The present invention relates to a high frequency treatment instrument to be inserted into an instrument-inserting channel of an endoscope for endoscopic mucosal resection (EMR).
There are various types of high frequency treatment instruments used for EMR. Japanese Patent Provisional Publication No. HEI 7-8503 (hereafter, referred to as a document 1) discloses a high frequency treatment instrument, which includes an insulative flexible sheath and a hook-like electrode located at a tip of the flexible sheath. The hook-like electrode includes a rod-like part elongated frontward from the tip of the flexible sheath, and a hook-like part projected in a lateral direction from a tip of the rod-like part.
The treatment instrument disclosed in the document 1 allows an operator to perform a endscopic treatment easily. However, the treatment instrument has a drawback that the hook-like electrode may accidentally damage an instrument-inserting channel of an endoscope or mucous membranes of a body cavity.
Japanese Patent Provisional Publication No. 2002-153484 (hereafter, referred to as a document 2) discloses a different type of treatment instrument. The treatment instrument disclosed in the document 2 is configured such that the hook-like electrode is retractable with respect to a tip of a flexible sheath. By this structure, the above mentioned drawback of the conventional treatment instrument can be solved.
However, since the treatment instrument of the document 2 is configured such that the rod-like part of the hook-like electrode is situated along an axial line of the flexible sheath, an adequate length of a hook part is not secured.
The present invention is advantageous in that it provides a high frequency treatment instrument configured to secure an adequate length of a hook part.
According to an aspect of the invention, there is provided a high frequency treatment instrument for an endoscope, which is provided with an insulative flexible sheath, an operation wire inserted in the flexible sheath so as to be movable along an axial direction of the operation wire in the flexible sheath, and a hook-like electrode attached to a tip of the operation wire. The hook-like electrode includes a rod-like part which is elongated in parallel with the axial direction along a line shifted from an axis line of the operation wire, and a hook part elongated from the rod-like part to cross the axis line of the operation wire.
With this structure, an adequate length of the hook part is secured.
Optionally, the hook part may project from a tip of the rod-like part in a lateral direction.
Still optionally, the hook-like electrode may include a wide part expanded at a base portion of the rod-like part in a direction in which the hook part projects from the rod-like part.
Still optionally, at least a tip portion of the flexible sheath may be formed of a flexible tube. In this case, the wide part of the hook-like electrode is retracted into the flexible tube to press and broaden the flexible tube from an inside of the flexible tube when the operation wire is moved backward.
Still optionally, the high frequency treatment instrument may include an operation unit attached to a base of the flexible sheath. The operation unit may have a movable hook connected to a base of the operation wire to move back and forth the operation wire in the axial direction.
Still optionally, the operation wire may be rotatable about the axis line thereof relative to the flexible sheath.
Still optionally, the high frequency treatment instrument may include a holding ring attached to a base portion of the flexible sheath so that the operation wire is rotated about the axis line while holding the holding ring.
Still optionally, the axis line of the operation wire may coincide with a center axis of the wide part.
Still optionally, the hook-like electrode may include a slanting part elongated from a tip of the rod-like part in a slanting direction to cross the axis line of the operation wire. In this case, the hook part may be elongated straight from a tip of the slanting part and then is bent in a lateral direction to cross the axis line of the operation wire.
Still optionally, wherein the rod-like part, the slanting part and the hook part may be in one plane.
In a particular case, the hook-like electrode may be formed of a flat steel plate.
In a particular case, bumps and dips may be formed at a rear edge of the slanting part.
In a particular case, a front edge of the hook part is formed to have a wavy shape.
Hereinafter, embodiments according to the invention are described with reference to the accompanying drawings.
A conductive hook-like electrode 3 (for example, formed of a stainless steel plate) is connected to a tip of the operation wire 2 via a connection pipe 4 (for example, formed of a stainless steel pipe) so that the hook-like electrode 3 is retractable with respect to the tip of the flexible sheath 1. That is, the hook-like electrode 3 moves forward or backward with respect to the tip of the flexible sheath 1.
At a base part of the flexible sheath 1, an operation unit 10 is connected. The operation unit 10 is used to move the operation wire 2 along the axial direction of the operation wire 2 in the flexible sheath 1. The operation unit 10 includes an operation main body 11, a fixed hook 12 formed at a base end of the operation main body 11, and a movable hook 13 slidably attached to the operation main body 11. A base of the operation wire 2, which is pulled straight in the flexible sheath 1 toward the operation unit 10, is connected to the movable hook 13.
In this structure, the operation wire 2 moves along the axial direction in the flexible sheath 1 by operating the movable hook 13 to move forward or backward along the axial direction. As a result, the hook-like electrode 3 is protruded from or retracted into the tip portion of the flexible sheath 1.
A connector 14 to which a high-frequency power source cable can be connected is located on the movable hook 13 of the operation unit 10, so that a high-frequency current can be supplied to the hook-like electrode 3 via the operation wire 2.
The base part of the flexible sheath 1 is attached to the operation main body 11 such that the flexible sheath 1 is fixed in the axial direction thereof and is rotatable about the axis thereof. At the base of the flexible sheath 1, a holding ring 5 is fixed.
By operating the operation unit 10 to rotate about the axis as illustrated by an arrow R in
Although, in this embodiment, the hook part 3b is formed in such a manner that the hook part 3b bends approximately 90 degrees with respect to the rod-like part 3a, the hook part 3b may be formed to bend at an acute angle or obtuse angle with respect to the rod-like part 3b. The hook part 3b may be formed to have a round shape.
On a base side of the hook-like electrode 3, a wide part 3c is formed. The wide part 3c is expanded from a base of the rod-like part 3a in a direction in which the hook part 3b projects from the tip of the rod-like part 3a. An extension of a center line X of the wide part 3c coincides with a tip portion 2a of the operation wire 2.
As shown in
The wide part 3c is configured to have a width W larger than an internal diameter d of the flexible sheath 1 to some extent (i.e. W>d). For example, a difference (W−d) may be within 0.1 through 0.3 mm.
Therefore, if the operation wire 2 is pulled in a direction A shown in
As shown in
Therefore, according to the embodiment, a size determined by subtracting a wall thickness of the flexible sheath 1 from the outside diameter of the flexible sheath 1 is secured as a length M of the hook part 3b.
By operating the movable hook 13 to move the operation wire 2 in a direction C shown in
In this state, the hook-like electrode 3 is fixed in the tip portion of the flexible sheath 1 by a reaction force applied to the edge of the wide part 3c by the flexible sheath 1. Therefore, even if an external force smaller than a fixing force of the flexible sheath 1 acts on the hook-like electrode 3, the hook-like electrode 3 does not move with respect to the tip of the flexible sheath 1.
Therefore, occurrence of an undesirable phenomenon that the hook-like electrode 3 rotates about the axis line of the flexible sheath 1 when the hook-like electrode 3 is pressed against a mucous membrane is prevented. It becomes possible to perform an endoscopic treatment (e.g. mucosa incision) as desired by an operator. Also, since the adequate length M of the hook part 3b is secured, excellent cutting performance is attained.
By operating the operation unit 10 to rotate the operation wire 2 about the axis line of the flexible sheath 1 while the entire part of the hook-like electrode 3 is projected from the tip of the flexible sheath 1, the rotational direction of the hook-like electrode 3b can be set at a desirable direction as indicated by an arrow in
As shown in
The treatment instrument 20B includes a hook-like electrode 30 connected to the tip portion 2a of the operation wire 2. Similarly to the first embodiment, the hook-like electrode 30 moves frontward or backward by operating the operation unit 10 to move the operation wire 2 in the axial direction of the flexible sheath 1.
As shown in
The hook-like electrode 30 may be produced, for example, by subjecting a stainless steel plate having a thickness of within 0.2 mm through 0.5 mm to a cutting process or a stamping process. The rod-like part 30a, the slanting part 30b and the front-end hook 30c are in one plane. If the thickness of the hook-like electrode 30 is smaller than the range of 0.2 mm through 0.5 mm, cutting performance of the hook-like electrode 30 may become too strong. If the thickness of the hook-like electrode 30 is larger than the range of 0.2 mm through 0.5 mm, heat-caused damage to a peripheral portion of a cutting target of mucosa may become heavy.
A base of the rod-like part 30a is fitted into a straight groove (not shown) formed in a connecting member 40 and is fixed to the connecting member 40, for example, by brazing. Also, the tip portion 2a of the operation wire 2 is inserted into a hole formed in the connecting member 40 and is fixed to the connecting member 40, for example, by brazing.
According to the above mentioned structure, as shown in
The treatment member 20B configured as above is used for three types of treatments including a marking treatment, a mucosa cutting treatment and an exfoliation treatment.
After the marking treatment is finished, the affected area of the mucosa is upraised by infusing a submucous part under the affected area with physiological saline as a preparation to the mucosa cutting treatment. In the mucosa cutting treatment, a rear edge of the slanting part 30b of the hook-like electrode 30 is used to cut the mucosa (as indicated by a reference numerical 102 in
Next, the exfoliation treatment is performed by hooking the front-end hook 30c to muscular tissue 103 between the mucosa surface and a muscle layer and then supplying a high frequency current to the hook-like electrode 30 as shown in
As described above, three treatments including the marking treatment, the mucosa cutting treatment and the exfoliation treatment are continuously performed without replacing the treatment instrument 20B with another one.
Similarly to the first embodiment, an adequate length of the front-end hook 30c is secured since the rod-like part 30a is shifted from the axis line of the operation wire 2.
Although the present invention has been described in considerable detail with reference to certain preferred embodiments thereof, other embodiments are possible.
For example, bumps and dips may be formed at a rear edge of the slanting part 30b of the hook-like electrode 30.
Wavy part 30e may be formed at the front edge of the front-end hook 30c.
A returning part 30f may be formed at the tip of the front-end hook 30c.
The present disclosure relates to the subject matters contained in Japanese Patent Applications Nos. 2004-085847, filed on Mar. 24, 2004, and 2004-151268, filed on May 21, 2004, which are expressly incorporated herein by reference in their entireties.
Number | Date | Country | Kind |
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2004-085847 | Mar 2004 | JP | national |
2004-151268 | May 2004 | JP | national |