The present invention relates generally to catheter balloons for implanting stents. More particularly, the present invention relates to a catheter balloon which utilizes two balloons coaxially disposed within one another.
It is well known to use a balloon catheter to intraluminally deliver and implant a stent. Typically, to implant a stent with a balloon catheter, the unexpanded stent is disposed around the deflated balloon of a balloon catheter. The balloon is then delivered to the desired implantation site and inflated. The inflation of the balloon expands the stent, implanting it at the desired location.
One shortcoming of conventional balloon catheters is that they may cause the ends of the stent to flare out during implantation. This flaring out is referred to as “dogboning”. Dogboning causes at least two undesirable effects. First, dogboning exacerbates any foreshortening of the stent during expansion. Second, dogboning causes the edges of the end of the stent to project in a direction perpendicular to the wall of the vessel in which the stent is being implanted. These projecting edges potentially increase trauma to the wall of the lumen.
Embodiments of the present invention include a balloon catheter with two balloons is disclosed. An inner balloon is shorter than an outer balloon, and also shorter than a stent which is to be implanted. The outer balloon overlays the inner balloon, and is longer that the stent.
To implant the stent, the catheter is delivered to a desired site in a vessel. Pressure is applied to the inner balloon, inflating the balloon and implanting the central portion of the stent. Further increases in pressure rupture the inner balloon. Because the outer balloon overlays the inner balloon, the pressure inflates the outer balloon, expanding the remainder of the stent. The balloons may then be deflated and removed, leaving the implanted stent in the vessel.
An outer balloon 8 is disposed around the inner balloon 6. The inner surface 10 of the outer balloon is immediately adjacent to the outer surface of the inner balloon. The two surfaces are permitted to move with respect to each other. The outer balloon 8 is sealed to the outer surface 4 of the catheter shaft 2 at the ends of the balloon. The outer balloon 8 may be formed of a non-compliant material. In the illustrated embodiment, the length of the outer balloon is chosen so that it is approximately 4 mm longer than the stent. In this and other embodiments, when the stent is crimped around the deflated balloon, the same amount of balloon may extend past the stent on each side—i.e. the balloon may, for example, extend past the stent by 2 mm on each side.
An inflation lumen 16 is located within the catheter shaft 4. The inflation lumen 16 is in fluid communication with the interior 20 of the inner balloon 6 through an aperture 18 in the catheter shaft 4. A pressurized medium, such as saline, may be introduced into the inflation lumen 16 to inflate the inner balloon. The space between the inner balloon and the outer balloon is not provided with an inflation lumen.
In operation, a guidewire 22 may be routed to the desired inflation location. The balloon catheter, the catheter shaft 4 of which has a guidewire port located adjacent the balloons, with a crimped stent may be then placed over the guidewire 22 and delivered to the desired location. A pressurized medium is introduced into the inflation lumen. The pressurized medium passes into the interior 20 of the inner balloon 6, and begins to inflate the inner balloon 6. The inner balloon 6 applies pressure to both the stent 14 and the outer balloon 8. Typically, at approximately 3 or 4 atmospheres (depending on the particular stent design chosen), the stent 14 begins to expand. As shown in
As shown in
When further pressure is applied to the inflation lumen, the outer balloon expands the entire length of the stent. The operator may then apply as much pressure as desired, up to the burst pressure of the outer balloon to firmly implant the stent. Typically, the burst pressure of the outer balloon should be greater than that of the inner balloon. Thus, for example, in a particular embodiment the burst pressure of the inner balloon may be selected to be, for example, 5 atmospheres, and the burst pressure of the outer balloon may be selected to be equal to 10 atmospheres, i.e., to give an approximately 5 atmosphere difference.
The balloons may then be deflated, and the catheter and guidewire may then by removed.
In the foregoing specification, the invention has been described with reference to specific exemplary embodiments. It will, however, be evident that various modifications and changes may be made thereunto without departing from the broader spirit and scope of the invention as set forth in the appended claims. The specification and drawings are accordingly to be regarded in an illustrative rather than a restrictive sense.
This application is a divisional of U.S. patent application Ser. No. 09/878,749 filed on Jun. 11, 2001, issued as U.S. Pat. No. 7,052,510 which is a non-provisional of U.S. provisional application Ser. No. 60/211,642 filed on Jun. 14, 2000.
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Office Actions, Responses to Office Actions and Notice of Allowance for related U.S. Appl. No. 09/878,749, issued as U.S. Patent No. 7,052,510: • Examiner Interview Summary and Corrected Notice of Allowance dated May 4, 2006 • Notice of Allowance dated Jan. 3, 2006 • Applicant's Appeal Brief dated Oct. 14, 2005 • Advisory Action dated Jun. 28, 2005 • Amendment and Response to Final Office Action dated Jun. 2, 2005 • Final Office Action dated Apr. 20, 2005 • Amendment and Response to Non-Final Office Action dated Feb. 17, 2005 • Non-Final Office Action dated Jan. 11, 2005. |
Number | Date | Country | |
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20060173526 A1 | Aug 2006 | US |
Number | Date | Country | |
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60211642 | Jun 2000 | US |
Number | Date | Country | |
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Parent | 09878749 | Jun 2001 | US |
Child | 11371714 | US |