Needle biopsy procedures may be used for the diagnosis and the staging of disease. For example, a fine needle aspiration needle may be advanced through a working channel of an endoscope into the body to the location of target tissue to be sampled. Although fine needle aspiration is a highly sensitive and specific procedure, it may be difficult to acquire a suitable sample in certain clinical situations. The more cells or tissue that can be acquired, the greater the potential for a definitive diagnosis. Although larger gauge needles may be used to obtain larger samples, they may be difficult to pass along tortuous paths to target sites and may acquire samples including more blood, making it more difficult to obtain an accurate diagnosis.
The present disclosure is directed to a device for collecting a tissue sample, comprising a needle extending along a longitudinal axis from a proximal end to a distal end and including a lumen extending therethrough and an opening in a lateral surface of the needle in combination with a jaw rotatably coupled to the needle for rotation between a closed configuration in which the jaw covers the opening and an open configuration in which the jaw is received within the lumen to expose the opening, the jaw including a tissue cutting edge which, as the jaw is rotated from the open configuration to the closed configuration, passes out of the opening along a cutting arc to sever any tissue received in the opening from surrounding tissue.
In an embodiment, the jaw may include an outer, convex surface which, in the closed configuration, faces outward from the needle to form a portion of an outer surface of the needle and an inner, concave surface which forms a scoop for gathering tissue severed by the cutting edge and trapping the severed tissue within the lumen.
In an embodiment, the jaw may be sized and shaped so that, when rotating between open and closed configurations, the cutting edge projects laterally outward from the opening in the needle.
In an embodiment, the jaw may be coupled to an actuation mechanism extending through the device to a proximal end of the needle which, during use, remains accessible to a user.
In an embodiment, the jaw may be coupled to the needle via a hinge.
In an embodiment, the actuation mechanism may be a flexible longitudinal element coupled to an end of the jaw which, when the jaw is in the open configuration, is located distally of the hinge.
In an embodiment, the flexible longitudinal element may be wound about the jaw so that the jaw may be moved from the open configuration to the closed configuration and subsequently moved from the closed configuration to the open configuration.
In an embodiment, the opening may be adjacent to a distal end of the needle.
In an embodiment, the jaw may be shaped as a portion of an ellipsoid.
In an embodiment, the jaw may be shaped as a portion of an sphere.
In an embodiment, the jaw may include a central portion shaped as a portion of an ellipsoid with planar lateral sides extending substantially parallel to a longitudinal axis of the needle.
The present disclosure is also directed to a system for collecting a tissue sample, comprising a needle extending along a longitudinal axis from a proximal end to a distal end and including a lumen extending therethrough and an opening in a lateral surface of the needle in combination with a jaw rotatably coupled to the needle for rotation between a closed configuration in which the jaw covers the opening and an open configuration in which the jaw is received within the lumen to expose the opening, the jaw including a tissue cutting edge which, as the jaw is rotated from the open configuration to the closed configuration, passes out of the opening along a cutting arc to sever any tissue received in the opening from surrounding tissue, and an endoscope with a working channel through which the needle is received.
In an embodiment, the jaw may be coupled to the needle via a hinge.
In an embodiment, the jaw may include an outer, convex surface which, in the closed configuration, faces outward from the needle to form a portion of an outer surface of the needle and an inner, concave surface which forms a scoop for gathering tissue severed by the cutting edge and trapping the severed tissue within the lumen.
The present disclosure is also directed to a method for collecting a tissue sample, comprising inserting a needle to a target tissue within a living body, the needle extending along a longitudinal axis from a proximal end to a distal end and including a lumen extending therethrough, drawing tissue into the lumen through an opening in a lateral surface of the needle, and rotating a jaw rotatably coupled to the needle so that a tissue cutting edge of the jaw passes out of the opening along a cutting arc to sever the tissue received in the opening from surrounding tissue.
In an embodiment, the jaw may be coupled to the needle via a hinge and wherein the jaw includes a concave inner surface which faces the hinge.
In an embodiment, the jaw may include an opening therein through which sampled tissue may pass into the needle lumen.
In an embodiment, during insertion of the device through the body to a target site, the jaw is maintained in the closed configuration and, when the target site is reached, the jaw may be rotated from the closed configuration to the open configuration to expose the opening.
In an embodiment, suction may be applied to the lumen of the needle to draw tissue into the opening.
In an embodiment, the jaw may be rotated by pulling on a flexible longitudinal element extending from a proximal end of the needle to couple to the jaw.
The present disclosure may be further understood with reference to the following description and the appended drawings, wherein like elements are referred to with the same reference numerals. The present disclosure is related to endoscopic devices and, in particular, devices for obtaining tissue samples. Exemplary embodiments of the present disclosure describe a needle comprising
As shown in
The needle body 106 extends longitudinally from a proximal end (not shown) to the distal end 108 and includes the lumen 110 extending therethrough along the longitudinal axis thereof. The needle body 106 may be sized and shaped to be received through a working channel of an endoscope or other insertion device and is preferably sufficiently flexible to pass through the endoscope as it is inserted through a tortuous path into a living body, for example, under ultrasound guidance. The distal end 108 may be tapered, beveled or otherwise shaped as desired to facilitate insertion to the target tissue area. Alternatively, the distal end may be rounded to prevent damage to non-targeted tissue adjacent to the tissue to be sampled.
The jaw 104 extends from a first end 112 to a cutting end 114. The jaw 104 in this embodiment is shaped as a hemi-ellipsoid including a recess or chamber so that when the jaw 104 rotates about the hinge 116 the first end 112 of the jaw 104 cuts the target tissue 10 to collect it within the recess. In other embodiments, the jaw 104 may be hemi-spherical or hemi-ellipsoidal with flat lateral sides. The jaw 104 in this embodiment is sized and shaped to fit the contours of the needle body 106. The jaw 104 is rounded along the longitudinal axis from the first end 112 to the cutting edge 114 and along an axis perpendicular to the longitudinal axis to form a recess therein. In particular, the jaw, 104 may be sized and shaped so that, when it is rotated to the closed configuration, the jaw 104 covers the lateral opening of the lumen. The jaw 104 is laterally connected to the needle body 106 via a hinge 116 about which the jaw is fully rotatable. Although exemplary embodiments show and describe the hinge as fully rotatable, it will be understood by those of skill in the art that the hinge 116 may be formed as any of a variety of types of hinge joints so long as the jaw 104 is able to pivot thereabout between the closed and open configuration. As described above, the jaw 104 may be positioned at the distal end 108 of the needle body 106 or immediately proximally thereto. The jaw 104 may optionally have an opening 134 extending therethrough to allow sampled tissue to be suctioned by the vacuum source from the jaw 104 into the lumen 110 of the needle 102. The opening 134 is positioned so that, when in the open configuration, the opening 134 is aligned with the longitudinal axis.
In an exemplary embodiment see in
Variations may be made in the structure and methodology of the present disclosure, without departing from the spirit and the scope of the disclosure. Thus, it is intended that the present disclosure cover the modifications and variations of this disclosure that may be contemplated by a person skilled in the art.
The present application claims priority to U.S. Provisional Patent Application Ser. No. 62/058,335 filed Oct. 1, 2014.
Number | Date | Country | |
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62058335 | Oct 2014 | US |