Bone screw for the treatment of bone collapses or deformations, in the case of the Charcot foot, and insertion instrument of anti-migration elements into the bone screw
12108971 ยท 2024-10-08
Assignee
Inventors
Cpc classification
A61B17/1725
HUMAN NECESSITIES
F16B35/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B17/888
HUMAN NECESSITIES
A61B2017/8655
HUMAN NECESSITIES
A61B17/8605
HUMAN NECESSITIES
A61B17/863
HUMAN NECESSITIES
International classification
A61B17/17
HUMAN NECESSITIES
A61B17/86
HUMAN NECESSITIES
A61B17/88
HUMAN NECESSITIES
Abstract
A bone screw for Charcot foot includes a non-threaded intermediate portion between threaded tip and head portions. The intermediate portion is longer than the tip and head portions. The head portion has an outer diameter larger than the intermediate and tip portions. The screw includes at least one transverse hole on the intermediate portion with a circular cross-section which is arranged for inserting a pin to prevent migration of the screw. The screw includes a helical groove on the intermediate portion. The head portion is removably coupled to the intermediate portion by a shape coupling between two profiles which allows only one relative coupling orientation or at least two relative coupling orientations rotated by a specific angular distance with respect to each other. The head portion is coupled to the intermediate portion by a shape coupling between two profiles comprising a radial groove and a radial relief.
Claims
1. An improved bone screw for the treatment of bone collapses and deformations in the case of the so-called Charcot foot, comprising a non-threaded intermediate portion spaced between a tip portion and a head portion both of which being externally threaded; wherein the non-threaded intermediate portion is longer than the tip portion; wherein the non-threaded intermediate portion is longer than the head portion; said head portion having an outer diameter larger than said intermediate portion and said tip portion; said head portion having a head seat for coupling a tightening device; said bone screw further comprising at least one transverse hole on the non-threaded intermediate portion, said transverse hole having a circular cross-section at both its inlet and outlet and being arranged for inserting a corresponding at least one pin to prevent the migration of said bone screw when implanted into the bone; said bone screw further comprising a helical groove on the non-threaded intermediate portion; wherein said head portion is removably coupled to said intermediate portion; wherein said head portion is coupled to said intermediate portion by means of a shape coupling between two profiles, which allows only one relative coupling orientation or at least two relative coupling orientations rotated by a specific angular distance with respect to each other; wherein said head portion is coupled to said intermediate portion by means of a shape coupling between two profiles comprising a radial groove and a radial relief adapted to be inserted within said radial groove.
2. The bone screw according to claim 1, wherein said shape coupling between two profiles allows two relative coupling orientations rotated by 180? with respect to each other.
3. The bone screw according to claim 1, wherein one of said head portion and said intermediate portion has a female element with the radial groove; the other between said head portion and said intermediate portion having at least one male element with the radial relief adapted to be inserted within said radial groove when the shape coupling between said male element and said female element is achieved defining two relative coupling orientations rotated by 180? with respect to each other.
4. The bone screw according to claim 1, wherein one of said head portion and said intermediate portion has a female element defining a polygonal seat, at least a face of said polygonal seat comprising a radial groove; the other between said head portion and said intermediate portion having at least one male element defining a polygonal profile adapted to engage in said polygonal seat, at least a face of said polygonal profile having an elongated radial ridge adapted to slide within the radial groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(20) With reference to said figures, and particularly to
(21) The following description is made with reference to the use of said application in the context.
(22) Said bone screw 1, 1 has a substantially cylindrical shape and is preferably cannulated, so as to allow the guided insertion into the bone by means of a guidewire. As it can be noticed from the enclosed figures, the bone screw 1, 1 is made up of three consecutive portions, which are axially arranged: an intermediate portion 2 spaced between a tip portion 3 and a head portion 4.
(23) The head portion 4 has an outer helical threading and an outer diameter greater than that of the other two portions 2, 3. The head portion 4 further comprises a hexagonal-hollowed head seat 5 for axially coupling with a tightening device. The head seat 5 has an inner profile wherein a radial recess 5a is formed (see
(24) The tip portion 3 as well has an outer helical threading, in addition to a real bone screw tip 3a at the end having self-drilling features.
(25) Unlike the other two portions 3, 4, the intermediate portion 2 has no threading, but it can have a helical groove 14 to facilitate osseointegration.
(26) In a preferred embodiment, in the intermediate portion 2 at least one transverse through-hole 6 is formed, i.e. having hole axis orthogonal to the longitudinal axis of the bone screw 1, 1 and being accessible from two openings diametrically opposite to each other.
(27) The hole 6 is conceived to house a pin 7 inserted and blocked in the hole 6 once the bone screw 1, 1 has been implanted in position in the patient's foot. The bone screw 1, 1 is implanted in position in the bone according to a known procedure, as in the case of the prior art bone screws shown in
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(29) As it can be noticed from
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(32) As it can be noticed in
(33) In both the described embodiments, the bone screw 1, 1 has a head portion 4 removably coupled to a coupling end 19 of the intermediate portion 2 away from the tip portion 3. In particular,
(34) Alternative embodiments can obviously provide a head portion 4 made in one piece with the intermediate portion 2.
(35) With particular reference to
(36) As it can be noticed in
(37) At the coupling end 19 of the intermediate portion 2 a hollow hexagonal-section female element 8 adapted to receive the male element 10 of the head portion 4 is formed. The female element 8 has a radial groove 9 to receive the relief 11 when the male element 10 is introduced in the female element 8.
(38) The shape coupling just described, in addition to blocking the relative rotations, allows a unique relative coupling orientation between the intermediate portion 2 and the head portion 4. In fact, the coupling can only be carried out if the male element 10 is introduced into the female element 8, which is oriented so as to make the relief 11 slide within the groove 9. This does not exclude alternative embodiments wherein more than one relative coupling orientations rotated by a specific angular distance with respect to the each other are allowed.
(39) In a preferred embodiment the advancement and fixing of the head portion 4 within the intermediate portion 2 are achieved by means of a tightening element 12.
(40) The tightening element 12 is defined by a screw having a head 15 and a stem 16 that is partially threaded close to the tip 17. At the joint with the under-head, the stem 16 has a radial recess 16a that determines a localized reduction of the diameter of the stem 16 itself. Between the recess 16a and the threading the stem 16 is slightly tapered to facilitate the assembly with the head portion 4.
(41) As it can be noticed in
(42) Prior to proceeding with the coupling between the head portion 4 and the intermediate portion 2, the tightening element 12 is assembled to the head portion 4 since it is inserted through the head seat 5 in the axial channel 13 until the under-head of the head 15 abuts onto the inclined surface 13b and the tip 17 exits from the opposite end. The stem 16 is press-fitted until it goes past the tooth 13d that is housed within the recess 16a, axially blocking the tightening element 12 within the axial channel 13. The tightening element 12 is suitably dimensioned so as to be able to freely rotate about its own axis when inserted in the axial channel 13.
(43) Once the tightening element 12 has been assembled to the head portion 4 as shown in
(44) The present invention further comprises an insertion instrument for the guided insertion of the pins 7 into the holes 6 of the bone screw 1, 1 once the bone screw 1, 1 has been implanted into the patient's foot.
(45) In the rest of the description a preferred embodiment of the insertion instrument, indicated with reference number 20 and wholly represented in
(46) The insertion instrument 20 comprises a centering device 50 axially coupled to a tightening device 30.
(47) The tightening device 30 is defined by a substantially cylindrical bar 34 having a hexagonal-section tightening tip 35 at an end and a tightening handle 36 at the opposite end.
(48) The tightening tip 35 has a hexagonal profile with a radial projection 37. The tightening tip 35 is dimensioned to be introduced into the head seat 5 of the bone screw 1 with a determined relative orientation such as to make the projection 37 slide within the recess 5a of the head seat 5 during the coupling.
(49) In this way a shape coupling is achieved which, in addition to blocking the relative rotations, allows a unique relative coupling orientation between the head portion 4 of the bone screw 1 and the tightening tip 35 of the tightening device 30. This does not exclude alternative embodiments wherein more than one relative coupling orientations rotated by a specific angular distance with respect to the each other are allowed.
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(51) Along the bar 34 two elongated, parallel and diametrically opposite flattenings 31 are formed, which have centering seats 33. The centering seats 33 belong to the fastening means 32 used to removably fasten the centering device 50 to the tightening device 30, as it will become clearer in the rest of the description.
(52) The centering device 50 is substantially L-shaped comprising a first part 54, elongated in the direction of a first part axis X, whereon an alignment through-opening 51 is formed having opening axis Y orthogonal to the first part axis X. The centering device 50 further comprises a second part 55 jointing the first part 54 to a third part 56 arranged to be coupled to the bar 34 of the tightening device 30.
(53) The third part 56 is essentially U-shaped with a cavity 58 elongated in a direction parallel to the first part axis X and delimited by the second part 55 and by two parallel arms 57. Each arm 57 has an inner flat surface 52, facing the cavity 58 and lying on a plane parallel to the plane identified by the axes X and Y, and an outer surface 59 opposite and parallel to the corresponding flat surface 52. Each arm 57 also has orifices 60 that transversally pass through the arm 57 extending from the inner flat surface 52 to the outer surface 59.
(54) In
(55) The distance between the flat surfaces 52 is such as to allow the bar 34 of the tightening device 30 to be introduced into the cavity 58, placing each flat surface 52 in contact with the corresponding flattening 31 of the tightening device 30 so that, when the centering device 50 is coupled to the tightening device 30, the first part axis X is arranged parallel to the axis of the tightening device 30 and therefore to the axis of the bone screw 1.
(56) Moreover, the axial position of the flattenings 31 along the bar 34 of the tightening device 30 in relation to the length of the first part 54 and the angular orientation of the flattenings 31 with respect to the bar axis 34 are suitably defined so that the opening axis Y of the alignment opening 51 be perfectly coaxial to the axis of the hole 6 into which the pin 7 is intended to be introduced when the centering device 50 is coupled to the tightening device 30, which is in turn coupled to the head portion 5 of the bone screw 1. Once the couplings have been properly defined, the above coaxiality is maintained even during the rotation of the tightening device 30 since the centering device 50 and the bone screw 1 are constrained to rotate in phase with the tightening device 30 itself.
(57) In
(58) The insertion instrument 20 further has snap fastening means 32 for removably blocking in position the centering device 50 when coupled to the tightening device 30.
(59) The fastening means 32 comprise return elements 53 introduced through the outer surface 59 into the orifices 60 until they project from the flat surface 52. The return elements 53 are arranged to be snap fitted into the corresponding centering seat 33 of the tightening device 30 when the flat surfaces 52 of the centering device are placed in contact with the flattenings 31 of the tightening device 30 so as to align the return elements 53 to the corresponding centering seats 33.
(60) In the preferred embodiment described, the return elements 53 consist of spring pressers provided at one end with a ball 61 which, when the return elements 53 are completely inserted in the orifice 60 and the centering device 50 is decoupled from the tightening device 30, project from the flat surfaces 52 within the cavity 58 (see
(61) The bone screw and the insertion instrument according to the invention solve the technical problem and achieve several advantages.
(62) Advantageously, the described bone screw has at least one hole for inserting a pin, which, by transversally projecting, torsionally and axially constrains the screw to the surrounding bone, thus hindering the migration of the screw itself during the treatment.
(63) Advantageously, the insertion instrument allows inserting the pins in a guided manner once the bone screw has already been implanted.
(64) A further advantage consists in the fact that the insertion instrument allows a closed-sky insertion of the pins, i.e. the surgeon needs to make an incision having reduced dimensions, thus minimizing the risk of infection.