Method Article

An Intramedullary Locking Nail for Standardized Fixation of Femur Osteotomies to Analyze Normal and Defective Bone Healing in Mice

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DOI:

10.3791/54472

November 13th, 2016

In This Article

Summary

This protocol describes an osteosynthesis technique using an intramedullary locking nail for standardized fixation of femur osteotomies, which can be used to analyze normal and defective bone healing in mice.

Abstract

Bone healing models are essential to the development of new therapeutic strategies for clinical fracture treatment. Furthermore, mouse models are becoming more commonly used in trauma research. They offer a large number of mutant strains and antibodies for the analysis of the molecular mechanisms behind the highly differentiated process of bone healing. To control the biomechanical environment, standardized and well-characterized osteosynthesis techniques are mandatory in mice. Here, we report on the design and use of an intramedullary nail to stabilize open femur osteotomies in mice. The nail, made of medical-grade stainless steel, provides high axial and rotational stiffness. The implant further allows the creation of defined, constant osteotomy gap sizes from 0.00 mm to 2.00 mm. Intramedullary locking nail stabilization of femur osteotomies with gap sizes of 0.00 mm and 0.25 mm result in adequate bone healing through endochondral and intramembranous ossification. Stabilization of femur osteotomies with a gap size of 2.00 mm results in atrophic non-union. Thus, the intramedullary locking nail can be used in healing and non-healing models. A further advantage of the use of the nail compared to other open bone healing models is the possibility to adequately fix bone substitutes and scaffolds in order to study the process of osseous integration. A disadvantage of the use of the intramedullary nail is the more invasive surgical procedure, inherent to all open procedures compared to closed models. A further disadvantage may be the induction of some damage to the intramedullary cavity, inherent to all intramedullary stabilization techniques compared to extramedullary stabilization procedures.

Introduction

The biology of bone healing may be studied in vitro using cell and spheroid cultures, but it also requires in vivo approaches using animal studies. While large-animal experiments still play an important role in preclinical testing, early stage testing of products or hypotheses has changed during the last 10 years and is nowadays often conducted in small animal models1. This switch was performed for several reasons. Production and maintenance of mice and rats are cheaper compared to pigs and sheep. In addition, small animals have shorter reproduction times and shorter normal healing periods, both of which facilitate the performance of large series of chronic experiments. Finally, the availability of gene-targeted animals and specific antibodies allows for the analysis of molecular mechanisms in bone healing. However, while the previously used osteosynthesis techniques in the larger animal models could be translated with minimal variation from similar procedures used in human or veterinary clinical patient care, the development and application of osteosynthesis techniques in the small-sized rats and mice turned out to be challenging.

It is well known that the biomechanical environment significantly influences the bone healing process2. As known from fracture healing in humans, differences in fracture stabilization result in distinct modes of healing, including intramembranous ossification after rigid fixation and endochondral ossification after less rigid fixation with micromovements. Complete axial or rotational instability may delay the healing process or may result in non-unions3. Accordingly, we feel that it is necessary to develop sophisticated implant systems and osteosynthesis techniques in mice and rats. In this way, the biomechanical conditions can be standardized appropriately, guaranteeing valid results when analyzing the healing process.

Although a considerable number of highly sophisticated murine stabilization techniques have been introduced during the last few years, the most commonly used technique is still the simple intramedullary pin. The major disadvantage of this technique, however, is the lack of rotational and axial stability4. To improve rotational and axial stability, an intramedullary screw was introduced to stabilize femur fractures in mice5. However, the screw fixation cannot be used to analyze bone-defective healing due to the need for contact and compression between the bone fragments in order to maintain rotational stability.

The intramedullary locking nail offers higher axial and rotational stability compared to the simple pin and the intramedullary screw4. A highly reproducible femur osteotomy, possible because of the guide for the Gigli saw and the ability to create defined gap sizes, allows for the analysis of both normal bone healing and bone-defective healing6. Due to the insertion of interlocking pins, the intramedullary locking nail guarantees a constant gap size during the entire healing process, even while bearing full weight. Here, we report on the design and application of the intramedullary locking nail, as well as on its advantages and disadvantages in experimental studies on normal and delayed bone healing.

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Protocol

All procedures were IACUC-approved and followed institutional guidelines (Landesamt für Verbraucherschutz, Zentralstelle Amtstierärztlicher Dienst, Saarbrücken, Germany). Analgesia and infection prevention should be in agreement with the respective guidelines of the country and institution where the experiments are to be performed.

1. Preparation of Implants and Surgical Instruments

  1. Select a scalpel blade (size 15), small preparation scissors, fine forceps, dressing forceps, small pincers, 24 gauge (G) and 27 G needles, a non-resorbable 5-0 suture, and a needle holder from the microsurgical instrument box.
  2. Unpack the intramedullary nail, the interlocking pins, the special aiming device, the Gigli saw, the template for the Gigli saw, the centering drill bit (1 mm diameter), the drill bit (0.3 mm diameter), and the hand drill (Figure 2; see List of Materials).
    NOTE: The intramedullary nail (0.8 mm diameter, 15.7 mm length) is an intramedullary locking nail made of medical-grade stainless steel for retrograde implantation into the femur. The nail has a proximal thread (4 mm length) and two holes for the insertion of the interlocking pins (0.3 mm diameter) to achieve axial and rotational stability (Figure 1).
  3. Expose the implants and all surgical instruments to a disinfecting solution (e.g., 96% alcohol) for 5 min or sterilize them (steam sterilization, 130 °C, 25 min). After disinfection or sterilization, place the instruments on a sterile operation cloth. Position the sterile operation cloth directly adjacent to the small animal operation table.

2. Animals, Anesthesia, and Analgesia

  1. Choose the strain, age, and sex of the mice as necessary for the study and the question to be addressed.
    NOTE: For this study 12- to 14-week-old male CD-1 mice were used. For nail implantation, the ideal body weight of the animals is 25 - 35 g.
  2. Anesthetize the mice with an intraperitoneal injection of 15 mg/kg xylazine and 75 mg/kg ketamine. Confirm the anesthetization by toe pinch. Apply eye lubricant to protect the animals' eyes from drying during anesthesia. After induction of anesthesia, place the mouse under a heat lamp to keep the body temperature constant.
  3. Apply tramadol-hydrochloride in the drinking water (2.5 mg/100 ml) for analgesia from day 1 before the surgery until day 3 after the surgery.

3. Surgical Procedure and Nail Implantation

  1. Before surgery, shave the entire right hind leg and apply a depilatory cream. After 5 min, remove the cream and clean the leg with water. Expose the implants and all surgical instruments to a disinfecting solution (e.g., 96% alcohol) or sterilize them (steam sterilization,130 °C, 25 min).
  2. Under aseptic conditions, place the mouse in the supine position on the small animal operation table. Bend the right knee to allow for an anterior approach to the condyles of the knee. Perform a 5 mm medial parapatellar incision at the right knee using the scalpel blade.
  3. Lift the patellar ligament with the fine forceps and mobilize the ligament carefully with the scalpel blade. Then, shift the patella laterally with the scalpel blade to expose the intercondylar notch of the femur.
  4. Open the intercondylar notch by drilling until the intramedullary cavity is reached.
    1. Start drilling with a 45º offset to the femur axis using the 1 mm centering drill bit. Slowly change the direction of the drill bit during drilling until it parallels the bone axis of the femur. Stop drilling if the intramedullary cavity is reached.
  5. After opening the bone at the intercondylar notch, insert the 24 G needle into the intramedullary cavity over the whole length of the femur. Ream the intramedullary cavity of the femur manually through rotary motions of the 24 G needle. Remove the 24 G needle and insert the thinner 27 G needle into the intramedullary cavity. Push the needle forward to perforate the cortical bone of the femur proximally at the greater trochanter.
  6. Remove the 27 G needle from the femur. Using the hand drill, implant the intramedullary nail through the intercondylar notch under continuous rotation and axial pressure until the distal end of the nail reaches the level of the condyles.
    NOTE: The distal end of the nail can be identified with a small mark.
  7. Place the mouse in the left lateral position. Perform a longitudinal skin incision using the scalpel blade along the diaphyseal part of the lateral femur from the knee joint to the hip joint in order to surgically expose the midshaft of the femur.
  8. Using small preparation scissors, split the fascia and spread the muscles in the direction of the femur axis from the lateral side. Spread the muscles until the diaphyseal part of the femur is exposed. Preserve the sciatic nerve.
    1. Prepare the whole circumference of the femur by undermining the bone with the dressing forceps. Then, retract the muscles by spreading the dressing forceps and expose the femur.
  9. Mount the aiming device to the distal end of the nail. Advance the device until it attaches to the adapter flange of the nail and turn the aiming device in anterolateral position to the femur.
  10. Interlock the nail with a proximal and a distal interlocking pin.
    1. Start with the proximal interlocking pin.
    2. Insert the centering drill bit (1 mm diameter) into the hand drill. Countersink the bone at the proximal interlocking hole position.
      NOTE: By countersinking, a small cavity is created in the facing cortical bone without drilling through the bone. This cavity allows for improved centering and guiding of the thinner drill bit (0.3 mm diameter), used later.
    3. Insert the drill bit (0.3 mm diameter) into the hand drill. Using the aiming device, drill the hole through both the facing and the averted cortical bone (bicortical). Insert the first interlocking pin through the aiming device. The interlocking pin drive shaft shears off as soon as the interlocking torque is achieved.
    4. Repeat this procedure for the distal interlocking pin.
  11. Perform the diaphyseal osteotomy.
    1. Attach the saw guide to the aiming device on the lateral side between the two interlocking pins. Then, saw the bone with the Gigli saw under continuous irrigation with saline. After the osteotomy is completed, cut the saw at one end, close to the bone. Remove the saw carefully to avoid causing damage to the soft tissue.
  12. Remove the aiming device and, with the small pincers, clip off the remaining shaft of the intramedullary nail at the marked line.
  13. Close the muscle layers at the lateral site of the femur and perform the skin closure with single sutures. At the anterior site of the knee, reposition the patella and fix the patella tendon to the muscles with one single suture. Use single sutures to close this wound as well.
  14. Keep the animals under the heat lamp until they recover from anesthesia. Do not leave the animals unattended until they have regained sufficient consciousness to maintain ventral recumbency. Return the animals to single cages in the animal facility. 
  15. Monitor the animals carefully every day. Maintain postoperative analgesia during the first three days. Continue analgesia if, on day 4 after surgery, the animals still show evidence of pain, as indicated by vocalization, restlessness, lack of mobility, failure to groom, abnormal posture, and lack of normal interest in surroundings. Terminate analgesia when the animals are pain free.

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Results

The overall time for the surgical procedure was about 30 min from skin incision to wound closure. Using the surgical implants provided, surgery can be performed without a stereo-microscope. Postoperatively, the animals were monitored daily. Post-operative analgesia was terminated after 3 days because none of the animals showed evidence of pain (vocalization, restlessness, lack of mobility, failure to groom, abnormal posture, or lack of normal interest in surroundings) after this time peri...

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Discussion

The most critical steps of the surgical technique are the correct positioning of the nail, the aiming device, and the pins. The nail has to be inserted completely to the marked indent at the distal end of the nail, because a protrusion of the nail into the knee joint at the level of the condyles can restrict the movement of the knee (Figure 3 A). Therefore, the size of the femur and, accordingly, the body weight of the animals, must be considered. The surgeon should also pay special attention to the fina...

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Disclosures

Romano Matthys is an employee of RISystem AG, Davos, Switzerland, which produces the implants and implant-specific instruments. The other authors have no conflicts of interest.

Acknowledgements

This work was supported by RISystem AG, Davos, Switzerland.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
MouseNailRISystem AG221,122
MouseNail aiming deviceRISystem AG221,201
MouseNail interlocking pinRISystem AG221,121
Centering bitRISystem AG592,205
Drill bitRISystem AG590,200
Gigli wire sawRISystem AG590,100
Suture (5-0 Prolene)Ethicon8614H
ForcepsBraun Aesculap AG &CoKG BD520R
Dressing forcepsBraun Aesculap AG &CoKG BJ009R
ScissorsBraun Aesculap AG &CoKG BC100R
Needle holderBraun Aesculap AG &CoKG BM024R
24 G needleBD Mircolance 3304100
27 G needleBraun Melsungen AG9186182
Scalpel blade size 15Braun Aesculap AG &CoKG 16600525
PincersKnipex7932125
Heat radiatorSanitas605.25
Depilatory creamAsid bonz GmbHNDXZ10
Eye lubricantBayer Vital GmbH2182442
XylazineBayer Vital GmbH1320422
KetamineSerumwerke Bernburg7005294
TramadolGrünenthal GmbH2256241
Disinfection solution (SoftaseptN)Braun Melsungen AG8505018
CD-1 miceCharles River22

References

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Tags

Femur OsteotomyMouse ModelSurgical TechniqueInterlocking PinOsteotomy GapBone SubstituteRadiological AnalysisHistological Analysis

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