, Lau WY, Ho SKW, Ward SC, Chow JHS, Chan MSY, Metreweli C, Johnson PJ, Li AKC. Radiation pneumonitis after selective internal radiation treatment with intraarterial 90yttrium-microspheres for inoperable hepatic tumors. Int J Radiat Oncol Biol Phys. 1995;33(4):919–24.

Article  CAS  Google Scholar 

Wright CL, Werner JD, Tran JM, Gates VL, Rikabi AA, Shah MH, Salem R. Radiation pneumonitis following yttrium-90 radioembolization: case report and literature review. J Vasc Interv Radiol. 2012;23(5):669–74.

Article  Google Scholar 

Levillain H, Bagni O, Deroose CM, Dieudonné A, Gnesin S, Grosser OS, Kappadath SC, Kennedy A, Kokabi N, Liu DM, Madoff DC. International recommendations for personalised selective internal radiation therapy of primary and metastatic liver diseases with yttrium-90 resin microspheres. Eur J Nucl Med Mol Imaging. 2021;48(5):1570–84.

Article  Google Scholar 

Salem R, Padia SA, Lam M, Bell J, Chiesa C, Fowers K, Hamilton B, Herman J, Kappadath SC, Leung T, Portelance L, Sze D, Garin E. Clinical and dosimetric considerations for Y90: recommendations from an international multidisciplinary working group. Eur J Nucl Med Mol Imaging. 2019;46(8):1695–704.

Article  Google Scholar 

Knešaurek K, Tuli A, Pasik SD, Heiba S, Kostakoglu L. Quantitative comparison of pre-therapy 99mTc-macroaggregated albumin SPECT/CT and post-therapy PET/MR studies of patients who have received intra-arterial radioembolization therapy with 90Y microspheres. Eur J Radiol. 2018;109:57–61.

Article  Google Scholar 

Zeintl J, Vija AH, Yahil A, Hornegger J, Kuwert T. Quantitative accuracy of clinical 99mTc SPECT/CT using ordered-subset expectation maximization with 3-dimensional resolution recovery, attenuation, and scatter correction. J Nucl Med. 2010;51(6):921–8.

Article  Google Scholar 

Allred JD, Niedbala J, Mikell JK, Owen D, Frey KA, Dewaraja YK. The value of 99mTc-MAA SPECT/CT for lung shunt estimation in 90Y radioembolization: a phantom and patient study. EJNMMI Res. 2018. https://doi.org/10.1186/s13550-018-0402-8.

Article  Google Scholar 

Beach RD, Gifford HC, Shazeeb S, Bruyant PP, Feng B, Gennert MA, Nadella S, King MA. Stereo-infrared tracking to monitor and characterize rigid-body motion and respiration during cardiac SPECT imaging: Progress towards robust clinical utilization. IEEE Nucl Sci Symp Conf Rec. 2005;3:1731–5.

Google Scholar 

Dietze MMA, Bastiaannet R, Kunnen B, van der Velden S, Lam MGEH, Viergever MA, de Jong HWAM. Respiratory motion compensation in interventional liver SPECT using simultaneous fluoroscopic and nuclear imaging. Med Phys. 2019;46(8):3496–507.

Article  CAS  Google Scholar 

Dietze MMA, Kunnen B, Lam MGEH, De Jong HWAM. Interventional respiratory motion compensation by simultaneous fluoroscopic and nuclear imaging: a phantom study. Phys Med Biol. 2021. https://doi.org/10.1088/1361-6560/abe556.

Article  Google Scholar 

Sanders JC, Ritt P, Kuwert T, Vija AH, Maier AK. Fully automated data-driven respiratory signal extraction from spect images using laplacian eigenmaps. IEEE Trans Med Imaging. 2016;35(11):2425–35.

Article  Google Scholar 

Robert, A., Rit, S., Baudier, T., Jomier, J., Sarrut, D.: Data-driven motion compensated SPECT reconstruction for liver radioembolization. In Proceedings of the 16th international meeting on fully 3D image reconstruction in radiology and nuclear medicine (2021)

Kortelainen MJ, Koivumäki TM, Vauhkonen MJ, Hakulinen MA. Effect of respiratory motion on cardiac defect contrast in myocardial perfusion SPECT: a physical phantom study. Ann Nucl Med. 2019;33(5):305–16.

Article  Google Scholar 

Kovalski G, Israel O, Keidar Z, Frenkel A, Sachs J, Azhari H. Correction of heart motion due to respiration in clinical myocardial perfusion SPECT scans using respiratory gating. J Nucl Med. 2007;48(4):630–6.

Article  Google Scholar 

Brandner ED, Wu A, Chen H, Heron D, Kalnicki S, Komanduri K, Gerszten K, Burton S, Ahmed I, Shou Z. Abdominal organ motion measured using 4D CT. Int J Radiat Oncol Biol Phys. 2006;65(2):554–60.

Article  Google Scholar 

Bastiaannet R, Viergever MA, De Jong HWAM. Impact of respiratory motion and acquisition settings on SPECT liver dosimetry for radioembolization. Med Phys. 2017;44(10):5270–9.

Article  CAS  Google Scholar 

Lu Z, Chen G, Lyu Y, Chen Y, Mok GSP. Technical note: respiratory impacts on static and respiratory gated 99m tc-maa spect/ct for liver radioembolization—a simulation study. Med Phys. 2022. https://doi.org/10.1002/mp.15682.

Article  Google Scholar 

Santoro M, Della Gala G, Paolani G, Zagni F, Strolin S, Civollani S, Calderoni L, Cappelli A, Mosconi C, Lodi Rizzini E, Tabacchi E, Morganti AG, Fanti S, Golfieri R, Strigari L. A novel tool for motion-related dose inaccuracies reduction in 99mTc-MAA SPECT/CT images for SIRT planning. Phys Med. 2022;98:98–112.

Article  Google Scholar 

Osborne DR, Acuff SN, Neveu ML, Syed M, Kaman AD, Fu Y. Feasibility assessment of yttrium-90 liver radioembolization imaging using amplitude-based gated PET/CT. Nucl Med Commun. 2018;39(3):222–7.

Article  CAS  Google Scholar 

Ausland L, Revheim ME, Skretting A, Stokke C. Respiratory motion during 90Yttrium PET contributes to underestimation of tumor dose and overestimation of normal liver tissue dose. Acta Radiol. 2018;59(2):132–9.

Article  Google Scholar 

Robert A, Rit S, Baudier T, Jomier J, Sarrut D. Data-driven respiration-gated spect for liver radioembolization. IEEE Trans Radiat Plasma Med Sci. 2021. https://doi.org/10.1109/TRPMS.2021.3137990.

Article  Google Scholar 

Rit S, Vila Oliva M, Brousmiche S, Labarbe R, Sarrut D, Sharp GC. The Reconstruction Toolkit (RTK), an open-source cone-beam CT reconstruction toolkit based on the Insight Toolkit (ITK). J Phys Conf Ser. 2014. https://doi.org/10.1088/1742-6596/489/1/012079.

Article  Google Scholar 

Garin E, Palard X, Rolland Y. Personalised dosimetry in radioembolisation for hcc: Impact on clinical outcome and on trial design. Cancers. 2020;12(6):1–17.

Article  Google Scholar 

Klein S, Staring M, Murphy K, Viergever MA, Pluim JPW. Elastix: a toolbox for intensity-based medical image registration. IEEE Trans Med Imaging. 2010;29(1):196–205.

Article  Google Scholar 

Vergnaud L, Giraudet A-L, Moreau A, Salvadori J, Imperiale A, Baudier T, Badel J-N, Sarrut D. Patient-specific dosimetry adapted to variable number of SPECT/CT time-points per cycle for 177Lu-DOTATATE therapy. EJNMMI Phys. 2022. https://doi.org/10.1186/s40658-022-00462-2.

Article  Google Scholar 

Sarrut D, Bała M, Bardiès M, Bert J, Chauvin M, Chatzipapas K, Dupont M, Etxebeste A, Fanchon LM, Jan S, Kayal G, Kirov AS, Kowalski P, Krzemien W, Labour J, Lenz M, Loudos G, Mehadji B, Ménard L, Morel C, Papadimitroulas P, Rafecas M, Salvadori J, Seiter D, Stockhoff M, Testa E, Trigila C, Pietrzyk U, Vandenberghe S, Verdier M-A, Visvikis D, Ziemons K, Zvolský M, Roncali E. Advanced Monte Carlo simulations of emission tomography imaging systems with GATE. Phys Med Biol. 2021;66(10):10. https://doi.org/10.1088/1361-6560/abf276.

Article  Google Scholar 

Weber M, Lam M, Chiesa C, Konijnenberg M, Cremonesi M, Flamen P, Gnesin S, Bodei L, Kracmerova T, Luster M, Garin E, Herrmann K. Eanm procedure guideline for the treatment of liver cancer and liver metastases with intra-arterial radioactive compounds. Eur J Nucl Med Mol Imaging. 2022;49(5):1682–99.

Article  CAS  Google Scholar 

Kruis MF, Van De Kamer JB, Houweling AC, Sonke JJ, Belderbos JSA, Van Herk M. PET motion compensation for radiation therapy using a CT-based mid-position motion model: methodology and clinical evaluation. Int J Radiat Oncol Biol Phys. 2013;87(2):394–400.

Article  Google Scholar 

Lu Z, Chen G, Lin KH, Wu TH, Mok GSP. Evaluation of different ct maps for attenuation correction and segmentation in static 99mTc-MAA SPECT/CT for 90Y radioembolization treatment planning: a simulation study. Med Phys. 2021;48(7):3842–51.

Article  CAS  Google Scholar 

Kao YH, Magsombol BM, Toh Y, Tay KH, Chow PKH, Goh ASW, Ng DCE. Personalized predictive lung dosimetry by technetium-99m macroaggregated albumin spect/ct for yttrium-90 radioembolization. EJNMMI Res. 2014;4(1):1–12.

Article  CAS  Google Scholar 

Peters SMB, van der Werf NR, Segbers M, van Velden FHP, Wierts R, Blokland KJAK, Konijnenberg MW, Lazarenko SV, Visser EP, Gotthardt M. Towards standardization of absolute SPECT/CT quantification: a multi-center and multi-vendor phantom study. EJNMMI Phys. 2019. https://doi.org/10.1186/s40658-019-0268-5.

Article  Google Scholar 

Jadoul A, Bernard C, Lovinfosse P, Gérard L, Lilet H, Cornet O, Hustinx R. Comparative dosimetry between 99mTc-MAA SPECT/CT and 90Y PET/CT in primary and metastatic liver tumors. Eur J Nucl Med Mol Imaging. 2020;47(4):828–37.

Article  CAS  Google Scholar 

Garin E, Rolland Y, Laffont S, Edeline J. Clinical impact of 99mTc-MAA SPECT/CT-based dosimetry in the radioembolization of liver malignancies with 90Y-loaded microspheres. Eur J Nucl Med Mol Imaging. 2016;43(3):559–75.

Article  CAS  Google Scholar 

Thomas MA, Mahvash A, Abdelsalam M, Kaseb AO, Kappadath SC. Planning dosimetry for 90Y radioembolization with glass microspheres: evaluating the fidelity of 99mTc-MAA and partition model predictions. Med Phys. 2020;47(10):5333–42.

Article  CAS  Google Scholar 

留言 (0)

沒有登入
gif