Effect of Meniscal Ramp Lesion Repair on Knee Kinematics, Bony Contact Forces, and In Situ Forces in the Anterior Cruciate Ligament: Response

2020 ◽  
Vol 48 (2) ◽  
pp. NP25-NP27
Author(s):  
Jan-Hendrik Naendrup ◽  
Thomas R. Pfeiffer ◽  
Calvin Chan ◽  
Kanto Nagai ◽  
João V. Novaretti ◽  
...  
2020 ◽  
Vol 48 (2) ◽  
pp. NP23-NP25
Author(s):  
Thais Dutra Vieira ◽  
William G. Blakeney ◽  
Sergio Canuto ◽  
Etienne Cavaignac ◽  
Steven Claes ◽  
...  

2019 ◽  
Vol 47 (13) ◽  
pp. 3195-3202 ◽  
Author(s):  
Jan-Hendrik Naendrup ◽  
Thomas R. Pfeiffer ◽  
Calvin Chan ◽  
Kanto Nagai ◽  
João V. Novaretti ◽  
...  

Background: Meniscal ramp lesions are possible concomitant injuries in cases of anterior cruciate ligament (ACL) deficiency. Although recent studies have investigated the influence of ramp lesions on knee kinematics, the effect on the ACL reconstruction graft remains unknown. Purpose/Hypothesis: The purpose was to determine the effects of ramp lesion and ramp lesion repair on knee kinematics, the in situ forces in the ACL, and bony contact forces. It was hypothesized that ramp lesions will significantly increase in situ forces in the native ACL and bony contact forces and that ramp lesion repair will restore these conditions comparably with those forces of the intact knee. Study Design: Controlled laboratory study. Methods: Investigators tested 9 human cadaveric knee specimens using a 6 degrees of freedom robotic testing system. The knee was continuously flexed from full extension to 90° while the following loads were applied: (1) 90-N anterior load, (2) 5 N·m of external-rotation torque, (3) 134-N anterior load + 200-N compression load, (4) 4 N·m of external-rotation torque + 200-N compression load, and (5) 4 N·m of internal-rotation torque + 200-N compression load. Loading conditions were applied to the intact knee, a knee with an arthroscopically induced 25-mm ramp lesion, and a knee with an all-inside repaired ramp lesion. In situ forces in the ACL, bony contact forces in the medial compartment, and bony contact forces in the lateral compartment were quantified. Results: In response to all loading conditions, no differences were found with respect to kinematics, in situ forces in the ACL, and bony contact forces between intact knees and knees with a ramp lesion. However, compared with intact knees, knees with a ramp lesion repair had significantly reduced anterior translation at flexion angles from full extension to 40° in response to a 90-N anterior load ( P < .05). In addition, a significant decrease in the in situ forces in the ACL after ramp repair was detected only for higher flexion angles when 4 N·m of external-rotation torque combined with a 200-N compression load ( P < .05) and 4 N·m of internal-rotation torque combined with a 200-N compression load were applied ( P < .05). Conclusion: In this biomechanical study, ramp lesions did not significantly affect knee biomechanics at the time of surgery. Clinical Relevance: From a biomechanical time-zero perspective, the indications for ramp lesion repair may be limited.


2001 ◽  
Vol 29 (6) ◽  
pp. 771-776 ◽  
Author(s):  
Jürgen Höher ◽  
Akihiro Kanamori ◽  
Jennifer Zeminski ◽  
Freddie H. Fu ◽  
Savio L-Y. Woo

Ten cadaveric knees (donor ages, 36 to 66 years) were tested at full extension, 15°, 30°, and 90° of flexion under a 134-N anterior tibial load. In each knee, the kinematics as well as in situ force in the graft were compared when the graft was fixed with the tibia in four different positions: full knee extension while the surgeon applied a posterior tibial load (Position 1), 30° of flexion with the tibia at the neutral position of the intact knee (Position 2), 30° of flexion with a 67-N posterior tibial load (Position 3), and 30° of flexion with a 134-N posterior tibial load (Position 4). For Positions 1 and 2, the anterior tibial translation and the in situ forces were up to 60% greater and 36% smaller, respectively, than that of the intact knee. For Position 3, knee kinematics and in situ forces were closest to those observed in the intact knee. For Position 4, anterior tibial translation was significantly decreased by up to 2 mm and the in situ force increased up to 31 N. These results suggest that the position of the tibia during graft fixation is an important consideration for the biomechanical performance of an anterior cruciate ligament-reconstructed knee.


2008 ◽  
Vol 36 (11) ◽  
pp. 2158-2166 ◽  
Author(s):  
Thore Zantop ◽  
Mario Ferretti ◽  
Kevin M. Bell ◽  
Peter U. Brucker ◽  
Lars Gilbertson ◽  
...  

Background In anterior cruciate ligament (ACL) reconstruction using hamstring grafts, the graft can be looped, resulting in an increased graft diameter but reducing graft length within the tunnels. Hypothesis After 6 and 12 weeks, structural properties and knee kinematics after soft tissue ACL reconstruction with 15 mm within the femoral tunnel will be significantly inferior when compared with the properties of ACL reconstruction with 25 mm in the tunnel. Study Design Controlled laboratory study. Methods In an intra-articular goat model, 36 ACL reconstructions using an Achilles tendon split graft were performed with 15-mm (18 knees) and 25-mm (18 knees) graft length in the femoral tunnel. Animals were sacrificed 6 weeks and 12 weeks after surgery and knee kinematics was tested. In situ forces as well as the structural properties were determined and compared with those in an intact control group. Histologic analyses were performed in 2 animals in each group 6 and 12 weeks postoperatively. Statistical analysis was performed using a 2-factor analysis of variance test. Results Anterior cruciate ligament reconstructions with 15 mm resulted in significantly less anterior tibial translation after 6 weeks ( P < .05) but not after 12 weeks. Kinematics after 12 weeks and in situ forces of the replacement grafts at both time points showed no statistically significant differences. Stiffness, ultimate failure load, and ultimate stress revealed no statistically significant differences between the 15-mm group and the 25-mm group. Conclusion The results suggest that there is no negative correlation between short graft length (15 mm) in the femoral tunnel and the resulting knee kinematics and structural properties. Clinical Relevance Various clinical scenarios exist in which the length of available graft that could be pulled into the bone tunnel (femoral or tibial) could be in question. To address this concern, this study showed that reducing the tendon graft length in the femoral bone tunnel from 25 mm to 15 mm did not have adverse affects in a goat model.


2002 ◽  
Vol 30 (5) ◽  
pp. 660-666 ◽  
Author(s):  
Masayoshi Yagi ◽  
Eric K. Wong ◽  
Akihiro Kanamori ◽  
Richard E. Debski ◽  
Freddie H. Fu ◽  
...  

Background: The focus of most anterior cruciate ligament reconstructions has been on replacing the anteromedial bundle and not the posterolateral bundle. Hypothesis: Anatomic two-bundle reconstruction restores knee kinematics more closely to normal than does single-bundle reconstruction. Study Design: Controlled laboratory study. Methods: Ten cadaveric knees were subjected to external loading conditions: 1) a 134-N anterior tibial load and 2) a combined rotatory load of 5-N·m internal tibial torque and 10-N·m valgus torque. Resulting knee kinematics and in situ force in the anterior cruciate ligament or replacement graft were determined by using a robotic/universal force-moment sensor testing system for 1) intact, 2) anterior cruciate ligament deficient, 3) single-bundle reconstructed, and 4) anatomically reconstructed knees. Results: Anterior tibial translation for the anatomic reconstruction was significantly closer to that of the intact knee than was the single-bundle reconstruction. The in situ force normalized to the intact anterior cruciate ligament for the anatomic reconstruction was 97% ± 9%, whereas the single-bundle reconstruction was only 89% ± 13%. With a combined rotatory load, the normalized in situ force for the single-bundle and anatomic reconstructions at 30° of flexion was 66% ± 40% and 91% ± 35%, respectively. Conclusions: Anatomic reconstruction may produce a better biomechanical outcome, especially during rotatory loads. Clinical Relevance: Results may lead to the use of a two-bundle technique.


2018 ◽  
Vol 6 (7_suppl4) ◽  
pp. 2325967118S0013
Author(s):  
Neil Kumar ◽  
Tiahna Spencer ◽  
Edward Hochman ◽  
Mark P. Cote ◽  
Robert A. Arciero ◽  
...  

Objectives: Meniscal injuries are commonly observed with anterior cruciate ligament (ACL) deficiency. A subset of these injuries includes tears of the medial meniscus at the posterior meniscocapsular junction, or ramp lesions. Biomechanical studies have indicated that ramp injuries may compromise anterior stability of the knee, even after ACL reconstruction (ACLR). These lesions are not consistently diagnosed with magnetic resonance imaging (MRI). One criterion that shows promise is the presence of posterior medial tibial plateau (PMTP) edema. A correlation of PMTP edema and peripheral posterior horn medial meniscal injuries has been observed in the literature. We evaluated a consecutive series of patients who underwent ACLR for incidence of ramp tears. These patients were then compared to patients with non-ramp (meniscal body) medial meniscal tears. The utility of PMTP edema on preoperative MRI for ramp tear diagnosis was then determined. Methods: A retrospective chart review via an institutional database search identified 892 patients who underwent ACLR by one of two senior authors (R.A.A., C.E.) between January 2006 and June 2016. Operative notes identified patients diagnosed arthroscopically with medial meniscal lesions, including ramp lesions. Arthroscopic identification was the gold standard for diagnosis of both ramp and non-ramp (meniscal body) tears. Demographic information such as age, sex, laterality, mechanism of injury (contact/noncontact), sport, revision procedure, multi-ligament procedure, time to MRI, and time to surgery were recorded. Patients without available operative records were excluded. Preoperative MRIs were obtained for all patients and reviewed by an orthopaedic sports medicine fellow for PMTP edema. Axial, coronal, and sagittal T2 and proton-density sequences were utilized. A MRI was considered positive if edema was detected in 2 different planes of sequences. Differences between groups were analyzed with two-sample t test or Chi square test Univariate and multivariate logistic regression models analyzed the relationships among patient factors, MRI findings, and ramp lesions. Results: 852 patients met the inclusion criteria for analysis. 307 patients were diagnosed with medial meniscal tear at the time of ACLR, 127 of which were ramp lesions. The overall incidence of ramp tear was 14.9% and consisted of 41.4% of all medial meniscal tears. Patients with ramp tears were mean 7.5 years younger than patients with meniscal body tears ( p<0.01). There was no difference between the groups in regard to mechanism of injury, revision surgery, or multi-ligamentous injury. Patients with delayed ACLR were at 3.3x greater odds ( p<0.01) of having meniscal body tear compared to ramp lesion. MRI was available for review in 178 patients, 97 of whom had positive MRI for PMTP edema. Sensitivity and specificity of PMTP edema for ramp tear was 66.3% and 55.1%, respectively. Of patients with PMTP edema, 54.6% had ramp lesions and 45.4% had non-ramp tears ( p<0.01). Patients with preoperative MRI positive for PMTP edema were at 2.1 times greater odds ( p<0.01) of having sustained a ramp tear compared to a meniscal body tear. Conclusion: The incidence of ramp tear was 14.9% and was more prevalent in younger patients. Delayed ACLR resulted in 3.3x greater odds of meniscal body tears compared to ramp tears. Patients with PMTP edema on preoperative MRI were at 2.1x greater odds to have ramp lesions compared to a meniscal body tears at the time of ACL reconstruction.


2010 ◽  
Vol 38 (3) ◽  
pp. 558-563 ◽  
Author(s):  
Jia-Lin Wu ◽  
Jong Keun Seon ◽  
Hemanth R. Gadikota ◽  
Ali Hosseini ◽  
Karen M. Sutton ◽  
...  

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