IP Library › Granted Patent US 12,544,111
Granted Patent B2
US 12,544,111 · App. 18/690,731 · Granted Feb 10, 2026

Polyaxial spinal screw

Inventor: Agris Mertens (Riga, LV)
A61B17/7032
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Quick Facts
Patent No.
US 12,544,111
App. No.
18/690,731
Granted
Feb 10, 2026
Kind
B2
Abstract

Invention relates to polyaxial spinal screws for correcting and stabilizing a spinal cord by open and minimally invasive technique. The polyaxial spinal screw comprises a screw shaft ( 10 ), a coupling ( 20 ), a sleeve ( 30 ) and a set screw ( 50 ). The coupling ( 20 ) has a proximal end ( 202 ) and a distal end ( 203 ). The coupling ( 20 ) comprises a spherical cut ( 21 ) sized to receive the screw shaft ( 10 ). The coupling ( 20 ) further comprises two slots ( 26 ) for receiving a stabilizing rod ( 40 ). The coupling ( 20 ) comprises an inner thread ( 24 ) where the set screw ( 50 ) is threaded. The sleeve ( 30 ) has a proximal end ( 302 ) closer to the proximal end ( 202 ) of the coupling ( 20 ) and a distal end ( 303 ). The sleeve ( 30 ) comprises at least two slots ( 32 ) for receiving a stabilizing rod ( 40 ) and at least two recesses ( 33 ) for fixation of the polyaxial spinal screw by auxiliary tools.

Claims (27)

1 . A polyaxial spinal screw for implants for correcting and stabilizing a spinal cord, wherein the polyaxial spinal screw comprises:

a screw shaft ( 10 ) having a thread section ( 11 ) with a bone thread and a spherical segment-shaped screw head ( 12 );

a coupling ( 20 ) with a bore therethrough, wherein the coupling ( 20 ) has a proximal end ( 202 ) that is near the screw shaft ( 10 ) when assembled and a distal end ( 203 ) opposite to the proximal end ( 202 ) of the coupling ( 20 ), wherein the coupling ( 20 ) at the proximal end ( 202 ) comprises a spherical cut ( 21 ) sized to receive the screw head ( 12 ) of the screw shaft ( 10 ), wherein the spherical cut ( 21 ) has at least two kerf cuts ( 23 ) and at least one full cut ( 231 ) spaced in a circumferential direction around the coupling ( 20 ) resulting in at least two lugs ( 221 ) which extend to each other in the axial direction of the coupling ( 20 ) and can be bent outward in an elastic manner, wherein a hole ( 25 ) is formed at an end of each kerf cut ( 23 ), wherein a diameter of the hole ( 25 ) is larger than a width of each kerf cut ( 23 ), wherein the coupling ( 20 ) further comprises two slots ( 26 ) open at the distal end ( 203 ) of the coupling ( 20 ) for receiving a stabilizing rod ( 40 ), the two slots ( 26 ) form two walls ( 201 ) positioned opposite to each other, wherein the coupling ( 20 ) comprises an inner thread ( 24 ) on an inner surface of the two walls ( 201 ) and at the distal end ( 203 ) of the coupling ( 20 );

a sleeve ( 30 ) with a bore therethrough, wherein the sleeve ( 30 ) has a proximal end ( 302 ) that is closer to the proximal end ( 202 ) of the coupling ( 20 ) when assembled and a distal end ( 303 ) opposite to the proximal end ( 302 ) of the sleeve ( 30 ), wherein the sleeve ( 30 ) comprises at least two slots ( 32 ) open at the distal end ( 303 ) of the sleeve ( 30 ) for receiving a stabilizing rod ( 40 ) and at least two recesses ( 33 ) at the distal end ( 303 ) of the sleeve ( 30 ) for fixation of the polyaxial spinal screw by auxiliary tools, wherein the sleeve ( 30 ) further comprises at least two positioning notches ( 34 ) arranged on an inner surface of the sleeve ( 30 ) near the slots ( 32 ) for eliminating further rotation of the sleeve ( 30 ) and for alignment of the slots ( 32 , 33 ) of the sleeve ( 30 ) with the slots ( 26 ) of the coupling ( 20 ); and

a set screw ( 50 ) comprising a collar ( 60 ), wherein the set screw ( 50 ) is configured to be threaded into the inner thread ( 24 ) of the coupling ( 20 ) for fixing a stabilizing rod ( 40 ), wherein the collar ( 60 ) further comprises a gap ( 66 ), wherein the gap ( 66 ) receives the walls ( 201 ) or an extended tab ( 209 ) of the coupling ( 20 ) upon assembly in such way that the walls ( 201 ) or extended tab ( 209 ) of the coupling ( 20 ) are retained against opening or extension in a radial direction.

2 . The polyaxial screw according to claim 1 , wherein the polyaxial screw further comprises a locking ring ( 70 ) positioned between the coupling ( 20 ) and the sleeve ( 30 ), wherein

the coupling ( 20 ) further comprises a ring groove ( 211 ) configured to receive the locking ring ( 70 );

the sleeve ( 30 ) further comprises a sleeve upwards movement stopper ( 36 ) configured for retaining by the locking ring ( 70 ), a ring compression cone ( 38 ) to gradually compress the locking ring ( 70 ) when the cone ( 38 ) slides in the direction to the proximal end of the coupling ( 20 );

wherein the coupling ( 20 ) in combination with the sleeve ( 30 ) and the locking ring ( 70 ) creates a holding-locking construction, which prevents the sleeve ( 30 ) from undesired upward movement in the distal ( 203 ) direction of the coupling ( 20 ) and compresses the proximal end of the coupling ( 20 ) around the screw head ( 12 ).

3 . The polyaxial screw according to claim 1 , wherein

the coupling ( 20 ) further comprises a coupling downwards movement stopper ( 205 );

the sleeve ( 30 ) further comprises a sleeve downwards movement stopper ( 35 ); and

the coupling downwards movement stopper ( 205 ) in combination with the sleeve downwards movement stopper ( 35 ) creates a holding-locking construction, which prevents the sleeve ( 30 ) from undesired sliding in the proximal ( 202 ) direction of the coupling ( 20 ).

4 . The polyaxial screw according to claim 1 , wherein the coupling ( 20 ) further comprises a retaining means ( 208 ) and a tool connection groove ( 206 ) at the distal end of the coupling ( 20 ).

5 . The polyaxial screw according to claim 1 , wherein the outer diameter of the coupling ( 20 ) at the proximal end ( 202 ) thereof is larger than the outer diameter of the coupling ( 20 ) formed by the two walls ( 201 ).

6 . The polyaxial screw according to claim 1 , wherein the inner diameter of the sleeve ( 30 ) at the proximal end ( 302 ) is larger than the inner diameter of the sleeve ( 30 ) at the distal end ( 303 ).

7 . The polyaxial screw according to claim 1 , wherein the inner diameter of the sleeve ( 30 ) at the proximal end ( 302 ) thereof is smaller than an outer diameter of the coupling ( 20 ) at the proximal end ( 202 ) thereof in such a manner that upon assembly the sleeve ( 30 ) moves onto the coupling ( 20 ) and the lugs ( 221 ) of the coupling ( 20 ) are radially moved within the limits of its elasticity towards the screw head ( 12 ) fixating a position of the screw shaft ( 10 ) relative to the coupling ( 20 ) and the sleeve ( 30 ).

8 . The polyaxial screw according to claim 1 , wherein the collar ( 60 ) and the set screw ( 50 ) are configured to be able to radially rotate relative to each other.

9 . The polyaxial screw according to claim 1 , wherein the sleeve ( 30 ) further comprises a circumferential groove ( 31 ) arranged on the outer surface of the sleeve ( 30 ).

10 . The polyaxial screw according to claim 1 , wherein the polyaxial screw further comprises a stabilizing rod ( 40 ), wherein a proximal end ( 43 ) of the stabilizing rod is configured to be connected to a preconfigured insertion surgical tool; and wherein a stabilizing rod ledge ( 44 ) is configured to prevent a stabilizing rod ( 40 ) from undesired connection loss with the preconfigured insertion surgical tool; and wherein a rod fixation notch ( 45 ) is configured to provide a lock of the stabilizing rod ( 40 ) into the preconfigured surgical instrument during the stabilizing rod ( 40 ) insertion procedure; and wherein a rod fixation tail ( 46 ) is configured to prevent the stabilizing rod ( 40 ) from transverse movement when it the stabilizing rod ( 40 ) is connected with the preconfigured insertion surgical tool.

11 . The polyaxial screw according to claim 1 , wherein the extended tabs ( 209 ) are in the form of elongation of the wall of the coupling ( 201 ) in the distal end ( 203 ) direction and a concentration groove ( 210 ) located under the extended tabs ( 209 ) of the coupling ( 20 ) in order to help breaking the extended tabs ( 209 ).

12 . The polyaxial screw according to claim 1 , wherein the coupling ( 20 ) further comprises a boss ( 28 ) formed at the distal end ( 203 ) of the coupling ( 20 ) on an inner surface of both walls ( 201 ) and extends radially inwards from both walls ( 201 ) of the coupling ( 20 ), wherein a distance between the bosses ( 28 ) of both walls ( 201 ) is smaller than a diameter of the stabilizing rod ( 40 ) to be inserted so that the stabilizing rod ( 40 ) can be inserted in locking manner.

13 . The polyaxial screw according to claim 1 , wherein the screw head ( 12 ) has a tool recess ( 13 ) for bringing into engagement with a screw driver and the set screw ( 50 ) has a tool recess ( 51 ) for bringing into engagement with a screw driver.

14 . The polyaxial screw according to claim 1 , wherein the screw shaft ( 10 ) comprises a channel ( 14 ) extending therethrough in axial direction of the screw shaft ( 10 ) and further comprises radial channels extending from the channel ( 14 ) to the side surface of the screw shaft ( 10 ).

15 . The polyaxial screw according to claim 1 , wherein a hook ( 204 ) is formed at each end of a step ( 27 ) of the coupling ( 20 ).

16 . The polyaxial screw according to claim 1 , wherein the collar ( 60 ) further comprises a circumferential groove ( 64 ) on the outer surface of the collar ( 60 ).

17 . The polyaxial screw according to claim 1 , wherein the sleeve ( 30 ) further comprises a tool positioning hole ( 311 ).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 11, 2024
From: MERTENS, AGRIS
To: AGMSPINE, SIA
Reel/Frame 068548/0401 →
Continuity (1)
Related Publication 20240398444A1 · Dec 5, 2024
References Cited (30)
US 10973554B2 · Biedermann · 2021 [cited by examiner]
US 11291477B1 · Rezach · 2022 [cited by examiner]
US 11510711B1 · Robbins · 2022 [cited by examiner]
US 20080108992A1 · Barry · 2008 [cited by examiner]
US 20090036934A1 · Biedermann · 2009 [cited by examiner]
US 20100114180A1 · Rock · 2010 [cited by examiner]
US 20100168800A1 · Biedermann · 2010 [cited by examiner]
US 20100262196A1 · Barrus · 2010 [cited by examiner]
US 20110276098A1 · Biedermann · 2011 [cited by examiner]
US 20120095516A1 · Dikeman · 2012 [cited by examiner]
US 20140081334A1 · Jackson · 2014 [cited by examiner]
US 20160030090A1 · Webb · 2016 [cited by examiner]
US 20160066958A1 · Raju · 2016 [cited by examiner]
US 20170020574A1 · Biedermann · 2017 [cited by examiner]
US 20180036039A1 · Biedermann · 2018 [cited by examiner]
US 20180055542A1 · Biedermann · 2018 [cited by examiner]
US 20180353213A1 · Biedermann · 2018 [cited by examiner]
US 20180368889A1 · Cole · 2018 [cited by examiner]
US 20190192192A1 · Biedermann · 2019 [cited by examiner]
US 20190274737A1 · Biedermann · 2019 [cited by examiner]
US 20200337737A1 · Biedermann · 2020 [cited by examiner]
US 20210145485A1 · Biedermann · 2021 [cited by examiner]
US 20210186569A1 · Biedermann · 2021 [cited by examiner]
US 20210186575A1 · Biedermann · 2021 [cited by examiner]
US 20210369315A1 · Heuer · 2021 [cited by examiner]
US 20220160400A1 · Beyar · 2022 [cited by examiner]
US 20220395297A1 · Nakada · 2022 [cited by examiner]
EP 2022423B1 · 2010 [cited by examiner]
EP 2574297A1 · 2013 [cited by examiner]
EP 3501436B1 · 2020 [cited by examiner]