Reconstruction of medial patellofemoral ligament with adductor magnus tendon for recurrent patellar dislocation in children: a retrospective comparative cohort study.
Adductor magnus tendon
Children
Medial patellofemoral ligament
PEEK suture anchors
Recurrent patellar dislocation
Journal
Journal of orthopaedic surgery and research
ISSN: 1749-799X
Titre abrégé: J Orthop Surg Res
Pays: England
ID NLM: 101265112
Informations de publication
Date de publication:
27 Sep 2023
27 Sep 2023
Historique:
received:
26
07
2023
accepted:
19
09
2023
medline:
22
11
2023
pubmed:
28
9
2023
entrez:
27
9
2023
Statut:
epublish
Résumé
The purpose of current retrospective study was to explore the outcomes of using the adductor magnus tendon to reconstruct the medial patellofemoral ligament in the treatment of recurrent patellar dislocation in children. Thirty-two children with recurrent patellar dislocation were selected. Sixteen cases in the conservative group, seven males and nine females, with an average age of 11.81 ± 1.28 years; sixteen cases in the surgical group, eight males and eight females, with an average age of 11.56 ± 1.15 years. All patients had no surgery history. The IS index (> 1.2), Q angle (> 20°) and tibial tubercle-femoral trochlear groove (TT-TG) distance (> 20 mm) were measured by X-ray and MRI. The conservative group was treated with closed reduction and a brace, and the surgical group received surgical treatment. Two years after surgery, congruence angle (CA) (- 6° to 6°) and lateral patellofemoral angle (LPFA) (7.7°-18.7°) were measured by X-ray image and all children were evaluated based on Kujala and Lysholm scores. The re-dislocation rate was recorded. Analysis was performed by t test and chi-square with the statistical SPSS software. P < 0.05 was considered a statistically significant difference. Furthermore, we measured the length (mm) of the adductor tendon and MPFL in three knee cadaveric specimens, and also observed the positional relationship between the two structures. There were no significant differences in sex, age, injury site between groups (P > 0.05). Patients in the two groups were followed up for 2 years in average. Among the 16 cases in the conservative group, 7 cases (43.75%) had recurrence of patellar dislocation, while none of recurrence in the surgical group (P < 0.05). The Lysholm score of the surgical group (94.63 ± 8.99) was significantly better than that of the conservative group (79.31 ± 18.90), and the Kujala score of the surgery group (95.25 ± 10.32) was also significantly better than that of the conservative group (77.06° ± 14.34°) (P < 0.05). The CA and LPFA of the two groups of patients after treatment were significantly recovered. The CA (- 5.81° ± 7.90°) in the surgical group was significantly better than that in the conservative group (20.94° ± 8.21°), and the LPFA (6.44° ± 3.22°) was also significantly better than that in the conservative group (- 9.18 ± 11.08), and the difference is statistically significant (P < 0.05). We found it through autopsy that adductor magnus tendon was 124.33 ± 1.53 mm long, MPFL was 48.67 ± 2.08 mm, and the femoral insertion of the adductor magnus tendon was adjacent to the MPFL femoral insertion. Reconstruction of Medial patellofemoral ligament with the adductor magnus tendon, fixing with PEEK suture anchors on the patellar side, can achieve satisfactory results in the treatment of children with recurrent patellar dislocation. Compared with conservative treatment, the rate of recurrence is lower and the stability of the patella is better.
Sections du résumé
BACKGROUND
BACKGROUND
The purpose of current retrospective study was to explore the outcomes of using the adductor magnus tendon to reconstruct the medial patellofemoral ligament in the treatment of recurrent patellar dislocation in children.
METHOD
METHODS
Thirty-two children with recurrent patellar dislocation were selected. Sixteen cases in the conservative group, seven males and nine females, with an average age of 11.81 ± 1.28 years; sixteen cases in the surgical group, eight males and eight females, with an average age of 11.56 ± 1.15 years. All patients had no surgery history. The IS index (> 1.2), Q angle (> 20°) and tibial tubercle-femoral trochlear groove (TT-TG) distance (> 20 mm) were measured by X-ray and MRI. The conservative group was treated with closed reduction and a brace, and the surgical group received surgical treatment. Two years after surgery, congruence angle (CA) (- 6° to 6°) and lateral patellofemoral angle (LPFA) (7.7°-18.7°) were measured by X-ray image and all children were evaluated based on Kujala and Lysholm scores. The re-dislocation rate was recorded. Analysis was performed by t test and chi-square with the statistical SPSS software. P < 0.05 was considered a statistically significant difference. Furthermore, we measured the length (mm) of the adductor tendon and MPFL in three knee cadaveric specimens, and also observed the positional relationship between the two structures.
RESULT
RESULTS
There were no significant differences in sex, age, injury site between groups (P > 0.05). Patients in the two groups were followed up for 2 years in average. Among the 16 cases in the conservative group, 7 cases (43.75%) had recurrence of patellar dislocation, while none of recurrence in the surgical group (P < 0.05). The Lysholm score of the surgical group (94.63 ± 8.99) was significantly better than that of the conservative group (79.31 ± 18.90), and the Kujala score of the surgery group (95.25 ± 10.32) was also significantly better than that of the conservative group (77.06° ± 14.34°) (P < 0.05). The CA and LPFA of the two groups of patients after treatment were significantly recovered. The CA (- 5.81° ± 7.90°) in the surgical group was significantly better than that in the conservative group (20.94° ± 8.21°), and the LPFA (6.44° ± 3.22°) was also significantly better than that in the conservative group (- 9.18 ± 11.08), and the difference is statistically significant (P < 0.05). We found it through autopsy that adductor magnus tendon was 124.33 ± 1.53 mm long, MPFL was 48.67 ± 2.08 mm, and the femoral insertion of the adductor magnus tendon was adjacent to the MPFL femoral insertion.
CONCLUSION
CONCLUSIONS
Reconstruction of Medial patellofemoral ligament with the adductor magnus tendon, fixing with PEEK suture anchors on the patellar side, can achieve satisfactory results in the treatment of children with recurrent patellar dislocation. Compared with conservative treatment, the rate of recurrence is lower and the stability of the patella is better.
Identifiants
pubmed: 37759293
doi: 10.1186/s13018-023-04221-6
pii: 10.1186/s13018-023-04221-6
pmc: PMC10523678
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
733Subventions
Organisme : the Hubei Provincial health and health commission funded projects
ID : WJ2021M052
Organisme : the Open Project of Hubei Key Laboratory of Wudang Local Chinese Medicine Research (Hubei University of Medicine)
ID : WDCM2020003
Informations de copyright
© 2023. The Author(s).
Références
Knee Surg Sports Traumatol Arthrosc. 2018 Apr;26(4):1037-1043
pubmed: 28299386
J Pediatr Orthop. 2013 Jul-Aug;33(5):511-8
pubmed: 23752148
Orthop Clin North Am. 2020 Oct;51(4):481-491
pubmed: 32950217
Knee Surg Sports Traumatol Arthrosc. 2021 Jan;29(1):162-169
pubmed: 32055881
Am J Sports Med. 2021 Dec;49(14):3859-3866
pubmed: 34694139
Clin Orthop Relat Res. 1993 Dec;(297):12-6
pubmed: 8242919
Acta Chir Orthop Traumatol Cech. 2010;77(6):470-8
pubmed: 21223826
Sports Med Arthrosc Rev. 2017 Jun;25(2):100-104
pubmed: 28459753
Am J Sports Med. 2013 May;41(5):1013-21
pubmed: 23524153
Curr Rev Musculoskelet Med. 2018 Jun;11(2):209-220
pubmed: 29679209
Knee. 2021 Dec;33:252-259
pubmed: 34739956
Biomed Res Int. 2015;2015:456858
pubmed: 25785271
J Pediatr Orthop. 2019 Nov/Dec;39(10):e755-e760
pubmed: 30688843
Arthroscopy. 2002 Jan;18(1):E2
pubmed: 11774155
Knee. 2017 Dec;24(6):1282-1288
pubmed: 28867290
Am J Sports Med. 2016 Nov;44(11):2833-2837
pubmed: 27474384
Curr Rev Musculoskelet Med. 2018 Jun;11(2):253-260
pubmed: 29736871
Am J Sports Med. 2021 Jun;49(7):1827-1838
pubmed: 33960859
J Bone Joint Surg Am. 2016 Mar 2;98(5):417-27
pubmed: 26935465
J Clin Orthop Trauma. 2017 Nov;8(Suppl 2):S82-S86
pubmed: 29339848
J Orthop Res. 2003 Sep;21(5):780-6
pubmed: 12919863
Knee Surg Sports Traumatol Arthrosc. 2016 Mar;24(3):760-7
pubmed: 26704809
Orthop Clin North Am. 2015 Jan;46(1):159-69
pubmed: 25435045
Am J Sports Med. 2016 Aug;44(8):2076-80
pubmed: 27179054
Am J Orthop (Belle Mead NJ). 2018 Mar;47(3):
pubmed: 29611848
Eur J Orthop Surg Traumatol. 2020 Jul;30(5):763-770
pubmed: 32008097
Curr Rev Musculoskelet Med. 2018 Jun;11(2):241-252
pubmed: 29752638
Clin Sports Med. 2022 Jan;41(1):97-108
pubmed: 34782079
Clin Orthop Relat Res. 2008 Jun;466(6):1475-84
pubmed: 18347890