Gait Pathology in Subjects with Patellofemoral Instability: A Systematic Review
Abstract
:1. Introduction
2. Materials and Methods
2.1. Search Strategies
2.2. Eligibility Criteria
2.3. Selection of Studies and Data Synthesis
2.4. Quality Assessment
3. Results
3.1. Search Results
3.2. Methodological Quality
3.3. Study Characteristics
3.4. Gait Parameters
3.4.1. Spatio-Temporal Parameters
3.4.2. Joint Characteristics
Hip
Knee
Ankle
4. Discussion
Limitations
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Melvin, S.J.; Mehta, S. Patellar Fractures in Adults. J. Am. Acad. Orthop. Surg. 2011, 19, 198–207. [Google Scholar] [CrossRef] [PubMed]
- Steinmetz, S.; Brügger, A.; Chauveau, J.; Chevalley, F.; Borens, O.; Thein, E. Practical guidelines for the treatment of patellar fractures in adults. Swiss Med. Wkly. 2020, 150, w20165. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Post, W.R.; Fithian, D.C. Patellofemoral Instability: A Consensus Statement from the AOSSM/PFF Patellofemoral Instability Workshop. Orthop. J. Sports Med. 2018, 6, 2325967117750352. [Google Scholar] [CrossRef] [PubMed]
- Hurley, C.R.K.; Rush, M.J.K. Patellar instability in children and adolescents. Curr. Orthop. Pract. 2015, 26, 458–465. [Google Scholar] [CrossRef]
- Höhne, S.; Gerlach, K.; Irlenbusch, L.; Schulz, M.; Kunze, C.; Finke, R. Finke, Patellaluxation bei Kindern und Jugendlichen—136 Ereignisse bei 88 Patienten und Literaturübersicht. Z. Orthop. Unf. 2017, 155, 169–176. [Google Scholar] [CrossRef]
- Parikh, S.N.; Lykissas, M.G.; Gkiatas, I. Predicting Risk of Recurrent Patellar Dislocation. Curr. Rev. Musculoskelet. Med. 2018, 11, 253–260. [Google Scholar] [CrossRef]
- Alaia, M.J.; Cohn, R.M.; Strauss, E.J. Patellar instability. Bull. Hosp. Jt. Dis. 2013, 72, 6–17. [Google Scholar]
- Camp, C.L.; Heidenreich, M.; Dahm, D.L.; Stuart, M.J.; Levy, B.A.; Krych, A.J. Individualizing the Tibial Tubercle-Trochlear Groove Distance: Patellar Instability Ratios That Predict Recurrent Instability. Am. J. Sports Med. 2015, 44, 393–399. [Google Scholar] [CrossRef]
- Frosch, S.; Balcarek, P.; Walde, T.; Schüttrumpf, J.; Wachowski, M.; Ferleman, K.-G.; Stürmer, K.; Frosch, K.-H. Die Therapie der Patellaluxation: Eine systematische Literaturanalyse. Z. Orthop. Unf. 2011, 149, 630–645. [Google Scholar] [CrossRef]
- Sanders, T.L.; Pareek, A.; Johnson, N.R.; Stuart, M.J.; Dahm, D.L.; Krych, A.J. Patellofemoral Arthritis After Lateral Patellar Dislocation: A Matched Population-Based Analysis. Am. J. Sports Med. 2016, 45, 1012–1017. [Google Scholar] [CrossRef]
- Van Middelkoop, M.; Bennell, K.L.; Callaghan, M.; Collins, N.J.; Conaghan, P.G.; Crossley, K.M.; Eijkenboom, J.J.; van der Heijden, R.A.; Hinman, R.S.; Hunter, D.J.; et al. International patellofemoral osteoarthritis consortium: Consensus statement on the diagnosis, burden, outcome measures, prognosis, risk factors and treatment. Semin. Arthritis Rheum. 2017, 47, 666–675. [Google Scholar] [CrossRef] [Green Version]
- Duthon, V. Acute traumatic patellar dislocation. Orthop. Traumatol. Surg. Res. 2015, 101, S59–S67. [Google Scholar] [CrossRef]
- Hasler, C.C.; Studer, D. Patella instability in children and adolescents. EFORT Open Rev. 2016, 1, 160–166. [Google Scholar] [CrossRef]
- Kay, R.M.; Dennis, S.; Rethlefsen, S.; Reynolds, R.A.K.; Skaggs, D.L.; Tolo, V.T. The Effect of Preoperative Gait Analysis on Orthopaedic Decision Making. Clin. Orthop. Relat. Res. 2000, 372, 217–222. [Google Scholar] [CrossRef] [Green Version]
- Lofterød, B.; Terjesen, T.; Skaaret, I.; Huse, A.-B.; Jahnsen, R. Preoperative gait analysis has a substantial effect on orthopedic decision making in children with cerebral palsy: Comparison between clinical evaluation and gait analysis in 60 patients. Acta Orthop. 2007, 78, 74–80. [Google Scholar] [CrossRef]
- Cook, R.E.; Schneider, I.; Hazlewood, M.E.; Hillman, S.; Robb, J.E. Gait Analysis Alters Decision-Making in Cerebral Palsy. J. Pediatr. Orthop. 2003, 23, 292–295. [Google Scholar] [CrossRef]
- Dewan, V.; Webb, M.; Prakash, D.; Malik, A.; Gella, S.; Kipps, C. When does the patella dislocate? A systematic review of biomechanical & kinematic studies. J. Orthop. 2019, 20, 70–77. [Google Scholar] [CrossRef]
- Smith, T.O.; McNamara, I.; Donell, S.T. The contemporary management of anterior knee pain and patellofemoral instability. Knee 2013, 20, S3–S15. [Google Scholar] [CrossRef]
- Barton, C.J.; Levinger, P.; Menz, H.B.; Webster, K.E. Kinematic gait characteristics associated with patellofemoral pain syndrome: A systematic review. Gait Posture 2009, 30, 405–416. [Google Scholar] [CrossRef]
- Arazpour, M.; Bahramian, F.; Aboutorabi, A.; Nourbakhsh, S.T.; Alidousti, A.; Aslani, H. The Effect of Patellofemoral Pain Syndrome on Gait Parameters: A Literature Review. Arch. Bone Jt. Surg. 2016, 4, 298–306. [Google Scholar] [CrossRef]
- Chesworth, B.M.; Culham, E.G.; Tata, G.E.; Peat, M. Validation of Outcome Measures in Patients with Patellofemoral Syndrome. J. Orthop. Sports Phys. Ther. 1989, 10, 302–308. [Google Scholar] [CrossRef]
- Nadeau, S.; Gravel, D.; Hébert, L.J.; Arsenault, A.; Lepage, Y. Gait study of patients with patellofemoral pain syndrome. Gait Posture 1997, 5, 21–27. [Google Scholar] [CrossRef]
- Paoloni, M.; Mangone, M.; Fratocchi, G.; Murgia, M.; Saraceni, V.M.; Santilli, V. Kinematic and kinetic features of normal level walking in patellofemoral pain syndrome: More than a sagittal plane alteration. J. Biomech. 2010, 43, 1794–1798. [Google Scholar] [CrossRef]
- Camathias, C.; Ammann, E.; Meier, R.L.; Rutz, E.; Vavken, P.; Studer, K. Recurrent patellar dislocations in adolescents result in decreased knee flexion during the entire gait cycle. Knee Surg. Sports Traumatol. Arthrosc. 2020, 28, 2053–2066. [Google Scholar] [CrossRef]
- Lucas, K.C.H.; Jacobs, C.; Lattermann, C.; Noehren, B. Gait deviations and muscle strength deficits in subjects with patellar instability. Knee 2020, 27, 1285–1290. [Google Scholar] [CrossRef]
- Schranz, C.; Belohlavek, T.; Sperl, M.; Kraus, T.; Svehlik, M. Does femoral anteversion and internally rotated gait correlate in subjects with patellofemoral instability? Clin. Biomech. 2021, 84, 105333. [Google Scholar] [CrossRef]
- Sowiński, T.; Syczewska, M.; Kwiatkowski, K.; Kalinowska, M. Zmiany stereotypu chodu chorych na nawracajace boczne zwichniecie rzepki po osteotomii guzowatości kości piszczelowej zmodyfikowanym sposobem Elmsllie-Trillata. Pol. Merkur. Lek. Organ Pol. Tow. Lek. 2010, 29, 30–32. [Google Scholar]
- Ammann, E.; Meier, R.L.; Rutz, E.; Vavken, P.; Studer, K.; Camathias, C. Trochleoplasty improves knee flexion angles and quadriceps function during gait only if performed bilaterally. Knee Surg. Sports Traumatol. Arthrosc. 2020, 28, 2067–2076. [Google Scholar] [CrossRef]
- Clark, D.A.; Simpson, D.L.; Eldridge, J.; Colborne, G.R.; Information, P.E.K.F.C. Patellar instability and quadriceps avoidance affect walking knee moments. Knee 2015, 23, 78–84. [Google Scholar] [CrossRef]
- Richardson, W.S.; Wilson, M.C.; Nishikawa, J.; Hayward, R.S. The well-built clinical question: A key to evidence-based decisions. ACP J. Club 1995, 123, A12–A13. [Google Scholar] [CrossRef]
- Page, M.J.; McKenzie, J.E.; Bossuyt, P.M.; Boutron, I.; Hoffmann, T.C.; Mulrow, C.D.; Shamseer, L.; Tetzlaff, J.M.; Akl, E.A.; Brennan, S.E.; et al. The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ 2021, 372, n71. [Google Scholar] [CrossRef] [PubMed]
- Vandenbroucke, J.P.; von Elm, E.; Altman, D.G.; Gøtzsche, P.C.; Mulrow, C.D.; Pocock, S.J.; Poole, C.; Schlesselman, J.J.; Egger, M.; Strobe Initiative. Strengthening the Reporting of Observational Studies in Epidemiology (STROBE): Explanation and Elaboration. PLoS Med. 2007, 4, e297. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Von Elm, E.; Altman, D.G.; Egger, M.; Pocock, S.J.; Gøtzsche, P.C.; Vandenbroucke, J.P. The Strengthening the Reporting of Observational Studies in Epidemiology (STROBE) statement: Guidelines for reporting observational studies. J. Clin. Epidemiol. JCE Off. J. Int. Clin. Epidemiol. Netw. 2008, 61, 344–350. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Schranz, C.; Sperl, M.; Kraus, T.; Guggenberger, B.; Kruse, A.; Habersack, A.; Svehlik, M. Different Gait Pattern in Adolescence with Patellofemoral Instability; Medical University of Graz: Graz, Austria, 2021; to be submitted. [Google Scholar]
- Berchuck, M.; Andriacchi, T.P.; Bach, B.R.; Reider, B. Gait adaptations by patients who have a deficient anterior cruciate ligament. J. Bone Jt. Surg. 1990, 72, 871–877. [Google Scholar] [CrossRef]
- Hart, J.M.; Ko, J.-W.K.; Konold, T.; Pietrosimione, B. Sagittal plane knee joint moments following anterior cruciate ligament injury and reconstruction: A systematic review. Clin. Biomech. 2010, 25, 277–283. [Google Scholar] [CrossRef]
- Hurd, W.J.; Snyder-Mackler, L. Knee instability after acute ACL rupture affects movement patterns during the mid-stance phase of gait. J. Orthop. Res. 2007, 25, 1369–1377. [Google Scholar] [CrossRef] [Green Version]
- Knoll, Z.; Kiss, R.M. Gait patterns before and after anterior cruciate ligament reconstruction. Knee Surg. Sports Traumatol. Arthrosc. 2003, 12, 7–14. [Google Scholar] [CrossRef]
- Rudolph, K.S.; E Eastlack, M.; Axe, M.J.; Snyder-Mackler, L. 1998 Basmajian Student Award Paper: Movement patterns after anterior cruciate ligament injury: A comparison of patients who compensate well for the injury and those who require operative stabilization. J. Electromyogr. Kinesiol. 1998, 8, 349–362. [Google Scholar] [CrossRef]
- Werner, S. Anterior knee pain: An update of physical therapy. Knee Surg. Sports Traumatol. Arthrosc. 2014, 22, 2286–2294. [Google Scholar] [CrossRef]
- Wexler, G.; Hurwitz, D.E.; Bush-Joseph, C.A.; Andriacchi, T.P.; Bach, B.R. Functional Gait Adaptations in Patients with Anterior Cruciate Ligament Deficiency Over Time. Clin. Orthop. Relat. Res. 1998, 348, 166–175. [Google Scholar] [CrossRef] [Green Version]
- Christensen, T.C.; Sanders, T.L.; Pareek, A.; Mohan, R.; Dahm, D.L.; Krych, A.J. Risk Factors and Time to Recurrent Ipsilateral and Contralateral Patellar Dislocations. Am. J. Sports Med. 2017, 45, 2105–2110. [Google Scholar] [CrossRef]
- Jibri, Z.; Jamieson, P.; Rakhra, K.S.; Sampaio, M.L.; Dervin, G. Patellar maltracking: An update on the diagnosis and treatment strategies. Insights Imaging 2019, 10, 65. [Google Scholar] [CrossRef] [Green Version]
- Fukuchi, C.; Fukuchi, R.K.; Duarte, M. Effects of walking speed on gait biomechanics in healthy participants: A systematic review and meta-analysis. Syst. Rev. 2019, 8, 153. [Google Scholar] [CrossRef] [Green Version]
Population | Intervention | Comparison | Outcome |
---|---|---|---|
Individuals with patellofemoral instability | No | Individuals with no history of patellofemoral instability | - Spatio-temporal parameters (step length, stride length, cadence, gait velocity, etc.) - Kinematic parameters (sagittal, transverse, and frontal plane angles of hip, knee, and ankle) - Kinetic parameters (ground reaction forces, joint moments of hip, knee, and ankle) |
Inclusion Criteria | Exclusion Criteria |
---|---|
|
|
Sowiński et al. [27] | Schranz et al. [26] | Lucas et al. [25] | Clark et al. [29] | Camathias et al. [24] | Schranz et al. [34] | Ammann et al. [28] | |
---|---|---|---|---|---|---|---|
Title/abstract | 1 | 1 | 1 | 1 | 1 | 1 | 1 |
Introduction | 1/1 | 1/1 | 1/1 | 1/1 | 1/1 | 1/1 | 1/1 |
Methods | 0/0/1/1/1/ 0/0/1/1 | 1/1/1/1/1/ 1/0/1/1 | 0/1/1/1/1/ 1/0/1/1 | 0/1/1/1/1/ 1/0/1/1 | 1/1/1/1/1/ 1/0/1/1 | 1/1/1/1/1/ 0/1/1/1 | 1/1/1/1/1/ 1/1/1/1 |
Results | 0/0/1/1/0 | 1/1/1/1/0 | 0/1/1/1/0 | 1/1/1/1/1 | 1/1/1/1/1 | 1/1/1/1/1 | 1/1/1/1/1 |
Discussion | 1/0/1/0 | 1/1/1/1 | 1/1/1/1 | 1/1/1/1 | 1/1/1/1 | 1/1/1/1 | 1/1/1/1 |
Other information | 1 | 0 | 1 | 1 | 0 | 0 | 1 |
Total score | 13/22 | 19/22 | 18/22 | 20/22 | 20/22 | 20/22 | 22/22 |
Authors | Participants | Parameters | Results (Compared to TD or Control) | ||
---|---|---|---|---|---|
Spatio-Temporal | Kinematic | Kinetic | |||
Sowiński et al. [27] | 6 subjects aged 17 to 29 years (4 males/2 females) with unilateral recurrent lateral patella luxation | x | x | - Gait speed ↓ - Step frequency ↓ - Knee extension ↑ (hyperextension) | |
Schranz et al. [26] | 30 adolescents (2 males/28 females) with recurrent patellar instability (minimum three patella dislocations) aged 12 to 18 years | x | x | - Transverse hip angle: external rotation ↓* - Transverse knee angle: internal rotation ↑ * - Maximum sagittal knee angle during stance and swing phase: ↓ * - Frontal knee angle: valgus ↑ * - Transverse ankle angle: internal rotation ↑ * - Internal frontal hip abduction moment ↑ * - Internal frontal knee abduction moment ↑ * | |
Lucas et al. [25] | 32 subjects (16 PI, 16 controls, 3 males/13 females in each group, mean age 21.1 years) | x | x | - Peak knee adduction angle ↓ - Valgus position ↑ - Internal peak hip abduction moment ↓ | |
Clark et al. [29] | 13 subjects with PFI (6 males/7 females, mean age 25.9 years) and 8 control subjects (5 males/3 females, mean age 24.8 years) | x | x | - Quadriceps avoidance gait (only slightly flexed knee during entire gait cycle (avoiding extension)) - Internal knee flexor moment ↑ | |
Camathias et al. [24] | 67 patients (88 knees) with recurrent patellar dislocation (25 males/42 females, mean age 14.8 years) and 27 healthy individuals as controls (54 knees) (13 males/14 females, mean age 14.9 years) | x | x | x | - Gait speed, stride length, duration of midstance phase ↓ - Loading response and time for double support ↑ - Hip flexion during entire gait cycle ↓ - Knee flexion during entire gait cycle ↓ - Ankle plantar flexion during initial contact and loading response ↑ - Ankle dorsal extension during initial contact andterminal midstance phase ↓ - Hip flexion moment from initial contact to terminal midstance phase ↓ - Sagittal internal knee moment during initial midstance phase ↓ - Ankle plantar-flexion moment during initial contact and loading response ↑ |
Schranz et al. [34] | 42 patients (5 males/37 females, from 12 to 18 years) with recurrent patellar dislocation (at least 3 dislocations); 52 legs Divided into three groups based on their sagittal knee moment: - Patella unloading group (PUG) (19) - Patella overloading group (POG) (12) - Patella norm-loading group (PNG) (21) | x | x | All three groups: - External tibia rotation ↑ PUG: - Knee flexion and internal extension moment during stance phase ↓ - No positive sagittal internal knee extensor moment during weight acceptance phase POG: - Knee flexion and internal extension moment during stance phase ↑ PNG: - No adaption of gait pattern | |
Ammann et al. [28] | 6 patients with bilateral patellar dislocation (6 females, mean age 14.6 years) and 14 patients with unilateral patellar dislocation (1 male/13 females, mean age 14.9 years). Control group of 27 subjects (14 males/13 females, mean age 14.8 years) | x | x | - Knee flexion during entire gait cycle ↓ * - Internal knee extensor moment during stance phase ↓ * | |
Only knee | Only knee |
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations. |
© 2022 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Habersack, A.; Kraus, T.; Kruse, A.; Regvar, K.; Maier, M.; Svehlik, M. Gait Pathology in Subjects with Patellofemoral Instability: A Systematic Review. Int. J. Environ. Res. Public Health 2022, 19, 10491. https://doi.org/10.3390/ijerph191710491
Habersack A, Kraus T, Kruse A, Regvar K, Maier M, Svehlik M. Gait Pathology in Subjects with Patellofemoral Instability: A Systematic Review. International Journal of Environmental Research and Public Health. 2022; 19(17):10491. https://doi.org/10.3390/ijerph191710491
Chicago/Turabian StyleHabersack, Andreas, Tanja Kraus, Annika Kruse, Katharina Regvar, Michael Maier, and Martin Svehlik. 2022. "Gait Pathology in Subjects with Patellofemoral Instability: A Systematic Review" International Journal of Environmental Research and Public Health 19, no. 17: 10491. https://doi.org/10.3390/ijerph191710491
APA StyleHabersack, A., Kraus, T., Kruse, A., Regvar, K., Maier, M., & Svehlik, M. (2022). Gait Pathology in Subjects with Patellofemoral Instability: A Systematic Review. International Journal of Environmental Research and Public Health, 19(17), 10491. https://doi.org/10.3390/ijerph191710491