Payaam P. Tavakoli, Phoram B. Vyas, Kevin Huntsman, Eric Duffin, Paul Brancheau
5 min
Open reduction and internal fixation (ORIF) is the standard treatment for Weber B fibular fractures, typically involving a lateral locking plate combined with an interfragmentary lag screw. While the lag screw provides compression to promote primary bone healing, its placement can be technically challenging in osteoporotic bone or small-diameter fibulas and may risk injury to surrounding nerves. This retrospective cohort study compared the clinical outcomes of using a lateral locking plate with a lag screw versus a lateral locking plate alone. The researchers analyzed 71 patients treated at a single institution, evaluating primary outcomes of fracture union within 12 weeks, as well as secondary outcomes including time to union and complication rates.
The study found no statistically significant differences between the two fixation methods. The union rate for the plate-plus-lag-screw group was 97.56%, compared to 93.33% for the plate-only group (p=0.38). Similarly, the average time to union was 8.45 weeks for the lag screw group and 9.10 weeks for the plate-only group (p=0.23). Complication rates, including hardware removal and infections, were also comparable between the two groups. These results suggest that the additional compression provided by a lag screw may not be strictly necessary for achieving successful union in Weber B fractures when a modern locking plate is used.
These findings provide clinical support for surgeons to consider a plate-only approach for Weber B fibular fractures, particularly in cases where lag screw placement is difficult or risky. By simplifying the surgical construct, surgeons may reduce operative time and avoid potential complications associated with lag screw insertion, such as nerve injury or hardware prominence, without compromising the patient's likelihood of successful fracture healing.
Alex: Right. The two cohorts aren't balanced, because the construct was chosen based on the specific fracture and the bone in front of the surgeon.
Sam: The tricky part is the direction of the bias. If surgeons dropped the screw in poor bone, the plate-only group might be the harder cases, which would make the similar outcomes more reassuring. But if they reserved plate-only for simpler fractures, the comparison flatters the plate.
Alex: And we can't tell which happened. Either story is consistent with the data as described, so the confound can't be signed in advance. Adjustment might help, but it wouldn't capture an intraoperative judgment that never made it into the chart.
Sam: The study also didn't standardize plate length or screw density. Those affect construct stiffness, and stiffness is the very variable the secondary healing argument depends on.
Alex: That's a second layer of heterogeneity. Even within the plate-only group, you may have constructs of quite different stiffness. So you can't say what a plate-only construct is, only that the group performed acceptably on average.
Sam: Which points toward a prospective, randomized design with a prespecified non-inferiority margin.
Alex: Yes. Randomization would isolate the effect of the screw, and a margin would let you ask whether plate-only is non-inferior rather than merely not significantly different. Until then, this is reasonable support for surgeons who already have a clinical reason to omit the screw. It isn't enough to change the routine standard of care.
Sam: So the evidence is encouraging, the mechanistic story is plausible but untested here, and the design can't separate the construct from the surgeon's choice.
Alex: That's a fair summary. The study shows the plate-only approach isn't obviously worse in practice. It doesn't show the screw is redundant.
Sam: If you want the figures and the method choices we skipped, you can generate a deep dive of this paper. The paper has the rest either way.
Alex: Thanks for listening.