Biomechanical Performance of Three Suture Fixation Techniques for Proximal Biceps Tenodesis: A Human Cadaveric Study.
biomechanical · Level V
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- Record sourced from PubMed, PMID 41905493.
- Also identified by DOI 10.1016/j.jisako.2026.101106.
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Abstract
To compare the biomechanical properties of the lark loop and 360 double lasso loop techniques against the double Krackow stitch for proximal biceps tenodesis using human cadaveric long head biceps tendons. Thirty fresh-frozen human shoulders were randomly allocated between three groups to undergo the 360 double lasso loop, the lark loop or the double Krackow proximal biceps tenodesis. Following the tenodesis, the construct was subjected to a cyclic loading from 5 to 30N, at a frequency of 2Hz for a total of 500 cycles. Then the tendon was loaded to failure. During testing, total displacement, suture displacement, tendon displacement, ultimate failure load, stiffness and modes of failure were evaluated. All 30 specimens were included in the data analysis. One tendon (10%) failed during cyclic testing of the 360 double lasso loop constructs. No failure during cyclic testing occurred in other groups. After cyclic testing, the mean displacement was 5.5 ±1.9mm for the double Krackow stitch group, 6.6 ±2.1mm for the 360 double lasso loop group, and 5.2 ±1.8 mm for the lark loop group. The double Krackow stitch group exhibited a mean load-to-failure of 138.7 ±24.5N, the 360 double lasso loop group failed at a mean of 102.5 ±45.0N and the Lark Loop group an average of 166.9 ±59.7N. There was a statistically significant difference in load to failure between the suture techniques (F (2,26) =4.755, p=.017). In this in-vitro biomechanical study, the lark loop suture technique demonstrated a higher load to failure, a greater stiffness and a different failure mechanism compared to the 360 double lasso loop and double Krackow stitch constructs, suggesting that it may offer a more secure time-zero fixation and be potentially more resilient to unexpected early loading events. Further clinical research is warranted to determine if these biomechanical advantages translate to better patient outcomes. Level V, Basic Science Study; Biomechanics.