The present technology is generally related to devices and methods for creating an atrial shunt.
Atrial shunting is a procedure used to treat certain cardiac defects and heart failure. During the procedure, a blood flow pathway is created between the right atrium and the left atrium such that blood flows between them. In a typical procedure, the septal wall separating the atria is cut with a puncturing device and a mechanical device such as a stent is left in place to prevent tissue regrowth and to maintain the shunt. However, such procedures may result in tissue regrowth thus reducing the effectiveness of the shunt.
In other procedure, the tissue surrounding the septal wall may be ablated with thermal energy, such as cryogenic energy to prevent tissue regrowth and to maintain the shunt. However, current prior art devices fail to isolate the portion of the septal wall being ablated from blood flowing within the left atrium and/or the right atrium. Thus, the blood warms the tissue being ablated with cryogenic energy and the atrial shunt begins to close reducing the effectiveness of the shunt procedure.
The techniques of this disclosure generally relate devices and methods for creating and atrial shunt.
In one aspect, a method of creating a shunt between a right atrium and a left atrium of a mammalian heart including puncturing an atrial septum between the right atrium and the left atrium to create a shunt. An ablation device having balloon is advanced at least partially through the shunt. The balloon is inflated and configured to thermally isolate the atrial septum from blood within the left atrium and the right atrium. Ablation energy is delivered to ablate the atrial septum.
In another aspect of this embodiment, the balloon is inflated before delivering ablation energy to the atrial septum.
In another aspect of this embodiment, delivering ablation energy to ablate the atrial septum includes delivering refrigerant to the balloon.
In another aspect of this embodiment, delivering refrigerant to the balloon includes spraying refrigerant to a middle portion of the balloon.
In another aspect of this embodiment, the balloon includes a pair of longitudinally spaced lobes with the middle portion disposed therebetween, each of the pair of lobes defines a first diameter and the middle portion defines a second diameter less than the first diameter.
In another aspect of this embodiment, the atrial septum has a first side and a second side, and wherein inflating the balloon further includes inflating the first and second lobes of the pair of lobes to abut each of the first side and the second side, respectively.
In another aspect of this embodiment, the ablation device includes a first plurality of spray ports, and wherein the first plurality of spray ports is disposed proximate the middle portion of the balloon.
In another aspect of this embodiment, the ablation device defines a major longitudinal axis and wherein the first plurality of spray ports is angled in a direction orthogonal to the major longitudinal axis.
In another aspect of this embodiment, the first plurality of spray ports is included on a first coiled fluid injection tube, and wherein the ablation device further includes a second coiled fluid injection tube having a second plurality of spray ports, the second plurality of spray ports is angled in a direction orthogonal to the major longitudinal axis.
In another aspect of this embodiment, delivering ablation energy to ablate the atrial septum include delivering radiofrequency energy.
In one aspect, a medical device includes an elongate body defining a major longitudinal axis and having a proximal portion and a distal portion. The distal portion includes a balloon, the balloon includes a pair of longitudinally spaced lobes having a first diameter and a middle portion having a second diameter less than the first diameter disposed therebetween. An ablation element is disposed substantially within the middle portion, the ablation element is configured to deliver ablation energy to the middle portion.
In another aspect of this embodiment, the ablation element includes a first plurality of spray ports configured to deliver refrigerant to the middle portion.
In another aspect of this embodiment, the first plurality of spray ports is angled in a direction orthogonal to the major longitudinal axis.
In another aspect of this embodiment, the device further includes a second plurality of spray ports within the middle portion and longitudinally spaced from the first plurality of spray ports.
In another aspect of this embodiment, the ablation element is configured to deliver radiofrequency ablation energy.
In another aspect of this embodiment, the first lobe and the second lobe are sized and configured to, when inflated, abut and thermally isolate an atrial septum from blood flowing within a left atrium and a right atrium when the balloon is disposed within an atrial shunt.
In one aspect, a method of creating a shunt between a right atrium and a left atrium of a mammalian heart, the method includes puncturing an atrial septum between the right atrium and the left atrium to create a shunt. A medical device having a balloon at least partially through the shunt. Pulse field ablation energy is delivered from the medical device to ablate the atrial septum.
In another aspect of this embodiment, the atrial septum has a first side and a second side opposite the first side, and wherein advancing the medical device having the balloon includes advancing the balloon entirely through the shunt and inflating the balloon to abut the second side of the atrial septum.
In another aspect of this embodiment, delivering pulse field ablation energy from the medical device includes advancing a plurality of electrodes to a position to abut the first side of the atrial septum.
In another aspect of this embodiment, the plurality of electrodes is configured to be disposed in a planar configuration adjacent the first side of the atrial septum.
The details of one or more aspects of the disclosure are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the techniques described in this disclosure will be apparent from the description and drawings, and from the claims.
A more complete understanding of the present invention, and the attendant advantages and features thereof, will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings wherein:
It should be understood that various aspects disclosed herein may be combined in different combinations than the combinations specifically presented in the description and accompanying drawings. It should also be understood that, depending on the example, certain acts or events of any of the processes or methods described herein may be performed in a different sequence, may be added, merged, or left out altogether (e.g., all described acts or events may not be necessary to carry out the techniques). In addition, while certain aspects of this disclosure are described as being performed by a single module or unit for purposes of clarity, it should be understood that the techniques of this disclosure may be performed by a combination of units or modules associated with, for example, a medical device.
In one or more examples, the described techniques may be implemented in hardware, software, firmware, or any combination thereof. If implemented in software, the functions may be stored as one or more instructions or code on a computer-readable medium and executed by a hardware-based processing unit. Computer-readable media may include non-transitory computer-readable media, which corresponds to a tangible medium such as data storage media (e.g., RAM, ROM, EEPROM, flash memory, or any other medium that can be used to store desired program code in the form of instructions or data structures and that can be accessed by a computer).
Instructions may be executed by one or more processors, such as one or more digital signal processors (DSPs), general purpose microprocessors, application specific integrated circuits (ASICs), field programmable logic arrays (FPGAs), or other equivalent integrated or discrete logic circuitry. Accordingly, the term “processor” as used herein may refer to any of the foregoing structure or any other physical structure suitable for implementation of the described techniques. Also, the techniques could be fully implemented in one or more circuits or logic elements.
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To further isolate the septal wall for treatment, an ablation element 28 is disposed substantially within the middle portion 26. The ablation element 28 is configured to deliver ablation energy, such as cryogenic ablation energy, solely to the middle portion 26 to avoid collateral damage to surrounding tissue or blood other than the septal wall. In one configuration, the ablation element 28 includes a first plurality of spray ports 30 circumferentially disposed about the elongate body 14 within the middle portion 26 and configured to deliver refrigerant to the middle portion 26. In the configuration shown in
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In another configuration, a first of the plurality of electrodes 58 is included on the middle portion 26 of the balloon 22 in a catheter 56 with a second and third of the plurality of electrodes 58 positioned on opposite sides of the balloon lobes 24a and 24a. Pulse field ablation energy may be delivered in a bipolar manner as between the first of the plurality of electrodes 58 and at least one of the second and third of the plurality of electrodes 58 to non-thermally ablated opposite side of the septal wall. In another configuration, the catheter 56 include a single lobed balloon 22 which is pulled or pushed against the septal puncture, which a catheter 56 mounted electrode 58 in contact with one side of the septum. An electrical return path electrode is positioned on the catheter 56 on the other side of the septum to which pulse field ablation energy is delivered from the electrode 58 in contact with the other side of the septum. In still other configurations, no balloon 22 is included and a pair of electrodes on either side of the septum are used to ablate the septal wall with bipolar pulse field ablation energy.
It will be appreciated by persons skilled in the art that the present invention is not limited to what has been particularly shown and described herein above. In addition, unless mention was made above to the contrary, it should be noted that all of the accompanying drawings are not to scale. A variety of modifications and variations are possible in light of the above teachings without departing from the scope and spirit of the invention, which is limited only by the following claims.
This application claims the benefit of U.S. Application Ser. No. 63/009,791, filed Apr. 14, 2020.
Number | Date | Country | |
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63009791 | Apr 2020 | US |