Measuring Patient Value after Total Shoulder Arthroplasty
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design
2.2. Patient Selection, Demographic and Operative Data
2.3. Study Variables
2.4. Clinical Evaluation
2.5. Equation for Patient Value
2.6. Costs
2.7. Statistical Analyses
3. Results
3.1. Clinical Outcomes
3.2. Costs
3.3. Patient Value
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Porter, M.E.; Teisberg, E.O. Redefining Health Care: Creating Value-Based Competition on Results; Press, H.B.R., Ed.; Harvard Business Publishing: Brighton, MA, USA, 2006. [Google Scholar]
- Reilly, C.A.; Doughty, H.P.; Werth, P.M.; Rockwell, C.W.; Sparks, M.B.; Jevsevar, D.S. Creating a Value Dashboard for Orthopaedic Surgical Procedures. J. Bone Joint Surg. Am. 2020, 102, 1849–1856. [Google Scholar] [CrossRef]
- Simovitch, R.; Flurin, P.H.; Wright, T.; Zuckerman, J.D.; Roche, C.P. Quantifying success after total shoulder arthroplasty: The substantial clinical benefit. J. Shoulder Elbow Surg. 2018, 27, 903–911. [Google Scholar] [CrossRef] [PubMed]
- Ladermann, A.; Denard, P.J.; Tirefort, J.; Collin, P.; Nowak, A.; Schwitzguebel, A.J. Subscapularis- and deltoid-sparing vs traditional deltopectoral approach in reverse shoulder arthroplasty: A prospective case-control study. J. Orthop. Surg. Res. 2017, 12, 112. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Ladermann, A.; Lo, E.Y.; Schwitzguebel, A.J.; Yates, E. Subscapularis and deltoid preserving anterior approach for reverse shoulder arthroplasty. Orthop. Traumatol. Surg. Res. 2016, 102, 905–908. [Google Scholar] [CrossRef] [PubMed]
- Richards, R.R.; An, K.N.; Bigliani, L.U.; Friedman, R.J.; Gartsman, G.M.; Gristina, A.G.; Iannotti, J.P.; Mow, V.C.; Sidles, J.A.; Zuckerman, J.D. A standardized method for the assessment of shoulder function. J. Shoulder Elbow Surg. 1994, 3, 347–352. [Google Scholar] [CrossRef]
- Constant, C.R.; Murley, A.H. A clinical method of functional assessment of the shoulder. Clin. Orthop. Relat. Res. 1987, 214, 160–164. [Google Scholar] [CrossRef]
- Gowd, A.K.; Charles, M.D.; Liu, J.N.; Lalehzarian, S.P.; Cabarcas, B.C.; Manderle, B.J.; Nicholson, G.P.; Romeo, A.A.; Verma, N.N. Single Assessment Numeric Evaluation (SANE) is a reliable metric to measure clinically significant improvements following shoulder arthroplasty. J. Shoulder Elbow Surg. 2019, 28, 2238–2246. [Google Scholar] [CrossRef] [PubMed]
- Williams, G.N.; Gangel, T.J.; Arciero, R.A.; Uhorchak, J.M.; Taylor, D.C. Comparison of the Single Assessment Numeric Evaluation method and two shoulder rating scales. Outcomes measures after shoulder surgery. Am. J. Sports Med. 1999, 27, 214–221. [Google Scholar] [CrossRef] [PubMed]
- Cohn, M.R.; Kunze, K.N.; Polce, E.M.; Nemsick, M.; Garrigues, G.E.; Forsythe, B.; Nicholson, G.P.; Cole, B.J.; Verma, N.N. Establishing clinically significant outcome thresholds for the Single Assessment Numeric Evaluation 2 years following total shoulder arthroplasty. J. Shoulder Elbow Surg. 2021, 30, e137–e146. [Google Scholar] [CrossRef]
- Retzky, J.S.; Baker, M.; Hannan, C.V.; Srikumaran, U. Single Assessment Numeric Evaluation scores correlate positively with American Shoulder and Elbow Surgeons scores postoperatively in patients undergoing rotator cuff repair. J. Shoulder Elbow Surg. 2020, 29, 146–149. [Google Scholar] [CrossRef] [Green Version]
- Berglund, D.D.; Law, T.Y.; Rosas, S.; Kurowicki, J.; Giveans, M.R.; Mijic, D.; Levy, J.C. The procedure value index: A new method for quantifying value in shoulder arthroplasty. J. Shoulder Elbow Surg. 2019, 28, 335–340. [Google Scholar] [CrossRef]
- Berglund, D.D.; Mijic, D.; Law, T.Y.; Kurowicki, J.; Rosas, S.; Levy, J.C. Value comparison of humeral component press-fit and cemented techniques in reverse shoulder arthroplasty. J. Shoulder Elbow Surg. 2019, 28, 496–502. [Google Scholar] [CrossRef] [PubMed]
- Menendez, M.E.; Mahendraraj, K.A.; Grubhofer, F.; Muniz, A.R.; Warner, J.J.P.; Jawa, A. Variation in the value of total shoulder arthroplasty. J. Shoulder Elbow Surg. 2021, 30, 1924–1930. [Google Scholar] [CrossRef] [PubMed]
- Aibinder, W.R.; Bartels, D.W.; Sperling, J.W.; Sanchez-Sotelo, J. Mid-term radiological results of a cementless short humeral component in anatomical and reverse shoulder arthroplasty. Bone Joint J. 2019, 101-B, 610–614. [Google Scholar] [CrossRef] [PubMed]
- Cheung, E.V.; Sperling, J.W.; Cofield, R.H. Revision shoulder arthroplasty for glenoid component loosening. J. Shoulder Elbow Surg. 2008, 17, 371–375. [Google Scholar] [CrossRef]
- Izquierdo, R.; Voloshin, I.; Edwards, S.; Freehill, M.Q.; Stanwood, W.; Wiater, J.M.; Watters, W.C., 3rd; Goldberg, M.J.; Keith, M.; Turkelson, C.M.; et al. Treatment of glenohumeral osteoarthritis. J. Am. Acad. Orthop. Surg. 2010, 18, 375–382. [Google Scholar] [CrossRef]
- Polisetty, T.S.; Colley, R.; Levy, J.C. Value Analysis of Anatomic and Reverse Shoulder Arthroplasty for Glenohumeral Osteoarthritis with an Intact Rotator Cuff. J. Bone Joint Surg. Am. 2021, 103, 913–920. [Google Scholar] [CrossRef]
- Fehringer, E.V.; Kopjar, B.; Boorman, R.S.; Churchill, R.S.; Smith, K.L.; Matsen, F.A., 3rd. Characterizing the functional improvement after total shoulder arthroplasty for osteoarthritis. J. Bone Joint Surg. Am. 2002, 84, 1349–1353. [Google Scholar] [CrossRef]
- Friedman, R.J.; Eichinger, J.; Schoch, B.; Wright, T.; Zuckerman, J.; Flurin, P.H.; Bolch, C.; Roche, C. Preoperative parameters that predict postoperative patient-reported outcome measures and range of motion with anatomic and reverse total shoulder arthroplasty. JSES Open Access 2019, 3, 266–272. [Google Scholar] [CrossRef] [Green Version]
- Hatta, T.; Werthel, J.D.; Wagner, E.R.; Itoi, E.; Steinmann, S.P.; Cofield, R.H.; Sperling, J.W. Effect of smoking on complications following primary shoulder arthroplasty. J. Shoulder Elbow Surg. 2017, 26, 1–6. [Google Scholar] [CrossRef]
- Schwartz, A.M.; Farley, K.X.; Boden, S.H.; Wilson, J.M.; Daly, C.A.; Gottschalk, M.B.; Wagner, E.R. The use of tobacco is a modifiable risk factor for poor outcomes and readmissions after shoulder arthroplasty. Bone Joint J. 2020, 102-B, 1549–1554. [Google Scholar] [CrossRef] [PubMed]
- Tramer, J.S.; Khalil, L.S.; Fidai, M.S.; Meldau, J.; Sheena, G.J.; Muh, S.J.; Moutzouros, V.; Makhni, E.C. Mental health and tobacco use are correlated with PROMIS upper extremity and pain interference scores in patients with shoulder pathology. Musculoskelet. Surg. 2020, 1–6. [Google Scholar] [CrossRef] [PubMed]
- Walters, J.D.; George, L.W., 2nd; Walsh, R.N.; Wan, J.Y.; Brolin, T.J.; Azar, F.M.; Throckmorton, T.W. The effect of current and former tobacco use on outcomes after primary reverse total shoulder arthroplasty. J. Shoulder Elbow Surg. 2020, 29, 244–251. [Google Scholar] [CrossRef] [PubMed]
- Kumar, V.; Roche, C.; Overman, S.; Simovitch, R.; Flurin, P.H.; Wright, T.; Zuckerman, J.; Routman, H.; Teredesai, A. Using machine learning to predict clinical outcomes after shoulder arthroplasty with a minimal feature set. J. Shoulder Elbow Surg. 2021, 30, e225–e236. [Google Scholar] [CrossRef]
- Swarup, I.; Henn, C.M.; Nguyen, J.T.; Dines, D.M.; Craig, E.V.; Warren, R.F.; Gulotta, L.V.; Henn, R.F., III. Effect of pre-operative expectations on the outcomes following total shoulder arthroplasty. Bone Joint J. 2017, 99-B, 1190–1196. [Google Scholar] [CrossRef]
- Winegar, A.L.; Jackson, L.W.; Sambare, T.D.; Liu, T.C.; Banks, S.R.; Erlinger, T.P.; Schultz, W.R.; Bozic, K.J. A Surgeon Scorecard Is Associated with Improved Value in Elective Primary Hip and Knee Arthroplasty. J. Bone Joint Surg. Am. 2019, 101, 152–159. [Google Scholar] [CrossRef]
Final Cohort (n = 116 Patients) | ||||
---|---|---|---|---|
n | (%) | |||
Mean | ±SD | Median | (Range) | |
Preoperative data | ||||
Age | 77.8 | ±7.6 | 78.0 | (57.0–94.0) |
Body mass index | 27.4 | ±4.8 | 26.7 | (17.6–42.8) |
Male gender | 30 | (25.9%) | ||
Principal diagnosis | ||||
Rotator cuff tear arthropathy | 62 | (53.4%) | ||
Primary glenohumeral osteoarthrosis | 39 | (33.6%) | ||
Secondary glenohumeral osteoarthrosis | 7 | (6.0%) | ||
Acute trauma | 4 | (3.4%) | ||
Osteonecrosis | 1 | (0.9%) | ||
Others | 3 | (2.6%) | ||
Dominant arm affected | 77 | (66.4%) | ||
Intraoperative data | ||||
Surgical procedure | ||||
Anatomic Total Shoulder Arthroplasty (aTSA) | 24 | (20.7%) | ||
Reverse Total Shoulder Arthroplasty (rTSA) | 92 | (79.3%) | ||
Surgical approach | ||||
Deltopectoral | 62 | (53.4%) | ||
Subscapularis and deltoid sparing | 47 | (40.5%) | ||
Anterior Deltoid Detachment with Lateral Split | 3 | (2.6%) | ||
Subscapularis sparing | 3 | (2.6%) | ||
Transdeltoid | 1 | (0.9%) | ||
Use of patient specific instrumentation | ||||
Software (planification) | 116 | (100.0%) | ||
Hardware (guide) | 13 | (11.2%) | ||
Cementation | ||||
Humeral side | 7 | (6.0%) | ||
Glenoid side | 23 | (19.8%) |
Final Cohort (n = 116 Patients) | ||
---|---|---|
n | (%) | |
Intraoperative complications | 5 | (4.3%) |
Unplanned humeral fractures | 5 | (4.3%) |
Postoperative complications | 17 | (14.7%) |
Acromial fracture | 7 | (6.0%) |
Component loosening | 2 | (1.7%) |
Deltoid Muscle Dysfunction | 2 | (1.7%) |
Instability-Dislocation | 2 | (1.7%) |
Component dissociation | 1 | (0.9%) |
Instability-Subluxation | 1 | (0.9%) |
Rotator Cuff Tear | 1 | (0.9%) |
Nerve Palsy (other than axillary) | 1 | (0.9%) |
Implant revisions | 3 | (2.6%) |
Preoperative Status | Postoperative Status (Last Follow-Up) | Absolute Improvement | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Mean | ±SD | Median | (Range) | Mean | ±SD | Median | (Range) | Mean | ±SD | Median | (Range) | |
SANE score | 37.6 | ±22.2 | 30.0 | (0.0–90.0) | 82.4 | ±16.9 | 90.0 | (20.0–100.0) | 45.1 | ±25.6 | 45.0 | (0.0–100.0) |
Constant score | 25.7 | ±15.0 | 24.0 | (0.0–62.4) | 70.8 | ±16.4 | 74.2 | (24.0–99.2) | 45.2 | ±20.2 | 47.1 | (0.0–83.0) |
Strength | 2.4 | ±4.3 | 0.0 | (0.0–17.6) | 11.5 | ±6.2 | 11.0 | (0.0–25.0) | 9.7 | ±6.4 | 9.9 | (0.0–25.0) |
Mobility | 12.8 | ±10.7 | 10.0 | (0.0–40.0) | 31.5 | ±7.3 | 32.0 | (8.0–40.0) | 18.6 | ±11.6 | 19.5 | (0.0–40.0) |
Pain | 4.8 | ±3.2 | 4.0 | (0.0–15.0) | 12.0 | ±3.8 | 14.0 | (0.0–15.0) | 7.3 | ±4.3 | 7.0 | (0.0–15.0) |
Activity | 6.2 | ±3.5 | 6.0 | (0.0–15.0) | 16.1 | ±4.3 | 18.0 | (0.0–20.0) | 10.0 | ±5.3 | 10.0 | (0.0–20.0) |
ASES score | 32.6 | ±16.2 | 32.5 | (0.0–82.0) | 81.1 | ±19.8 | 87.0 | (13.0–100.0) | 48.2 | ±23.8 | 50.0 | (0.0–100.0) |
Pain | 18.5 | ±11.4 | 15.0 | (0.0–50.0) | 42.6 | ±10.1 | 45.0 | (10.0–50.0) | 24.5 | ±14.4 | 25.0 | (0.0–50.0) |
Activity | 14.1 | ±8.6 | 13.0 | (0.0–42.0) | 38.4 | ±11.9 | 43.0 | (3.0–50.0) | 24.4 | ±12.8 | 26.5 | (0.0–50.0) |
VAS Pain * | 64 | ±22 | 70 | (0–100) | 15 | ±20 | 10 | (0–80) | 49 | ±29 | 50 | (0–100) |
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Lädermann, A.; Eurin, R.; Alibert, A.; Bensouda, M.; Bothorel, H. Measuring Patient Value after Total Shoulder Arthroplasty. J. Clin. Med. 2021, 10, 5700. https://doi.org/10.3390/jcm10235700
Lädermann A, Eurin R, Alibert A, Bensouda M, Bothorel H. Measuring Patient Value after Total Shoulder Arthroplasty. Journal of Clinical Medicine. 2021; 10(23):5700. https://doi.org/10.3390/jcm10235700
Chicago/Turabian StyleLädermann, Alexandre, Rodolphe Eurin, Axelle Alibert, Mehdi Bensouda, and Hugo Bothorel. 2021. "Measuring Patient Value after Total Shoulder Arthroplasty" Journal of Clinical Medicine 10, no. 23: 5700. https://doi.org/10.3390/jcm10235700