GEARED CAM EXPANDABLE INTERBODY IMPLANT AND METHOD OF IMPLANTING SAME
20190091034 ยท 2019-03-28
Assignee
Inventors
- JONATHAN DEWEY (Memphis, TN, US)
- William D. Armstrong (Memphis, TN, US)
- Anthony J. Melkent (Germantown, TN, US)
Cpc classification
A61F2002/4627
HUMAN NECESSITIES
A61F2002/30772
HUMAN NECESSITIES
A61F2/447
HUMAN NECESSITIES
A61F2002/30579
HUMAN NECESSITIES
A61F2002/30405
HUMAN NECESSITIES
A61F2002/30136
HUMAN NECESSITIES
A61F2/4455
HUMAN NECESSITIES
A61F2002/30507
HUMAN NECESSITIES
A61F2/4603
HUMAN NECESSITIES
A61F2002/30471
HUMAN NECESSITIES
International classification
Abstract
A geared cam expandable spinal implant. Rotational motion of a rotating portion is translated into linear motion of a yoke, which moves geared cams at the distal end of the implant to mate with, and walk along, teeth of corresponding racks. The walking of the gear cam teeth along the rack teeth creates a regular rate of implant expansion, reduces initial excessive expansion force applied to the implant, and provides fine adjustment of the expansion rate and force. Spikes, pivotally mounted on the yoke, pivot outward as the implant expands, to a fully-deployed position into engagement with surfaces of adjacent vertebral bodies. The engagement between the deployed spikes and the vertebral bodies prevents inadvertent backout of the expanded implant.
Claims
1. A method of implanting an expandable spinal implant into a patient's disc space between an upper vertebral body and a lower vertebral body, the method comprising: utilizing the expandable spinal implant, the implant having a proximal end and a distal end defining a mid-longitudinal axis therebetween, and being expandable between a collapsed position, a partially-expanded position, and a fully-expanded position, the implant comprising: an upper endplate, the upper endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface, a portion of the inner surface including an upper rack portion; a lower endplate, the lower endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface, a portion of the inner surface including a lower rack portion; a chassis portion mounted within the implant between the upper endplate and the lower endplate, the chassis portion having a proximal end and a distal end, and a first set of threads defined intermediate the proximal end and the distal end of the chassis portion; a yoke movably mounted within the chassis portion, the yoke having a proximal end and a distal end, and being defined by first and second substantially parallel spaced apart walls, each of the first and second spaced apart walls having a proximal end and a distal end; a rotating portion rotatably mounted within the yoke, the rotating portion having an outer surface, a proximal end and a distal end, the distal end being positioned proximate the distal end of the yoke, and threads defined on at least a portion of the outer surface, the threads being engageable with the first set of threads on the chassis portion; at least one first spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one first spur gear being configured to movably engage with the upper rack portion; at least one second spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one second spur gear being configured to engage with the lower rack portion; and at least one spike pivotally attached to at least one of the first and second spaced apart walls of the yoke; wherein the rotating portion is further configured to translate rotational motion thereof to linear motion of the yoke, the yoke translating the linear motion to rotational motion of at least the at least one first spur gear and the at least one second spur gear, thereby rotating the at least one first spur gear and the at least one second spur gear with respect to the yoke; wherein the rotation of the at least one first spur gear with respect to the yoke defines a first linear walking motion of the at least one projecting first spur gear tooth along the upper rack portion toward the distal end of the implant, thereby pivoting the upper endplate toward at least the partially-expanded position, and rotation of the at least one second spur gear with respect to the yoke defines a second linear walking motion of the at least one projecting second spur gear tooth along the lower rack portion toward the distal end of the implant, thereby pivoting upper endplate toward at least the partially-expanded position; and wherein the linear motion of the yoke is further translated to pivotal motion of the at least one spike from a collapsed position to a fully-deployed position transverse to the mid-longitudinal axis; inserting the implant, in the collapsed position, into the disc space between the upper vertebral body and the lower vertebral body with an insertion tool; rotating the rotating portion; translating the rotation of the rotating portion into the linear motion of the yoke toward the distal end of the implant; translating the linear motion of the yoke into rotational motion of the at least one first spur gear and rotational motion of the at least one second spur gear, and into pivotal motion of the at least one spike; rotating the at least one first spur gear and the at least one second spur gear with respect to the yoke to expand the upper endplate and the lower endplate apart from one another to move the implant toward the fully-expanded position; walking the at least one first spur gear along the upper rack portion toward the distal end of the implant; walking the at least one second spur gear along the lower rack portion toward the distal end of the implant; and pivoting the at least one spike to the fully-deployed position transverse to the mid-longitudinal axis and into an engagement with at least one of the upper vertebral body and the lower vertebral body; wherein the distal ends of the upper endplate and the lower endplate are spaced apart from one another a first distance when the implant is in the collapsed position, spaced apart from one another a second distance when the implant is in the partially-expanded position, and spaced apart from one another a third distance when the implant is in the fully-expanded position, the first distance being less than the second distance, and the second distance being less than the third distance.
2. The method of claim 1, wherein the translating the linear motion of the yoke into pivotal motion of the at least one spike includes forcing an arcuate distal end portion of the at least one spike into contact with a ramped distal end surface of an opening in one of the upper endplate and the lower endplate, the contact between the arcuate distal end portion and the ramped distal end surface defining a torque, the torque pivoting the at least one spike to the fully deployed position.
3. The method of claim 2, wherein the engagement of the at least one spike with the one of the upper vertebral body and the lower vertebral body prevents the implant, in the fully-expanded position, from inadvertently backing out of the disc space.
4. The method of claim 1, wherein the insertion tool comprises at least one outer hollow substantially cylindrical shaft, the at least one outer shaft having a proximal end and a distal end, the distal end including at least one projecting finger portion, the at least one projecting finger portion being configured to engage at least one depression defined in a posterior wall of the chassis portion, and an inner substantially cylindrical shaft configured to pass through the at least one outer shaft, the inner shaft having a proximal end and a distal end, the proximal end including a funnel portion, the distal end including a set of external threads defined on an outer peripheral surface thereof, the set of external threads being configured to engage a second set of threads in the chassis portion.
5. The method of claim 4, further comprising engaging the at least one depression on the chassis portion with the at least one projecting finger portion on the distal end of the outer shaft, and engaging the first set of threads of the chassis portion with the second set of threads on the distal end of the inner shaft.
6. The method of claim 4, wherein the insertion tool further includes an elongated driver provided in the inner shaft, the elongated driver having a proximal end and a distal end, and wherein the method further comprises applying a force to the proximal end of the elongated driver, forcing the distal end of the driver into contact with at least a portion of the implant.
7. The method of claim 1, wherein the implant further comprises a proximal expansion mechanism for expanding the proximal ends of the upper endplate and the lower endplate apart from one another, and further comprising expanding the proximal ends of the upper endplate and the lower endplate apart from one another.
8. The method of claim 7, wherein the proximal expansion mechanism includes a first slotted plate portion, a second slotted plate portion, an upper slot in each of the first and second slotted plate portions, a lower slot in each of the first and second slotted plate portions, a rotatable pin-moving portion including at least a first slot in an upper portion thereof and at least a second slot in a lower portion thereof, a first pin receivable through the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and a second pin receivable through the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, the rotation portion being rotatable to change the position of the first pin and the second pin with respect to one another.
9. The method of claim 8, wherein expansion of the proximal ends of the upper endplate and the lower endplate apart from one another is caused by rotation of the rotatable pin-moving portion that causes the first pin and the second pin to move from a first position with respect to one another to a second position with respect to one another via interaction of the first pin in the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and of the second pin in the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, a first distance between the first pin and the second pin in the first position being less than a second distance between the first pin and the second pin in the second position.
10. A method of implanting an expandable spinal implant into a patient's disc space between an upper vertebral body and a lower vertebral body, the method comprising: utilizing the expandable spinal implant, the implant having a proximal end and a distal end defining a mid-longitudinal axis therebetween, and being expandable between a collapsed position, a partially-expanded position, and a fully-expanded position, the implant comprising: an upper endplate, the upper endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface, a portion of the inner surface including an upper rack portion, the upper rack portion including at least one downwardly-projecting tooth intermediate the proximal end and the distal end of the upper endplate, and at least one distal-most downwardly-projecting tooth proximate the distal end of the upper endplate; a lower endplate, the lower endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface, a portion of the inner surface including a lower rack portion, the lower rack portion including at least one upwardly-projecting tooth intermediate the proximal end and the distal end of the lower endplate, and at least one distal-most upwardly-projecting tooth proximate the distal end of the lower endplate, the proximal end of the lower endplate being pivotally connected to the proximal end of the upper endplate; a chassis portion mounted within the implant between the upper endplate and the lower endplate, the chassis portion having a proximal end and a distal end, a first set of threads defined on an interior portion of the chassis portion adjacent the proximal end of the chassis portion, and a second set of threads defined intermediate the proximal end and the distal end of the chassis portion; a yoke movably mounted within the chassis portion, the yoke having a proximal end and a distal end, and being defined by first and second substantially parallel spaced apart walls, each of the first and second spaced apart walls having a proximal end and a distal end; a rotating portion rotatably mounted within the yoke, the rotating portion having an outer surface, a proximal end and a distal end, the distal end being positioned proximate the distal end of the yoke, and threads defined on at least a portion of the outer surface, the threads being engageable with the second set of threads on the chassis portion; at least one first spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one first spur gear having at least one projecting first spur gear tooth configured to movably engage with the downwardly-projecting rack teeth on the upper rack portion; and at least one second spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one second spur gear having at least one projecting second spur gear tooth configured to engage with the upwardly-projecting teeth on the lower rack portion; wherein the rotating portion is further configured to translate rotational motion thereof to linear motion of the yoke, the yoke translating the linear motion to rotational motion of at least the at least one first spur gear and the at least one second spur gear, thereby rotating the at least one first spur gear and the at least one second spur gear with respect to the yoke; and wherein the rotation of the at least one first spur gear with respect to the yoke defines a first linear walking motion of the at least one projecting first spur gear tooth along the downwardly-projecting teeth of the upper rack portion toward the distal end of the implant, thereby pivoting the upper endplate toward at least the partially-expanded position, and rotation of the at least one second spur gear with respect to the yoke defines a second linear walking motion of the at least one projecting second spur gear tooth along the upwardly projecting teeth of the lower rack portion toward the distal end of the implant, thereby pivoting the lower endplate toward at least the partially-expanded position; inserting the implant, in the collapsed position, into the disc space between the upper vertebral body and the lower vertebral body with an insertion tool; rotating the rotating portion; translating the rotation of the rotating portion into the linear motion of the yoke toward the distal end of the implant; translating the linear motion of the yoke into rotational motion of the at least one first spur gear and rotational motion of the at least one second spur gear; walking the at least one first spur gear along the downwardly-projecting teeth of the upper rack portion toward the distal end of the implant; walking the at least one second spur gear along the upwardly-projecting teeth of the lower rack portion toward the distal end of the implant; and reaching the fully-expanded position when one of the at least one first spur gear contacts the at least one distal-most projecting tooth on the upper rack portion, and the at least one second spur gear contacts the at least one distal-most projecting tooth on the lower rack portion; wherein the distal ends of the upper endplate and the lower endplate are spaced apart from one another a first distance when the implant is in the collapsed position, spaced apart from one another a second distance when the implant is in the partially-expanded position, and spaced apart from one another a third distance when the implant is in the fully-expanded position, the first distance being less than the second distance, and the second distance being less than the third distance.
11. The method of claim 10, wherein the insertion tool comprises at least one outer hollow substantially cylindrical shaft, the at least one outer shaft having a proximal end and a distal end, the distal end including at least one projecting finger portion, the at least one projecting finger portion being configured to engage at least one depression defined in a posterior wall of the chassis portion, and an inner substantially cylindrical shaft configured to pass through the at least one outer shaft, the inner shaft having a proximal end and a distal end, the proximal end including a funnel portion, the distal end including a set of external threads defined on an outer peripheral surface thereof, the set of external threads being configured to engage the first set of threads in the chassis portion.
12. The method of claim 11, further comprising engaging the at least one depression on the chassis portion with the at least one projecting finger portion on the distal end of the outer shaft, and engaging the first set of threads of the chassis portion with the set of external threads on the distal end of the inner shaft.
13. The method of claim 11, wherein the insertion tool further includes an elongated driver provided in the inner shaft, the elongated driver having a proximal end and a distal end, and wherein the method further comprises applying a force to the proximal end of the elongated driver, forcing the distal end of the driver into contact with at least a portion of the implant.
14. The method of claim 11, wherein the implant further comprises a proximal expansion mechanism for expanding the proximal ends of the upper endplate and the lower endplate apart from one another, and further comprising expanding the proximal ends of the upper endplate and the lower endplate apart from one another.
15. The method of claim 14, wherein the proximal expansion mechanism includes a first slotted plate portion, a second slotted plate portion, an upper slot in each of the first and second slotted plate portions, a lower slot in each of the first and second slotted plate portions, a rotatable pin-moving portion including at least a first slot in an upper portion thereof and at least a second slot in a lower portion thereof, a first pin receivable through the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and a second pin receivable through the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, the rotation portion being rotatable to change the position of the first pin and the second pin with respect to one another.
16. The method of claim 15, wherein expansion of the proximal ends of the upper endplate and the lower endplate apart from one another is caused by rotation of the rotatable pin-moving portion that causes the first pin and the second pin to move from a first position with respect to one another to a second position with respect to one another via interaction of the first pin in the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and of the second pin in the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, a first distance between the first pin and the second pin in the first position being less than a second distance between the first pin and the second pin in the second position.
17. A method of implanting an expandable spinal implant into a patient's disc space between an upper vertebral body and a lower vertebral body, the method comprising: utilizing the expandable spinal implant, the implant having a proximal end and a distal end defining a mid-longitudinal axis therebetween, and being expandable between a collapsed position, a partially-expanded position, and a fully-expanded position, the implant comprising: an upper endplate, the upper endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface; a lower endplate, the lower endplate including a proximal end, a distal end, an outer surface, at least one side surface, and an inner surface; a chassis portion mounted within the implant between the upper endplate and the lower endplate, the chassis portion having a proximal end and a distal end, and a first set of threads defined intermediate the proximal end and the distal end of the chassis portion; a yoke movably mounted within the chassis portion, the yoke having a proximal end and a distal end, and being defined by first and second substantially parallel spaced apart walls, each of the first and second spaced apart walls having a proximal end and a distal end; a rotating portion rotatably mounted within the yoke, the rotating portion having an outer surface, a proximal end and a distal end, the distal end being positioned proximate the distal end of the yoke, and threads defined on at least a portion of the outer surface, the threads being engageable with the first set of threads on the chassis portion; at least one first spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one first spur gear being configured to movably engage with a portion of the inner surface of the upper rack portion; at least one second spur gear rotatably mounted to at least one of the distal ends of at least one of the first and second spaced apart walls of the yoke, the at least one second spur gear being configured to engage with a portion of the inner surface of the lower rack portion; and a proximal expansion mechanism for expanding the proximal ends of the upper endplate and the lower endplate apart from one another; wherein the rotating portion is further configured to translate rotational motion thereof to linear motion of the yoke, the yoke translating the linear motion to rotational motion of at least the at least one first spur gear and the at least one second spur gear, thereby rotating the at least one first spur gear and the at least one second spur gear with respect to the yoke; inserting the implant, in the collapsed position, into the disc space between the upper vertebral body and the lower vertebral body with an insertion tool; rotating the rotating portion; translating the rotation of the rotating portion into the linear motion of the yoke toward the distal end of the implant; translating the linear motion of the yoke into rotational motion of at least the at least one first spur gear and rotational motion of at least the at least one second spur gear; rotating the at least one first spur gear and the at least one second spur gear with respect to the yoke to expand the upper endplate and the lower endplate apart from one another to move the implant toward the fully-expanded position via interaction of the at least one first spur gear with the portion of the inner surface of the upper rack portion and interaction of the at least one second spur gear with the portion of the inner surface of the lower rack portion; and expanding the proximal ends of the upper endplate and the lower endplate apart from one another; wherein the distal ends of the upper endplate and the lower endplate are spaced apart from one another a first distance when the implant is in the collapsed position, spaced apart from one another a second distance when the implant is in the partially-expanded position, and spaced apart from one another a third distance when the implant is in the fully-expanded position, the first distance being less than the second distance, and the second distance being less than the third distance.
18. The method of claim 17, wherein the insertion tool comprises at least one outer hollow substantially cylindrical shaft, the at least one outer shaft having a proximal end and a distal end, the distal end including at least one projecting finger portion, the at least one projecting finger portion being configured to engage at least one depression defined in a posterior wall of the chassis portion, and an inner substantially cylindrical shaft configured to pass through the at least one outer shaft, the inner shaft having a proximal end and a distal end, the proximal end including a funnel portion, the distal end including a set of external threads defined on an outer peripheral surface thereof, the set of external threads being configured to engage a second set of threads in the chassis portion.
19. The method of claim 17, wherein the proximal expansion mechanism includes a first slotted plate portion, a second slotted plate portion, an upper slot in each of the first and second slotted plate portions, a lower slot in each of the first and second slotted plate portions, a rotatable pin-moving portion including at least a first slot in an upper portion thereof and at least a second slot in a lower portion thereof, a first pin receivable through the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and a second pin receivable through the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, the rotation portion being rotatable to change the position of the first pin and the second pin with respect to one another.
20. The method of claim 19, wherein expansion of the proximal ends of the upper endplate and the lower endplate apart from one another is caused by rotation of the rotatable pin-moving portion that causes the first pin and the second pin to move from a first position with respect to one another to a second position with respect to one another via interaction of the first pin in the upper endplate, the upper slots of the first and second slotted plate portions, and the first slot of the rotatable pin-moving portion, and of the second pin in the lower endplate, the lower slots of the first and second slotted plate portions, and the second slot of the rotatable pin-moving portion, a first distance between the first pin and the second pin in the first position being less than a second distance between the first pin and the second pin in the second position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0069] A geared cam expandable spinal implant 10 is configured to be inserted in a surgically-enhanced disc space between an upper vertebral body and an adjacent lower vertebral body. The implant 10 includes a proximal end 12 and a distal end 14, defining a mid-longitudinal axis L-L therebetween.
[0070] In one embodiment, the implant 10 includes an upper endplate 16. As depicted in
[0071] In one embodiment, the implant 10 includes a lower endplate 30. The lower endplate 30 includes a proximal end 32, a distal end 34, side surfaces 36, and an inner surface 38. The inner surface 38 includes a lower rack portion 40, which includes upwardly-projecting teeth 42, and a distal-most upwardly-projecting tooth 43.
[0072] In one embodiment, the implant 10 includes a chassis portion 44 mounted within the implant between the upper endplate 16 and the lower endplate 30. The chassis portion 44 includes a proximal end 46 and a distal end 48. As depicted in
[0073] In one embodiment, as depicted in
[0074] In one embodiment, a yoke 60 is movably mounted within the chassis portion 44. The yoke 60 is defined by a first wall 62, and a parallel second wall 64 spaced away from the first wall 62. First wall 62 has a proximal end 66 and a distal end 68. Second wall 64 has a proximal end 70 and a distal end 72. As depicted in
[0075] In one embodiment, a rotating portion 78 is rotatably mounted within the chassis portion 44. Rotating portion 78 includes a proximal end 80, a distal end 82, and an outer surface 84, with outer threads 86 defined on the outer surface 84. In one embodiment, as depicted in
[0076] In one embodiment, as depicted in
[0077] In one embodiment, a pair of first spur gears 90 is rotatably mounted to the distal end 68 of the first wall 62 of the yoke 60, and the distal end 72 of the second wall 64 of the yoke 60, respectively. Each first spur gear 90 includes projecting first spur gear teeth 92, configured to engage with the downwardly-projecting teeth 28 of the upper rack portion 26.
[0078] In one embodiment, as depicted in
[0079] In one embodiment, as depicted in
[0080] In one embodiment, the rotating portion 78 rotates within the chassis portion 44, with the outer threads 86 of the rotating portion 78 engaging threaded portion 58 of the chassis portion 44, until the distal end 82 of the rotating portion 78 contacts the distal cross-piece 71 of the yoke 60. Rotation of the rotating portion 78 is translated into linear motion of the yoke 60 towards the distal end 14 of the implant 10. Linear motion of the yoke 60 causes the first spur gears 90, and the second spur gears 94 to rotate. The respective first spur gear teeth 92 and second spur gear teeth 96 walk towards the distal end 14 of the implant 10 in the respective downwardly-projecting teeth 28 of the upper rack portion 26, and upwardly-projecting teeth 42 of the lower rack portion 40. As the teeth walk, the upper endplate 16 is moved away from the lower endplate 30, thereby moving the implant 10 into and through the partially-expanded position. When the respective spur gear teeth 92 and 96 reach the respective distal-most downwardly-projecting tooth 29, or alternately the distal-most upwardly-projecting tooth 43, they can walk no farther towards the distal end of the implant 10, and the implant has reached the fully-expanded position. The amount of expansion in the fully-expanded position is related to the length of the spur gears. As depicted in
[0081] In one embodiment, as depicted in
[0082] In one embodiment, as depicted in
[0083] In one embodiment, as depicted in
[0084] In one embodiment, as depicted in
[0085] In one embodiment, the distal end 20 of the upper endplate 16, and the distal end 34 of the lower endplate 30 define a tip 110. The tip 110 can be beveled, as depicted in
[0086] In one embodiment, the tip 110 can include bone-engaging projections 112. In accordance with another embodiment, the tip 110 can have no projections. The bone-engaging projections 112 are configured to prevent implant migration as the implant 10 is expanding. The bone-engaging projections 112 may be perpendicular to the side surfaces 22 and 36, but generally follow the shape of the tip 110, or they could be parallel to the tip 110.
[0087] In one embodiment as depicted in
[0088] In one embodiment, as depicted in
[0089] In one embodiment, an independent proximal expansion mechanism 122 is defined at the proximal end 12 of the implant 10. As depicted in
[0090] In one embodiment, an insertion tool 130, depicted in
[0091] In one embodiment, as depicted in
[0092] In one embodiment, as depicted in
[0093] In one embodiment, as depicted in
[0094] In one embodiment, as depicted in
[0095] In one embodiment, a handle 148 is provided, gripping an outer surface of the outer shaft 136. Handle 148 is configured to be held by a surgeon while using the insertion tool 130.
[0096] In one embodiment, as depicted in
[0097] In one embodiment, as depicted in
[0098] In one embodiment, as depicted in
[0099] In one embodiment, as depicted in
In one embodiment, as depicted in
[0100] In one embodiment, as depicted in
[0101] In one embodiment, as depicted in
[0102] In one embodiment, as depicted in
[0103] In one embodiment, as depicted in
[0104] In one embodiment, as depicted in
[0105] In one embodiment, as depicted in
[0106] In one embodiment, as depicted in
[0107] Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.