AUTONOMOUS CONTROL AND LENGTHENING SYSTEM FOR TUMOR PROSTHESIS
20220117637 · 2022-04-21
Assignee
Inventors
Cpc classification
A61B2017/00221
HUMAN NECESSITIES
A61B2017/00411
HUMAN NECESSITIES
A61B2017/00398
HUMAN NECESSITIES
International classification
Abstract
A bone lengthening system for tumor prostheses includes a prosthesis, wherein the prosthesis includes an internal battery arranged for a wireless charging; the bone lengthening system further includes an extendable mechanism connected to the prosthesis and the extendable mechanism is arranged to be lengthened for, when in use, bringing a length of a limb provided with the prosthesis to a value corresponding to a length of a healthy limb based on healthy limb length data.
Claims
1. A bone lengthening system for tumor prostheses, comprising a prosthesis and an extendable mechanism, wherein the prosthesis comprises an internal battery arranged for a wireless charging: the extendable mechanism is connected to the prosthesis and arranged to be lengthened via an adjusting means for altering a length of a limb provided with the prosthesis based on healthy limb length data; the extendable mechanism has a telescopic structure by comprising two tubes, wherein the two tubes are coaxially arranged and slidable relative to each other along an extension axis; and the prosthesis is provided with a sensor, wherein the sensor is suitable for measuring the length of the limb provided with the prosthesis: the sensor is arranged to determine momentary positions of the two tubes relative to each other and generate a data signal based on relative positions corresponding to the length of the limb provided with the prosthesis; the prosthesis comprises an internal control unit arranged to receive a communication of the data signal corresponding to the length of the limb provided with the prosthesis; and the bone lengthening system further comprises an external control unit and an external sensor for being externally arranged onto a healthy limb for measuring and tracking the healthy limb length data to be communicated to the external control unit.
2. (canceled)
3. (canceled)
4. (canceled)
5. The bone lengthening system according to the claim 1, wherein the internal control unit comprising sensors for gathering information on one or more prosthesis-related physical values selected from a list consisting of an extent of lengthening, a temperature, a battery charge level and information on a patient posture situation; and the internal control unit is arranged to communicate the information on the one or more prosthesis-related physical values to the external control unit; the external control unit is arranged to communicate a command for altering the length of the limb provided with the prosthesis, to the internal control unit.
6. The bone lengthening system according to claim 1, wherein the external sensor is arranged to, when approximated to the healthy limb, communicate with further sensors corresponding to lower and upper distal ends of the healthy limb to determine the healthy limb length data and then communicate the healthy limb length data to the internal control unit via the external control unit.
7. The bone lengthening system according to claim 1, wherein the external control unit is arranged to provide information and guidance to a user for a commencement of the altering of the length of the limb provided with the prosthesis.
8. The bone lengthening system according to claim 1, wherein the bone lengthening system is arranged to determine a time for altering the length of the limb provided with the prosthesis based on the healthy limb length data, and to generate a warning signal accordingly; and the bone lengthening system is further arranged to communicate the warning signal over a visual and/or audial interface.
9. The bone lengthening system according to the claim 8, wherein the bone lengthening system is arranged to trigger the altering of the length of the limb provided with the prosthesis at a time after a generation of the warning signal.
10. The bone lengthening system according to claim 1, wherein the extendable mechanism comprises an artificial knee joint and one of the two tubes is connected to a femur, and a portion of the artificial knee joint is connected to a tibia; the adjusting means comprises a motor, a spindle drive and an encoder; wherein the motor is arranged to move the two tubes relative to each other via the spindle drive.
11. The bone lengthening system according to claim 1, comprising a measuring means, wherein the measuring means comprises transmitters for being aligned at two distal ends of a bone at the healthy limb of a patient, for measuring a distance between the two distal ends by externally sensing a momentary situation of the measuring means by the external sensor, and for then generating the healthy limb length data for being communicated to the external control unit.
12. The bone lengthening system according to claim 1, wherein the external control unit is arranged to specify a difference between a healthy limb length and the length of the limb provided with the prosthesis.
13. The bone lengthening system according to the claim 12, wherein the bone lengthening system is arranged to guide a patient by commands once a difference is specified to be above a pre-determined value.
14. The bone lengthening system according to claim 1, wherein the internal battery is disposed inside the prosthesis.
15. The bone lengthening system according to claim 5, wherein the external sensor is arranged to, when approximated to the healthy limb, communicate with further sensors corresponding to lower and upper distal ends of the healthy limb to determine the healthy limb length data and then communicate the healthy limb length data to the internal control unit via the external control unit.
16. The bone lengthening system according to claim 5, wherein the external control unit is arranged to provide information and guidance to a user for a commencement of the altering of the length of the limb provided with the prosthesis.
17. The bone lengthening system according to claim 6, wherein the external control unit is arranged to provide information and guidance to a user for a commencement of the altering of the length of the limb provided with the prosthesis.
18. The bone lengthening system according to claim 5, wherein the bone lengthening system is arranged to determine a time for altering the length of the limb provided with the prosthesis based on the healthy limb length data, and to generate a warning signal accordingly; and the bone lengthening system is further arranged to communicate the warning signal over a visual and/or audial interface.
19. The bone lengthening system according to claim 6, wherein the bone lengthening system is arranged to determine a time for altering the length of the limb provided with the prosthesis based on the healthy limb length data, and to generate a warning signal accordingly; and the bone lengthening system is further arranged to communicate the warning signal over a visual and/or audial interface.
20. The bone lengthening system according to claim 7, wherein the bone lengthening system is arranged to determine a time for altering the length of the limb provided with the prosthesis based on the healthy limb length data, and to generate a warning signal accordingly; and the bone lengthening system is further arranged to communicate the warning signal over a visual and/or audial interface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The figures brief explanation of which is herewith provided are solely intended for providing a better understanding of the present invention and are as such not intended to define the scope of protection or the context in which said scope is to be interpreted in the absence of the description.
[0011]
[0012]
[0013]
[0014] Referring to the figures outlined before, the present invention is disclosed below in details. The reference numbers used in the figures are listed as: [0015] 1. extendable mechanism [0016] 11. knee joint [0017] 12. outer tube [0018] 13. inner tube [0019] 2. combination of motor drive, motor, spindle drive and encoder [0020] 21. motor drive/reductor [0021] 22. motor [0022] 23. spindle drive (rotatable driving member) [0023] 24. encoder [0024] 3. internal control unit [0025] 4. external control unit [0026] 5. external sensor (e.g. wearable sensor) [0027] 6. charging unit [0028] 7. (internal-) battery [0029] 8. (user) [0030] 100. system [0031] 101. electrical energy [0032] 102. battery voltage [0033] 103, 104. information—command [0034] 105. extension signal [0035] 106. length change [0036] 107. healthy limb length [0037] 108. data signal (prosthesis length) [0038] 201. healthy limb [0039] 202. prosthesis [0040] 203. healthy limb [0041] 204. extending module
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0042] For eliminating the shortcomings mentioned in the above “background” section, an extendible, motor-driven, intelligent tumor prosthesis (system, 100) is developed. An important difference of the system proposed in the present invention from those mentioned in the background section, is that the system according to the present invention is autonomous.
[0043] In the system (100) according to the present invention, a battery (7) is employed. Said battery (7) can be an internal battery (battery, 7) which can be for example disposed inside a tumor prosthesis (prosthesis, 202) in the system (100). The battery (7) is suitable for being charged by an external energy source without necessitating to be brought to mechanical contact therewith. For instance, said battery (7) can be suitable for being charged in a “wireless” fashion.
[0044] Further, an external sensor (5) unit is proposed within the context of the present invention, for measuring length of a healthy limb. Said external sensor (5) unit is preferably arranged to be wearable. The system (100) according to the present invention is arranged for a machine-learning-based estimation of a healthy limb length and a patient posture situation, based on measurements provided by the external sensor (5).
[0045] A patient with a prosthesis (202) on a limb, can wear the external (e.g. wearable) sensor (5) unit on another, healthy limb (201) (e.g. in the case where a femur is provided with a prosthesis, onto the leg of the other femur); and enables the tracking of a “length of the healthy limb” data obtained therefrom. Said length of the healthy limb data can be communicated to an “external control unit” (4).
[0046] The system (100) further comprises an extendable mechanism (1) connected to the prosthesis (202). Said extendable mechanism (1) is suitable for being extended to bring the length of the limb provided with the prosthesis, based on the length of the healthy limb, to a value substantially equal to the length of the healthy limb. The extendable mechanism (1) can have a telescopic structure. For the sake of being lightweight, the extendible mechanism (1) can comprise two coaxially arranged tubes (pipes) (12 and 13) which are slidable relative to each other along an extension axis.
[0047] The prosthesis (202) can be provided with a sensor which is suitable for measuring the length of a limb (108) which is provided with said prosthesis. The sensor can determine momentary positions of said two tubes (12 and 13) relative to each other. A data signal (108) can be generated based on said relative positions, and then can be communicated to e.g. an “internal control unit” (3). The length of the limb provided with the prosthesis can be thus measured by calculation based on the magnitude of said data signal (108) which is based on said relative positions.
[0048] The prosthesis (202) can be provided with a feature arranged to make a comparison between the healthy limb length (107) and the length (108) of the limb provided with the prosthesis, and to then determine a “difference data” showing the difference between the healthy limb length and the length (108) of the limb provided with the prosthesis (i.e. how much the length (108) of the limb provided with the prosthesis should be altered—e.g. extended—). Hence, it can be determined how much the length (108) of the limb provided with the prosthesis is to be (ultimately) altered.
[0049] The prosthesis (202) is provided with an adjusting means for arranging the length of the extendable mechanism (1), to bring the length (108) of the limb provided with the prosthesis to a value equal to or closer to the healthy limb length (107), based on data related to the healthy limb length (107) and the length (108) of the limb provided with the prosthesis, e.g. based on the difference data. Said adjusting means can include a motor drive (21), a motor (22), a spindle drive (23)(rotatable driving means) and an encoder (24) altogether.
[0050] Thus the system (100) can alter (e.g. lengthen) the length of the prosthesis (20) based on the healthy limb length (107), without necessitating a visit to a medical facility. Furthermore, this procedure can be performed much more often with regard to the intervals applied in the present state of the art; and thus the differences in the prosthesis (202) lengths can be very small when compared with those encountered in the present state of the art, at each time when the length (108) of the limb provided with the prosthesis is to be updated i.e. altered. The number of necessary visit to medical facilities is thus minimized, the extent of discomfort related to the pain to which the patient is subjected to is decreased, the patient comfort is enhanced, the lengthening procedure is facilitated, and the work load of the physicians is minimized.
[0051] The system (100) can be arranged to determine a time for altering the length (108) of the limb provided with the prosthesis (e.g. based on the length (107, 108) data mentioned above or on the difference data), and to generate a warning signal accordingly. Said warning signal can be communicated over a visual and/or audial interface. The system (100) can be arranged for triggering of the function of altering the length (108) of the limb provided with the prosthesis, at a time preferred by the patient or at a time which suits to the patient, after said generation of the warning signal.
[0052] For better understanding of the preferred embodiments according to the present invention, the following example is provided:
Example
[0053] In an exemplary embodiment, the system (100) according to the present invention can include the following features: [0054] The extendable mechanism (1) enables a longitudinal extension of the prosthesis (202). The extendable mechanism includes coaxial tubes (12 and 13). [0055] Combination of the motor drive (21), motor (22), spindle drive (23) and encoder (24): enables the longitudinal extension of the extendable mechanism (1) at a stride length and with a sufficient extent of power, and the measurement of a momentary length. The known, state of the art extendable prostheses include a magnetic rotor and screw-nut mechanisms communicating the motion of said rotor to the extendable mechanism, and such mechanisms can be considered as a primitive version of the spindle drive unit. Yet, the measurement of the lengthening from the inside of the tumor prosthesis by the encoder (24) has not ever been put into practise with known interbody implants (including known tumor prostheses) prior to the present invention. [0056] The internal control unit (3) is the main controlling means of the system (100). It makes the system (100) function, by using information collected from other features of the system, and by generating commands accordingly. For the first time, a central controlling unit is established in a tumor prosthesis. [0057] The external control unit (4) enables communication between the system (100) and the user, and between the system (100) and the wearable sensor (5). The external control unit determines whether an extension is necessary, and communicates an extension command to the internal control unit (3). [0058] The wearable sensor (5) uses sensors therein and thereby enables the measuring of the healthy limb length (107). Hence, the measurement of a part inside the body (e.g. the length of a femur) can be achieved using a sensor. [0059] Charging unit enables the charging of the battery (7) (which in use remains within the patient's body), by a charge control module and charge coils inside said charging unit.
[0060] The diagram shown in the
[0069] The system (101) can measure a healthy limb length (107) of the patient, and can autonomously make a decision to lengthening upon comparing said healthy limb length with the length (108) of a limb provided with the prosthesis. The prosthesis (202) can be arranged to be suitable for provide measurements such as an extent of lengthening, temperature, internal battery charge level and prosthesis position information, when an internal control unit (3) suitable for being placed inside e.g. a knee joint is in operation.
[0070] The external sensor (5) can be arranged as a wearable sensor. The external sensor is suitable for being approximated to a healthy limb (201) by a user (8) (e.g. a patient), e.g. by tying in the case where the external sensor is wearable. By communication of sensors corresponding to lower and upper distal ends of a healthy limb (201) (e.g. femur) with the wearable sensor (5) unit, the healthy limb length (107) can be determined and then communicated to the internal control unit (3) via the external control unit (4). If necessary and if the conditions are suitable, the lengthening operation can be commenced by informing and guiding the patient as user. It is preferred that a daily lengthening step length of the extendable mechanism (1) is limited to 1 mm, to allow healing of a soft tissue at a related treatment zone and to allow entrance of muscles to a relaxation phase. Thus, a comfortable and safe limb lengthening can be achieved without necessitating to visit a clinical facility.
[0071] An exemplary use of the system (100) according to the present invention can include the following features. [0072] a) The prosthesis (202) can be implanted into a bone of a patient. For instance, a tutored part of a femur of a pediatric patient can be surgically removed along with the corresponding knee joint and growth plate, and replaced with the prosthesis of the system according to the present invention. [0073] b) A measuring means can be employed for following the healthy limb length (107) which pairs the limb provided with the prosthesis. For instance, transmitters can be aligned at two distal ends of a bone (in this example: femur) at the healthy limb, for measuring a distance between said distal ends. This procedure can be conducted simultaneous to the surgical operation at the step (a). [0074] c) A healthy limb length data can be obtained via a sensor which is arranged to externally sense a momentary situation of the measuring means which is mentioned in the step (b). For instance, periodically, the patient as user can externally tie a wearable, external sensor (5) onto his healthy limb, being guided step-by-step by an external control unit. Once the sensors and transmitters are aligned with each other, e.g. by approximately being faced with each other, the healthy limb length (107) data gets generated, e.g. the length sensor communicates a measured value to an external control unit (4). [0075] d) An internal control unit (3) can be arranged to keep a prosthesis (202) momentary length information or a length (108) information of a limb provided with the prosthesis in a memory thereof, using an encoder (24) which is possibly provided in the structure of the prosthesis (202). Such information can be communicated to the external control unit (4). [0076] e) The external control unit (4) can be arranged to specify a difference between the healthy limb length (107) and the length (108) of the limb provided with the prosthesis. The system (100) can be arranged to guide the patient by commands and thereby prepare the patient for a lengthening procedure, once the difference is specified to be above a pre-determined value, e.g. by the structure of the external control unit (4) being arranged accordingly. [0077] f) The external control unit (4) can be arranged to, by receiving prosthesis sensor information (e.g. temperature, patient posture situation, internal battery charge level) from the internal control unit (3), commence/trigger a lengthening procedure in the case where the conditions are suitable.
[0078] Preferable embodiments of the system (100) according to the present invention can be arranged to provide one or more of the following advantageous technical effects: [0079] Provision of measurement of a length (107) of a bone in a healthy limb of a patient (e.g. the length of the femur in a healthy leg of the patient). [0080] Provision of measurement of a momentary length (108) of the prosthesis without bringing discomfort to the patient. [0081] The system can be equipped for measuring the posture situation of the patient via an AHRS sensor and machine learning (e.g. by including an accordingly pre-programmed controller), in order to avoid that a lengthening procedure is conducted when the patient is standing. [0082] The system can centrally control and decide thanks to the internal control unit (3) and external control unit (4), thus can function in an autonomous fashion. [0083] The prosthesis (202) can include a temperature measuring means for measuring an internal temperature of said prosthesis, for protecting the same from dangerous temperature levels. [0084] The internal battery (7) can be provided with a sensor, for measuring momentary charge level thereof. [0085] The internal battery (7) can be arranged to allow (externally, or remotely) recharging in a wireless fashion.