3d-technologies as a core element of planning and implementation of virtual and actual renal surgery


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Abstract

The purpose of this article is to demonstrate the role of modern computer technologies in performing virtual and actual renal tumor surgery. Currently 3D modeling makes it possible to clearly define strategy and tactics of an individual patient treatment.

About the authors

P V Glybochko

Sechenov First Moscow State Medical University

Sechenov First Moscow State Medical University

Ju G Aljaev

Sechenov First Moscow State Medical University

Sechenov First Moscow State Medical University

E A Bezrukov

Sechenov First Moscow State Medical University

Sechenov First Moscow State Medical University

E S Sirota

Sechenov First Moscow State Medical University

Sechenov First Moscow State Medical University

A V Proskura

Sechenov First Moscow State Medical University

Sechenov First Moscow State Medical University

References

  1. D-технологии при операциях на почке: от хирургии виртуальной к хирургии реальной. Под ред. Глыбочко, П.В., Аляева,Ю.Г. М.: ГЭОТАР- Медиа, 2014. C. 10, 63-66, 91.
  2. Baumhauer M., Feuerstein M., Meinzer H.P., Rassweiler J. Navigation in endoscopic soft tissue surgery - perspectives and limitations. J. Endourol. 2008;22:751-776.
  3. Teber D., Baumhauer M., Guven E. O., Rassweiler J. Robotics and imaging in urological surgery. Curr. Opin. Urol. 2009;19:108-113.
  4. Ukimura O., Gill I.S. Image-fusion, augmented reality and predictive surgical navigation. Urol. Clin. North Am. 2009;36:115-123.
  5. Rassweiler J., Baumhauer M., Weickert U., Meinzer H.P., Teber D., Su L.M., Patel V.R. The role of imaging and navigation for natural orifice translumenal endoscopic surgery. J. Endourol. 2009;23:793-802.
  6. Chen D.Y., Uzzo R.G. Evaluation and management ofthe renal mass. Med. Clin. North Am. 2011;95:179-189.
  7. Huang W.C., Levey A.S., Serio A.M., Snyder M., Vickers A.J., Raj G.V., Scardino P.T., Russo P. Chronic kidney disease after nephrectomy in patients with renal cortical tumours: A retrospective cohort study. Lancet Oncol. 2006;7:735-740.
  8. Go A.S., Chertow G.M., Fan D., McCulloch C.E., Hsu C.Y. Chronic kidney disease and the risks of death, cardiovascular events, and hospitalization. N. Engl. J. Med. 2004;351:1296-1305.
  9. Huang W. C., Elkin E.B., LeveyA.S., Jang T.L., Russo P. Partial nephrectomy versus radical nephrectomy in patients with small renal tumors - is there a difference in mortality and cardiovascular outcomes? J. Urol. 2009; 181:55-62.
  10. Derweesh I.H., Herts B.R., Motta-Ramirez G.A., Ismail H.R., Obuchow- skiN., Venerio J., RemerE.M., GillI.S., NovickA.C. The predictive value of helical computed tomography for collecting-system entry during nephronsparing surgery. BJU Int. 2006;98(5):963-968.
  11. Sharaf B., Levine J.P., Hirsch D.L., Bastidas J.A., Schiff B.A., Garfein E.S. Importance of computer-aided design and manufacturing technology in the multidisciplinary approach to head and neck reconstruction. J. Craniofac. Surg. 2010;21:1277-1280.
  12. Lang H., Radtke A., Hindennach M., Schroeder T., Fruhauf N.R., Malago M., Bourquain H., Peitgen H.O., Oldhafer K.J., Broelsch C.E. Impact of virtual tumor resection and computer-assisted risk analysis on operation planning and intraoperative strategy in major hepaticresection. Arch. Surg. 2005;140:629-638.
  13. Ukimura O., Nakamoto M., Gill I.S. Three-dimensional reconstruction of renovascular-tumor anatomy to facilitate zero-ischemia partial nephrectomy. Eur. Urol. 2012;61:211-217.
  14. Shao P., Tang L., Li P., Xu Y., Qin C., Cao Q., Ju X., Meng X., Lv Q., Li J., Zhang W., Yin C. Application of a vasculature model and standardization of the renal hilar approach in laparoscopic partial nephrectomy for precise segmental artery clamping. Eur. Urol. 2013;63:1072-1081. 15.
  15. CollD.M., HertsB.R., Davros W.J., Uzzo R.G., NovickA.C. Preoperative use of 3D volume rendering to demonstrate renal tumors and renal anatomy. Radiographics. 2000;20:431-438.
  16. Wunderlich H., Reichelt O., Schubert R., Zermann D.H., Schubert J. Preoperative simulation of partial nephrectomy with three-dimensional computed tomography. BJU Int. 2000;86:777-781.
  17. Coll D.M., Uzzo R.G., Herts B.R., Davros W.J., Wirth S.L., Novick A.C. 3-dimensional volume rendered computerized tomography for preoperative evaluation and intraoperative treatment of patients undergoing nephron sparing surgery. J. Urol. 1999;161:1097-1102.
  18. Ueno D., Makiyama K., Yamanaka H., Ijiri T., Yokota H., Kubota Y. Prediction of open urinary tract in laparoscopic partial nephrectomy by virtual resection plane visualization. BMC Urol. 2014;14:47.
  19. Komai Y., Sakai Y., Gotohda N., Kobayashi T., Kawakami S., Saito N. A novel 3-dimensional image analysis system for case-specific kidney anatomy and surgical simulation to facilitate clampless partial nephrectomy. Urology. 2014;83(2):500-506.
  20. Lasser M.S., Doscher M., Keehn A., Chernyak V., Garfein E., Ghavamian R Virtual surgical planning: a novel aid to robot-assisted laparoscopic partial nephrectomy. J. Endourol. 2012;26(10):1372-1379.

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