The present invention is related to a medical device, particularly a stent for a bifurcated vessel.
An intravascular stent is usually a drug eluting stent used for the treatment of vascular stenosis. By providing support to a pathological vessel, an intravascular stent implanted into a human body can facilitate the restoration of the pathological vessel to a normal state. Meanwhile, medicament on the stent is released to the vascular wall that is in contact with the stent so as to suppress the growth of cells of the vascular wall, and thereby to lower down the incidences of recurrent vascular stenosis.
In clinical practice, vascular stenosis in many patients occurs not only at one site but at multiple sites of the blood vessel. Bifurcation lesion as indicated by the shadow areas in
After investigating the prior art of the field, the inventor has found that although the existing stent for a bifurcated vessel with a wedge structure is capable of providing excellent treatment to the bifurcation lesion, the slant of the wedge structure of the stent for a bifurcated vessel cannot be positioned properly. In other words, it is impossible to guarantee a proper fit between the slant of the wedge structure of the stent for a bifurcated vessel and the main-vessel stent. Thereby the slant section of the implanted stent may deviate from the main vessel, which is detrimental to therapeutic effect.
Based on the investigation, a stent for a bifurcated vessel is provided in embodiments of the present application, wherein a first opaque point and a second opaque point are disposed on the stent body in order to solve the problem associated with the existing stent for a bifurcated vessel that it cannot be precisely positioned during implantation.
To achieve the above object, the present application provides technical solutions as follows:
A stent for a bifurcated vessel comprises a stent body having two open ends, wherein at least one of the open ends of the stent body is a wedge structure, a second opaque marker is provided on the two ends of the long axis of the slant of the wedge structure, the stent body is provided with two first opaque markers, and the connecting line between the two first opaque markers is parallel to the slant of the wedge structure.
Preferably, said two first opaque markers are located at the other open end of the stent body.
Preferably, the distance between said two first opaque markers equals to the diameter of said stent body.
Preferably, when the number of said second opaque marker is one, said second opaque marker is located at any one end of the long axis of the slant of the wedge structure; when the number of said second opaque marker is two, said second opaque markers are located at both ends of the long axis of the slant of the wedge structure.
Preferably, protruded tooth-like structures are provided around the slant of said wedge structure.
Preferably, the axial length of said wedge structure is 1-15 mm.
Preferably, the angle between the slant of said wedge structure and the axial direction of said stent body is 5-85 degree.
Preferably, the diameter of said stent for a bifurcated vessel is 2.25 mm-10.0 mm.
Preferably, said stent for a bifurcated vessel is a coronary artery bifurcation stent.
Preferably, the diameter of said coronary artery bifurcation stent is 2.25 mm-5.0 mm.
Preferably, said stent body is made of a material with excellent biocompatibility and mechanical properties selected from stainless steel, cobalt-chromium alloy, nickel-based alloy, degradable magnesium alloy or polymeric materials.
As can be seen from the above technical solutions, the examples of the present application provide a stent for a bifurcated vessel comprising a stent body having two open ends, wherein at least one of the open ends of the stent body is a wedge structure, the stent body is provided with two first opaque markers, and the connecting line between the two first opaque markers is parallel to the slant of the wedge structure, at least one second opaque marker is provided on the two ends of the long axis of the slant of the wedge structure. During implanting the stent for a bifurcated vessel into a bifurcation vascular, the operator firstly delivers the wedge structure of the stent for a bifurcated vessel precisely to the bifurcation site of the blood vessel by observing the second opaque marker under X-ray, and then the operator can adjust the stent for a bifurcated vessel by observing the two first opaque markers under X-ray to overlap the two first opaque markers. Since the connecting line between the two first opaque markers is parallel to the slant of the wedge structure, the operator can precisely position the wedge structure of the stent for a bifurcated vessel by observing the first opaque markers so that the slant of the wedge structure of the stent for a bifurcated vessel fits the slant at the blood vessel bifurcation site.
Therefore, the stent for a bifurcated vessel provided herein can avoid the problem associated with the existing stent for a bifurcated vessel that the wedge structure deviates from the main vessel during implantation.
To better illustrate the examples in the present invention or the technical solutions in the prior art, the figures needed in the description of the Examples or the prior art will be briefly described as follows. It is obvious that the figures below only represent a few of the examples recorded in the application and a skilled in the art can obtain other figures according to what have been shown here without paying any inventive effort.
For a skilled in the art to better under the technical solutions in the application, technical solutions in the application will be described thoroughly hereinafter in more detail with reference to the figures herein. It is clear that the examples described herein represent only a few examples instead of all of the examples of the application. All the other examples obtained based on the examples of the present application by one ordinary skilled in the art without paying any inventive effort are deemed to fall into the scope of protection of the present application.
As shown in
The stent body 1 is composed of multiple sets of mental loop 2 and connecting stems 3. Each set of mental loop 2 is formed by connecting multiple wavelike rods 4 together and the connecting stems 3 is positioned between the adjacent mental loops 2 to connect the adjacent mental loops 2. The stent for a bifurcated vessel is suitable for various parts of a human body, such as cerebral artery bifurcation stent, femoral artery bifurcation stent, coronary artery bifurcation stent and the like. In the embodiment of the present application, the diameter of the stent for a bifurcated vessel is preferably 2.25 mm-10.0 mm Further, the stent for a bifurcated vessel is preferably a coronary artery bifurcation stent and the diameter of the coronary artery bifurcation stent is 2.25 mm-5.0 mm In other embodiments of the present application, the stent body 1 can also be made by weaving metal filaments or formed by etching tubular materials. In addition, the stent body 1 is made of a material with excellent biocompatibility and mechanical properties, such as stainless steel, cobalt-chromium alloy, nickel-based alloy, degradable magnesium alloy or polymeric materials etc.
As shown in
In the embodiments of the present application, the first opaque marker 5 and the second opaque marker 6 can be opaque metal sheet embedded on the wavelike rod 4 of the stent, or opaque film coated on the wavelike rod 4 of the stent, or opaque filament winded on the wavelike rod 4 of the stent.
In other embodiments of the present application, the number of the second opaque marker 6 can be one and the second opaque marker 6 is located at any one end of the long axis of the slant of the wedge structure. As shown in
As shown in
In addition, as shown in
As can be seen from the above technical solutions, at least one open end of the stent body of the stent for a bifurcated vessel provided in the embodiments of the present application is a wedge structure. Two first opaque markers are provided on the stent body, and the connecting line between the two first opaque markers is parallel to the slant of the wedge structure. At least one second opaque marker is provided on the two ends of the long axis of the slant of the wedge structure. When implanting the stent for a bifurcated vessel into the branch vessel, the operator firstly can precisely deliver the wedge structure of the stent for a bifurcated vessel to the bifurcation site of the blood vessel by observing the second opaque marker under X-ray. Then the operator adjusts the stent for a bifurcated vessel by observing the two first opaque markers under X-ray to overlap the two first opaque markers. Since the connecting line between the two first opaque markers is parallel to the slant of the wedge structure, the operator can precisely position the wedge structure of the stent for a bifurcated vessel by observing the first opaque markers so that the slant of the wedge structure of the stent for a bifurcated vessel matches the slant at the blood vessel bifurcation site.
Therefore, the stent for a bifurcated vessel provided herein can avoid the problem associated with the existing stent for a bifurcated vessel that the wedge structure deviates from the main vessel during implantation.
The above-mentioned examples are only preferred embodiments of the present application which are used to help understand or practice the present application. It is obvious for those skilled in the art that various modifications to these embodiments can be made and general principles defined herein can be embodied in other examples without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to these examples demonstrated herein but claims the broadest scope that is in line with the principles and novel features disclosed herein.
Number | Date | Country | Kind |
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201010543016.9 | Nov 2010 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2011/078445 | 8/16/2011 | WO | 00 | 7/23/2013 |