System And Technique For Accessing Extra Articular Lesions Or Abnormalities Or Intra Osseous Lesions Or Bone Marrow Lesions
A technique for accessing extra articular lesions or abnormalities or intra osseous lesions or abnormalities or bone marrow lesions or all has the step of positioning the localizing pinning member onto cartilage or subchondral bone to define a virtual pathway through the cartilage or subchondral bone towards or into or through the lesion or abnormality or a desired target to create the virtual pathway utilizing an intra articular localizing pinning member to determine a location of the lesion or abnormality wherein the utilization of the localizing pinning member includes the step to locate or stabilize or both and thereafter using the virtual pathway to create an entry access.
This application is a division of co-pending U.S. application Ser. No. 15/080,980 filed on Mar. 25, 2016 which is a continuation of co-pending U.S. application Ser. No. 15/080,947 filed on Mar. 25, 2016 entitled, “A System And Technique For Accessing Extra Articular Lesions Or Abnormalities Or Intra Osseous Lesions Or Bone Marrow Lesions”.
FIELD OF THE INVENTIONThe present invention relates to the field of addressing lesions of bone marrow. A system and technique for accessing extra articular lesions or abnormalities or intra osseous lesions or bone marrow lesions is taught.
BACKGROUND OF THE INVENTIONSurgical procedures to repair bone defects such as lesions or abnormalities typically involve scooping out the damaged tissue material. One such procedure is called curettage. In these procedures, the bone is removed or opened to provide access to the lesion or cancerous tumor. This effectively weakens the bone structure because not only has the damaged tissue been removed, but also some of the load bearing solid bone structure. This is particularly problematic in the spine, the knees and the shoulder and articulating joints.
Ideally the surgeon would prefer to attack the problematic tissue without damaging the surrounding load bearing bone tissue. This is particularly difficult, however, because the damaged tissue material to be removed is hidden behind the joint. The current state of the art does not allow for accessing as well as addressing lesions of bone distant to the entry point of the localizing site.
The presently available systems and techniques do not adequately address this concern. The present invention described below provides an improved technique to remove the lesion, tumor or other abnormality without damaging the outer joint bone structure, and the surrounding cartilage, and soft tissue. This enables the healing and functionality of the repaired joint to be faster and far less painful.
DefinitionsBone cement: The bone cement PMMA (polymethylmethyacrylate) starts out as a liquid and hardens over time. It can be put into a hole in the bone in liquid form. As PMMA hardens, it gives off a lot of heat. The heat helps kill any remaining tumor cells. This allows PMMA to be used without cryosurgery for some types of bone tumors.
Bone Lesions: Various disorders can damage bones and result in bone lesions. Symptoms include bone pain or tenderness, and the injury can only be seen using special imaging tests. Bone lesions are abnormal areas of bone typically identified using an X-ray or MRI. Lucent bone lesions are caused by rapidly progressing bone injuries. Sclerotic lesions are bone injuries that develop more slowly, which allows the bone to attempt to wall off the damaged bone tissue. Bone lesions typically have cancerous and non-cancerous causes.
Bone Marrow Lesions: (BMLs), common osteoarthritis-related magnetic resonance imaging findings, are associated with osteoarthritis progression and pain.
Curettage: In this procedure, the doctor scoops out the tumor from the bone without removing a section of the bone. This leaves a hole in the bone. In some cases, after most of the tumor has been removed, the surgeon will treat the nearby bone tissue to kill any remaining tumor cells. This can be done with cryosurgery or by using bone cement.
Cryosurgery: For this treatment, liquid nitrogen is poured into the hole that is left in the bone after the tumor was removed. This extremely cold material kills tumor cells by freezing them. This treatment is also called cryotherapy. After cryosurgery, the hole in the bone can be filled by bone grafts or by bone cement.
Osteoarthritis: is the most common form of arthritis, affecting millions of people worldwide. It occurs when the protective cartilage on the ends of your bones wears down over time.
Osteochondritis dissecans: (OCD or OD) is a joint disorder in which cracks form in the articular cartilage and the underlying subchondral bone. OCD usually causes pain and swelling of the affected joint which catches and locks during movement. OCD is caused by blood deprivation in the subchondral bone. This loss of blood flow causes the subchondral bone to die in a process called avascular necrosis. The bone is then reabsorbed by the body, leaving the articular cartilage it supported prone to damage. The result is fragmentation (dissection) of both cartilage and bone, and the free movement of these bone and cartilage fragments within the joint space, causing pain and further damage. OCD can be difficult to diagnose because these symptoms are found with other diseases. However, the disease can be confirmed by X-rays, computed tomography (CT) or magnetic resonance imaging (MRI) scans.
Subchondral bone: bone located beneath or below the cartilage.
SUMMARY OF THE INVENTIONA technique for accessing extra articular lesions or abnormalities or intra osseous lesions or abnormalities or bone marrow lesions or all has the step of utilizing an intra articular localizing pinning member to determine a location of the lesion or abnormality wherein the utilization of the localizing pinning member includes the step of inserting the localizing pinning member through cartilage or subchondral bone into the lesion or abnormality to locate or stabilize or both creating a first entry access. In a first embodiment, the localizing pinning member enters the bony lesion or abnormality penetrating at least into or through the lesion or abnormality to set the localizing pinning member to the desired depth.
In a second embodiment, the localizing pinning member does not enter into the subchondral bone, but rather is positioned onto the cartilage or subchondral bone to define a virtual pathway through the cartilage or subchondral bone towards or into or through the lesion or abnormality or desired target to create the virtual pathway. In this embodiment, the surgeon selects a desired depth along the virtual pathway to establish the desired target. No physical penetration through the bone or cartilage is required by the virtual pinning member.
The localizing pinning member can be a graduated or calibrated depth scale. The pinning member can be a trocar, a drill bit or a pin with a shank marked to indicate the distance to the tip or end. The technique optionally can include fluoroscopy to confirm the localizing pinning member location.
In the technique of the first embodiment, the step of securing a guide component to an exposed portion of the localizing pinning member at a predetermined position on a shank of the localizing pinning member allows manipulating the guide component about the localizing pinning member to establish a desired location for the creation of a second entry access based on the relevant anatomy thus forming a blind angled osteal tunnel or channel. In the second embodiment, the localizing pinning member may employ a pointed end or short pin that fixes the location of the localizing pinning member exterior of the subchondral bone so the surgeon can manipulate the guide component held at the position as he selects the desired entry access. The guide component is preferably held in place, set or fixed at the desired entry access point. The technique then utilizes the held in place, fixed or set guide component passing a drill, a trocar or a punch through the guide component to the entry access to a desired depth within or in the proximity of the lesion or abnormality thus forming an angled osteal tunnel or channel. The entry access alignment is directed by the position of the localizing pinning member or virtual pathway and the guide component wherein straight lines, one line extending along a track of the localizing pinning member and one line extending along a track of the drill, trocar or punch forming the entry access intersect. The first entry access of the first embodiment has an end in or through the lesion or abnormality and the second entry access has an end at least in proximity to, in or through the lesion or abnormality wherein the first access end is located short of the line extending from the track of the second access entry, beyond or an intersection. In the second embodiment, the pointed end is exterior of the cartilage or subchondral bone on a line extending parallel to the localizing pinning member creates a virtual pathway to a desired depth on the virtual pathway. Either technique allows utilizing the access entry to do one or more of the following steps: a) delivering a substance or material to the proximity or location of the lesion or abnormality; b) modifying the lesion or abnormality; and c) introducing devices to modify or visualize the lesion or abnormality.
Both techniques further can include securing a guide component to an exposed portion of the localizing pinning member at a predetermined position on a shank of the localizing pinning member manipulating the guide component about the localizing pinning member to establish a desired location for the creation of one more additional entry access point based on the relevant anatomy. If desired, 3 or more entry access points can be used with this technique. In fact, one of the formed entry accesses can have the localizing pinning member or the virtual pathway moved into an entry to allow the guide to form the additional entry accesses.
A system of the first embodiment allows for accessing extra articular lesions or abnormalities or intra osseous lesions or abnormalities or bone marrow lesions or all and has an intra articular localizing pinning member to determine a location of the lesion or abnormality by inserting the localizing pinning member through cartilage or subchondral bone into the lesion or abnormality to locate or stabilize or both creating a first entry access. The localizing pinning member can be a graduated or calibrated depth scale wherein the localizing pinning member physically enters the bony lesion or abnormality penetrating at least into or through the lesion or abnormality to set the localizing pinning member to the desired depth, the desired depth can be the distance to the tip or end of the pinning member or the system can use the second embodiment and can employ a virtual pathway where the localizing pinning member rests on the cartilage or subchondral bone to define a virtual pathway and does not penetrate through the bone.
Both the systems further have a guide component attachable to an exposed portion of the localizing pinning member at a predetermined position on a shank of the localizing pinning member wherein manipulating the guide component about the localizing pinning member establishes a desired location for the creation of an entry access based on the relevant anatomy. The guide component is preferably held in place, set or fixed at the desired entry access point. The fixed or set guide component has an opening for passing a drill, a trocar or a punch through the guide component to form the entry access to a desired depth within or in the proximity of the lesion or abnormality. The entry access alignment is directed by the position of the localizing pinning member and the guide component, the first and second entry access of the first embodiment are oriented in the same plane and wherein straight lines, the lines L1, L2 extending along tracks or virtual pathway 11V extending from the localizing pinning member and one line L1 extending along a track of the drill, trocar or punch forming the entry access intersect at a point LPT.
The guide component has a first arm portion for attachment to the localizing pinning member and a second arm portion for guiding a drill, a punch or a trocar wherein the first arm portion is a straight bar having an attachment feature for securing to the localizing pinning member at or near an end and the second arm portion extends arcuately from an end of the first arm portion to an end of the second arm portion, the second arm portion can have an arcuate slotted opening for holding a moveable guide with an opening for passing the drill, punch or trocar. The moveable guide can be configured anywhere along the arcuate second arm portion at any angle between 0° up to 90° relative to the track of the localizing pinning member.
In a preferred embodiment, the movable guide has a tubular sleeve and the tubular sleeve is linearly moveable relative to the second arm portion to set the guide component when an end of the sleeve abuts tissue at the desired access entry location. The guide component has a clamping attachment to fix the tubular sleeve to the second arm portion. Once fixed, the drill, punch or trocar can be used to form an entry access.
The invention will be described by way of example and with reference to the accompanying drawings in which:
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The present invention addresses lesions 10 of bone, as shown in
The current art on this is very limited because generally it would be utilizing fluoroscopy or other means to vaguely localize where that lesion might be. Sometimes the lesion can't even be seen on fluoro. One may argue that a pin can be placed in through it, but there are no localizing techniques other than fluoro and imaging which have significant limitations.
In the first embodiment of the present invention, as shown in
The limitation of the prior art techniques is that they allow for no precise localization of lesions which cannot be seen. It may be argued that when one uses the prior art guide systems, the problem is that these create straight tracks. The prior art in line devices don't create angled tunnels, this inventive technique requires an angled tunnel to be created because the surgeon wants the extra articular point of entry to be somewhere remote from the pinning member 30 entry point 11A which is the intra articular localizing point 11A. The best way to do that is to create an angled tunnel or an angled track. If using the standard prior art in-line guides, with its exit point at the intra articular point coming in from outside in, one does not create an appropriate track and can actually violate that subchondral bone and the lesion. Furthermore, this does not provide an appropriate methodology for introducing substances in a sophisticated manner or in a precise manner. The present invention is a complete and different approach to it and introduces and provides an entirely new system of devices and instruments to be used for these purposes. Limitations of the prior art as mentioned before is there are no methodologies for addressing and accessing lesions one cannot see when one wants to visualize or repair remote from the initial entry localizing point. That is a big difference.
The present invention allows for precise localization of a lesion 10 and a way to access it while minimizing load bearing bone structure damage caused by the surgical repair by essentially leveraging the inventor's angled osteal tunnel concept of creating blind tunnels. In the first embodiment, the surgeon is now able to drill a hole 11 into subchondral bone 7 of the femur 6 and from another angled entry point create an access track or portal 12 so the tip of that pinning member 30 and the drill 50 extend along intersecting lines L1 and L2 so that the location 10A is triangulated. This allows for precise localization of the lesion 10 and access to it.
One example where this is most useful is to access the lesion 10 from within the joint 2 such as the knee joint 2. This is called intra-articular. The surgeon can drill a pinning member 30 from within the joint 2 into the bone even going through intact cartilage it necessary. Then, from coming outside of the joint 2 with another drill 50, he or she can then articulate to a blind spot or point 10A within bone knowing it is accurate based on the precision of the guide system 20 instruments. Often times, the lesion 10 being addressed maybe a cystic lesion. The surgeon can then introduce other reamers 80 into this second access portal 12, the reamer 80 is configured to expand once it gets to that desired lesion spot to clean this out. The removed lesion tissue forms a cavity which can then be filled with bone grafting material substance 62 through a cannula 61 that came in from outside of the joint 2. This technique uniquely allows for blind targeting a point or location 10A within bone. The invention in an earlier angled osteal tunneling technique, was for retrieving sutures. In this technique, the surgeon is using the angled tunnels as portals 12, 14 for delivering material 62 to that spot. Additionally, he can also place a camera 72 through one of the portals 14, see
One of the best examples of utilization of this technique is in the case of osteochondritis dissecans. This is a serious lesion in children and young adults where the cartilage 5 can be intact within the joint 2, but the bone 7 behind it essentially cystic or a vascular. The surgeon knows where the lesion 10 is from looking inside the joint 2, but he can't access the dead bone without violating the cartilage 5. Hence, with this inventive technique, he simply drills up in through the intact cartilage to help stabilize it using the pinning member 30. Then coming from outside the joint 2 he can address the diseased bone, clean it out and put material 62 using the second entry access portal 12. He can then, from inside the joint 2, further stabilize the lesion 10.
There are a number of key points the inventor would like to emphasize regarding the present invention. First, the access to a bony lesion 10 from within a joint (intra-articular) or from outside the joint (extra articular) is greatly enhanced. The ability to use the tunnel portal tracks 12, 14 either for retrieval or for delivery of materials 62 is achieved. The ability to use the tracks 12, 14 to place cameras 72 and working instruments 80 to look inside of the bony lesions 10 is accomplished. The precise targeting of bony lesions 10 blindly using a technique of triangulation with the guide system 20 instruments or devices of the present system is available.
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Essentially the next aspect of this is taking bone marrow lesions 10 with ocd and osteochondritis dissecans and when the surgeon is trying to fix these, generally the bone 7 behind it is poor so he is not getting very good fixation so the two additional elements are needed after one utilizes the technique, either after or during utilization of the technique the surgeon can actually put screws in place, they can be metal or they can be biocomposite. These fixation devices 90 actually go into the lesion 10 then he can put the substance 62 around it, the grout or a bone cement which may include different types of bone cement, different types of putty 62, which might harden when set actually allow the screw to be better fixed, alternatively he can put the bone cement substance 62 in the lesion cavity first, then screw directly through it which can again both of these provide better fixation than without any of the bone substances 62. The cement is either put around once the screws are placed or the screws 90 are placed through it. And these can be screws or these can be darts or any variety of fixation devices 90.
The
The second or the first entry access itself or the track created can be enlarged. Its important to note that the second entry access although generally extra-articular, does not necessarily have to be so. More importantly, this access track can be away from the cartilage and subchondral bone so that it does not damage these structures. The current state of the art does not allow for addressing lesions of bone distant to the entry point of the localizing site. It is also important to restate that the present inventive technique allows for accessing or accessing as well as addressing the lesion. Specifically, although the surgeon can address bone lesions by removing damaged tissue, sometimes he can choose to address them by simply adding structural materials or stem cells or both without removing any tissue.
An important feature of this technique is that fixation of the lesion utilizing stabilizing devices such as the initial localizing pin or additional ones which can now either be drilled or punched through the lesion and then be filled with the grout material, such as concrete being poured on rebar, or filling with the grout material before and then the fixation device is placed through it, such as placing screws through concrete once it has set. This introduces an entirely new methodology of addressing these lesions which previously has not been effectively or precisely performed.
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Variations in the present invention are possible in light of the description of it provided herein. While certain representative embodiments and details have been shown for the purpose of illustrating the subject invention, it will be apparent to those skilled in this art that various changes and modifications can be made therein without departing from the scope of the subject invention. It is, therefore, to be understood that changes can be made in the particular embodiments described which will be within the full intended scope of the invention as defined by the following appended claims.
Claims
1. A system for accessing extra articular lesions or abnormalities or intra osseous lesions or abnormalities or bone marrow lesions or all comprising an intra articular localizing pinning member to determine a location of the lesion or abnormality.
2. The system of claim 1 wherein the utilization of the localizing pinning member includes positioning the localizing pinning member onto cartilage or subchondral bone to define the virtual pathway the lesion or abnormality to locate or stabilize or both prior to creating a first entry access.
3. The system of claim 1 wherein the localizing pinning member is a graduated or calibrated depth scale.
4. The system of claim 1 wherein the localizing pinning member never enters the bony lesion or abnormality but creates the virtual pathway penetrating at least into or through the lesion or abnormality when set by holding the localizing pinning member positioned and establishing the desired depth of a target location along the virtual pathway.
5. The system of claim 4 further comprises a guide component attachable to an exposed portion of the localizing pinning member at a predetermined position on a shank of the localizing pinning member wherein manipulating the guide component about the localizing pinning member establishes a desired target location for the creation of the entry access based on the relevant anatomy.
6. The system of claim 5 wherein the guide component is set or fixed at the desired entry access point.
7. The system of claim 6 further comprises the fixed or set guide component having an opening for passing a drill, a pin or a punch through the guide component to form the entry access to a desired depth within or in the proximity of the lesion or abnormality.
8. The system of claim 7 wherein an additional entry access is created by moving the position of the localizing pinning member into the entry access using the entry access and the guide component to position and direct the additional entry access to be oriented in the same plane as the entry access.
9. The system of claim 8 wherein straight lines, one line extending along a track of the virtual pathway of the localizing pinning member in the entry access and one line extending along a track of the drill, pin or punch forming the additional entry access intersect.
10. The system of claim 9 wherein the entry access has an end in or through the lesion or abnormality and the additional entry access has an end at least in proximity to, in or through the lesion or abnormality wherein the first access end is located short of the one line extending from the track of the additional access entry, beyond or an intersection.
11. The system of claim 5 wherein the guide component has a first arm portion for attachment to the localizing pinning member and a second arm portion for guiding a drill, a punch or a pin.
12. The system of claim 11 wherein the first portion is a straight bar having an attachment feature for securing to the localizing pinning member at or near an end and the second arm portion extends arcuately from an end of the first arm portion to an end of the second arm portion, the second arm portion having a moveable guide with an opening for passing the drill, punch or pin.
13. The system of claim 12 wherein the moveable guide can be configured along the arcuate second arm portion at any angle between 0° up to 90° relative to the localizing pinning member.
14. The system of claim 13 wherein the movable guide is a tubular sleeve and the tubular sleeve is linearly moveable relative to the second arm portion to set the guide component when an end of the sleeve abuts tissue at the desired second access entry location.
15. The system of claim 14 wherein the guide component has a clamping attachment to fix the tubular sleeve to the second arm portion.
16. The system of claim 15 wherein the second arm portion has a curved slotted opening between ends allowing the guide component to be positioned along the slotted opening prior to being fixed.
17. The system of claim 14 wherein the first arm portion has a locking nut at an end that when tightened fixes the pinning member depth.
Type: Application
Filed: Jun 14, 2018
Publication Date: Oct 18, 2018
Inventor: Rajiv D. Pandya (Atlanta, GA)
Application Number: 16/008,661