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Original Article

Interstitial microwave thermal therapy and its application to the treatment of recurrent prostate cancer

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Pages 757-768 | Received 24 Feb 2004, Accepted 02 Jun 2004, Published online: 09 Jul 2009

References

  • Urano M, Douple EB. Interstitial hyperthermia: physics, biology and clinical aspects. Utrecht: VSP, 1992.
  • Sneed PK, Stauffer PR, McDermott MW, Diedrich CJ, Lamborn KR, Prados MD, Chang S, Weaver KA, Spry L, Malec MK, Lamb SA, Voss B, Davis RL, Wara WM, Larson DA, Phillips TL, Gutin PH. Survival benefit of hyperthermia in a prospective randomized trial of brachytherapy boost ± hyperthermia for glioblastoma multiforme. Int j Radiat Oncol Biol Phys 1998; 40: 287–95.
  • Williams MR, Knaut M, Berube D, Oz MC. Application of microwave energy in cardiac tissue ablation: from in vitro analyses to clinical use. Ann Thorac Surg 2002; 74: 1500–5.
  • Xu HX, Xie XY, Lu MD, Chen JW, Yin XY, Xu ZF, Liu GJ. Ultrasound-guided percutaneous thermal ablation of hepatocellular carcinoma using microwave and radio-frequency ablation. Clin Radiol 2004; 59: 53–61.
  • Skinner MG, Iizuka M, Kolios MC, Sherar MD. A theoretical comparison of energy sources-microwave, ultrasound and laser-for interstitial thermal therapy. Phys Med Biol 1998; 43: 3535–47.
  • Tyreus PD, Nau WH, Diederich CJ. Effect of applicator diameter on lesion size from high temperature interstitial ultrasound thermal therapy. Med Phys 2003; 30: 1855–63.
  • Ryan TP. Comparison of six microwave antennae for hyperthermia treatment of cancer: SAR results for single antennae and arrays. Int J Radiat Oncol Biol Phys 1991; 21: 403–13.
  • Sherar MD, Gladman A, Davidson SRH, Trachtenberg J, Gertner MR. Helical antenna arrays for interstitial microwave thermal therapy for prostate cancer: tissue phantom testing and simulations for treatment. Phys Med Biol 2001; 46: 1905–18.
  • Sherar MD, Gertner MR, Yue CKK, O'Malley ME, Toi A, Gladman AS, Davidson SRH, Trachtenberg J. Interstitial microwave thermal therapy for prostate cancer: method of treatment and results of a phase I/II trial. J Urol 2001; 166: 1707–14.
  • Sherar MD, Haughton MP, Gertner MR, Catton CN, Yue CKK, Davidson SRH, Trachtenberg J. Patient and thermal variables affecting outcome after salvage interstitial microwave thermal therapy for recurrent prostate cancer following failed external beam radiation therapy. Can J Urol 2004; submitted.
  • Sherar MD, Trachtenberg J, Davidson SRH, McCann C, Yue CKK, Haider MA, Gertner MR. Interstitial microwave thermal therapy for prostate cancer. J Endourol 2003; 17: 617–25.
  • Bono AV. Current treatment strategies for prostate cancer. Eur Urol Suppl 2004; 3: 2–7.
  • Chen BT, Wood DP Jr. Salvage prostatectomy in patients who have failed radiation therapy or cryotherapy as primary treatment for prostate cancer. Urol 2003; 62 (Suppl 1): 69–78.
  • Pisters LL, von Eschenbach AC, Scott SM, Swanson DA, Dinney CP, Pettaway CA, Babaian RJ. The efficacy and complications of salvage cryotherapy of the prostate. J Urol 1997; 157: 921–5.
  • Izawa .II, Madsen LT, Scott SM, Tran JP, McGuire EJ, von Eschenbach AC, Pisters LL. Salvage cryotherapy for recurrent prostate cancer after radiotherapy: variables affecting patient outcome. J Clin Oncol 2002; 20: 2664–71.
  • Chin JL, Pautler SE, Mouraviev V, Touma N, Moore K, Downey DB. Results of salvage cryoablation of the prostate after radiation: identifying predictors of treatment failure and complications. J Urol 2001; 165: 1937–41.
  • Izawa .II, Ajam K, McGuire E, Scott S, von Eschenbach AC, Skibber J, Pisters LL. Major surgery to manage definitively severe complications of salvage cryotherapy for prostate cancer. J Urol 2000; 164: 1978–81.
  • Lancaster C, Toi A, Trachtenberg J. Interstitial microwave thermoablation for localized prostate cancer. Urol 1999; 53: 828–31.
  • Davidson SRH, Sherar MD. Theoretical modeling, experimental studies and clinical simulations of urethral cooling catheters for use during prostate thermal therapy. Phys Med Biol 2003; 48: 729–44.
  • Chin L, Sherar MD. Changes in the dielectric properties of rat prostate ex-vivo at 915 MHz during heating. Int J Hypertherrnia 2004; 20: 517–527.
  • Chin L, Sherar MD. Changes in dielectric properties of ex vivo bovine liver at 915 MHz during heating. Phys Med Biol 2001; 46: 197–211.
  • Sherar MD, Chin L, Kolios MC, Gladman AS. The effect of heat induced changes in microwave tissue properties on thermal therapy for prostate cancer. In E. P. Scott (ed.) Advances in Heat and Mass Transfer in Biotechnology HTD-363/BED-34 (American Society of Mechanical Engineers), 1999; 109–12.
  • Rendon RA, Gertner MR, Sherar MD, Asch MR, Kachura JR, Sweet J, Jewett MAS. Development of a radiofrequency based thermal therapy technique in an in vivo porcine model for the treatment of small renal masses. J Urol 2001; 166: 292–8.
  • Leibovich BC, Blute ML, Bostwick DG, Wilson TM, Pisansky TM, Davis BJ, Ramnani DM, Cheng L, Sebo Ti, Zincke H. Proximity of prostate cancer to the urethra: implica-tions for minimally invasive ablative therapies. Urol 2000; 56: 726–9.
  • Vitkin IA, Moriarty JA, Peters RD, Kolios MC, Gladman AS, Chen JC, Rinks RS, Hunt JW, Wilson BC, Easty AC, Bronskill MJ, Kucharczyk W, Sherar MD, Henkelman RM. Magnetic resonance imaging of temperature changes during interstitial microwave heating: a phantom study. Med Phys 1997; 24: 269–77.
  • Sherar MD, Moriarty JA, Kolios MC, Chen JC, Peters RD, Ang LC, Rinks RS, Henkelman RM, Bronskill MJ, Kucharczyk W. Comparison of thermal damage calculated using magnetic resonance thermometry, with magnetic resonance imaging post treatment and histology after interstitial microwave thermal therapy of rabbit brain. Phys Med Biol 2000; 45: 3563–76.
  • Morikawa S, Inubushi T, Kurumi Y, Naka S, Sato K, Tani T, Yamamoto I, Fujimura M. MR-guided microwave thermocoagulation therapy of liver tumors: initial clinical experi-ences using a 0.5 T open MR system. J Mag Res Intg 2002; 16: 576–83.
  • Gertner MR, Wilson BC, Sherar MD. Ultrasound properties of liver tissue during heating. Ultrasound Med Biol 1997; 23: 1395–403.
  • Damianou CA, Sanghvi NT, Fry FJ. Ultrasonic attenuation of dog tissues as a function of temperature. Proc IEEE Ultrasonic Symp 1995: 1203–6.
  • Gertner MR, Worthington AE, Wilson BC, Sherar MD. Ultrasound imaging of thermal therapy in in-vitro liver. Ultrasound Med Biol 1998; 24: 1023–32.
  • Worthington AE, Trachtenberg J, Sherar MD. Ultrasound properties of human prostate tissue during heating. Ultrasound Med Biol 2002; 28: 1311–8.
  • Worthington AE, Sherar MD. Changes in ultrasound properties of porcine kidney tissue during heating. Ultrasound Med Biol 2001; 27: 673–82.
  • Bevan PD, Sherar MD. B-scan ultrasound imaging of thermal coagulation in bovine liver: frequency shift attenuation mapping. Ultrasound Med Biol 2001; 27: 809–17.
  • Bevan PD, Sherar MD. B-scan ultrasound imaging of thermal coagulation in bovine liver: log envelope slope attenuation mapping. Ultrasound Med Biol 2001; 27: 379–87.
  • Skinner MG, Everts S, Reid AD, Vitkin IA, Lilge L, Sherar MD. Changes in optical properties of ex-vivo rat prostate during heating. Phys Med Biol 2000; 45: 1375–86.
  • Chin L, Whelan WM, Sherar MD, Vitkin IA. Changes in relative light fluence measured during laser heating: implications for optical monitoring and modelling of interstitial laser photocoagulation. Phys Med Biol 2001; 46: 2407–20.
  • Chin L, Pop M, Whelan WM, Sherar, MD, Vitkin IA. An optical method using fluence or radiance measurements to monitor thermal therapy. Rev Sci Inst 2003; 74: 393–5.
  • McCann C, Kumaradas JC, Gertner MR, Davidson SRH, Dolan AM, Sherar MD. Feasibility of salvage interstitial microwave thermal therapy for prostate carcinoma following failed brachytherapy: studies in a tissue equivalent phantom. Phys Med Biol 2003; 48: 1041–52.
  • Hagen EK, Magnusson A, Aksnes A-K. Enhanced visualization of the normal prostate blood flow in young healthy volunteers using a new ultrasound contrast agent. Acta Radiol 2001; 42: 225–9.

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