Development of novel methods for femoral fracture risk assessment and fracture prevention for a fall on the hip require a comprehensive understanding of the biomechanical processes involved during fracture. Cadaveric proximal femur strength testing has proven to be effective in determining the relation between femoral strength and factors affecting the structural capacity of the femur providing important insights in this process1,2,3. Experimentally measured femoral strength is also used for validation of Quantitative Computed Tomography-based Finite Element Analysis (QCT/FEA) which enables a non-invasive estimate of fracture strength4,5,6,7.
To date, there is no accepted standard procedure to test whole femoral specimens to fracture. To isolate clinically-measureable variables (such as bone mineral density and geometry) and their influence on femoral strength, it is imperative for experimental testing to be carried out in a controlled and repeatable manner. Cadaveric femora have irregular shapes and range in sizes8 and can be obtained from either male or female cadavers of different ages, making it impossible to test using built-in fixtures of standard testing machines. In a sideways fall on the hip event, the greater trochanter undergoes compressive loading, while the proximal femur may experience complex loading including compression, tension, bending moment, and torsion. Testing such loading scenarios adds complexity to the experimental design. Therefore, a fixture, as one important component of the testing protocol, must be specifically designed, fabricated, and installed to accommodate femoral samples of different shapes and sizes, and different testing speeds. This fixture must also hold the specimens for testing in a range of desired orientations to simulate possible impact loads from a fall on the hip. To meet such a variety of conditions, the fixture needs to have multiple stationary and moving components connected in a manner to minimize play in the system and to obtain a smooth load-displacement response.
Reliable data acquisition is also critical during testing. The experimental design must incorporate the necessary load cells, displacement transducers, signal amplifiers and conditioners to accurately measure forces and moments at all supports. Additionally, high speed videos of both the anterior and posterior views of the femur obtained synchronously with the acquisition of forces are necessary to help understand the sequence of events leading to fracture, characterize fracture types, and precisely define femoral strength4,9.
While there are valuable experimental studies in the literature on whole femur testing, published protocols either lack details on how the testing was performed or are very different from one study to another to truly make them reproducible10,11. The goal of the current work was to introduce a protocol for mechanical testing of femoral samples that can be used as the starting point for an effort to standardize bone tissue testing which can be repeatable and reproducible. To this end, we designed and fabricated a testing fixture which was used to test about 200 cadaveric femora. The testing fixture included a bottom fixture and a crosshead fixture. The bottom fixture (Figure 1A-E) holds the femur at a desired orientation during testing and includes a trochanter load cell and a 6-channel load cell connected to the femoral shaft. It also accommodates three independent translations to allow for positioning of the bone for fracture testing. A rotation point is added to mimic the knee joint. The major parts of the bottom fixture were made up of thick pieces of stainless steel and aluminum to make a very stiff fixture. A load cell is attached to the bottom fixture to measure compressive forces on the greater trochanter during testing. The crosshead fixture (Figure 2A-2E) includes two aluminum base plates and two very stiff slide ball bearings (attached together by an aluminum plate), to account for the movement of the femoral head during testing and also to accommodate for right and left femora. A load cell included in the crosshead fixture measures compressive forces. An aluminum cup attached to the load cell is used to apply the compressive loads to the femoral head. Our method was used for left and right femora of both sexes, with various sizes, neck-shaft angles, bone mineral density, and loading conditions mimicking a sideways fall on the hip. The testing speeds in our experiments were set at 5, 100, and 700 mm/s, but they can be set to any value available on the testing machine. The designed fixture had two main components, one connected to the crosshead of the testing machine and the other connected to the testing frame. Both parts were instrumented with load cells sufficient to measure force and moment boundary conditions at all supports. Additionally, two high-speed video cameras were used to record the fracture events during testing. After fracture, a set of X-rays and Computed Tomography (CT) scans were obtained for post experimental fracture analyses. Results obtained from these experiments including fracture strength and energy are currently used for additional research in diagnostic tools to eventually improve the assessment of proximal fracture strength in osteoporotic patients.