Davos Courses

Executive Editor: Chris Colton, Rick Buckley

Authors: Peter V Giannoudis, Hans Christoph Pape, Michael Sch├╝tz

Femur shaft - Wedge, intact, middle 1/3

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1 Principles top


Note on illustrations

Throughout this treatment option illustrations of generic fracture patterns are shown, as four different types:

A) Unreduced fracture

B) Reduced fracture

C) Fracture reduced and fixed provisionally

D) Fracture fixed definitively

Principles enlarge

Bridge plating

Bridge plating uses the plate as an extramedullary splint, fixed to the two main fragments, leaving the intermediate fracture zone untouched. Anatomical reduction of intermediate fragments is not necessary. Furthermore, their direct manipulation would risk disturbing their blood supply. If the soft tissue attachments to the fragments are preserved, and the fragments are relatively well aligned, healing is enhanced.

Alignment of the main shaft fragments can be achieved indirectly with the use of traction and the support of indirect reduction tools, or indirectly via the implant.

Mechanical stability, provided by the bridging plate, is adequate for gentle functional rehabilitation and result in satisfactory indirect healing (callus formation). Occasionally, a larger wedge fragment might be approximated to the main fragments with a lag screw.

Distal femoral shaft – Minimally invasive bridge plating – Principles of soft tissues enlarge

Minimally invasive osteosynthesis

Bridge plates inserted through a minimally invasive (MIO) approach leave the soft tissues intact over the fracture site. The incisions are made proximally and distally, and the plate is inserted through a submuscular tunnel. This normally requires fluoroscopic intensifier monitoring.


It is important to restore axial alignment, length, and rotation.

Reduction can be performed with a single reduction tool (eg, large distractor), or by combining several steps (for example fracture table +/- external fixator, cerclage wiring, +/- reduction via the implant, etc.) to achieve the final reduction.

The preferred method depends on the fracture and soft-tissue injury pattern, the chosen stabilization device, and the experience and skills of the surgeon.

If a large fragment has separated from the fracture zone and impaled the adjacent muscle, direct reduction may be required.

2 Preoperative planning top

Preoperative planning enlarge

Plate type

Usually a broad large fragment plate is chosen.

A locking plate is a good option, especially in osteoporotic bone and for fractures with a short end segment. Such a locking plate does not need to be contoured precisely to fit the bone, since it functions as an internal fixator. Attaching it to the bone does not alter fracture alignment, since the screws do not pull the main bone fragments to the implant.

Preoperative planning enlarge

Regardless of the plate type used, the preferred dimension to stabilize femur midshaft fractures is a 4.5 broad dynamic compression plate (DCP) / limited contact - dynamic compression plate (LC-DCP) or a 4.5 broad locking compression plate (LCP) straight or curved.

Preoperative planning enlarge

Plate length and number of screws

Generally speaking, the plates for the bridging technique should be longer than for conventional "anatomical" fixations, in order to distribute the forces more widely, as well as to provide relative stability.

Depending on the extent of the zone of fracture comminution and the underlying bone stock (osteoporosis), the appropriate plate length is chosen.

If the fracture location allows, the plate length should be chosen so that six plate holes are over each main fracture fragment.

Sufficient bicortical screws (a minimum of three up to six) should be inserted into each fracture fragment as necessary. The relative stability results from leaving plate holes empty over the fracture zone.

In total, no more than half of the screw holes need to be filled with screws. Remember, that no screws are inserted into the fracture zone.

3 Patient preparation top

The patient may be placed in one of the following positions:

4 Approach top


For this procedure a MIO approach is used.

5 Preliminary reduction top

Preliminary reduction enlarge

Reduction by using a traction table / manual traction

The use of a traction table can be beneficial.

Traction on the leg restores bone length, realigns the axis and restores tension in the soft tissues. Rotation must also be controlled carefully.

Interposed soft tissue may interfere with bone contact. If so, the interposed soft tissue may need to be cleared by exposing the fracture site directly.

Preliminary reduction enlarge

Reduction by external fixator, or distractor

Especially with multifragmentary fractures, the use of an external fixator, or distractor, can provide alignment and temporary stability for bridge plating without disturbing the soft tissues at the fracture zone.

Proximal and distal pins should be inserted carefully in order not to interfere with the later plating procedure. For this purpose, the safe positions are anterolaterally, or anteriorly, on the femur.

If no traction table is used, folded linen bolsters under the fracture zone may facilitate reduction.

Teaching video

AO teaching video: Application of the large distractor

6 Contouring and insertion of the plate top

Contouring and insertion of the plate enlarge

Contouring the plate

Contouring of the plate over the fracture site is normally not necessary. However, it is necessary to contour the ends of a conventional plate to address the anatomical shape of the proximal and distal femur.

A plastic femur bone can be used in a sterile bag as a template for the plate contouring maneuver.

A locking plate does not have to be contoured at all. However, to avoid soft-tissue irritations, slight contouring may be necessary.

In the minimally invasive technique, contouring is more demanding than in the open technique, requiring preoperative x-rays and planning, images of the fluoroscopic intensifier and a more experienced surgeon.

Contouring and insertion of the plate enlarge

Direction of plate insertion

According to preoperative planning, the operative approach is chosen to insert the plate as well as some of the screws through the same incision. Further stab incisions / approaches may be necessary to insert the remaining screws.

Depending on the fracture location in the shaft area, it may be beneficial to insert the plate from distal, if the fracture is more distally located, or from proximal, if the fracture is located more proximally.

Preparation of the plate tunnel

Three options are in use for preparation of the plate path along the distal main fragment:

  • Insert a long pair of scissors, spread them, and then pull backwards.
  • Insert a periosteal elevator and slide it extraperiosteally along the distal main fragment. The tip of the plate can be used in a same manner.
  • A soft-tissue retractor is available which serves the same purpose.

7 Reduction top

Reduction enlarge


When preliminary reduction is already optimal with respect to axis, length and rotation, the main fragments are held in this position using an external fixator, choosing the optimal screw positions in order not to conflict with the bridging technique.

Reduction enlarge

Most often, the preliminary reduction still needs some final adjustment for an optimal alignment. In such cases, the final reduction will be achieved using the implant and further multi-step reduction techniques. The following procedure describes one possible solution to achieve final reduction.

Reduction enlarge

Image showing the AP view.

Lateral alignment and rotation

As an initial step, rotation and lateral alignment must be addressed.

8 Screw placement top

Screw placement enlarge

Positioning of first screw

The order of screw insertion depends on the direction of the plate insertion. In the following, we show the procedure for a plate inserted through a proximal approach.

The first cortical screw should be inserted through the approach used for the plate insertion, into the last plate hole. The plate should be positioned optimally in the lateral aspect.

Alternatively, when a LCP is used, a K-wire through a trocar can be chosen.

Screw placement enlarge

Image showing the AP view.

Screw placement enlarge

Positioning of second screw

The second screw will assure that the plate is in the correct lateral position on the proximal fragment.

To achieve the correct alignment between the plate and the bone, a K-wire / Schanz screw can be used to push the proximal fragment into position. Alternatively, this can be achieved directly through a second approach, using a periosteal elevator to push the bone into position.

Then, the second cortical screw is inserted.

Screw placement enlarge

Image showing the AP view.

Screw placement enlarge

Assessment of rotation

Prior to insertion of the third screw (first screw in the other main fragment), the rotation has to be checked again and the plate must be aligned to the distal lateral aspect of the distal fragment.

The shape of the lesser trochanter is compared with the contralateral side (lesser trochanter shape sign).

Screw placement enlarge

Correction of rotation

After the proximal plate fixation, the distal fragment is rotated with the patella facing anteriorly, as on the uninjured, contralateral side, by adjustment of the fracture table or by manual traction.

After the rotational relationship has been optimized, the lateral position of the plate must be checked.

A K-wire can be applied in the distal most hole to maintain the three-dimensional reduction.

Screw placement enlarge

Insertion of third screw

Insert the third screw through the most distal plate hole into the second main fragment.

One way to control the correct lateral position is to place a finger on the ventral aspect of the distal fragment and palpate the upper edge of the plate.

Screw placement enlarge

Image showing the AP view.

Screw placement enlarge

Insertion of fourth screw

If the distal fragment needs some final adjustment on the lateral aspect, the following reduction techniques may be helpful before inserting the fourth screw:

  • placement of a linen bolster under the distal fragment;
  • using a periosteal elevator inserted through the approach in order to push the fragment into the correct position; or
  • using a percutaneous K-wire / Schanz screw.

Screw placement enlarge

Image showing the AP view.

Screw placement enlarge

Alignment in the AP-view

By tightening the screws, the fragments are pulled towards the implant, and final reduction is achieved.

Screw placement enlarge

Final screw insertion

At the end, at least three bicortical screws must be inserted into each main fragment.

9 Internal fixator - locking plate system top

Internal fixator - locking plate system enlarge

Preliminary fixation

An internal fixator has the advantage that an optimal reduction can be achieved even if the plate is not correctly precontoured.

Internal fixator - locking plate system enlarge


By tightening the two conventional screws, reduction is achieved (even with a gap between the bone and the implant).

Internal fixator - locking plate system enlarge

Alternative: In cases where reduction is difficult a Verbrugge or collinear clamp (illustrated) can be used via a small incision.

Internal fixator - locking plate system enlarge

Final screw fixation

The final reduction is then fixed by inserting locking head screws according to the preoperative plan after removal of the temporary conventional reduction screws.

v2.0 2018-07-05