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Published in: Knee Surgery, Sports Traumatology, Arthroscopy 1/2019

01-01-2019 | Knee

A new, MRI-based classification system for tibial spine fractures changes clinical treatment recommendations when compared to Myers and Mckeever

Authors: Daniel Green, Maria Tuca, Eva Luderowski, Elizabeth Gausden, Christine Goodbody, Gabrielle Konin

Published in: Knee Surgery, Sports Traumatology, Arthroscopy | Issue 1/2019

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Abstract

Purpose

Tibial spine fractures (TSFs) are graded according to the Meyers and McKever (MM) classification system, which is based on a qualitative evaluation of plain radiographs. However, although MRI images can provide important information about these fractures, there is no MRI-based classification system. This study aims to (1) establish the intra- and inter-rater reliability of the MM system for use with radiographs, (2) propose a quantitative, MRI-based system and compare its reliability to the MM system, and (3) assess how often using the MRI-based system changes the classification and potential treatment plan as previously determined using MM.

Methods

The MRI-based system was designed with three grades based on quantitative displacement patterns of the fractured fragment and tissue entrapment. Four raters from a tertiary care center evaluated 20 fractures according to the MM and MRI-based systems. Observers graded images at two time points at least 2 weeks apart, after which we compared the intra- and inter-rater reliability of each system (using Fleiss’ kappa and weighted kappa, respectively) and assessed how often using the MRI-based system changed the fracture grade.

Results

Both the MM and MRI-based systems exhibit fair to moderate intra- and inter-rater reliability (average kappa values ranged from 0.38 to 0.66). Use of the MRI-based system changed the fracture grade and as a result modified the treatment recommendations in 32.5% of cases: 6.9% were previously unnoticed fractures, 13.1% underwent a raise in grade, and 12.5% were graded as lower than before.

Conclusion

The MRI-based system is as reliable as the MM system and provides specific, quantitative criteria for classifying fractures according to fragment displacement and tissue entrapment. The new MRI-based system potentially clarifies treatment indications for TSFs.

Level of evidence

Diagnostic Study, Level II.
Literature
1.
go back to reference Coyle C, Jagernauth S, Ramachandran M (2014)Tibial eminence fractures in the paediatric population: a systematic review. J Child Orthop. 8(2):149–159CrossRefPubMedPubMedCentral Coyle C, Jagernauth S, Ramachandran M (2014)Tibial eminence fractures in the paediatric population: a systematic review. J Child Orthop. 8(2):149–159CrossRefPubMedPubMedCentral
2.
go back to reference Kendall NS, Hsu SY, Chan KM, (1992). Fracture of the tibial spine in adults and children. A review of 31 cases. Bone Joint J. 74(6):848–852 Kendall NS, Hsu SY, Chan KM, (1992). Fracture of the tibial spine in adults and children. A review of 31 cases. Bone Joint J. 74(6):848–852
3.
go back to reference Monto RR, Cameron-Donaldson ML, Close MA, Ho CP, Hawkins RJ (2006) Magnetic resonance imaging in the evaluation of tibial eminence fractures in adults. J Knee Surg. 19(3):187–190CrossRefPubMed Monto RR, Cameron-Donaldson ML, Close MA, Ho CP, Hawkins RJ (2006) Magnetic resonance imaging in the evaluation of tibial eminence fractures in adults. J Knee Surg. 19(3):187–190CrossRefPubMed
4.
go back to reference Zoints L (2009) Fractures and dislocations about the knee. In: Skeletal trauma in children. Elsevier, Amsterdam; 452–455 Zoints L (2009) Fractures and dislocations about the knee. In: Skeletal trauma in children. Elsevier, Amsterdam; 452–455
5.
go back to reference Meyers MH, McKeever FM (1959) Fracture of the intercondylar eminence of the tibia. J Bone Joint Surg. 41(2):209–222CrossRefPubMed Meyers MH, McKeever FM (1959) Fracture of the intercondylar eminence of the tibia. J Bone Joint Surg. 41(2):209–222CrossRefPubMed
6.
go back to reference Ahmad CS, Shubin Stein BE, Jeshuran W, Nercessian OA, Henry JH (2001) Anterior cruciate ligament function after tibial eminence fracture in skeletally mature patients. Am J Sports Med. 29(3):339–345CrossRefPubMed Ahmad CS, Shubin Stein BE, Jeshuran W, Nercessian OA, Henry JH (2001) Anterior cruciate ligament function after tibial eminence fracture in skeletally mature patients. Am J Sports Med. 29(3):339–345CrossRefPubMed
7.
8.
go back to reference Janarv P, Westblad P, Johansson C, Hirsch G (1995) Long-term follow-up of anterior tibial spine fractures in children. J Pediatr Orthop. 15(1):63–68CrossRefPubMed Janarv P, Westblad P, Johansson C, Hirsch G (1995) Long-term follow-up of anterior tibial spine fractures in children. J Pediatr Orthop. 15(1):63–68CrossRefPubMed
9.
go back to reference Meyers MH, McKeever FM (1970) Fracture of the Intercondylar Eminence of the Tibia. J Bone Joint Surg Am. 52A(8) Meyers MH, McKeever FM (1970) Fracture of the Intercondylar Eminence of the Tibia. J Bone Joint Surg Am. 52A(8)
10.
go back to reference Luhmann S (2003) Acute traumatic knee effusions in children and adolescents. J Pediatr Orthop. 23(2):199–202PubMed Luhmann S (2003) Acute traumatic knee effusions in children and adolescents. J Pediatr Orthop. 23(2):199–202PubMed
11.
go back to reference Tudisco C (2010) Intercondylar eminence avulsion fracture in children: long-term follow-up of 14 cases at the end of skeletal growth. J Pediatr Orthop B. 19(5):403–408CrossRefPubMed Tudisco C (2010) Intercondylar eminence avulsion fracture in children: long-term follow-up of 14 cases at the end of skeletal growth. J Pediatr Orthop B. 19(5):403–408CrossRefPubMed
12.
go back to reference Wiley J, Baxter M (1990) Tibial spine fractures in children. Clin Orthop Relat Res. 255:54–60 Wiley J, Baxter M (1990) Tibial spine fractures in children. Clin Orthop Relat Res. 255:54–60
13.
go back to reference Willis R, Blokker C, Stoll T, Paterson D, Galpin R (1993) Long-term follow-up of anterior tibial eminence fractures. J Pediatr Orthop. 13(3):361–364CrossRefPubMed Willis R, Blokker C, Stoll T, Paterson D, Galpin R (1993) Long-term follow-up of anterior tibial eminence fractures. J Pediatr Orthop. 13(3):361–364CrossRefPubMed
14.
go back to reference Zaricznyj B (1977) Avulsion fracture of the tibial eminence: treatment by open reduction and pinning. J Bone Joint Surg. 59(8):1111–1114CrossRefPubMed Zaricznyj B (1977) Avulsion fracture of the tibial eminence: treatment by open reduction and pinning. J Bone Joint Surg. 59(8):1111–1114CrossRefPubMed
15.
go back to reference Gans I, Baldwin KD, Ganley TJ (2014) Treatment and management outcomes of tibial eminence fractures in pediatric patients: a systematic review. Am J Sports Med. 42(7):1743–1750CrossRefPubMed Gans I, Baldwin KD, Ganley TJ (2014) Treatment and management outcomes of tibial eminence fractures in pediatric patients: a systematic review. Am J Sports Med. 42(7):1743–1750CrossRefPubMed
16.
go back to reference Gans I, Ganley TJ (2013) Tibial eminence fractures: a review and algorithm for treatment. Univ Pa Orthop J. 23:20–23 Gans I, Ganley TJ (2013) Tibial eminence fractures: a review and algorithm for treatment. Univ Pa Orthop J. 23:20–23
17.
go back to reference Leeberg V, Lekdorf J, Wong C, Sonne-Holm S (2014) Tibial eminentia avulsion fracture in children–a systematic review of the current literature. Dan Med J. 61(3):A4792PubMed Leeberg V, Lekdorf J, Wong C, Sonne-Holm S (2014) Tibial eminentia avulsion fracture in children–a systematic review of the current literature. Dan Med J. 61(3):A4792PubMed
18.
go back to reference Shin Y-W, Uppstrom TJ, Haskel JD, Green DW (2015) The tibial eminence fracture in skeletally immature patients: Curr Opin Pediatr. 27(1):50–57CrossRefPubMed Shin Y-W, Uppstrom TJ, Haskel JD, Green DW (2015) The tibial eminence fracture in skeletally immature patients: Curr Opin Pediatr. 27(1):50–57CrossRefPubMed
19.
go back to reference Mitchell JJ, Sjostrom R, Mansour AA et al (2015) Incidence of meniscal injury and chondral pathology in anterior tibial spine fractures of children. J Pediatr Orthop. 35(2):130–135CrossRefPubMed Mitchell JJ, Sjostrom R, Mansour AA et al (2015) Incidence of meniscal injury and chondral pathology in anterior tibial spine fractures of children. J Pediatr Orthop. 35(2):130–135CrossRefPubMed
20.
go back to reference Feucht MJ, Brucker PU, Camathias C et al (2017) Meniscal injuries in children and adolescents undergoing surgical treatment for tibial eminence fractures. Knee Surg Sports Traumatol Arthrosc. 25(2):445–453CrossRefPubMed Feucht MJ, Brucker PU, Camathias C et al (2017) Meniscal injuries in children and adolescents undergoing surgical treatment for tibial eminence fractures. Knee Surg Sports Traumatol Arthrosc. 25(2):445–453CrossRefPubMed
21.
go back to reference Ishibashi Y, Tsuda E, Sasaki T, Toh S (2005) Magnetic resonance imaging AIDS in detecting concomitant injuries in patients with tibial spine fractures. Clin Orthop Relat Res. 434:207–212CrossRef Ishibashi Y, Tsuda E, Sasaki T, Toh S (2005) Magnetic resonance imaging AIDS in detecting concomitant injuries in patients with tibial spine fractures. Clin Orthop Relat Res. 434:207–212CrossRef
22.
go back to reference LaFrance RM, Giordano B, Goldblatt J, Voloshin I, Maloney M (2010) Pediatric tibial eminence fractures: evaluation and management. J Am Acad Orthop Surg. 18(7):395–405CrossRefPubMed LaFrance RM, Giordano B, Goldblatt J, Voloshin I, Maloney M (2010) Pediatric tibial eminence fractures: evaluation and management. J Am Acad Orthop Surg. 18(7):395–405CrossRefPubMed
23.
go back to reference Landis JR, Koch GG (1977) The measurement of observer agreement for categorical data. Biometrics. 33(1):159CrossRefPubMed Landis JR, Koch GG (1977) The measurement of observer agreement for categorical data. Biometrics. 33(1):159CrossRefPubMed
24.
go back to reference Kocher MS, Micheli LJ, Gerbino P, Hresko MT (2003) Tibial eminence fractures in children: prevalence of meniscal entrapment. Am J Sports Med. 31(3):404–407CrossRefPubMed Kocher MS, Micheli LJ, Gerbino P, Hresko MT (2003) Tibial eminence fractures in children: prevalence of meniscal entrapment. Am J Sports Med. 31(3):404–407CrossRefPubMed
Metadata
Title
A new, MRI-based classification system for tibial spine fractures changes clinical treatment recommendations when compared to Myers and Mckeever
Authors
Daniel Green
Maria Tuca
Eva Luderowski
Elizabeth Gausden
Christine Goodbody
Gabrielle Konin
Publication date
01-01-2019
Publisher
Springer Berlin Heidelberg
Published in
Knee Surgery, Sports Traumatology, Arthroscopy / Issue 1/2019
Print ISSN: 0942-2056
Electronic ISSN: 1433-7347
DOI
https://doi.org/10.1007/s00167-018-5039-7

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