| Literature DB >> 29478021 |
Clare L Ardern1,2, Guri Ranum Ekås3,4,5, Hege Grindem6, Håvard Moksnes4, Allen F Anderson7, Franck Chotel8, Moises Cohen9, Magnus Forssblad10, Theodore J Ganley11, Julian A Feller12,13, Jón Karlsson14, Minider S Kocher15,16, Robert F LaPrade17,18, Michael McNamee19, Bert Mandelbaum20, Lyle Micheli15,16,21, Nicholas Mohtadi22, Bruce Reider23, Justin Roe24, Romain Seil25,26, Rainer Siebold27,28, Holly J Silvers-Granelli29, Torbjørn Soligard30,31, Erik Witvrouw32, Lars Engebretsen3,4,5,30.
Abstract
In October 2017, the International Olympic Committee hosted an international expert group of physiotherapists and orthopaedic surgeons who specialise in treating and researching paediatric ACL injuries. Representatives from the American Orthopaedic Society for Sports Medicine, European Paediatric Orthopaedic Society, European Society for Sports Traumatology, Knee Surgery & Arthroscopy, International Society of Arthroscopy Knee Surgery and Orthopaedic Sports Medicine, Pediatric Orthopaedic Society of North America and Sociedad Latinoamericana de Artroscopia, Rodilla y Deporte attended. Physiotherapists and orthopaedic surgeons with clinical and research experience in the field, and an ethics expert with substantial experience in the area of sports injuries also participated. Injury management is challenging in the current landscape of clinical uncertainty and limited scientific knowledge. Injury management decisions also occur against the backdrop of the complexity of shared decision-making with children and the potential long-term ramifications of the injury. This consensus statement addresses six fundamental clinical questions regarding the prevention, diagnosis and management of paediatric ACL injuries. The aim of this consensus statement is to provide a comprehensive, evidence-informed summary to support the clinician, and help children with ACL injury and their parents/guardians make the best possible decisions. © Article author(s) (or their employer(s) unless otherwise stated in the text of the article) 2018. All rights reserved. No commercial use is permitted unless otherwise expressly granted.Entities:
Keywords: consensus statement; knee Acl; orthopaedics; paediatrics; physiotherapy
Mesh:
Year: 2018 PMID: 29478021 PMCID: PMC5867447 DOI: 10.1136/bjsports-2018-099060
Source DB: PubMed Journal: Br J Sports Med ISSN: 0306-3674 Impact factor: 13.800
Figure 1Injury prevention exercises incorporated into team training.
Diagnostic accuracy of clinical examination and MRI in intra-articular knee disorders (adapted from Kocher et al 27)
| Diagnosis | Sensitivity (%) | Specificity (%) | Positive predictive value (%) | Negative predictive value (%) | ||||||
| Clinical examination | MRI | P value | Clinical examination | MRI | P value | Clinical examination | MRI | Clinical examination | MRI | |
| ACL tear | 81.3 | 75.0 | 0.55 | 90.6 | 94.1 | 0.39 | 49.0 | 58.6 | 97.8 | 97.1 |
| Medial meniscus tear | 62.1 | 79.3 | 0.15 | 80.7 | 92.0 | 0.03 | 14.5 | 34.3 | 97.6 | 98.8 |
| Lateral meniscus tear | 50.0 | 66.7 | 0.24 | 89.2 | 82.8 | 0.21 | 34.0 | 30.1 | 94.1 | 95.7 |
Clinical examination was patient history, physical examination and X-rays performed by a paediatric orthopaedic sports medicine specialist or a postresidency paediatric sports medicine fellow.
Figure 2Child demonstrating how to hold terminal knee extension during single limb stance. This is an important marker of quadriceps control in ACL rehabilitation and prehabilitation.
Figure 3One example of an exercise that could be incorporated into a home-based ACL rehabilitation program.
Figure 4Transphyseal ACL reconstruction. (A) Anterior view and (B) lateral view.
Figure 5Physeal-sparing ACL reconstruction using an over-the-top technique with iliotibial band. (A) Anterior view and (B) lateral view.
Figure 6Physeal-sparing ACL reconstruction using an all-epiphyseal technique. (A) Anterior view and (B) lateral view.
Figure 7Partial transphyseal ACL reconstruction. (A) Anterior view, (B) lateral view and (C) posterior view.
Figure 8Three different options for femoral tunnel trajectories.
Figure 9Three growth disturbances that may occur following ACL reconstruction. ‘p’ represents the physiological growth process; dashed lines represent the physiological growth arrest lines; continuous lines represent the observed pathological growth arrest line. Type A (arrest): growth arrest process (a) occurs after a localised injury to the physis and results in a bone bridge across the physis. The extent of deformity is proportional to the location and size of the initial physeal injury. Type B (boost): overgrowth process (indicated by p+) is probably caused by local hypervascularisation, stimulating the open physis (b). This growth disturbance is temporary and usually becomes apparent in a limited period of 2 years following ACL reconstruction. It primarily leads to leg length discrepancy. Type C (decelerate): undergrowth process (indicated by p–) due to a tenoepiphysiodesis effect (c). The graft tension across the open physis causes the deformity. Adapted from Chotel et al.86
Figure 10Appearance of the highly vascular paediatric meniscus of a boy aged 10 years on 3.0 T MRI (Signa HDxt 3.0 T; GE Medical Systems).
Summary of appropriate PROMs for the child with ACL injury
| Type of instrument | Scale |
| Health-related quality of life | Child Health Questionnaire |
| Condition-specific or region-specific | Pedi-IKDC |
| Activity level assessment | Pediatric Functional Activity Brief Scale |
IKDC, International Knee Documentation Committee; KOOS, Knee Injury and Osteoarthritis Outcome Score; PROM, patient-reported outcome.