This invention relates to computer-guided surgery in general, and more particularly to computer-guided surgery for orienting the acetabular cup in the acetabulum during total hip replacement surgery.
Joint replacement surgery seeks to replace portions of a joint with prosthetic components so as to provide long-lasting joint function and pain-free mobility for the patient.
One joint which is commonly replaced, in whole or in part, is the hip joint. The hip joint is located at the junction of the femur and the acetabulum. More particularly, and looking now at
During total hip replacement surgery, and looking now at
In a partial hip replacement surgery, only one of the operative elements of the hip joint may be replaced, e.g., the head of the femur.
The present invention will hereinafter be discussed in the context of a total hip replacement surgery, however, it should also be appreciated that the present invention may be equally applicable to a partial hip replacement surgery.
In order to replace the head of the femur with the femoral prosthesis, the head of the femur is first distracted from the acetabulum so as to expose the femoral head. Then an osteotomy is performed on the femoral neck so as to remove the neck and head of the femur from the remainder of the femur. Next, the proximal end of the intramedullary canal is prepared to receive the stem of the femoral prosthesis. More particularly, a rasp, reamer, broach, etc. is used to hollow out, clean and enlarge the intramedullary canal of the femur so as to create a cavity to receive the stem of the femoral prosthesis. Once the proximal end of the intramedullary canal has been prepared to receive the femoral prosthesis, the stem of the femoral prosthesis is inserted into the intramedullary canal so that the ball of the femoral prosthesis is appropriately presented to the acetabular cup. Typically, the ball of the femoral prosthesis is formed separately from the stem of the femoral prosthesis, and it is mounted to the stem of the femoral prosthesis at the time of use. Furthermore, it should also be appreciated that during the surgery itself, it is common to temporarily position a trial stem or broach in the femur, attach a trial ball or equivalent element to the trial stem or broach, and then temporarily reduce the joint so as to confirm the reconstruction before the actual prosthetic stem is secured in position within the femur.
In order to replace the native acetabular cup with the prosthetic acetabular cup, the native acetabulum is first prepared to receive the prosthetic acetabular cup. This generally involves reaming an appropriate seat in the acetabulum to receive the prosthetic acetabular cup. Then the prosthetic acetabular cup is installed in the seat formed in the acetabulum, and the distraction released, so that the ball of the femoral prosthesis can be seated in the prosthetic acetabular cup. In this respect it will be appreciated that the prosthetic acetabular cup typically comprises an outer cup made of metal and an inner liner made of polyethylene (or another polymer, or a ceramic, or a metal, etc.). The metal outer cup is configured so as to be received in the seat formed in the acetabulum and thereafter osseointegrate into the host bone, and the polyethylene inner liner is configured so as to be received in the metal outer cup and thereafter provide a low-friction seat for the ball of the femoral prosthesis.
During seating of the prosthetic acetabular cup in the acetabulum, it is important that the prosthetic acetabular cup be set in the acetabulum with the proper positioning, i.e., at the proper location and with the proper orientation. Such proper positioning is important in order to (i) avoid impingement between the rim of the prosthetic acetabular cup and the neck of the femoral prosthesis as the prosthetic joint is moved through a range of motions, since such impingement can result in a reduced range of motion, excessive wear, joint failure and/or substantial pain for the patient, and (ii) avoid dislocation of the ball of the femoral prosthesis from the acetabular cup as the joint is moved through a range of motions, since such dislocation can result in damage to the anatomy, joint failure and/or substantial pain for the patient.
In many cases, the surgeon seats the prosthetic acetabular cup in the acetabulum “by eye”, and thereafter confirms the proper disposition of the prosthetic acetabular cup when the distracted joint is subsequently reduced. However, this approach relies heavily on the anatomical view available to, and appreciated by, the surgeon, and errors in cup orientation (i.e., tilt) may not be discovered until after the surgery has been completed, since such errors in cup orientation can be difficult to detect interoperatively, even where X-ray imaging is available.
For this reason, various computer-guided systems have been developed to assist the surgeon in the proper placement of the prosthetic acetabular cup during total hip replacement surgery. However, such computer-guided systems frequently require that a CT scan be made of the patient in advance of the procedure so as to determine the geometry of the acetabulum. Furthermore, such computer-guided systems typically require (i) the registration and tracking of pelvic anatomical landmarks (e.g., the pubic tubercles and the anterior/superior iliac spines) prior to and during the surgery, e.g., with optical or electromagnetic trackers placed on the pelvic anatomical landmarks, and (ii) the registration and tracking of femoral anatomical landmarks prior to and during the surgery, e.g., with optical or electromagnetic trackers placed on the femoral anatomical landmarks. However, in practice, one or more of the pelvic anatomical landmarks can be difficult to physically access during the procedure. Furthermore, the optical or electromagnetic trackers must typically be applied to both the pelvic anatomical landmarks and the femoral anatomical landmarks during the surgery itself so as to track the dispositions of these body parts during the surgery. These requirements can add to the cost of the procedure, can lengthen the time required for the procedure, and can be inconvenient for the surgeon (e.g., such as where the surgeon must work around optical trackers protruding into the surgical field). In this respect it should be appreciated that optical trackers, while providing good spatial resolution, suffer from the disadvantage that they must remain directly visible at all times; electromagnetic trackers, while not requiring direct visual access, suffer from the disadvantage of poor spatial resolution.
Accordingly, there is a need for a new and improved computer-guided system for orienting a prosthetic acetabular cup in the acetabulum during total hip replacement surgery, wherein the need for a pre-operative CT scan can be eliminated, and wherein the need to physically access pelvic anatomical landmarks during the procedure can be eliminated.
In addition, there is also a need for a new and improved computer-guided system which can be used to orient prosthetic components other than a prosthetic acetabular cup, e.g., a computer-guided system which can be used to orient a femoral prosthetic component.
Furthermore, there is also a need for a new and improved computer-guided system which can be used to orient prosthetic components for joints other than the hip, e.g., a computer-guided system which can be used to orient prosthetic components in the knee.
And there is a need for a new and improved computer-guided system which can be used to determine and adjust the position of substantially any two interacting components in space.
The present invention provides a new and improved computer-guided system for orienting a prosthetic acetabular cup in the acetabulum during total hip replacement surgery, wherein the need for a pre-operative CT scan can be eliminated, and wherein the need to physically access pelvic anatomical landmarks during the procedure can be eliminated.
In addition, the present invention provides a new and improved computer-guided system which can be used to orient prosthetic components other than a prosthetic acetabular cup, e.g., a computer-guided system which can be used to orient a femoral prosthetic component.
Furthermore, the present invention provides a new and improved computer-guided system which can be used to orient prosthetic components for joints other than the hip, e.g., a computer-guided system which can be used to orient prosthetic components in the knee.
And the present invention provides a new and improved computer-guided system which can be used to determine and adjust the position of substantially any two interacting components in space.
In one preferred form of the invention, there is provided a computer-guided system for orienting an insert during a surgical procedure, the computer-guided system comprising:
In another preferred form of the invention, there is provided a method for orienting an insert during a surgical procedure, the method comprising:
In another preferred form of the invention, there is provided a computer-guided system for orienting an insert during a surgical procedure, the computer-guided system comprising:
In another preferred form of the invention, there is provided a method for orienting an insert during a surgical procedure, the method comprising:
These and other objects and features of the present invention will be more fully disclosed or rendered obvious by the following detailed description of the preferred embodiments of the invention, which is to be considered together with the accompanying drawings wherein like numbers refer to like parts, and further wherein:
In one form of the invention, and looking now at
Computer-guided system 5 is preferably operated as follows.
1. Table IMU 10 is attached to surgical table 15 and calibrated.
2. The patient is positioned on surgical table 15 with the patient lying on their side. Pelvic IMU 20 is attached to pelvis 25 of the patient, e.g., with pins (not shown) extending into the pelvis. Pelvic IMU 20 can be attached to pelvis 25 at substantially any location on the pelvis, but is preferably attached to the pelvis at an “out-of-the-way” location so as to avoid interfering with the surgical process.
3. The patient is then manipulated on surgical table 15 so that an imaginary line 60 connecting the two Anterior Superior Iliac Spine points 65, 70 (i.e., the ASIS-ASIS line) is parallel to the line of gravity and perpendicular to the horizon (i.e., so that the patient is in the “lateral position”). Pelvic IMU 20 is then “zeroed”. Alternatively, the patient could be manipulated so that the ASIS-ASIS line is parallel to the horizon, i.e., so that the patient is in the “supine position”.
4. At this point, surgical table 15 is moved in a known manner (e.g., by moving the table successively in each of the X, Y and Z axes), and the movement of table IMU 10 and pelvic IMU 20 is identified so that the position of pelvis 25 can be determined vis-à-vis surgical table 15. In other words, table IMU 10 is secured to the table and calibrated, pelvic IMU 20 is secured to the pelvis, the pelvis is put in a known position (i.e., with the ASIS-ASIS line set vertical) and pelvic IMU 20 is zeroed, and then the surgical table is moved in a known manner—then, by monitoring the data from pelvic IMU 20 and table IMU 10, the position of the pelvis can be determined relative to the position of the table. Note that this is done using inertial measurement units (table IMU 10 and pelvic IMU 20) and does not require the use of any optical or electromagnetic trackers.
5. The patient is then prepared and draped for total hip arthroplasty, with pelvic IMU 20 being located under the sterile drape. Note that locating pelvic IMU 20 under the sterile drape does not present an issue, since it is an inertial measurement unit and does not require optical tracking.
6. The hip joint is then exposed in the normal surgical manner.
7. Next, and prior to dislocation of the hip joint, the leg length is measured, and the offset of the hip is measured from the center of rotation of the acetabular cup, using any of the various measures well known in the art, e.g., with mechanical guides, with or without sensors, etc.
8. The hip joint is dislocated.
9. Note that any movement of the patient on the surgical table during Steps 5-8 is identified by virtue of movement of pelvic IMU 20 (moved) vis-à-vis table IMU 10 (not moved). In other words, any movement of the anatomy during Steps 5-8 can be identified by comparing the data from pelvic IMU 20 (which may have moved) vis-à-vis table IMU 10 (which has not moved). Thus, even though the anatomy moves during Steps 5-8, the position of the anatomy is still known by virtue of the data from pelvic IMU 20 and table IMU 10.
10. The center of rotation of the hip is then identified by inserting an acetabular sizer/reamer/impactor (inserter) 75 (with insert IMU 30 attached to the handle 40 of the sizer/reamer/impactor (inserter)) into the natural acetabular cup and fixing the sizer/reamer/impactor (inserter) in position. See
11. Next, the surgical table is moved, which causes the patient to be moved, which causes the insert to be moved. More particularly, surgical table 15 is moved relative to the X, Y, Z axes, which movement is identified via table IMU 10. At the same time, the movement of pelvis 25 (induced by movement of surgical table 15) is identified via pelvic IMU 20, and the movement of the acetabular sizer/reamer/impactor (inserter) 75 (also induced by the table movement) is identified by insert IMU 30. Significantly, the kinematic data acquired by table IMU 10, pelvic IMU 20 and insert IMU 30 allows the orientation of the acetabular sizer/reamer/impactor (inserter) to be determined relative to the pelvis, and hence allows pelvic flexion and extension to be determined.
12. The acetabulum is then reamed using acetabular sizer/reamer/impactor (inserter) 75, with insert IMU 30 being used to guide the depth and direction of reaming.
13. Insert 35 (i.e., the prosthetic acetabular cup) is then positioned in the acetabulum using handle 40 of the acetabular sizer/reamer/impactor (inserter)) to manipulate the acetabular cup into position, with insert IMU 30 being used to guide proper positioning of the insert (i.e., the prosthetic acetabular cup) in the acetabulum. See
14. After the insert (i.e., the prosthetic acetabular cup) has been appropriately positioned using computer-guided system 5, handle 40 (with insert IMU 30 attached) is removed.
15. The trial liner is placed in the acetabular shell.
16. Surgery is completed by broaching the femur, doing trial reduction with the broach and head and neck trials, and checking leg length/offset using tools for measurement such as those identified in Step 7, before placing final implants in the patient.
17. The final implants (acetabular liner, femoral stem and femoral head) are placed in the patient.
18. The pelvic IMU 20 is removed from the patient.
19. The surgical wounds are closed and dressings placed.
In the foregoing description, computer-guided system 5 has been described in the context of orienting a prosthetic acetabular cup in the acetabulum during total hip replacement surgery. However, it should be appreciated that computer-guided system 5 may be used to orient another prosthetic component during total hip replacement surgery (e.g., a femoral stem). Or computer-guided system 5 may be used to orient another component during another reconstruction surgery (e.g., a humeral head during proximal humerus reconstruction, etc.).
In another form of the invention, computer-guided system 5 is configured to use ultrasound to identify the position and orientation of the pelvis.
More particularly, in another form of the invention, and looking now at
In essence, with this form of the invention, after table IMU 10 has been calibrated and ultrasound device 80 has identified the two ASIS points of the patient, surgical table 15 is moved in a known manner, and the movement of table IMU 10 and ultrasound IMU 85 is identified so that the position of pelvis 25 can be determined vis-à-vis surgical table 15. Then the center of rotation of the hip is identified by inserting an acetabular sizer/reamer/impactor (inserter) 75 (with insert IMU 30 attached to handle 40 of the sizer/reamer/impactor (inserter)) into the natural acetabular cup of the patient and fixing the sizer/reamer/impactor (inserter) in position at that center of rotation, and then the insert IMU 30 is zeroed. Then surgical table 15 is moved in a known manner, which causes pelvis 25 to move, and acetabular sizer/reamer/impactor (inserter) 75 to move. As this occurs, table IMU 10, ultrasound IMU 85 and insert IMU 30 provide the data necessary to determine the orientation of the acetabular sizer/reamer/impactor (inserter) relative to the pelvis, and hence allows pelvic flexion and tension to be determined. Subsequently, insert 35 is positioned in the acetabulum using handle 40, with surgical table 15 being cycled through its movements as necessary, so as to allow the orientation of the insert (i.e., the acetabular cup) to be determined relative to the pelvis, again using table IMU 10, ultrasound IMU 85 and insert IMU 30, and the location of the insert can be determined using the various measures discussed in Step 7 above.
In still another form of the invention, and looking now at
In essence, with this form of the invention, ultrasound device 80 identifies the two ASIS points of the patient and the position of pelvis 25 vis-à-vis surgical table 15. Then the center of rotation of the hip is identified by inserting an acetabular sizer/reamer/impactor (inserter) 75 (with insert IMU 30 attached to handle 40 of the sizer/reamer/impactor (inserter)) into the natural acetabular cup of the patient and fixing the sizer/reamer/impactor (inserter) in position at that center of rotation, and then the insert IMU 30 is zeroed. Then surgical table 15 is moved in a known manner, which causes pelvis 25 to move, and acetabular sizer/reamer/impactor (inserter) 75 to move. As this occurs, ultrasound IMU 85 and insert IMU 30 provide the data necessary to determine the orientation of the acetabular sizer/reamer/impactor (inserter) relative to the pelvis, and hence allows pelvic flexion and tension to be determined. Subsequently, insert 35 is positioned in the acetabulum using handle 40, with surgical table 15 being cycled through its movements as necessary, so as to allow the orientation of the insert (i.e., the acetabular cup) to be determined relative to the pelvis, again using ultrasound IMU 85 and insert IMU 30, and the location of the insert can be determined using the various measures discussed in Step 7 above.
If desired, computer-guided system 5 may use other sensors in place of the IMUs discussed above (i.e., in place of table IMU 10, pelvic IMU 20, insert IMU 30 and ultrasound IMU 85). These sensors may comprise other position and/or movement and/or motion sensors capable of determining orientation and/or motion, e.g., accelerometers, gyroscopes, magnetometers, tilt sensors and/or combinations of the foregoing.
It should be understood that many additional changes in the details, materials, steps and arrangements of parts, which have been herein described and illustrated in order to explain the nature of the present invention, may be made by those skilled in the art while still remaining within the principles and scope of the invention.
This patent application claims benefit of prior U.S. Provisional Patent Application Ser. No. 61/616,939, filed Mar. 28, 2012 by Robert L. Thornberry for COMPUTER-GUIDED SYSTEM FOR ORIENTING THE ACETABULAR CUP IN THE PELVIS DURING TOTAL HIP REPLACEMENT SURGERY, which patent application is hereby incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
3868103 | Pageot | Feb 1975 | A |
6033415 | Mittelstadt et al. | Mar 2000 | A |
6205411 | DiGioia, III | Mar 2001 | B1 |
6322565 | Garner et al. | Nov 2001 | B1 |
6385475 | Cinquin | May 2002 | B1 |
6607487 | Chang | Aug 2003 | B2 |
6723102 | Johnson et al. | Apr 2004 | B2 |
6877239 | Leitner | Apr 2005 | B2 |
7313430 | Urquhart et al. | Dec 2007 | B2 |
7559931 | Stone | Jul 2009 | B2 |
7780681 | Sarin | Aug 2010 | B2 |
8000926 | Roche | Aug 2011 | B2 |
8057479 | Stone | Nov 2011 | B2 |
8057482 | Stone et al. | Nov 2011 | B2 |
8118815 | van der Walt | Feb 2012 | B2 |
8287522 | Moses et al. | Oct 2012 | B2 |
8336220 | Eaton et al. | Dec 2012 | B2 |
8391954 | Quaid, III | Mar 2013 | B2 |
8400312 | Hotokebuchi | Mar 2013 | B2 |
8494825 | Thornberry | Jul 2013 | B2 |
8786680 | Shiratori | Jul 2014 | B2 |
8888786 | Stone | Nov 2014 | B2 |
8951256 | Burroughs | Feb 2015 | B2 |
8961526 | Burroughs | Feb 2015 | B2 |
20020038307 | Obradovic et al. | Mar 2002 | A1 |
20020099288 | Chang | Jul 2002 | A1 |
20030153829 | Sarin | Aug 2003 | A1 |
20040087852 | Chen | May 2004 | A1 |
20040152970 | Hunter | Aug 2004 | A1 |
20040152972 | Hunter | Aug 2004 | A1 |
20040153079 | Tsougarakis et al. | Aug 2004 | A1 |
20040210233 | Yoon | Oct 2004 | A1 |
20040230199 | Jansen et al. | Nov 2004 | A1 |
20040243148 | Wasielewski | Dec 2004 | A1 |
20050085822 | Thornberry et al. | Apr 2005 | A1 |
20050119639 | McCombs et al. | Jun 2005 | A1 |
20050240275 | Chappuis | Oct 2005 | A1 |
20060074289 | Adler | Apr 2006 | A1 |
20060142656 | Malackowski | Jun 2006 | A1 |
20060142657 | Quaid et al. | Jun 2006 | A1 |
20070211022 | Boillot | Sep 2007 | A1 |
20070260253 | Johnson et al. | Nov 2007 | A1 |
20070276394 | Johnson et al. | Nov 2007 | A1 |
20070287911 | Haid | Dec 2007 | A1 |
20080004633 | Arata et al. | Jan 2008 | A1 |
20080039716 | Tuma | Feb 2008 | A1 |
20080051910 | Kammerzell | Feb 2008 | A1 |
20080058835 | Farritor et al. | Mar 2008 | A1 |
20080269596 | Revie | Oct 2008 | A1 |
20090138019 | Wasielewski | May 2009 | A1 |
20090171370 | Yoon | Jul 2009 | A1 |
20090289806 | Thornberry | Nov 2009 | A1 |
20090306509 | Pedersen | Dec 2009 | A1 |
20090318930 | Stone et al. | Dec 2009 | A1 |
20100064216 | Borja et al. | Mar 2010 | A1 |
20100076505 | Borja | Mar 2010 | A1 |
20100127879 | Hotokebuchi | May 2010 | A1 |
20100137871 | Borja | Jun 2010 | A1 |
20100249657 | Nycz | Sep 2010 | A1 |
20110093086 | Witt | Apr 2011 | A1 |
20110166435 | Lye | Jul 2011 | A1 |
20110190629 | Guenther | Aug 2011 | A1 |
20110190775 | Ure | Aug 2011 | A1 |
20110218458 | Valin | Sep 2011 | A1 |
20110257653 | Hughes | Oct 2011 | A1 |
20110275957 | Bhandari | Nov 2011 | A1 |
20120022406 | Hladio | Jan 2012 | A1 |
20120130279 | Stone | May 2012 | A1 |
20120136402 | Burroughs | May 2012 | A1 |
20120143268 | Burroughs | Jun 2012 | A1 |
20120157887 | Fanson | Jun 2012 | A1 |
20120203140 | Malchau | Aug 2012 | A1 |
20120323247 | Bettenga | Dec 2012 | A1 |
20120327194 | Shiratori | Dec 2012 | A1 |
20130053859 | Penenberg | Feb 2013 | A1 |
20130150863 | Baumgartner | Jun 2013 | A1 |
20130158476 | Olson | Jun 2013 | A1 |
20130231672 | Paradis | Sep 2013 | A1 |
20130261633 | Thornberry | Oct 2013 | A1 |
20140005531 | Taylor | Jan 2014 | A1 |
20140031722 | Li | Jan 2014 | A1 |
20140052149 | van der Walt | Feb 2014 | A1 |
20140114179 | Muller | Apr 2014 | A1 |
20140135616 | Stein | May 2014 | A1 |
20140135773 | Stein | May 2014 | A1 |
20140135791 | Nikou | May 2014 | A1 |
20140142864 | Spears | May 2014 | A1 |
20140303631 | Thornberry | Oct 2014 | A1 |
20140336660 | Gibson | Nov 2014 | A1 |
20140378828 | Penenberg | Dec 2014 | A1 |
20150182350 | Behzadi | Jul 2015 | A1 |
20150182351 | Behzadi | Jul 2015 | A1 |
20160038161 | Gibson | Feb 2016 | A1 |
20160038307 | Bettenga | Feb 2016 | A1 |
Number | Date | Country |
---|---|---|
WO 2011106861 | Sep 2011 | WO |
Entry |
---|
Aesculap Orthopaedics, OrthoPilot, Brochure, 2008. |
Bozic, Kevin J. et al., Epidemiology of Revision Total Hip Arthroplasty in the United States, The Journal of Bone and Joint Surgery, 2009, pp. 128-133, vol. 91-A, No. 1. |
Digioia, Anthony M. et al., An Image Guided Navigation System for Accurate Alignment in Total Hip Replacement Surgery, 1998, Carnegie Mellon University and Shadyside Hospital. |
Ghandi, Rajiv et al., Computer navigation in total hip replacement: a meta-analysis, International Orthopaedics, 2009. |
Mako Surgical Corp., MAKOplasty Defines Confidence in THA Outcomes Robotic Arm Accuracy Combined with Advanced Implant Performance, Brochure, 2012. |
Malik, Aamar et al., Impingement with Total Hip Replacement, The Journal of Bone and Joint Surgery, Aug. 2007, vol. 89-A, No. 8. |
Manzottl, Alfonso et al., Does computer-assisted surgery benefit leg length restoration in total hip replacement? Navigation versus conventional freehand, International Orthopaedics, vol. 35, Issue 1, 2011. |
Medtronic, Inc., StealthStation S7 System, Brochure, 2013. |
Orthoalign, OrthoAlign precise alignment technology, Brochure, 2015. |
Slover, James D., Impact of Hospital Volume on the Economic Value of Computer Navigation for Total Knee Replacement, The Journal of Bone and Joint Surgery, Jul. 2008, vol. 90-A, No. 7. |
Spencer, J. M. F. et al., Computer navigation of the acetabular component A Cadaver Reliability Study, The Journal of Bone and Joint Surgery, Jul. 2008, vol. 88-B, No. 7. |
Stein, David et al., Theory, Design, and Implementation of a Spherical Encoder, Proceedings of the 2001 IEEE International Conference on Robotics & Automation, 2001. |
Angadji et al., Influence of Cup Orientation on the Wear Performance of Metal-on-Metal Hip Replacements, Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, 2009, vol. 223, pp. 449-457. |
Bozic et al., The Epidemiology of Bearing Surface Usage in Total Hip Arthroplasty in the United States, The Journal of Bone and Joint Surgery, 2009, vol. 91-A, No. 7, pp. 1614-1620. |
Digioia III et al., Surgical Navigation for Total Hip Replacement with the Use of HIPNAV, Operative Techniques in Orthopaedics, 2000, vol. 10, No. 1, pp. 3-12. |
Ecker et al., Application of Surgical Navigation to Total Hip Arthroplasty, Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, 2007, vol. 221, pp. 699-712. |
Gofton et al., The Effect of Computer Navigation on Trainee Learning of Surgical Skills, The Journal of Bone and Joint Surgery, 2007, vol. 89-A, No. 12, pp. 2819-2827. |
“iNstride Hip Navigation”, Stryker website, http://www.stryker.com/en-us/products/Orthopaedics/ComputerAssstedSurgery/HipNavigationSurgery/iNstride/index.htm. |
Iorio et al., Orthopedic Surgeon Workforce and Volume Assessment for Total Hip and Knee Replacement in the United States: Preparing for an Epidemic, The Journal of Bone and Joint Surgery, 2008, vol. 90-A, No. 7, pp. 1598-1605. |
Kurtz et al., Future Clinical and Economic Impact of Revision Total Hip and Knee Arthroplasty, The Journal of Bone and Joint Surgery, 2007, vol. 89-A (suppl. 3), pp. 144-151. |
Kurtz et al., Projections of Primary and Revision Hip and Knee Joint Arthroplasty in the United States, The Journal of Bone and Joint Surgery, 2007, vol. 89-A, No. 4, pp. 780-785. |
“Meeting the High Standards of Orthopedic Surgeons”, OrthAlign website, http://www.orthalign.com/products—technology/kneealign.asp. |
Miki et al., Anatomic Hip Range of Motion After Implantation During Total Hip Arthoroplasty as Measured by a Navigation System, The Journal of Arthroplasty, 2007, vol. 22, No. 7, pp. 946-952. |
NaviPro, Kinamed website, http://www.kinamed.com/naviPro.html. |
Noble et al., Computer Simulation: How Can it Help the Surgeon Optimize Implant Position?, Clinical Orthopaedics and Related Research, 2003, No. 417, pp. 242-252. |
Ong et al., Economic Burden of Revision Hip and Knee Arthroplasty in Medicare Enrollees, Clinical Orthopaedics and Related Research, 2006, No. 446, pp. 22-28. |
“ORTHOsoft hip navgation”, Zimmer website, http://www.zimmer.com/medical-professionals/our-science/hip/hip-cas.html#1ORTHOsoft. |
Renkawitz et al., Principles and New Concepts in Computer-Navigated Total Hip Arthroplasty, Orthopäde, 2011, vol. 40, No. 12, pp. 1095-1102. |
Shon et al., Impingement in Total Hip Arthroplasty, The Journal of Arthroplasty, 2005, vol. 20, No. 4, pp. 427-435. |
Thornberry et al., The Combined Use of Simulation and Navigation to Demonstrate Hip Kinematics, The Journal of Bone and Joint Surgery, 2009, vol. 91, pp. 144-152. |
Usrey et al., Does Neck/Liner Impingement Increase Wear of Ultrahigh-Molecular-Weight Polyethylene Liners?, The Journal of Arthroplasty, 2006, vol. 21, No. 6 (Suppl. 2), pp. 65-71. |
“Welcome to the HipSextant” HipSextant website, http://hipsextant.com. |
Wines et al., Computed Tomography Measurement of the Accuracy of Component Version in Total Hip Arthroplasty, The Journal of Arthroplasty, 2006, vol. 21, No. 5, pp. 696-701. |
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20130261633 A1 | Oct 2013 | US |
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61616939 | Mar 2012 | US |