3D-technology as an element of planning, effective implementation and surgical simulation training in staghorn nephrolithiasis management


Cite item

Full Text

Open Access Open Access
Restricted Access Access granted
Restricted Access Subscription or Fee Access

Abstract

Daily practice of a physician of any specialty is incomplete without an analysis of the data derived from the use of various imaging techniques. Over the past decade, there have been significant changes in the understanding of the clinical anatomy of the patient, which is largely the result of the introduction of modern computer technology in medicine.

Full Text

Restricted Access

About the authors

P. V Glybochko

Research Institute of Uronephrology and Human Reproductive Health of Sechenov First Moscow State Medical University

Ju. G Aljaev

Research Institute of Uronephrology and Human Reproductive Health of Sechenov First Moscow State Medical University

E. A Bezrukov

Research Institute of Uronephrology and Human Reproductive Health of Sechenov First Moscow State Medical University

E. S Sirota

Research Institute of Uronephrology and Human Reproductive Health of Sechenov First Moscow State Medical University

Email: essirota@mail.ru

S. V Pesegov

Research Institute of Uronephrology and Human Reproductive Health of Sechenov First Moscow State Medical University

A. V Proskura

Research Institute of Uronephrology and Human Reproductive Health of 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.
  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. Al-Kohlany K.M., Shokeir A.A., Mosbah A., Mohsen T., Shoma A.M., Eraky I., El-Kenawy M., El-Kappany H.A. Treatment of complete staghorn stones: a prospective randomized comparison of open surgery versus percutaneous nephrolithotomy. J. Urol. 2005;173(2):469-473.
  7. Watterson J.D., Soon S., Jana K. Access related complications during percutaneous nephrolithotomy: urology versus radiology at a single academic institution. J. Urol. 2006;176(1):142-145.
  8. Mishra S., Sabnis R.B., Desai M. Staghorn morphometry: a new tool for clinical classification and prediction model for percutaneous nephrolithotomy monotherapy. J. Endourol. 2012;26( 1):6-14.
  9. Turna B., Nazli O., Demiryoguran S., Mammadov R., Cal C. Percutaneous nephrolithotomy: variables that influence hemorrhage. Urology. 2007;69(4):603-607.
  10. Muslumanoglu A.Y., Tefekli A., Karadag M.A., Tok A., Sari E., Berberoglu Y. Impact of percutaneous access point number and location on complication and success rates in percutaneous nephrolithotomy. Urol. Int. 200 6;77(4): 340-346.
  11. Rosette J., Assimos D., Desai M., Gutierrez J., Lingeman J., Scarpa R., Tefekli A. The clinical research office of the endourological society percutaneous nephrolithotomy global study: indications, complications, and outcomes in 5803 patients. J. Endourol. 2011;25(1):11-17.
  12. El-Assmy A.M, Shokeir A.A., El-Nahas A.R., Shoma A.M., Eraky I., El-Kenawy M.R., El-Kappany H.A. Outcome of percutaneous nephrolithotomy: effect of body mass index. Eur. Urol. 2007;52(1): 199-204.
  13. Thiruchelvam N., Mostafid H., Ubhayakar G. Planning percutaneous nephrolithotomy using multidetector computed tomography urography, multiplanar reconstruction and threedimensional reformatting. BJU Int. 2005;95(9):1280-1284.
  14. Ghani K.R., Rintoul M., Patel U., Anson K. Three-dimensional planning of percutaneous renal stone surgery in a horseshoe kidney using 16-slice CT and volume-rendered movies. J. Endourol. 2005;19(4):461-463.
  15. Soria F., Delgado M.I., Sanchez F.M., Allona A., Jimenez Cruz J.F., Morell E., Uson J. Effectiveness of three-dimensional fluoroscopy in percutaneous nephrostomy: an animal model study. Urology. 2009;73(3):649-652.
  16. Dalela D., Gupta A., Ahmed S., Goel A. Three-dimensional synchronized multidirectional renal pyelo-angiography: a new imaging concept to facilitate percutaneous nephrolithotomy in technically challenging cases. J. Endourol. 2009;23(12):1937-1939.
  17. Ukimura O. Image-guided surgery in minimally invasive urology. Curr. Opin. Urol. 2010;20(2):136-140.
  18. Teber D., Guven S., Simpfendorfer T., Baumhauer M., Guven E.O., Yencilek F., Gozen A.S., Rassweiler J. Augmented reality: a new tool to improve surgical accuracy during laparoscopic partial nephrectomy? Preliminary in vitro and in vivo results. Eur. Urol. 2009;56(2):332-338.
  19. Simpfendorfer T., Baumhauer M., Muller M., Gutt C.N., Meinzer H.P., Rassweiler J.J., Guven S., Teber D. Augmented reality visualization during laparoscopic radical prostatectomy. J. Endourol. 2011;25(12):1841-1845.
  20. Ritter M., Rassweiler M.C., Hacker A., Michel M.S. Laserguided percutaneous kidney access with the UroDyna-CT: first experience of three-dimensional puncture planning with an ex vivo model. World. J. Urol. 2013;31(5):1147-1151.
  21. Rassweiler J.J., Muller M., Fangerau M., Klein J., Goezen A.S., Pereira P., Meinzer H.P., Teber D. iPad-assisted percutaneous access to the kidney using marker-based navigation: initial clinical experience. Eur. Urol. 2012;61(3):628-631.
  22. Hulin Li, Yuanbo Chen, Chunxiao Liu, Bingkun Li, Kai Xu, Susu Bao. Construction of a three-dimensional model of renal stones: comprehensive planning for percutaneous nephrolithotomy and assistance in surgery. World J. Urol. 2013;31(6):1587-1592.
  23. Rastinehad A.R., Andonian S., Smith A.D., Siegel D.N. Management of hemorrhagic complications associated with percutaneous nephrolithotomy. J. Endourol. 2009;23(10):1763-1767.
  24. Richstone L., Reggio E., Ost M.C., Seideman C., Fossett L.K., Okeke Z., Rastinehad A.R., Lobko I., Siegel D.N., Smith A.D. First Prize (tie): hemorrhage following percutaneous renal surgery: characterization of angiographic findings. J. Endourol. 2008;22(6):1129-1135.
  25. Silberstein J.L., Maddox M.M., Dorsey P., Feibus A., Thomas R., Lee B.R. Physical Models of Renal Malignancies Using Standard Cross-sectional Imaging and 3-Dimensional Printers: A Pilot Study. Urology. 2014;84(2): 268-272.
  26. Turney B. W. A new model with an anatomically accurate human renal collecting system for training in fluoroscopy-guided percutaneous nephrolithotomy access. J. Endourol. 2014;28(3):360-363.

Supplementary files

Supplementary Files
Action
1. JATS XML

This website uses cookies

You consent to our cookies if you continue to use our website.

About Cookies