The present invention relates to a bone nail device, fixable to at least two parts of an elongate bone and having two parts which can move relative to another in an axial direction. The bone nail device can be utilized to move two bone parts relative to each other, e.g. for use during a bone fracture recovery or other treatments for bone extension, bone compression and/or bone transport.
International patent publication WO98/30163 discloses a distraction device for moving apart two bone sections, in particular for extending bones or bridging a gap in a bone. The distraction device has an intramedullary nail which can be introduced into the medullary space of a bone and comprises two parts which can be moved axially and can each be secured to one of the two bone sections. The distraction device further has a drive unit that drives a drive shaft, and a device for converting the rotational movement of the drive shaft into a relative axial movement of the two parts of the intramedullary nail. The drive shaft drives planetary rollers which are held on orbits on which they engage by means of drive grooves provided on their outer periphery in corresponding drive grooves in a hollow body surrounding the planetary rollers.
The present invention seeks to provide a bone distraction device for improved bone extension, bone compression and/or bone transport, based on a bone nail device comprising an inner tube being arranged inside an outer tube.
According to the present invention, a bone nail device is provided, comprising an outer tubing having an inner screw thread extending over at least a part of an inner surface of the outer tubing, and a first bone connection member, an inner tubing having a second bone connection member, the inner tubing being arranged inside at least a part of the outer tubing to allow a sliding axial relative movement (e.g. by having an outer diameter of the inner tubing being smaller than an inner diameter of the outer tubing), and a drive unit. The drive unit comprises a drive motor fixedly attached to the inner tubing, a transport screw having an outer screw thread engaging the inner screw thread of the outer tubing, and a planetary gear having an input end connected to the drive motor and an output end connected to the transport screw. The present invention embodiments have the advantage that it is possible to integrate the drive parts (drive motor, transport screw and planetary gear) within the bone nail device and moving along with the inner tubing, allowing to use minimal dimensions, as low as possible complexity and ease of placement in many bone surgery applications. Furthermore, a sufficient high load may be applied, depending on the exact application of the bone nail device. Operation of the bone nail device is possible after placement without obstruction or interfering with tissue surrounding the bone.
The present invention will be discussed in more detail below, with reference to the attached drawings, in which
Distraction osteogenesis, also known as bone distraction, is a well-established surgical procedure used for treating the skeletal system, and in particular, treatments relating to bone fractures or bone reconstruction. In bone distraction, two sections of a bone are separated at a specific distraction rate, where the distraction rate varies between 0 mm to a few mm per day. Due to the natural healing process, new bone is formed in the gap between the two sections, and the bone is consolidated.
Bone distraction can be used for the purposes of bone extension. For example, a patient may have an asymmetric pair of limbs, where one limb is longer than the other, originating from a discrepancy in the limb growth during maturity. In this case, extension of the shorter limb to match the longer limb is desirable. The shorter limb would be purposely fractured into two parts, and by using bone distraction, the two parts are separated to extend the limb until the desired length.
Similarly, bone distraction can be used for the purposes of bone transport. For example, a patient may have a bone infection originating from a previous fracture, leading to the infected part of the bone being removed. In this case, a gap in the bone may be present, and forming new bone in the gap is desirable. The bone would be purposely fractured, and by using bone distraction, the bone can be transported to fill the gap with the missing bone.
In further applications, it is necessary to keep two bone parts together under a specific compression force, in order to allow healing of a fracture under the right circumstances.
Given the well-established nature of bone distraction in the surgical field, a variety of devices are known in the art for bone extension, bone compression and/or bone transport purposes. Intramedullary nails are a common example of such devices. Typically, intramedullary nails are cylindrical, and are implanted within the medullary cavity of the bone. These devices can generally be characterised in having two or more parts, arranged coaxially in a telescope arrangement, where at least two parts of the device are connected to a part of a fractured bone. With use of a drive motor, the two or more parts of the intramedullary nail can be moved axially apart relative to one another, thereby performing bone extension, bone compression or bone transport.
Although intramedullary nails have been successfully used to perform bone distraction, these devices still have their drawbacks. For example, the need for adjustment of the length of the intramedullary nail after placement remotely requires the use of complicated drive arrangements. As such, there is a need in the art to overcome these drawbacks and provide a bone nail device having a drive arrangement of simple structure and reliable operation.
For other bone extension applications, all parts of the intramedullary nail may have to move from one another, extending the device and thus increasing the overall length of the device. Given the placement of the bone fracture and/or connection to the bone, this can limit with the desired length of the bone extension. Furthermore, the extension of the intramedullary nail may also not be sufficiently guided, where if a small misalignment is present, this can cause bone extension, bone compression or bone transport of an incorrect trajectory.
The present invention embodiments provide a bone nail device for improved bone distraction, allowing for bone extension, bone compression and/or bone transport. In further embodiments, reducing or at least lessening the requirements to the device dimensions (mainly the desired length) is accomplished, and in even further embodiments, bone extension, bone compression and/or bone transport can be accomplished with a guided trajectory, even with an arched or contoured trajectory.
In the bone nail device 1, in general the outer tubing 2 has an inner screw thread 2a extending over at least a part of an inner surface of the outer tubing 2, and the bone nail device 1 further comprises a drive unit comprising a drive motor 7 fixedly attached to the inner tubing 3, a transport screw 4 having an outer screw thread 4a engaging the inner screw thread 2a of the inner tubing 3, and a planetary gear 6 having an input end connected to the drive motor 7 and an output end connected to the transport screw 4. The configuration of the features as described, and their mechanical connections thereof, allows a sliding, axial movement of the inner tubing 3 relative to the outer tubing 2. Furthermore, the use of the transport screw 4 in this configuration obviates the need for an extension rod or spindle axis running along the entire length of the bone extraction nail device 1 when fitted with a spindle drive mechanism for extraction.
In the exemplary embodiment shown in
In the embodiment shown in
As the transport screw 4 is connected via the planetary gear 6 to the drive motor 7, and the drive motor 7 is fixedly attached to the inner tubing 3, this allows a sliding axial movement of the inner tubing 3 relative to the outer tubing 2 as result from a rotation of the transport screw 4.
In this regard, the inner tubing 3 may move either away from the outer tubing 2, i.e. the inner tubing 3 withdraws from the outer tubing 2, thereby extending the overall length of the bone device 1, or the inner tubing 3 may move towards the outer tubing 2, i.e. the inner tubing 3 slides into the outer tubing 2, thereby reducing the overall length of the bone nail device 1. These relative movements allow for bone extension, bone compression and/or bone transport. The movement of the inner tube 3 to extend or reduce the overall length of the bone nail device 1 depends on the handedness of the inner and outer screw threads 2a, 4a, and the direction of the rotation of the transport screw 4.
For example, the bone nail device 1, as shown in
In the embodiment shown in
Furthermore, the drive motor 7 is an electric motor in a further embodiment, which can be supplied with power via, for example, induction transfer such as wireless energy transfer. Other examples where the drive motor 7 can be supplied with power could be via a direct wired connection with an internal power storage component, such as a battery, implanted within the patient's body itself, or via a direct wired connection with an external power source in the external environment outside of the patient's body. Alternatively, the drive motor 7 could a magnetic motor driven by an external magnetic drive actuator. For example, the drive motor 7 may comprise a permanent magnet motor, where an externally applied alternating magnetic field can force the drive motor 7 into rotation.
In more general wording, the present invention embodiments relate to a bone nail device 1 for bone extension, bone compression and/or bone transport, comprising an outer tubing 2 having an inner screw thread 2a extending over at least a part of an inner surface of the outer tubing 2, and a first bone connection member 2b, an inner tubing 3 having a second bone connection member 3a, the inner tubing 3 being arranged inside at least a part of the outer tubing 2 to allow a sliding axial relative movement. The bone nail device 1 further comprises a drive unit, the drive unit comprising a drive motor 7 fixedly attached to the inner tubing 3, a transport screw 4 having an outer screw thread 4a engaging the inner screw thread 2a of the outer tubing 2, and a planetary gear 6 having an input end connected to the drive motor 7 and an output end connected to the transport screw 4. The first and second bone connection members 2b, 3a can be connected to at least two parts of a fractured bone, and by rotating the transport screw 4, the inner tubing 3 moves relative to the outer tubing 2, allowing at least one part of the fractured bone to move relative to at least one other part of the fractured bone, thereby performing bone extension, bone compression and/or bone transport. The drive unit can be accommodated entirely within the outer tubing 2, enabling a proper intramedullary positioning of the bone nail device 1, and unobstructed functioning once in position within a bone.
In the exemplary embodiments as shown in
The combination of the guiding slot 2d and the guiding pin 3b extending through the guide slot 2d, correctly aligns the sliding axial movement of the inner tubing 3 relative to the outer tubing 2, and as such, allows a correct trajectory of the bone nail device 1 with no misalignment, where the trajectory of the bone extension, bone compression and/or bone transport is determined by the trajectory of the guiding slot 2d. In addition, as the length of the bone nail device 1 does not change if the drive unit 4, 6, 7 applies a mutual movement of the inner tubing 3 and outer tubing 2, there is no interference with surrounding bone parts or other nearby tissue during use of the bone nail device 1.
In the embodiments shown in
In the exemplary embodiments shown in
Specifically, the exemplary embodiments shown in
For example, the bone nail device 1 shown in
In the exemplary embodiments shown in
In the exemplary embodiments shown in
In an embodiment, the curved guide slot 8a has a curvature with a radius larger than 500 mm, e.g. larger than 1000 mm. Note that a femur bone has a natural curved shape (e.g. with a curvature of 1700 mm), and this embodiment allows the movement when the bone nail device 1 is positioned in a secure manner, without risk of fracture of the (femur) bone. In an exemplary embodiment, the curved guide slot 8a has a curvature allowing movement of the inner tube 3 over the entire length of the curved section 8. If a difference delta between an inner diameter of the outer tubing 2 and an outer diameter of the inner tubing 3, divided by a length l of the curved section 8 is sufficiently large to accommodate for the curvature of curved guide slot 8a over that same length l, the inner tube 3 is able to extend over the full range of the length of the curved section 8. As shown in the embodiments of
In a further embodiment, the inner tubing 3 is flexible in a longitudinal direction thereof, allowing a better and less obstructed travel of the inner tubing 3 inside the curved section 8 of the outer tubing 2. E.g. the inner tubing 3 can be made of a flexible material to accomplish this effect, e.g. carbon, plastic, or fiber-reinforced material. If the diameter of the inner tubing 3 is sufficiently small, the flexibility may even be obtained when using (surgical) metals, such as stainless steel or titanium.
In the exemplary embodiments shown in
Otherwise, with the exception of the curved features just discussed, the embodiments discussed above for
The present invention has been described above with reference to a number of exemplary embodiments as shown in the drawings. Modifications and alternative implementations of some parts or elements are possible, and are included in the scope of protection as defined in the appended claims.
Number | Date | Country | Kind |
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2025981 | Jul 2020 | NL | national |
Filing Document | Filing Date | Country | Kind |
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PCT/NL2021/050411 | 7/1/2021 | WO |