This disclosure relates to devices, instruments, apparatuses, and methods for performing subcutaneous and percutaneous surgery, more particularly, to devices, instruments, apparatuses, and methods for performing minimally invasive spinal surgery.
Patients suffering from orthopedic injuries, deformities, or degenerative diseases often need surgery to stabilize an internal structure, promote healing, or relieve pain. Surgeries to correct spinal problems often involve placing implants such as braces, rods, and various implants between one or more of the patient's vertebrae, anchored into the vertebrae pedicles by screws or hooks. Traditional surgical procedures to correct injuries, defects, and/or abnormalities of the spine have heretofore been substantially invasive. In addition to trauma to the nerves and tissue surrounding the incision, traditional invasive procedures pose significant risk of damage to vital intervening tissues and major muscles and ligaments of the back. The resulting trauma to the tissue and nerves generally requires long recovery periods for the patient and a significant amount of pain experienced during such recovery.
Recently, minimally invasive procedures and micro-surgical procedures have been developed for correction of spinal injuries, defects, and/or abnormalities. These procedures generally involve cutting a small channel down to the affected spinal area and inserting micro-surgical instruments including rod reduction devices into the channel or by using cannulas and the like for receiving instruments therein. Implant engaging instruments such as extensions from the implants may be used for adjustment and manipulation of the implants after the implants have been placed into the bony structures. These percutaneous, minimally invasive and micro-surgical procedures generally cause less disruption to surrounding and intervening tissues and muscles and therefore result in a quicker and less painful recovery period.
Many minimally invasive procedures are practiced for inserting spine stabilization systems to correct defects of the spine. Most spine stabilization systems require implanting bone anchors into vertebrae, the anchors thereafter accompanied by various components such as stabilizing medical implants, which may include rods, braces, connectors, and the like. Often, a surgeon may need to compress or distract bony structures or implants in order to maneuver within the surgical opening and/or correct displacement of vertebrae. Heretofore, available instruments to perform both compression and distraction of bony structures during minimally invasive procedures have been cumbersome or unable to do so without removing the instrument and changing settings, or changing a component, and the like.
Certain aspects of the present invention provide methods and apparatuses used in percutaneous and subcutaneous surgical techniques for correcting spinal defects and injuries. There is disclosed certain embodiments of an apparatus for displacing bony structures comprising displacement members which fit over implant engaging instruments such as extensions used to place implants into the bony structures. In certain embodiments, the displacement members may be movably coupled together and may comprise an angular adjustment mechanism and a lateral adjustment mechanism such that the displacement arms may be adjusted both laterally and angularly with respect to each other without the removal or addition of additional parts or instruments. The adjustment of the displacement arms results in adjustment of the extensions and the implants to which they are attached, thereby displacing the bony structures receiving the implants.
For a more complete understanding of the present invention and the advantages thereof, reference is now made to the following Detailed Description taken in conjunction with the accompanying drawings, in which:
In the following discussion, numerous specific details are set forth to provide a thorough understanding of the present invention. However, those skilled in the art will appreciate that the present invention may be practiced without such specific details.
The novel features which are believed to be characteristic of the invention, both as to its organization and method of operation, together with further objects and advantages will be better understood from the following description when considered in connection with the accompanying figures. It is to be expressly understood, however, that each of the figures is provided for the purpose of illustration and description only and is not intended as a definition of the limits of the present invention.
Referring to
In certain embodiments, the guide tubes 12 and 16 may be movably coupled at the proximal end portions 14a and 18a by a connector 20 having an angular adjustment mechanism 22 on one end thereof and a lateral adjustment mechanism 24 such that the guide tubes 12 and 16 may be adjusted both laterally and angularly with respect to each other without the removal or addition of additional parts or instruments.
In certain embodiments, the angular adjustment mechanism 22 may comprise an angular adjustment user interface such as a button 26 which enables the user of the apparatus 10 to lock the second guide tube 16 from a free movement position into a locked position once the guide tube 16 has been angularly adjusted such that the guide tubes 12 and 16 are positioned to accommodate the patient's natural angular relationship of the bony structures. Once the second guide tube 16 has been angularly adjusted, the first guide tube 12 may be adjusted laterally with respect to the second guide tube 16 in order to compress or distract the bony structures.
In other embodiments, the lateral adjustment mechanism may also comprise a mechanism to move one of the guide tubes laterally relative to the other. Such a mechanism may include a rack and pinion system (not shown) or even a threaded rod 34. In the illustrative embodiment, the threaded rod 34 may comprise a proximal end portion 35a and a distal end portion 35b extending between the first guide tube 12 and the second guide tube 16, the distal end portion 35b referring to the end portion of the rod 34 which engages the proximal end portion 18a of the second guide tube 16. A lateral adjustment user interface such as a knob 36 may be coupled onto the proximal end portion 35a of the threaded rod 34 and used to rotate the threaded rod 34 in order to move the first guide tube 12 laterally with respect to the second guide tube 16.
Referring now to
Secured to the lower surface 40b of the connector 20 may be a pinion 50 of the angular adjustment mechanism 22, which engages a rack 52 mounted onto the receiving block 46. The pinion 50 may be rotatably secured to the lower surface 40b by a locking pin 56 extending through the upper surface 40a of the connector 20. The angular adjustment mechanism further comprises a slide lock 58 secured around the pin 56 just above the pinion 50. The slide lock 58 may comprise a first dowel bore 60 and a second dowel bore 62 enabling the lock 58 to be maintained in either a free motion position or a locked position by the button 26. The button 26 may be coupled with the locking pin 56 by a dowel pin 57 inserted laterally through an orifice 27 through the center of the button 26 and through a corresponding orifice 59 in the top of the locking pin 56. In the free motion position the button 26 rests over and pushes down a first dowel pin 64 into the first dowel bore 60. In the free motion position, the pinion 50 moves freely about the locking pin 56 beneath the lock 58. To lock the pinion 50 in a fixed engagement with the rack 52 the button is depressed and pushed toward the distal end portion of the guide tube 16 engaging and compressing a spring 66 and a locking washer 68. The first dowel pin 64 disengages the first dowel bore 60 and the button 26 is moved over a second dowel pin 70 whereby the second dowel pin 70 engages the second dowel bore 62 to maintain the lock 58 forward. As the slide lock 58 moves forward toward the pinion 50, a compressed spring 74 positioned behind the pinion 50 by a lateral dowel pin 76 is released and maintains the pinion 50 forward into a fixed mating engagement with the rack 52.
Referring now to
Referring again to
The lateral adjustment mechanism may comprise a free motion position and a lateral adjustment position by use of a user interface such as a threaded knob 102 seated through an orifice 104 in the top of the locking block 94 and received into a threaded bore of the connector block 90. The proximal end portion of the rod 34 is coupled into the interface knob 36 by a dowel pin 39. The distal end portion of the rod rests against a receiving plate 110 coupled into the connector 20 by two dowel pins 112a and 112b. In the free motion position, the threaded knob 102 is fully tightened into the connector block 90 pressing the locking block 94 downward thereby maintaining a spring 106 compressed below the locking block 94. When a user of the apparatus 10 desires to laterally adjust the first guide tube 12, the threaded knob 102 may be turned in a counterclockwise direction until the threads engage a dowel pin 108 in the connector block thereby releasing the locking block 94 upward and uncompressing the spring 106. The uncompressed spring 106 thereby maintains an upward force on the locking block 94 such that the threaded rod 34 engages the threaded bore in the locking block enabling the first guide tube 12 to move laterally with respect to the second guide tube 16 as the lateral interface knob 36 turns and engages the threaded rod 34 to thereby engage the first guide tube 12.
Referring now to
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The displacement apparatus 600 may be used when compression and/or distraction is needed during a procedure to correct the placement of at least three adjacent bony structures. The displacement apparatus 600 differs from the displacement apparatus 10 in that the displacement apparatus 600 may comprise an additional displacement arm such as a third guide tube 602. The third guide tube 602 may be substantially similar to the second guide tube of the displacement apparatus 10 except that the third guide tube 602 may comprise both an angular adjustment mechanism 604 (similar in function and construction to angular adjustment mechanism 22) and some components of a lateral adjustment mechanism thereon, such as a threaded bore for receiving and engaging a threaded rod 606 therein. The displacement apparatus 600 may also differ from the displacement apparatus 10 in that the first guide tube 12′ may be adjustable laterally relative to both a second guide tube 16′ and the third guide tube 602. Both the second guide tube 16′ and the third guide tube 602 may be angularly adjusted relative to the first guide tube 12′ by angular adjustment mechanisms 22′ and 604. Similarly, the second guide tube 16′ may also comprise some components of a lateral adjustment mechanism such as a threaded bore for receiving and engaging a second threaded rod 34′.
Referring now to
The forgoing description of the embodiments of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. It is intended that the scope of the invention be limited not by this detailed description, but rather by the claims appended hereto.
For instance, in some embodiments, there may be an apparatus for displacing bony structures comprising a first and second displacement member, each displacement member having a proximal end portion and a distal end portion, wherein the displacement members are movably coupled together near the proximal end portions thereof; an angular adjustment mechanism for angularly adjusting the displacement arms relative to each other; and a lateral adjustment mechanism for adjusting the displacement arms for laterally adjusting the displacement arms relative to each other. In other embodiments, there may be an apparatus for displacing bony structures comprising a first and second displacement member, each displacement member having a proximal end portion and a distal end portion, wherein the displacement members are movably coupled together near the proximal end portions thereof by a connector; an angular adjustment mechanism for angularly adjusting the displacement arms relative to each other; a lateral adjustment mechanism for adjusting the displacement arms for laterally adjusting the displacement arms relative to each other; wherein the angular adjustment mechanism comprises a rack and pinion and an angular adjustment user interface enabling a user of the apparatus to lock the second displacement member at a desired angular position relative to the first displacement member; wherein the lateral adjustment mechanism comprises an extension for engaging and moving the first displacement member laterally with respect to the second displacement member, the extension having a proximal end portion distal end portion; and a lateral adjustment user interface coupled onto one end of the extension.
In yet other embodiments, there may be an apparatus for the displacement of bony structures wherein the connector is coupled onto the proximal end portion of the second displacement member and comprises a rail which extends laterally outward away from the second displacement member and is slideably received into a channel of the first displacement member.
In still other embodiments, there may be an apparatus for the displacement of bony structures wherein the connector is coupled onto the proximal end portion of the second displacement member and comprises a rail which extends laterally outward away from the second displacement member and is slideably received into a channel of the first displacement member; wherein the connector is coupled onto the second displacement member by a receiving block coupled onto the proximal end portion of the second displacement member.
In other embodiments, there may be an apparatus for the displacement of bony structures comprising a first and second displacement member, each displacement member having a proximal end portion and a distal end portion, wherein the displacement members are movably coupled together near the proximal end portions thereof by a connector; an angular adjustment mechanism for angularly adjusting the displacement arms relative to each other; and a lateral adjustment mechanism for adjusting the displacement arms for laterally adjusting the displacement arms relative to each other.
In another embodiment, there may be a displacement apparatus comprising a first and second displacement member, each displacement member having a proximal end portion and a distal end portion, wherein the displacement members are movably coupled together near the proximal end portions thereof by a connector; an angular adjustment mechanism for angularly adjusting the displacement arms relative to each other; and a lateral adjustment mechanism for adjusting the displacement arms for laterally adjusting the displacement arms relative to each other; wherein the connector is coupled onto the proximal end portion of the second displacement member and comprises a rail which extends laterally outward away from the second displacement member and is slideably received into a channel of the first displacement member.
In yet another embodiment, there may be a displacement apparatus comprising a first and second displacement member, each displacement member having a proximal end portion and a distal end portion, wherein the displacement members are movably coupled together near the proximal end portions thereof by a connector; an angular adjustment mechanism for angularly adjusting the displacement arms relative to each other; and a lateral adjustment mechanism for adjusting the displacement arms for laterally adjusting the displacement arms relative to each other; wherein the connector is coupled onto the proximal end portion of the second displacement member and comprises a rail which extends laterally outward away from the second displacement member and is slideably received into a channel of the first displacement member; wherein the connector is coupled onto the second displacement member by a receiving block coupled onto the proximal end portion of the second displacement member.
In another embodiment, there may be a displacement apparatus wherein wherein the angular adjustment mechanism comprises a receiving block mounted onto the proximal end portion of the second displacement member; a rack mounted onto the receiving block; a pinion rotatably coupled beneath the lower surface of the connector which engages the rack; a slide lock coupled above the pinion wherein the slide lock comprises a first dowel bore and a second dowel bore, the first dowel bore for receiving a first dowel pin for maintaining the slide lock in a first position and a second dowel pin for maintaining the slide lock in a second position; wherein the first position is characterized by the pinion having free motion thereby enabling the second displacement member to have free angular movement with respect to the first displacement member; wherein the second position is characterized by the pinion maintained in a fixed mating engagement with the rack thereby maintaining the second displacement member in a fixed position relative to the first displacement member; and an angular adjustment user interface coupled above the slide lock for moving the slide lock between the first and second positions.
In still another embodiment, there may be a displacement apparatus wherein the lateral adjustment mechanism comprises a connector block mounted onto the proximal end portion of the first guide member; a channel on the connector block for slidably receiving a rail extending from the connector; a locking block mounted atop the connector block; a threaded rod having a proximal and distal end portion extending through a threaded bore of the locking block and engaging the proximal end portion of the second displacement member; a lateral adjustment user interface coupled onto the proximal end portion of the rod; and a locking block engaging mechanism; wherein the locking block engaging mechanism engages the locking block between a first and second position, the first position characterized by the locking block depressed downward such that the rod is not engaging the threads of the threaded bore, the second position characterized by the locking block in a non-depressed condition such that the threaded rod engages the threads of the bore, enabling the locking block, and thus the first displacement member to move laterally with respect to the second displacement member.
There may further be a method of displacing bony structures comprising the steps of implanting bone anchors into adjacent bony structures; implanting and a bone stabilization system and coupling the stabilization system between the bone anchors; coupling implant engaging members to the bone anchors; providing a displacement apparatus having an angular adjustment mechanism and a lateral adjustment mechanism thereon, the displacement device having displacement members for engaging the implant engaging members; inserting the displacement members over the implant engaging members; adjusting the angular relationship of the displacement members until a desired angular position is achieved; locking the displacement members into the desired angular position; engaging the lateral adjustment mechanism of the displacement device; adjusting the lateral relationship of the displacement members until the desired lateral relationship between the bony structures is achieved; locking the stabilization system into place; and removing the displacement device and implant engaging extensions.
This application claims priority to provisional application Ser. No. 60/826,780, “System and Method for Displacement of Bony Structures,” filed Sep. 25, 2006, and provisional application Ser. No. 60/864,357, “System and Method for Displacement of Bony Structures,” filed Nov. 3, 2006, both of which the entire contents are incorporated herein by reference. This application relates to prior commonly assigned application Ser. No. 10/837,724, “System and Method for Displacement of Bony Structures,” filed May 3, 2004, currently pending, the entire contents of which are incorporated herein by reference. This application relates to prior commonly assigned application Ser. No. 10/690,211, “System and Method for Stabilizing Internal Structures,” filed Oct. 21, 2003, currently pending, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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60826780 | Sep 2006 | US | |
60864357 | Nov 2006 | US |