Source: http://www.google.com/patents/US7862593?dq=patent:3079728
Timestamp: 2016-05-28 22:12:04
Document Index: 550503942

Matched Legal Cases: ['application no. 03', 'application No. 60', 'art 3', 'art 3', 'art 3', 'art 3', 'art 3', 'art 3', 'arts 3', 'arts 3', 'arts 3', 'arts 3', 'art 3']

Patent US7862593 - Vertebral osteosynthesis equipment - Google PatentsSearch Images Maps Play YouTube News Gmail Drive More »Sign inPatentsThis equipment includes: bony anchoring members whereof at least one includes a proximal threaded stud for receiving a nut and a base portion for anchoring to a vertebra; one or two linking rods to be connected to the anchoring members and be attached to the vertebrae thereby parts for connecting the...http://www.google.com/patents/US7862593?utm_source=gb-gplus-sharePatent US7862593 - Vertebral osteosynthesis equipmentAdvanced Patent SearchPublication numberUS7862593 B2Publication typeGrantApplication numberUS 10/561,915PCT numberPCT/IB2004/002395Publication dateJan 4, 2011Filing dateJun 24, 2004Priority dateJun 27, 2003Fee statusPaidAlso published asDE602004011613D1, DE602004011613T2, EP1638471A2, EP1638471B1, US20070149973, WO2005000134A2, WO2005000134A3Publication number10561915, 561915, PCT/2004/2395, PCT/IB/2004/002395, PCT/IB/2004/02395, PCT/IB/4/002395, PCT/IB/4/02395, PCT/IB2004/002395, PCT/IB2004/02395, PCT/IB2004002395, PCT/IB200402395, PCT/IB4/002395, PCT/IB4/02395, PCT/IB4002395, PCT/IB402395, US 7862593 B2, US 7862593B2, US-B2-7862593, US7862593 B2, US7862593B2InventorsJean-Luc Clement, Vincent Fiere, Jean Taylor, Yves Adam, Bernard VillaretOriginal AssigneeMedicrea TechnologiesExport CitationBiBTeX, EndNote, RefManPatent Citations (32), Referenced by (10), Classifications (19), Legal Events (2) External Links: USPTO, USPTO Assignment, EspacenetVertebral osteosynthesis equipment
US 7862593 B2Abstract
bony anchoring members whereof at least one includes a proximal threaded stud for receiving a nut and a base portion for anchoring to a vertebra; one or two linking rods to be connected to the anchoring members and be attached to the vertebrae thereby parts for connecting the linking rod(s) to the anchoring members, and extension pieces for engaging on the proximal stud(s) of the anchoring member(s) for running down connecting parts on the stud(s) until they rest on the proximal zone(s) of the base portion(s) of the anchoring members. The stud of at least one anchoring member and the extension piece used therewith include positioning elements.
one or more bony anchoring members, at least one of said bony anchoring members comprising a proximal threaded stud, a base portion, and a holding portion, the proximal threaded stud having a first end connected to the base portion and a free second end opposed to said first end, said base portion configured to anchor to a vertebra, and said holding portion configured for holding said base portion in rotation;
a linking rod;
a connecting part configured to engage with said proximal threaded stud of said at least one of said anchoring members, and further configured to connect to said linking rod thereby to connect said linking rod to said at least one of said anchoring members;
a nut configured to engage in threaded engagement with said proximal threaded stud to secure said connecting part, said nut configured to cooperate with the proximal threaded stud to secure said connecting part at said first end; and
at least one extension piece having a head portion and an end distal portion opposed to said head portion, said end distal portion configured to connect to said free second end of said proximal threaded stud and to slidingly receive said connecting part from the head portion to the end distal portion such that said connecting part may engage upon said proximal threaded stud, the head portion of the extension piece comprising a flexible structure configured to be positioned askew to a direction of extension of the extension piece,
wherein each of said head portion and said end distal portion have an outermost external diameter configured such that the nut, in coaxial engagement with said extension piece, slides freely over an entire length of said extension piece,
wherein said free second end of said proximal threaded stud has a first positioning element and said end distal portion of said extension piece has a second positioning element, said first and second positioning elements configured in a first mode to removably secure to each other via threaded engagement in order to removably retain said end distal portion of said extension piece on said free second end of said proximal threaded stud, and said first and second positioning elements further configured in a non-engagement second mode to disengage from each other such that the extension piece is not mounted on said proximal threaded stud.
2. The vertebral osteosynthesis equipment of claim 1,
wherein said first positioning element comprises a rod integral with the proximal threaded stud, and
wherein said second positioning element comprises a bore provided in the second end portion of the extension piece, and
wherein said rod is adapted to engage in said bore.
3. The vertebral osteosynthesis equipment of claim 1, wherein said flexible structure comprises a metal wire wound to have a spiral form.
4. The vertebral osteosynthesis equipment of claim 3, wherein the spiral form of said metal wire comprises a plurality of contiguous spires.
5. The vertebral osteosynthesis equipment of claim 1, wherein said end distal portion is threaded to cooperate in threaded engagement with the nut.
6. The vertebral osteosynthesis equipment of claim 2, wherein said first and second positioning elements are configured to axially connect the proximal threaded stud with the extension piece.
7. The vertebral osteosynthesis equipment of claim 1, wherein an outermost diameter of the end distal portion is smaller than an outermost diameter of the proximal threaded stud.
8. The vertebral osteosynthesis equipment of claim 1,
wherein said second positioning element comprises a rod integral with the proximal threaded stud, and
wherein said first positioning element comprises a bore provided in the second end portion of the extension piece, and
9. A vertebral osteosynthesis equipment, comprising:
a first bony anchoring member comprised of a proximal threaded stud, a base portion, and a holding portion, the proximal threaded stud having a first end connected to the base portion and a free second end opposed to said first end, said base portion configured to anchor to a vertebra, and said holding portion configured for holding said base portion in rotation;
a connecting part configured to engage with said proximal threaded stud of said first bony anchoring member;
a linking rod configured to connect to said connecting part of said first bony anchoring member, and further configured to connect to a second bony anchoring member;
a nut configured to engage on said proximal threaded stud to secure said connecting part; and
an extension piece having a head portion and an end distal portion opposed to said head portion, said end distal portion configured to connect to and reversibly retain said free second end of said proximal threaded stud, said extension piece configured to slidingly receive said connecting part from the head portion to the end distal portion such that said connecting part may engage upon said proximal threaded stud, and the head portion is a flexible structure configured to be positioned askew to a direction of extension of the extension piece;
wherein a maximum outermost external diameter of the extension piece is configured such that the nut, in coaxial engagement with said extension piece, slides freely over an entire length of said extension piece,
wherein said free second end of said proximal threaded stud has a first positioning element and said end distal portion of said extension piece has a second positioning element, said first and second positioning elements configured to engage concentrically with each other in threaded engagement to position and retain said end distal portion of said extension piece on said free second end of said proximal threaded stud, and
wherein said nut is configured to cooperate with the proximal threaded stud to secure said connecting part at said first end.
10. The vertebral osteosynthesis equipment of claim 9, wherein said flexible structure comprises a metal wire wound to have a spiral form.
11. The vertebral osteosynthesis equipment of claim 10, wherein the spiral form of said metal wire comprises a plurality of contiguous spires. Description
This is a 271 National Stage application of International application no. PCT/IB2004/002395, filed Jun. 24, 2004, which claims priority to French application no. 03/07779, filed Jun. 27, 2003 and provisional application No. 60/490,516, filed Jun. 29, 2003. The entire contents of the above-referenced applications are hereby incorporated by reference in their entirety.
The present invention relates to vertebral osteosynthesis equipment.
A vertebral osteosynthesis equipment generally includes bony anchoring members, such as pedicular screws or lamar hooks, one or two linking rods, intended to be connected to these anchoring members and to be attached to the vertebrae by dint thereof, and parts for connecting this(these) linking rod(s) to these anchoring members. The equipment may also comprise length-adjustable crossbeams, which link transversally two parallel linking rods in order to hold said rods with respect to one another.
In an existing type of equipment, each anchoring member comprises a proximal threaded stud and a base portion intended for bony anchoring thereof. Each connecting part comprises a rounded section intended for surrounding a linking rod and two parallel drilled wings, these wings being intended for engaging onto said proximal threaded stud and for being clamped, using a nut screwed on the stud, against a bearing surface provided on said base portion. This clamping causes the clamping of said rounded section around the linking rod and thus ensures longitudinal immobilization of this rod with respect to the anchoring member. The anchoring members may be of “monoaxial” type, i.e. comprise a proximal threaded stud integral with the base portion, or may be of “polyaxial” type, i.e. comprise a proximal threaded stud articulated with respect to that base portion.
When installing the equipment, the anchoring members are placed, then extension pieces are engaged on the proximal studs of these anchoring members. The connecting parts, with the rod(s) engaged in their rounded portions, are then engaged on these extension pieces and run down along the latter until they rest on the proximal zones of the base portions of the anchoring members. The extension pieces are then withdrawn and the clamping nuts are placed.
To enable adequate correction of the position of the vertebrae, the linking rod(s) must be shaped into one or several planes. Such operation leads to successive trials and errors until adequate form is obtained. Successive insertions and retractions of the extension pieces and successive running down operations of the assemblies composed of connecting parts—linking rods along the latter, then withdrawing the extension pieces for placing the nuts, are then relatively tedious and time-consuming operations.
Moreover, there is always the risk of nut breaking loose from its installing instrument, and then, the necessity of retrieving this nut before placing it back on said this instrument; all this process contributes to make the implantation of the equipment longer and more complex.
The purpose of the present invention is to remedy these essential shortcomings, by providing vertebral osteosynthesis equipment which is easier and faster to implant than any extent equipment.
The equipment of the invention comprises, in itself,
bony anchoring members, such as pedicular screws or lamar hooks, whereof at least one comprises a proximal threaded stud intended for receiving a nut, and a base portion intended for anchoring to a vertebra; one or two linking rods, intended to be connected to these anchoring members and to be attached to the vertebrae by dint thereof, parts for connecting this(these) linking rod(s) to these anchoring members, and extension pieces intended for engaging on the proximal stud(s) of the anchoring member(s) for running down connecting parts on this or these proximal stud(s) until they rest on the proximal zone(s) of the base portion(s) of the anchoring members. According to the invention, the proximal stud of at least one anchoring member and the extension piece intended to be used with this anchoring member include positioning means enabling to position the extension piece on the free end of the proximal stud, concentrically thereto, these positioning means being such that the extension piece comprises an end distal portion whereof the external diameter is sized in order to let through the nut thereon.
The extension piece may thus be positioned on the free end of the proximal stud, concentrically thereto, then the nut may be run down towards the implantation site without retracting the extension piece, whereas such descent does induce any risk of losing this nut. There results therefrom that the equipment is placed more quickly and more reliably.
The nut may in particular be engaged on said proximal stud at the same time as the connecting part.
Said positioning means comprise advantageously a rod integral with the proximal stud or of the extension piece and a bore provided, respectively, in the extension piece or the proximal stud, whereas this rod may be engaged in this bore.
Said positioning means comprise advantageously means enabling axial connection of the proximal stud with the extension piece.
The extension piece may therefore no get lost.
According to a preferred embodiment of the invention, the proximal stud comprises a threaded proximal rod, and said end distal portion of the extension piece comprises a tapered hole for screwing the extension piece on this proximal rod.
The extension piece may, outside said end distal portion, be of flexible structure, for easy positioning thereof on the free end of the proximal stud, notably screwing or unscrewing thereof when the threaded rod of the proximal stud is not parallel to the engaging direction of the extension piece.
This flexible structure may notably be in the form of a metal wire wound into a spiral, with preferably contiguous spires. It may also be an elastic wire, a cable or other.
The invention will be better understood, and other characteristics and advantages thereof will appear, with reference to the appended schematic drawing, representing, for non-limiting exemplification purposes, a preferred embodiment of parts included in the equipment affected.
FIG. 1 is a partial view of a polyaxial pedicular screw, of a linking rod seen from its end, of a connecting part and of a nut, in cross-section, and of an extension piece partially in cross-section, included in such equipment;
FIG. 2 is a view of these parts similar to FIG. 1, during assembly, and
FIG. 3 is a view of these parts similar to FIG. 2, once the assembly completed.
FIG. 1 represents a polyaxial pedicular screw 1, a rod 2 connecting several of these screws 1, a part 3 connecting this rod 2 to one of these screws 1, a nut 4 enabling assembly of the linking rod 2 to this screw 1 and an extension piece 5 for running down the connecting part 3 and of the nut 4 on the proximal zone of the screw 1.
The screw 1 comprises a proximal threaded stud 6 and a base portion 7. The stud 6 is intended for receiving the part 3 engaged thereon and the nut 4 screwed thereon while the base portion 7 is intended for insertion into the pedicula of a vertebra.
The stud 6 exhibits a threaded cylindrical portion 10, a spherical distal head 11 and a threaded proximal rod 12.
The head 11 exhibits a diameter double that of the portion 10 and looks like a spherical cap. This head 11 is intended for engaging in a proximal cavity 16 delineated by the proximal zone of the base portion 7 and for retention in this cavity 16 by crimping a proximal wall 17 exhibited by this portion 7. After crimping, the wall 17 is shaped in order to have hemispherical proximal form. As shown on FIG. 1, the dimensions of the cavity 16 and of the aperture delineated by the wall 17 after crimping to let through the stud 6 are such that a multidirectional backlash of this stud 6 with respect to the base portion 7 is possible.
The threaded rod 12 has a diameter smaller than that of the stud 6 and enables the assembly of the extension piece 5 on this stud 6 by screwing.
The base portion 7 comprises a proximal collar 18, intended for abutting against the pedicula of the vertebra. This collar 18 exhibits several radial notches 19, notably four notches at 90� to one another, for holding the base portion 7 in rotation when clamping the nut 4.
The connecting part 3 comprises a rounded section 20 intended for hugging the linking rod 2 and two parallel lateral wings 21.
The distal wing 21 is drilled with a hole for engaging the part 3 on the stud 6 and exhibits a boss 24 delineating a distal cavity 25 substantially hemispherical in shape, coaxial to said hole and of diameter greater than that of the wall 17. There exists therefore a clearance between this wall 17 and the wall of the part 3 delineating the cavity 25, this clearance enabling the angular orientation of the stud 6 with respect to the base portion 7.
The proximal wing 21 comprises a cavity 27 wherein a corresponding conical zone, exhibited by the nut 4, is intended for engaging.
The extension piece 5 comprises an end distal portion 30 and a body 31.
The portion 30 exhibits a tapered bore 32 shaped for screwing the extension piece 5 on the threaded rod 12 and a smooth external wall. The diameter of this portion 30 is smaller than the internal diameter of the thread of the nut 4 so that the nut 4 may run along this portion 30 when engage for sliding on the extension piece 5.
The body 31 is in the form of a metal wire wound into a spiral, with preferably contiguous spires, conferring flexible thereto. This flexible structure facilitates the screwing or the unscrewing of the extension piece 5 when the threaded rod 12 is not parallel to the engaging direction of this extension piece 5.
In practice, the number of screws 1 necessary to the treatment to be performed is placed in the pediculae of the vertebrae affected, then the extension pieces 5 are screwed on the rods 12. The connecting parts 3, with or without the rod(s) 2 engaged in their rounded portions 20, and the nuts 4 are then engaged on these extension pieces 5 and run down along the latter until the parts 3 rest on the walls 17.
After adequate conformation of the rods 2, the nuts 4 are clamped for clamping the connecting parts 3 against the walls 17 and therefore immobilise these parts 3 and the studs 6 with respect to the base portions 7.
After retraction of the extension pieces 5, the studs 6 are cut off at tapered zones 15.
As shown by the foregoing, the invention provides a vertebral osteosynthesis equipment enabling to run the nuts 4 down towards the implantation site without retracting the extension pieces 5, this descent showing no risks of losing these nuts 4.
There results that the equipment may be installed more quickly and more reliably.
Obviously, the invention is not limited to the embodiment described above for exemplification purposes but extends to all the embodiments covered by the claims appended therein. Notably, one would not depart from the framework of the invention by arranging said threaded distal portion 30, so that it enables to screw the nut 4 thereon. This screwing would enable, if necessary, to use the extension piece 5 to bring the part 3 against the base portion 7.
Patent CitationsCited PatentFiling datePublication dateApplicantTitleUS809880 *Jan 9, 1906Tom Alfred WoolldridgeFlexible coupling.US903904 *Oct 1, 1908Nov 17, 1908Alfred Carleton SmithWrench.US1454789 *May 1, 1922May 8, 1923Rentchler Maurice RFlexible screw driverUS2372930 *Nov 16, 1943Apr 3, 1945Jesse M BoveeFlexible shank toolUS2381597 *Aug 21, 1944Aug 7, 1945Johnson Richard JSocket wrenchUS2404580 *Jul 29, 1943Jul 23, 1946Firestone Tire & Rubber CoToolUS2679778 *Apr 2, 1953Jun 1, 1954Aetna Mfg CompanyFlexible rotary toolUS3545066 *Sep 10, 1968Dec 8, 1970Whittaker CorpThreaded element installation toolUS4741229 *Feb 13, 1987May 3, 1988Eem Rachanski Enterprises, Inc.Stud installerUS4940467 *Nov 30, 1989Jul 10, 1990Tronzo Raymond GVariable length fixation deviceUS5217462 *Mar 5, 1991Jun 8, 1993Pfizer Hospital Products Group, Inc.Screw and driverUS5464407 *Nov 16, 1994Nov 7, 1995Mcguire; David A.Flexible surgical screwdriver and methods of arthroscopic ligament reconstructionUS5507817 *Feb 22, 1994Apr 16, 1996Kirschner Medical CorporationModular humeral prosthesis for reconstruction of the humerusUS5613968 *May 1, 1995Mar 25, 1997Lin; Chih-IUniversal pad fixation device for orthopedic surgeryUS5735851 *Oct 9, 1996Apr 7, 1998Third Millennium Engineering, LlcModular polyaxial locking pedicle screwUS5814046 *Nov 12, 1993Sep 29, 1998Sofamor S.N.C.Pedicular screw and posterior spinal instrumentationUS6009779 *Mar 13, 1998Jan 4, 2000Mastroni; Douglas J.Screwdriver set and kit having variable length interchangeable screwdriver shafts and extensionsUS6010507 *Jul 24, 1998Jan 4, 2000Rudloff; David A. C.Repair of bone fracture using flexible fully or partially cannulated compression/decompression fixation elementUS6123706 *Dec 17, 1998Sep 26, 2000Lange; RobertApparatus for stabilizing certain vertebrae of the spineUS6267765 *Jun 3, 1998Jul 31, 2001Jean TaylorMultidirectional adaptable vertebral osteosyntsis device with reduced space requirementUS6296656 *Jul 7, 1995Oct 2, 2001Origin Medsystems, Inc.Surgical helical fastener with applicatorUS6482207Jul 13, 2000Nov 19, 2002Fastenetix, LlcEfficient assembling modular locking pedicle screwUS6945980 *Apr 5, 2001Sep 20, 2005Medtronic, Inc.Multiple loop tissue connector apparatus and methodsUS7163538 *Feb 7, 2003Jan 16, 2007Cross Medical Products, Inc.Posterior rod systemUS20020095181 *Dec 27, 2001Jul 18, 2002Mordechay BeyarMedical sling procedures and anchor insertion methods and devicesUS20030086772 *Nov 2, 2001May 8, 2003William GiannakakosHelically coiled titanium wire fastener insertsUS20040064140 *Nov 5, 2001Apr 1, 2004Jean TaylorVertebral arthrodesis equipmentUS20060111718 *Jul 10, 2003May 25, 2006Olivier CarliBone anchoring device with spherical articulationUS20060149231 *Dec 13, 2004Jul 6, 2006Rsb Spine LlcBone fastener assembly for bone retention apparatusUS20070173817 *Jan 21, 2005Jul 26, 2007Denys SournacVertebral osteosynthesis equipmentUS20080195122 *Feb 8, 2008Aug 14, 2008Altiva CorporationConnectorUS20090062864 *Aug 31, 2007Mar 5, 2009Steven LudwigOffset connection bone anchor assembly* Cited by examinerReferenced byCiting PatentFiling datePublication dateApplicantTitleUS8597332 *Feb 19, 2009Dec 3, 2013Ulrich Gmbh & Co. KgApparatus for spinal-column stabilizationUS8992579 *Mar 8, 2012Mar 31, 2015Nuvasive, Inc.Lateral fixation constructs and related methodsUS9050138 *Jan 28, 2010Jun 9, 2015Warsaw Orthopedic, Inc.Vertebral rod connector and methods of useUS9060815Mar 15, 2013Jun 23, 2015Nuvasive, Inc.Systems and methods for performing spine surgeryUS9233459 *Jan 22, 2013Jan 12, 2016Fermi Research Alliance, LlcChannel nut toolUS20100211100 *Aug 19, 2010Mack ClaudiaApparatus for spinal-column stabilizationUS20110184462 *Jul 28, 2011Warsaw Orthopedic, Inc.Vertebral rod connector and methods of useUS20130066374 *Mar 14, 2013Ebi, LlcExpandable spinal prosthesisUS20140074169 *Sep 13, 2012Mar 13, 2014Warsaw Orthopedic, Inc.Spinal correction system and methodUS20140201967 *Jan 22, 2013Jul 24, 2014Fermi Research Alliance, LLC.Channel nut tool* Cited by examinerClassifications U.S. Classification606/260, 606/916, 606/278, 606/268, 606/250, 606/310International ClassificationA61B17/70, A61B17/88, A61F2/30, A61B17/60Cooperative ClassificationA61B17/60, A61B17/7037, A61B2090/037, A61B17/88, A61B17/7041, Y10S606/916European ClassificationA61B17/88, A61B17/70B5B, A61B17/70B6Legal EventsDateCodeEventDescriptionApr 10, 2006ASAssignmentOwner name: MEDICREA TECHNOLOGIES, FRANCEFree format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:CLEMENT, JEAN-LUC;FIERE, VINCENT;TAYLOR, JEAN;AND OTHERS;REEL/FRAME:017462/0482;SIGNING DATES FROM 20051221 TO 20060308Owner name: MEDICREA TECHNOLOGIES, FRANCEFree format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:CLEMENT, JEAN-LUC;FIERE, VINCENT;TAYLOR, JEAN;AND OTHERS;SIGNING DATES FROM 20051221 TO 20060308;REEL/FRAME:017462/0482Jun 26, 2014FPAYFee paymentYear of fee payment: 4RotateOriginal ImageGoogle Home - Sitemap - USPTO Bulk Downloads - Privacy Policy - Terms of Service - About Google Patents - Send FeedbackData provided by IFI CLAIMS Patent Services