WEDGE WIRE FOR USE WITH A NARROWED BIFURCATION VESSEL
A wedge wire for maintaining the patency of an opening to a branch vessel while installing a stent in a main branch of a narrowed bifurcated vessel is provided. The wedge wire has a wedge portion that is larger than the rest of the body of the wedge wire and this wedge portion is used to maintain patency of the branch vessel when a balloon catheter is used to expand a stent in the main branch across the opening of the second branch.
This application is a divisional application of U.S. patent application Ser. No. 13/770,182, filed Feb. 19, 2013, the entire contents of which are incorporated herein by reference.
FIELDThe present invention relates to a guide wire system for placing a stent at a vessel bifurcation.
BACKGROUNDCoronary arteries can become narrowed over time, such as when a build up of cholesterol and cellular debris causes a plaque to form. These narrowed vessels are commonly treated with the use of a stent to rexpand the vessel lumen. These stents are typically metal, meshlike and tubular in shape and can be expanded from a collapsed position on a balloon to an expanded position in the vessel when deployed. Typically, the stent is inserted through a vessel in its collapsed position until the stent reaches the location where the narrowing of the vessel occurs. Once at the desired location, the stent can be expanded by expanding the balloon to force open the vessel, allowing blood to continue to flow through the vessel. The stent acts as scaffolding to overcome the elastic recoil of the vessel wall and becomes incorporated into the vessel wall when a new lining grows over it. Typically, the stent is moved to the site in question, crimped on a balloon catheter. The balloon catheter is then inflated to expand the stent.
This method is used when the narrowing occurs along the main vessel or branch of the main vessel. However, when the narrowing occurs where one vessel branches away from another (a bifurcation), this presents additional challenges and requires additional techniques to be used to deal with the narrowing. One of these techniques is what is commonly referred to as the “kissing balloon” technique. It involves placing a stent in the main vessel so it runs across the opening to the branch vessel. Once the stent is in place, two guide wires can be placed (one in the main vessel, one partly down the main vessel, then down the branch vessel) with each guide wire having a balloon catheter running along each guide wire. Where the branch vessel opens into the main vessel, the balloons can be inflated, with one of the balloons used to further expand the stent, while the other balloon is used to balloon through the sidewall of the stent and into the branch vessel, maintaining its patency. However, this kissing balloon technique has its drawbacks. It typically results in damage to the vessel branching off the main vessel due to the expansion of the balloon against the branch vessel. This will increase the risk of renarrowing the side branch vessel in the weeks to months after the procedure.
SUMMARY OF THE INVENTIONIn an aspect, a wedge wire, having a wedge that is larger than the body of the wedge wire is provided. The wedge of the wedge wire can be used to maintain patency of the branch vessel when the balloon placed on the first guide wire sitting in the main branch of the vessel is inflated within the stent and used to enlarge the stent.
In another aspect, a wedge wire for maintaining the patency of an opening to a branch vessel while installing a stent in a main branch of a narrowed bifurcated vessel is provided. The wedge wire comprises: a proximate end and a distal end; a wedge portion positioned proximate the distal end; a first portion extending between the proximate end and the wedge portion; and a distal portion extending between the distal end and the wedge portion. The wedge portion has a thickness that is greater than the thickness of the first portion and the thickness of the second distal portion.
In another aspect, a method of treating a narrowing of a bifurcated vessel, the bifurcated vessel having a main vessel, a branch vessel and an opening formed between the branch vessel and the main vessel is provided. The method comprises: deploying a stent in the main vessel across the opening to the branch vessel; using a first guide wire, positioning an uninflated balloon in the stent; providing a wedge wire having a proximate end and a distal end and a wedge portion proximate the distal end, the wedge portion having a thickness greater than the rest of the wedge wire; maneuvering the distal end of the wedge wire through a sidewall of the stent and through the opening into the branch vessel until the wedge portion of the wedge wire is positioned in the opening; and inflating the balloon to enlarge the stent while using the wedge portion of the wedge wire to maintain pendency in the opening.
A preferred embodiment of the present invention is described below with reference to the accompanying drawings, in which:
The vessel bifurcation 10 also has a number of narrowings 40 located around the opening 32 of the branch vessel 30, formed by plaque, lesions, etc. that constrict flow through the main vessel 20. These narrowings 40 define a passage running through the narrowings 40 that is narrower than the main vessel 20.
The second balloon 75 can be inflated simultaneously with the first balloon 65 on the first guide wire 60 being used to expand the stent 50. This maneuver will maintain patency of the main vessel 20, and the branch vessel 30.
However, this kissing balloon technique typically causes damage to the branch vessel 30 because the inflation of the first balloon 65 and the second balloon 75 can pinch the branch vessel 30 near the opening 32 of the branch vessel 30. In some cases, this damage could cause a nidus for neointimal hyperplasia (scarring) which may cause renarrowing of the branch vessel 30.
The wedge wire 100 can have a first portion 106 that has a first thickness and/or diameter. The wedge portion 105 can have a second thickness and/or diameter that is larger than the first thickness and/or diameter of the first portion 106 of the wedge wire 100. A distal portion 108 can be provided between the distal end 104 of the wedge wire 100 and the wedge portion 105 of the wedge wire 100. The distal portion 108 can have a thickness and/or diameter that is smaller than the thickness and/or diameter of the wedge portion 105 of the wedge wire 100, which would be similar in diameter to the proximal portion of the first portion 106. As shown in
Although diameter is used to describe the cross-section of the wedge wire 100, a person skilled in the art would understand that the wedge wire 100 could have a cross-section that is not circular, such as elliptical, etc.
In various aspects, the wedge portion 105 of the wedge wire 100 could have various diameters of 0.5 mm, 1 mm, 1.5 mm, 2 mm, etc. In one aspect, the length of the distal portion 108 can be approximately 10 mm, making the wedge portion 105 of the wedge wire 100 approximately 10mm from the distal end 104 of the wedge wire 100. The wedge portion 105 may be tapered at its ends so as to not catch on the meshwork of the stent as it passed through the stent sidewall.
The wedge wire 100 can be used in conjunction with a stent to deal with a narrowing of a bifurcated vessel.
The wedge portion 105 of the wedge wire 100 can be used to maintain patency of the branch vessel 130 when the balloon 165 placed on the first guide wire 160 is inflated within the stent 150 and used to enlarge the stent 150. In this manner a second balloon catheter is not needed because the wedge portion 105 of the wedge wire 100 maintains patency of the opening 132.
Additionally, the wedge portion 105 of the wedge wire 100 could also be used to enlarge the opening in the sidewall of the stent 150, if needed.
The foregoing is considered as illustrative only of the principles of the invention. Further, since numerous changes and modifications will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation shown and described, and accordingly, all such suitable changes or modifications in structure or operation which may be resorted to are intended to fall within the scope of the claimed invention.
Claims
1. A wedge wire for maintaining the patency of an opening to a branch vessel while installing a stent in a main branch of a narrowed bifurcated vessel, the wedge wire comprising:
- a proximate end and a distal end;
- a wedge portion positioned proximate the distal end;
- a first portion extending between the proximate end and the wedge portion; and
- a distal portion extending between the distal end and the wedge portion,
- wherein the wedge portion is located between the first portion of the wedge wire and the distal portion of the wedge wire and is configured to connect the first portion and the distal portion, and
- wherein the wedge portion has a thickness that is greater than a thickness of the first portion and a thickness of the distal portion.
2. The wedge wire of claim 1, wherein the thickness of the first portion and the thickness of the distal portion are substantially the same.
3. The wedge wire of claim 1, wherein the first portion, the wedge portion and the distal portion have circular cross-sections.
4. The wedge wire of claim 1, wherein a diameter of the wedge portion is from 1.0 mm to 2 mm and a diameter of the first portion is less than 0.5 mm.
5. The wedge wire of claim 1, wherein the wedge portion has tapered ends.
6. The wedge wire of claim 1, wherein the distal portion has a length of 10 mm.
7-14. (canceled)
Type: Application
Filed: Oct 19, 2016
Publication Date: Apr 13, 2017
Inventor: Colin PEARCE (Saskatoon Saskatchewan, CA)
Application Number: 15/297,260