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Review

A review of plan library approaches in adaptive radiotherapy of bladder cancer

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Pages 566-573 | Received 08 Dec 2016, Accepted 18 Dec 2017, Published online: 04 Jan 2018

References

  • Pos F, Remeijer P. Adaptive management of bladder cancer radiotherapy. Semin Radiat Oncol. 2010;20:116–120.
  • Ploussard G, Daneshmand S, Efstathiou JA, et al. Critical analysis of bladder sparing with trimodal therapy in muscle-invasive bladder cancer: a systematic review. Eur Urol. 2014;66:120–137.
  • Arcangeli G, Strigari L, Arcangeli S. Radical cystectomy versus organ-sparing trimodality treatment in muscle-invasive bladder cancer: a systematic review of clinical trials. Crit Rev Oncol Hematol. 2015;95:387–396.
  • Zhang S, Yu YH, Zhang Y, et al. Radiotherapy in muscle-invasive bladder cancer: the latest research progress and clinical application. Am J Cancer Res. 2015;5:854–868.
  • Turner SL, Swindell R, Bowl N, et al. Bladder movement during radiation therapy for bladder cancer: implications for treatment planning. Int J Radiat Oncol Biol Phys. 1997;39:355–360.
  • Harris SJ, Buchanan RB. An audit and evaluation of bladder movements during radical radiotherapy. Clin Oncol (R Coll Radiol). 1998;10:262–264.
  • Pos FJ, Koedooder K, Hulshof MC, et al. Influence of bladder and rectal volume on spatial variability of a bladder tumor during radical radiotherapy. Int J Radiat Oncol Biol Phys. 2003;55:835–841.
  • Meijer GJ, Rasch C, Remeijer P, et al. Three-dimensional analysis of delineation errors, setup errors, and organ motion during radiotherapy of bladder cancer. Int J Radiat Oncol Biol Phys. 2003;55:1277–1287.
  • Muren LP, Smaaland R, Dahl O. Organ motion, set-up variation and treatment margins in radical radiotherapy of urinary bladder cancer. Radiother Oncol. 2003;69:291–304.
  • Fokdal L, Honore H, Hoyer M, et al. Impact of changes in bladder and rectal filling volume on organ motion and dose distribution of the bladder in radiotherapy for urinary bladder cancer. Int J Radiat Oncol Biol Phys. 2004;59:436–444.
  • Pos FJ, Hulshof M, Lebesque J, et al. Adaptive radiotherapy for invasive bladder cancer: a feasibility study. Int J Radiat Oncol Biol Phys. 2006;64:862–868.
  • Lotz HT, Pos FJ, Hulshof MC, et al. Tumor motion and deformation during external radiotherapy of bladder cancer. Int J Radiat Oncol Biol Phys. 2006;64:1551–1558.
  • McDonald F, Lalondrelle S, Taylor H, et al. Clinical implementation of adaptive hypofractionated bladder radiotherapy for improvement in normal tissue irradiation. Clin Oncol (R Coll Radiol). 2013;25:549–556.
  • Lalondrelle S, Huddart R, Warren-Oseni K, et al. Adaptive-predictive organ localization using cone-beam computed tomography for improved accuracy in external beam radiotherapy for bladder cancer. Int J Radiat Oncol Biol Phys. 2011;79:705–712.
  • Wright P, Redpath AT, Hoyer M, et al. The normal tissue sparing potential of adaptive strategies in radiotherapy of bladder cancer. Acta Oncol. 2008;47:1382–1389.
  • Foroudi F, Wong J, Kron T, et al. Online adaptive radiotherapy for muscle-invasive bladder cancer: results of a pilot study. Int J Radiat Oncol Biol Phys. 2011;81:765–771.
  • Tanyi JA, Fuss MH. Volumetric image-guidance: does routine usage prompt adaptive re-planning? An institutional review. Acta Oncol. 2008;47:1444–1453.
  • Thörnqvist S, Hysing L, Tuomikoski L, et al. Adaptive radiotherapy strategies for pelvic tumors—a systematic review of clinical implementations. Acta Oncol. 2016;55:943–958.
  • Burridge N, Amer A, Marchant T, et al. Online adaptive radiotherapy of the bladder: small bowel irradiated-volume reduction. Int J Radiat Oncol Biol Phys. 2006;66:892–897.
  • Kron T, Wong J, Rolfo A, et al. Adaptive radiotherapy for bladder cancer reduces integral dose despite daily volumetric imaging. Radiother Oncol. 2010;97:485–487.
  • Lotz HT, van Herk M, Betgen A, et al. Reproducibility of the bladder shape and bladder shape changes during filling. Med Phys. 2005;32:2590–2597.
  • Murphy MJ, Balter J, Balter S, et al. The management of imaging dose during image-guided radiotherapy: report of the AAPM Task Group 75. Med Phys. 2007;34:4041–4063.
  • Hutton D, Leadbetter J, Jain P, et al. Does one size fit all? Adaptive radiotherapy for bladder cancer: a feasibility study. Radiography. 2013;19:17–22.
  • Vestergaard A, Muren LP, Sondergaard J, et al. Adaptive plan selection vs. re-optimisation in radiotherapy for bladder cancer: a dose accumulation comparison. Radiother Oncol. 2013;109:457–462.
  • Vestergaard A, Muren LP, Lindberg H, et al. Normal tissue sparing in a phase II trial on daily adaptive plan selection in radiotherapy for urinary bladder cancer. Acta Oncol. 2014;53:997–1004.
  • Vestergaard A, Sondergaard J, Petersen JB, et al. A comparison of three different adaptive strategies in image-guided radiotherapy of bladder cancer. Acta Oncol. 2010;49:1069–1076.
  • Foroudi F, Wong J, Haworth A, et al. Offline adaptive radiotherapy for bladder cancer using cone beam computed tomography. J Med Imaging Radiat Oncol. 2009;53:226–233.
  • Tuomikoski L, Collan J, Keyrilainen J, et al. Adaptive radiotherapy in muscle invasive urinary bladder cancer—an effective method to reduce the irradiated bowel volume. Radiother Oncol. 2011;99:61–66.
  • Foroudi F, Pham D, Rolfo A, et al. The outcome of a multi-centre feasibility study of online adaptive radiotherapy for muscle-invasive bladder cancer TROG 10.01 BOLART. Radiother Oncol. 2014;111:316–320.
  • Tuomikoski L, Korhonen J, Collan J, et al. Implementation of adaptive radiation therapy for urinary bladder carcinoma: imaging, planning and image guidance. Acta Oncol. 2013;52:1451–1457.
  • Canlas R, McVicar N, Nakano S, et al. Assessment of adaptive margins using a single planning computed tomography scan for bladder radiotherapy. J Med Imaging Radiat Sci. 2016;47:227–234.
  • Gronborg C, Vestergaard A, Hoyer M, et al. Intra-fractional bladder motion and margins in adaptive radiotherapy for urinary bladder cancer. Acta Oncol. 2015;54:1–6.
  • Murthy V, Master Z, Adurkar P, et al. ‘Plan of the day’ adaptive radiotherapy for bladder cancer using helical tomotherapy. Radiother Oncol. 2011;99:55–60.
  • Murthy V, Masodkar R, Kalyani N, et al. Clinical outcomes with dose-escalated adaptive radiation therapy for urinary bladder cancer: a prospective study. Int J Radiat Oncol Biol Phys. 2016;94:60–66.
  • Meijer GJ, van der Toorn PP, Bal M, et al. High precision bladder cancer irradiation by integrating a library planning procedure of 6 prospectively generated SIB IMRT plans with image guidance using lipiodol markers. Radiother Oncol. 2012;105:174–179.
  • Mangar SA, Scurr E, Huddart RA, et al. Assessing intra-fractional bladder motion using cine-MRI as initial methodology for Predictive Organ Localization (POLO) in radiotherapy for bladder cancer. Radiother Oncol. 2007;85:207–214.
  • Lutkenhaus LJ, Visser J, de Jong R, et al. Evaluation of delivered dose for a clinical daily adaptive plan selection strategy for bladder cancer radiotherapy. Radiother Oncol. 2015;116:51–56.
  • Vestergaard A, Kallehauge JF, Petersen JB, et al. An adaptive radiotherapy planning strategy for bladder cancer using deformation vector fields. Radiother Oncol. 2014;112:371–375.
  • Webster GJ, Stratford J, Rodgers J, et al. Comparison of adaptive radiotherapy techniques for the treatment of bladder cancer. Br J Radiol. 2013;86:20120433.
  • Sengelov L, von der Maase H. Radiotherapy in bladder cancer. Radiother Oncol. 1999;52:1–14.
  • Pos FJ, Hart G, Schneider C, et al. Radical radiotherapy for invasive bladder cancer: what dose and fractionation schedule to choose? Int J Radiat Oncol Biol Phys. 2006;64:1168–1173.
  • Colquhoun AJ, Jones GD, Moneef MA, et al. Improving and predicting radiosensitivity in muscle invasive bladder cancer. J Urol. 2003;169:1983–1992.
  • Sondergaard J, Hoyer M, Petersen JB, et al. The normal tissue sparing obtained with simultaneous treatment of pelvic lymph nodes and bladder using intensity-modulated radiotherapy. Acta Oncol. 2009;48:238–244.
  • Wright P, Muren LP, Hoyer M, et al. Evaluation of adaptive radiotherapy of bladder cancer by image-based tumour control probability modelling. Acta Oncol. 2010;49:1045–1051.
  • Institute of Cancer Research, United Kingdom. A randomised phase II trial of adaptive image guided standard or dose escalated radiotherapy in the treatment of transitional cell carcinoma of the bladder. In: ClinicalTrials.gov [Internet]. Bethesda (MD): National Library of Medicine (US); 2000; [Internet]; [cited 2016 Nov 28]. Available from: https://clinicaltrials.gov/ct2/show/NCT02447549 NLM Identifier: NCT02447549.
  • Kuyumcian A, Pham D, Thomas JM, et al. Adaptive radiotherapy for muscle-invasive bladder cancer: optimisation of plan sizes. J Med Imaging Radiat Oncol. 2012;56:661–667.
  • Tuomikoski L, Valli A, Tenhunen M, et al. A comparison between two clinically applied plan library strategies in adaptive radiotherapy of bladder cancer. Radiother Oncol. 2015;117:448–452.
  • Kong VC, Taylor A, Rosewall T. Adaptive radiotherapy for bladder cancer—a systematic review. J Med Imag Radiat Sci. 2017;48:199–206.
  • White E, Kane G. Radiation medicine practice in the image-guided radiation therapy era: new roles and new opportunities. Semin Radiat Oncol. 2007;17:298–305.
  • National Radiotherapy Implementation Group. Image guided radiotherapy. Guidance for implementation and use. London: NHS; 2012.
  • Yan D, Vicini F, Wong J, et al. Adaptive radiation therapy. Phys Med Biol. 1997;42:123–132.
  • Jia X, Schümann J, Paganetti H, et al. GPU-based fast Monte Carlo dose calculation for proton therapy. Phys Med Biol. 2012;57:7783–7797.
  • Ziegenhein P, Kamerling CP, Oelfke U. Interactive dose shaping – efficient strategies for CPU-based real-time treatment planning. J Phys: Conf Ser. 2014;489:1–6.
  • Kamerling CP, Ziegenhein P, Heinrich H, et al. A 3D isodose manipulation tool for interactive dose shaping. J Phys: Conf Ser. 2014;489:1–6.
  • Vestergaard A, Hafeez S, Muren LP, et al. The potential of MRI-guided online adaptive re-optimisation in radiotherapy of urinary bladder cancer. Radiother Oncol. 2016;118:154–159.
  • Kupelian P, Sonke JJ. Magnetic resonance-guided adaptive radiotherapy: a solution to the future. Semin Radiat Oncol. 2014;24:227–232.
  • Jaffray DA, Carlone MC, Milosevic MF, et al. A facility for magnetic resonance-guided radiation therapy. Semin Radiat Oncol. 2014;24:193–195.
  • Bostel T, Nicolay NH, Grossmann JG, et al. MR-guidance – a clinical study to evaluate a shuttle-based MR-linac connection to provide MR-guided radiotherapy. Radiat Oncol. 2014;9:12.
  • Oh S, Stewart J, Moseley J, et al. Hybrid adaptive radiotherapy with on-line MRI in cervix cancer IMRT. Radiother Oncol. 2014;110:323–328.
  • Metcalfe P, Liney GP, Holloway L, et al. The potential for an enhanced role for MRI in radiation-therapy treatment planning. Technol Cancer Res Treat. 2013;12:429–446.
  • McPartlin AJ, Li XA, Kershaw LE, et al. MRI-guided prostate adaptive radiotherapy – a systematic review. Radiother Oncol. 2016;119:371–380.

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