CN105392435B - 具有扭绞球囊的肾神经消融导管 - Google Patents

具有扭绞球囊的肾神经消融导管 Download PDF

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CN105392435B
CN105392435B CN201480040406.0A CN201480040406A CN105392435B CN 105392435 B CN105392435 B CN 105392435B CN 201480040406 A CN201480040406 A CN 201480040406A CN 105392435 B CN105392435 B CN 105392435B
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sacculus
medical instrument
electrode assembly
flexible electrode
longitudinal axis
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CN105392435A (zh
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乔尔·N·格罗夫
帕特里克·A·哈夫科斯特
马丁·R·威拉德
曹宏
丹尼尔·J·霍恩
肯尼思·R·拉森
约翰·建华·陈
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Boston Scientific Scimed Inc
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
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    • AHUMAN NECESSITIES
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    • A61B2018/00315Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body for treatment of particular body parts
    • A61B2018/00345Vascular system
    • A61B2018/00404Blood vessels other than those in or around the heart
    • AHUMAN NECESSITIES
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    • A61B2018/00505Urinary tract
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    • AHUMAN NECESSITIES
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    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00571Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body for achieving a particular surgical effect
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
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    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B2018/00636Sensing and controlling the application of energy
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    • AHUMAN NECESSITIES
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    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B18/00Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
    • A61B18/04Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
    • A61B18/12Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
    • A61B18/14Probes or electrodes therefor
    • A61B2018/1467Probes or electrodes therefor using more than two electrodes on a single probe

Abstract

本发明公开了医疗器械及制造和使用医疗器械的方法。示范医疗器械可包括导管杆。可扩张球囊可连结至导管杆。球囊能够在折叠形态和扩张形态之间转换。支撑结构可连结至球囊。支撑结构能够使球囊朝向折叠形态转换。多个细长柔性电极组件可设置在球囊上。细长柔性电极组件可相对于球囊的纵轴线成一定角度取向。

Description

具有扭绞球囊的肾神经消融导管
相关申请的交叉引用
根据《美国法典》35卷§119,本申请要求于2013年7月22日提交的美国临时申请序号第61/857,067号的优先权,其全部内容通过引用合并在此。
技术领域
本发明涉及医疗器械及制造医疗器械的方法。更特别地,本发明涉及用于肾神经消融的医疗器械。
背景技术
已研发出各种体内医疗器械为医疗所用,例如,血管内使用。这些器械中的一些包括导丝、导管等。这些器械通过各种不同制造方法中的任一种来制造,并可根据各种方法中的任一种使用。在已知的医疗器械和方法中,各具有某些利弊。需要不断地提供替代的医疗器械及制造和使用医疗器械的替代方法。
发明内容
本发明提供了医疗器械的设计、材料、制造方法和使用替代。示范医疗器械包括用于肾神经消融的医疗器械。该医疗器械可包括导管杆。可扩张球囊可连结至导管杆。球囊能够在折叠形态和扩张形态之间转换。支撑结构可连结至球囊。支撑结构能够使球囊朝向折叠形态转换。多个细长柔性电极组件可设置在球囊上。细长柔性电极组件可相对于球囊的纵轴线成一角度取向。
用于肾神经消融的另一个示范医疗器械可包括导管杆。可扩张球囊可连结至导管杆。球囊可具有近端和远端,并具有在近端和远端之间延伸的长度。支撑结构可连结至球囊。支撑结构能够使球囊在缩回到引导导管中时以预定方式折叠。多个柔性电极组件可连结至支撑结构。
还公开了消融肾神经的示范方法。该方法可包括提供医疗器械。该医疗器械可包括导管杆。可扩张球囊可连结至导管杆。球囊能够在折叠形态和扩张形态之间转换。支撑结构可连结至球囊。支撑结构能够使球囊朝向折叠形态转换。多个细长柔性电极组件可设置在球囊上。细长柔性电极组件可相对于球囊的纵轴线成一角度取向。该方法还可包括推进医疗器械通过引导导管并进入血管至肾动脉内的位置处,扩张球囊,激活细长柔性电极组件中的至少一些,以及将球囊缩回到引导导管中。支撑结构与引导导管之间的相互作用使球囊转换至折叠形态。
一些实施方式的上述总结并不旨在描述各公开的实施方式或者本发明的每个实施。更特别地,后面的附图和具体实施方式举例说明了这些实施方式。
附图说明
连同附图,考虑以下具体实施方式可更加完整地了解本发明,其中:
图1是示范肾神经消融装置的示意图;
图2是肾神经消融装置的示范可扩张部件的立体图;
图3是图2中的可扩张部件处于展开或扁平形态下的局部顶视图;
图4是示范电极组件的一部分的顶视图;
图5是图4中的局部剖面图A-A;
图6是图4中的局部剖面图B-B;
图7是肾神经消融装置的示范可扩张部件的侧视图;
图8是示范可扩张部件的立体图;
图9是示范支撑结构的立体图;
图10是具有图9中支撑结构的图8中可扩张部件的立体图;
图11是肾神经消融装置的示范可扩张部件的侧视图;
图12A是图11中的可扩张部件处于展开或扁平形态下的局部顶视图;
图12B是替代可扩张部件处于展开或扁平形态下的局部顶视图;
图12C是替代可扩张部件处于展开或扁平形态下的局部顶视图;和
图12D是替代可扩张部件处于展开或扁平形态下的局部顶视图。
虽然本发明可修改成各种改型和替代形式,但其细节已经由附图中的示例示出,并会详细描述。然而,应当认识到,本发明并不限于描述的特定实施方式。相反,本发明覆盖了所有落入在本发明实质和范围内的改型,等同形式,以及替代形式。
具体实施方式
以下说明应当参照附图来阅读,附图不必成比例,其中在全部附图中,相同的附图标记表示相同的元件。具体实施方式和附图旨在说明,而非限制请求保护的本发明。本领域技术人员应当意识到,在不脱离本发明范围的情况下,描述和/或示出的各种元件可以以各种组合和构造布置。具体实施方式和附图说明了请求保护的本发明的示范实施方式。
对于以下定义的术语,除非是在权利要求或者是在本说明书的其它地方给出了不同的定义,否则应当使用这些定义。
无论是否明确指出,本文假定所有数值均通过术语“大约”来修饰。术语“大约”,在数值情况下,通常是指本领域技术人员会认为是与所述值相当(即,具有相同的功能或结果)的数值范围。在许多情况下,术语“大约”可包括四舍五入为最接近有效数字的数值。术语“大约”的其他使用(即,在除了数值之外的情况下),可假定具有它们通常且常规的定义,根据说明书语境理解并与说明书的语境相一致,除非另外说明。
由端点限定的数值范围包括在该范围内的所有数值(例如,1至5包括1、1.5、2、2.75、3、3.80、4和5)。
如在本说明书和所附权利要求中所使用的,单数形式“一”和“该”包括复数指代,除非文中清楚地表明并非如此。如在本说明书和所附权利要求中所使用的,术语“或者”通常使用其包括“和/或”的含义,除非文中清楚地表明并非如此。
应当注意到,在本说明书中提及“一实施方式”,“一些实施方式”,“其他实施方式”等表明描述的该实施方式可包括特定的特征,结构,或特性,但不必每个实施方式都包括该特定的特征,结构,或特性。此外,这种短语不必指代同一实施方式。而且,当在一实施方式中描述特定的特征,结构,或特性时,本领域技术人员应当理解,不论是否明确描述,这种特征,结构,和/或特性也可用于其他实施方式中,除非清楚地表明相反。即,以下描述的各种单个的元件,即使没有以特定组合明确示出,虽然如此,可以预期,其可相互结合或设置以形成其他的附加实施方式或者补充和/或充实描述的实施方式,如本领域技术人员理解的。
某些治疗旨在暂时或永久中断或者改变选择的神经功能。一个示范治疗是肾神经消融,其有时用来治疗诸如高血压、充血性心力衰竭、糖尿病或与高血压、充血性心力衰竭、糖尿病有关的状况,或其他受高血压或盐滞留影响的状况。肾脏产生交感神经响应,其可增加水和/或钠不期望的滞留。交感神经响应的结果可能,例如,增加血压。对一些延伸到肾脏的神经(例如,邻近肾动脉设置或以其他方式沿肾动脉设置)的消融可减少或消除这种交感神经响应,这可促进相关联的不期望的症状相应减轻(例如,血压降低)。
本发明的一些实施方式涉及能量产生及控制装置,通常用于靶组织的治疗以实现治疗效果。在一些实施方式中,靶组织是包含神经或接近神经的组织,包括肾动脉和关联的肾神经。在其他实施方式中,靶组织是腔组织,其可进一步包括诸如在动脉疾病中发现的病变组织。
在本发明一些实施方式中,按目标剂量传送能量的能力可用于神经组织以实现有益的生物响应。例如,已知慢性疼痛、泌尿障碍、高血压、以及许多其他的持续性状况通过神经组织手术而受到影响。例如,已知,可能不对药物响应的慢性高血压可通过使接近肾动脉的过多神经活动失效而得到改善或者根除。还知道,神经组织生来不具有再生特性。因此,通过破坏神经组织的传导路径能够有益地影响过多的神经活动。破坏神经传导路径时,避免对周围神经或器官组织造成损伤是特别有利的。指引并控制能量剂量的能力非常适合于神经组织的治疗。无论是以加热能量剂量或是消融能量剂量,如本文中描述并披露的能量传送的精确控制可指向神经组织。此外,能量的定向应用可足够瞄准神经,而无需准确接触,如使用典型的消融探针时所需要的。例如,可以以很高的、足以使神经组织变性的温度施加离心(eccentric)加热,而不会导致消融,并且无需刺穿腔组织。然而,可能还期望将本发明的能量传送表面配置为刺穿组织并以准确能量剂量像消融探针那样传送消融能量,能量剂量由能量控制和产生装置控制。
电能耗散可依赖于电极阻抗或依赖于电极-组织接触面的阻抗,而不是从有效电极与接地电极之间组织的阻抗耗散。用作说明地,鉴于典型的射频消融治疗可使用具有传导电极的医疗器械,本发明的理念可包括具有一个或多个电阻性电极的电阻性柔性电极组件、包覆在传导电极上的电阻性材料、微加热器和/或其他电阻。使用电阻性柔性电极组件可允许低电压消融装置,这里电能可经由直流电或交流电提供(例如,低压直流电、低频(低于200KHz)交流电、或其他能量)。
在一些实施方式中,去神经治疗的疗效可通过治疗前,治疗中,和/或治疗后测量来评估以对特定患者定制一个或多个治疗参数或者识别是否需要附加治疗。例如,去神经系统可包括用于评估治疗是否已经导致或者正在导致靶组织或邻近组织中神经活动的减少,这可为调节治疗参数提供反馈或者表明附加治疗的必要性。
虽然关于肾神经消融和/或调制讨论了本文描述的装置和方法,可以预期,该装置和方法可用于期望进行神经调制和/或其他组织调制的其他治疗位置和/或应用,包括加热、激活、阻断、破坏、或消融,诸如但不限于:血管、泌尿管、或经由套针和插管进入的其他组织中。例如,本文描述的装置和方法可用于增生组织消融、心脏消融、肺静脉隔离、肺静脉消融、肿瘤消融、良性前列腺增生治疗、神经激发或阻断或消融、肌肉活动调制、组织热疗或其他加热等。
图1是示范肾神经消融系统100的示意图。系统100可包括肾神经消融装置120。肾神经消融装置120可用来消融邻近肾脏K的神经(例如,肾神经,例如,肾动脉RA周围的肾神经)。使用中,肾神经消融装置120可前进穿过诸如主动脉A的血管至肾动脉RA内的位置处。这可包括推进肾神经消融装置120穿过引导鞘套或导管14。当依照要求定位好时,可激活肾神经消融装置120以激活一个或多个电极(未示出)。这可包括可操作地连接肾神经消融装置120至控制单元110,控制单元110可包括射频(RF)发生器,以便供给期望的激活能量至电极。例如,肾神经消融装置120可包括具有连接器20的线或传导部件18,连接器20可连接至控制单元110上的连接器22和/或连结至控制单元110的线24。在至少一些实施方式中,控制单元110还可用来供给/接收适当的电能和/或信号以激活一个或多个设置在肾神经消融装置120远端或远端附近的传感器。当适当地激活时,如以下描述的,电极能够消融组织(例如,肾神经),并且传感器可用来检测期望的物理和/或生物参数。
在一些实施方式中,肾神经消融装置120可包括细长管状部件或导管杆122,如图2所示。在一些实施方式中,细长管状部件或导管杆122可配置成沿导丝或其他细长医疗器械滑动前进至靶部位。在一些实施方式中,细长管状部件或导管杆122可配置成在引导鞘套或导管14内滑动前进至靶部位。在一些实施方式中,细长管状部件或导管杆122可配置成在导丝上、在引导鞘套或导管14内,或者其组合前进至靶部位。可扩张部件130可设置在细长管状部件或导管杆122的远侧区域中、远侧区域上、远侧区域周围或者远侧区域附近。
例如,如图2所示,在一些实施方式中,电极组件可按照多个大体柱状的治疗区A-D布置在可扩张部件130上,这里可扩张部件130示于扩张状态。在其他实施方式中,可扩张部件130或治疗系统的其他组件可包括附加电极组件,其不在治疗区或者另外不使用或不配置成传送治疗能量。
治疗区A-D和相关联的电极组件140a-d进一步示于图3中,其是图2中可扩张部件130的一部分的“展开”描绘。治疗区A-D可沿纵轴线L-L相互纵向毗邻,并可配置成使电极组件施加的能量产生的治疗不重叠。由纵向相邻的双极电极组件140a-d施加的治疗可沿纵轴线L-L周向非连续。例如,参照图3,在一些实施方式中,治疗区A中产生的毁损灶(lesion)与治疗区B中产生的毁损灶关于周向(在该图中是关于L-L的横向)重叠最小。然而,在其他实施方式中,由电极组件(诸如图3中示出的电极组件)施加的能量可至少在某种程度上纵向、周向,和/或以其他方式重叠。各电极极板组件可包括四个元件,其是远侧电极极板150a-d、中间尾部160a-d、近侧电极极板170a-d和近侧尾部180b、d(未示出电极极板组件140a、140c的近侧尾部)。
图4示出电极组件200的顶视图,其在图3中标识为电极组件140。电极组件200可构建为具有多层的柔性电路。这种层可以是连续或非连续的,即,由离散部分组成。示于图5和6中,绝缘的基层202可提供电极组件200的基座。基层202可由诸如聚酰亚胺的柔性聚合物构建而成,尽管其他材料也可以考虑。由多个离散迹线组成的导电层204可层叠在基层202的顶部。导电层204可以是,例如,电沉积铜的层。也可以考虑其他材料。绝缘层206可离散或连续地层叠在导电层204的顶部,使得导电层204可流体密封在基层202与绝缘层206之间。像基层202一样,绝缘层206可由诸如聚酰亚胺的柔性聚合物构建而成,尽管其他材料也可以考虑。在一些实施方式中,绝缘层206的厚度可以从大约0.01mm到大约0.02mm。在其他实施方式中,绝缘层206可以是完整或部分的聚合物涂层,诸如聚四氟乙烯或硅酮。也可以考虑其他材料。
示于图4中的电极组件200可包括远侧电极极板208。在这个区域中,基层202可形成矩形形状。这并非旨在限制。也可以考虑其他形状。如所示的,电极组件200可包括多个开孔以提供更多的柔性,并且组件的极板和其他部分可包括圆的或弯曲的角,过渡区和其他部分。在一些情况下,开孔和圆的/弯曲的特征可提高组件抵抗与可扩张装置分层的能力,在一些情况下,当可扩张装置反复扩张和塌缩时(这也是可扩张装置从保护鞘套中展开和缩回到保护鞘套中所必需的),诸如在手术过程中治疗多个部位时可能需要的,分层可能出现。
远侧电极极板208可包括多个层叠在基层202顶部的离散迹线。这些迹线可包括接地迹线210、有源电极迹线(active electrode trace)212和传感器迹线214。接地迹线210可包括从传感器接地极板218横向偏移的细长电极支撑部216。传感器接地极板218可电连结至接地迹线210的细长电极支撑部216,并可位于远侧电极极板208的中心。桥接部220可将传感器接地极板218的最远侧部分连接至接地迹线210的细长电极支撑部216的远侧部分。随着桥接部220行进至传感器接地极板218,桥接部220的宽度可逐渐减小。在一些实施方式中,桥接部220可具有相对一致且细的宽度,使桥接部能够具有期望的柔性量。细长电极支撑部216在它的近端可宽度逐渐减小,然而,这不是必需的。在一些实施方式中,细长电极支撑部216可在它的近侧部分突然转变成细得多的迹线,使其能够具有期望的柔性量。通常,可使迹线的弯曲度(这里显示出颈缩)最优化以降低球囊再俘获力以及任何挂住(可能存在较尖锐的轮廓)的可能性。也可使迹线的形状和位置最优化以提供电极组件200整体的尺寸稳定性,以防止安置和使用过程中的变形。
图5示出远侧电极极板208的局部剖面A-A。电极222层叠在绝缘层206的一部分上,绝缘层206可具有多个通道(例如,孔)使得电极222能够连结至(导电层204的)接地迹线210的细长电极支撑部216。
如图4所示,接地电极迹线210和有源电极迹线212可包括多个电极。可为每个电极迹线设置三个电极222,然而,可使用更多或更少的电极。另外,各电极222可具有倒圆角以降低挂住其他装置和/或组织的可能性。尽管在双极电极组件的情况下描述了电极222和相关联的迹线的以上说明,本领域技术人员应当意识到,相同的电极组件也可作用在单极模式下。例如,作为一个非限制性示例,与有源电极迹线212和242相关联的电极可用作单极电极,在这些电极通电的过程中,接地迹线210断开。
传感器迹线214可位于远侧电极极板208的中心并可包括面向传感器接地极板218的传感器电源极板224。这些极板可连接至温度传感器226的电源极和接地极,诸如热电偶(例如,T型构造:铜/康铜)或热敏电阻,如图6中描绘的局部剖面图所示。
温度传感器226可在近侧连接至传感器电源极板224,并可在远侧连接至传感器接地极板218。为了降低整体厚度,温度传感器226可定位在基层202的开孔中。在一些实施方式中,温度传感器226可以是热敏电阻。如所示的,温度传感器226可以在远侧电极极板208的非组织接触侧。于是,当温度传感器226并入到最终装置(诸如消融装置120)中时,温度传感器226可俘获在电极结构与球囊之间。这可能是有利的,因为表面安装的电子组件(像热敏电阻)通常具有尖锐的边缘和角,其可能钩住组织,并且可能造成球囊展开和/或收回的问题。这种布局也可防止焊接接头接触血液,因为焊料通常是非生物相容性的。而且,由于安置了温度传感器,可测量组织和电极222的温度表示。
从远侧电极极板208开始,结合的基层202、导电层204和绝缘层206的横向宽度可减小直至中间尾部228。这里,导电层204可形成包括中间接地线230、中间有源电极线232和中间传感器线234,其分别是远侧电极极板208的接地迹线210、有效电极迹线212和传感器迹线214共同延伸的迹线。
从中间尾部228开始,结合的基层202、导电层204和绝缘层206的横向宽度可增加以形成近侧电极极板236。近侧电极极板236可类似于远侧电极极板208构建而成,具有基本相同的电极几何形状和温度传感器布局,尽管可存在各种差异。然而,如所示的,近侧电极极板236可关于沿中间接地线230延伸的中心轴线G-G从远侧电极极板208横向偏移。中间有源电极线232和中间传感器线234可在各自平行于中心轴线G-G的轴线上与近侧电极极板236横向共同延伸。
从近侧电极极板236开始,结合的基层202、导电层204和绝缘层206的横向宽度可减小以形成近侧尾部238。近侧尾部238可包括近侧接地线240、近侧有源电极线242和近侧传感器线244,以及中间有源电极线232和中间传感器线234。近侧尾部238可包括连接器(未示出)以使近侧尾部238能够连结至一个或多个子线束和/或连接器,并最终连结至控制单元110。这些线中的每一个可沿各自平行于中心轴线G-G的轴线延伸。
如所示的,电极组件200可具有远侧电极极板208与近侧电极极板236关于轴线G-G不对称的布局。而且,两个电极极板的接地电极连同中间和近侧接地线230/240一起可沿轴线G-G大致对齐。已发现,这种布局可表现出某些优势。例如,由于基本共享同一接地迹线,近侧尾部的宽度可以仅是中间尾部228宽度的大约一点五倍,而不是各电极极板具有独立接地线的情况下的大约两倍宽。这样,近侧尾部238可以比两个中间尾部228更窄。
系统100可用来执行根据本发明一个非限制性实施方式的治疗方法。例如,控制单元110可以可操作地连结至消融装置120,其可插入到体通道中使得可扩张部件130(具有多个电极组件)可放置成邻近需要治疗的体通道的第一段。将消融装置120放置在需要治疗的体通道的第一段可按照传统方法执行,例如,在荧光镜引导下沿着导丝。一旦插入,可扩张部件130可从塌缩递送形态扩张至扩张形态,例如,在球囊的情况下通过大约2-10atm的增压流体。这可造成可扩张部件130的电极和/或电极组件与体通道的第一段形成接触。
使用包括球囊(其具有连结至其上的柔性电路)的医疗器械,例如本文中描述的,可能是令人满意的。然而,在一些情况下,柔性电路可能包括相对刚性的材料。于是,球囊收缩时,柔性电路可能倾向于变平和/或加宽。这样配置时,当将医疗器械(例如,包括柔性电路)从近侧缩回到引导导管中时,柔性电路或其边缘可能钩住引导导管的边缘。本文披露的医疗器械包括在缩回到例如引导导管中时,可降低医疗器械的柔性电路或其他结构“钩住”引导导管(或其他装置)端部的可能性的结构特征。
现在参照图7,肾神经消融装置300可包括可扩张部件130,其可设置在细长管状部件或导管杆122的远侧区域中、远侧区域上、远侧区域周围或远侧区域附近,如上所述。在至少一些实施方式中,可扩张部件130采用球囊的形式。在一些实施方式中,球囊130的近侧腰部136可附装至细长管状部件或导管杆122。
在一些实施方式中,肾神经消融装置300包括一个或多个柔性细长部件310。柔性细长部件310在形式和功能上可类似于本文披露的电极组件和/或柔性电路(例如,电极组件200)。在至少一些实施方式中,柔性细长部件310可附装至可扩张部件130。在一些实施方式中,各细长部件310可包括一个或多个电极组件325。在一些实施方式中,各电极组件325可包括一个或多个接地电极330、一个或多个有源电极335和温度传感器340。在一些实施方式中,各细长部件310可具有从交替侧延伸出的电极组件325,如图7和12A-12D所示。在一些实施方式中,各电极组件325的电极和传感器可如图4所示布置。
球囊130可扩张或者可以其他方式膨胀。球囊130也能够收缩。通常,当可扩张部件130收缩时,球囊130的外形或轮廓可减小。然而,在细长部件310和/或电极组件325包括相对刚性材料的情况下,细长部件310和/或电极组件325可具有收缩时导致球囊130变宽的倾向。这种变宽会导致细长部件310和/或电极组件325在将球囊130缩回到引导导管中时钩住引导导管的端部。
消融装置300还可包括支撑结构380。通常,支撑结构380能够使球囊130朝向折叠形态转换。在至少一些实施方式中,支撑结构380可包括多个支撑元件382。例如,如图7所示,支撑元件382可采用支撑尖齿(tines)的形式,其沿可扩张部件130延伸。支撑元件382可定位在相邻的细长部件310之间。这样,在至少一些实施方式中,支撑元件382和细长部件310可绕球囊130周向交替。在一些实施方式中,支撑元件382接合在它们的远端315和/或它们的近端。然而,这不是必须的,因为可考虑支撑元件382仅仅是沿球囊130延伸的尖齿的实施方式。
在至少一些实施方式中,支撑元件382能够或者以其他方式配置成帮助球囊130朝向折叠形态转换。例如,支撑元件382可形成或另外界定沿球囊130可能发生折叠的区域。这可导致球囊130收缩时开始折叠或者另外帮助球囊130叠起。此外,当球囊130收缩然后缩回到例如引导导管中时,支撑元件382可接合引导导管的远端。当更大的缩回力施加至装置300(以使球囊130缩回到引导导管中)时,支撑元件382与引导导管之间的相互作用可导致球囊130旋转。例如,因为支撑元件382可沿球囊130成一角度,装置300近侧缩回到引导导管中会有导致球囊130在进入引导导管中时旋转的倾向。旋转可有助于进一步减小球囊130的轮廓或者另外帮助再折叠。
在这些实施方式中的一些和其他实施方式中,装置300可包括可帮助球囊130折叠的其他特征。例如,导管杆122的部分或全部可包括扭矩传递结构。这种结构可包括实心管、支撑结构(例如,编织带等)、高扭矩套管(例如,具有在其中形成的狭槽的管状部件)等。
在一些实施方式中,多个细长部件310可扭绞在一起或者与细长部件310的纵轴线L-L成一角度倾斜,如图7和11-12D所示。成一定角度的细长部件310可沿预定折叠线设置或者另外界定预定折叠线,可扩张部件130可在收缩后沿着该预定折叠线折叠。在一些实施方式中,成一定角度的细长部件310帮助可扩张部件130拧在一起及再折叠。
相邻细长部件310上的电极组件325可偏移,如图7所示。在其他实施方式中,电极组件325可沿可扩张部件130的长度具有螺旋取向,电极组件325可在可扩张部件130定位的腔或血管中形成至少一个完整(360度)的周向环。电极组件325可在围绕体通道的组织中的位置处提供加热,而不会损伤体通道的壁,以破坏位于围绕体通道壁的组织中的神经。螺旋取向是可取的有助于避免电极设置在垂直于体通道纵轴线的单个平面中时(即,环形电极或电极组)可能存在的狭窄增加的风险。
在一些实施方式中,可扩张部件130具有一个或多个沿可扩张部件130的长度延伸的通道134,如图8所示。通道134配置成在可扩张部件130扩张时保留。当可扩张部件130安置在诸如血管的体腔内并扩张时,通道134可允许部分流体流动越过可扩张部件130。通道134可绕可扩张部件130螺旋设置。在示出的实施方式中,可扩张部件130具有三个沿可扩张部件130螺旋延伸的通道134。这并不旨在限制。任何数量的通道134可包含在可扩张部件130中,包括一个、两个、三个、四个、五个、六个或更多的。通道134可以以允许柔性细长部件310设置在通道134之间的方式隔开。在一些实施方式中,细长部件310以匹配通道134的角度的方式螺旋延伸。通道134可提供预定折叠线,可扩张部件130在收缩后沿该预订折叠线折叠。在一些实施方式中,成一定角度的通道134帮助可扩张部件130拧在一起及再折叠。在一些实施方式中,柔性细长部件310安装在通道134内。通道134的宽度可调节以容纳细长部件310和电极组件325。在一些实施方式中,通道134可以是开放/未填充的并在使用过程中保持是开放/未填充的。在其他实施方式中,支撑元件382可设置在通道134内。
如图9所示,肾神经消融装置300可包括支撑结构380。支撑结构380可包括多个支撑元件382。在一些实施方式中,支撑元件382可在它们的近端384和它们的远端386处相互连接。在一些实施方式中,支撑元件382可连接至连接部件或环(未示出)。在一些实施方式中,支撑元件382的远端386可附装至可扩张部件130的远侧腰部137,并且支撑元件382的近端384可附装至可扩张部件130的近侧腰部136。在其他实施方式中,支撑元件382的远端386和近端384可附装至导管杆122。远端386可相互连接,但保持自由附装至导管杆122和可扩张部件130。远端386可滑动地设置在可扩张部件130的远侧腰部137周围。
在一些实施方式中,支撑元件382可大致平行于可扩张部件130的纵轴线延伸。在一些实施方式中,支撑元件382可沿可扩张部件的主体135与纵轴线成一角度延伸。见图9-10。在可扩张部件130具有通道134的实施方式中,支撑元件382可设置在通道中。见图10。在一些实施方式中,支撑结构380可由诸如镍钛诺的镍钛合金制成。在其他实施方式中,支撑结构380可由聚合物制成。
在一些实施方式中,可扩张部件130是模制球囊,并且在制造过程中,支撑结构380可集成到球囊中。例如,支撑结构380可插入到球囊模中,球囊管可插入到模中的支撑元件中。然后可使用传统工艺吹胀球囊,将支撑结构380和可扩张部件130集成到单个增强的球囊组件中。在一些实施方式中,支撑结构380可在可扩张部件130形成之后附装至可扩张部件130。
支撑结构380可为可扩张部件130提供增强的收缩和再折叠特性。当可扩张部件130收缩和/或退回到引导导管14中时,支撑结构380可提供预定线,可扩张部件130沿该线再折叠。支撑结构380可允许可扩张部件130以预定方式再折叠,并允许可扩张部件130一致且完整的再折叠。支撑结构380可以以避免或降低细长部件310分层的方式协助可扩张部件130再折叠。预定折叠且没有分层可允许装置300退回到引导导管14中用于在第二个位置的重新安置处。在一些实施方式中,柔性细长部件310可安装在支撑元件382上。
在一些实施方式中,支撑结构380可导电。在一些实施方式中,支撑元件382可分开并起到电极的作用,一些支撑元件为正,一些为负。在这种实施方式中,电极组件325可由导电的支撑元件382替代。例如,电极组件325可电连接至支撑元件382。这可允许在装置300的制造过程中使用较少的组件。在其他实施方式中,电极组件325可直接安装在球囊130的通道134内。这些仅是示例。可考虑其他的实施方式。
现在参照图11-12D,柔性细长部件310-310h可以相对于纵轴线L-L以各种取向附装至可扩张部件130的主体。图11示出可扩张部件130上成一定角度的细长部件310a-310c的示范组。图12A示出图11中处于扁平、展开形态的可扩张部件130。在一些实施方式中,一个或多个细长部件310a-310c可具有弯曲部322,在该弯曲部322,细长部件从在近侧区域320平行于纵轴线L-L过渡至成一定角度取向的310a、310b、310c。在一些实施方式中,各个成一定角度的细长部件310a-310c可具有长度不同的近侧区域320。在一些实施方式中,两个以上电极组件325可从两侧横向延伸至细长部件310。例如,图12A和12B示出一组各具有两个电极组件325的成一定角度的细长部件310a-310f,这里电极组件325从细长部件310a-310f沿相反方向延伸出。在一些实施方式中,诸如图12C中所示,一个或多个细长部件310可沿其长度大致直线的,沿其整个长度与纵轴线成一定角度延伸。在一些实施方式中,可扩张部件130可具有大致直线的细长部件310和成一定角度的细长部件310g、310h的混合。在一些实施方式中,诸如图7和图12D中所示的,所有细长部件310可沿其长度大致直线的,沿可扩张部件130的整个长度与纵轴线成一定角度延伸。
成一定角度的细长部件310a-310h可导致球囊旋转并沿成一定角度的细长部件310a-310h的线折叠,降低了使消融装置300退回到引导鞘套或导管14中所需要的退回力,并允许使用更小直径的引导鞘套。例如,可使用6Fr的引导导管14,在肾手术中提供优势,而不是之前使用的8Fr的引导导管。成一定角度的细长部件310a-310h可降低剪力(shearforce),因此降低了细长部件与可扩张部件130分层的可能性。在一些实施方式中,细长部件310a-310f与电极组件325的近侧边缘336之间的过渡是渐进的,如图11、12A和8B所示。渐进过渡可降低消融装置300退回到引导导管14中时近侧边缘336钩到引导导管14并导致分层的可能性。
在一些实施方式中,肾神经消融装置300可包括双极电极对。当肾神经消融装置300通电时,诸如以上述方式,射频能量或其他合适的能量可从有源电极335经过,穿过血管壁和靶组织(例如,肾神经),至接地电极330,因此产生了相应的沿体通道(可扩张部件130已定位在其内)的一个或多个毁损灶。传感器元件340可定位在接地电极330和有源电极335之间。传感器元件340可包括至少一个定位在可扩张部件130的外表面上的温度传感器,诸如热敏电阻或热电偶。该至少一个温度传感器340可定位在接地电极330和有源电极335之间,并可配置成监测靶组织、有源和接地电极、或两者的温度,如上所述。在一些实施方式中,在沿可扩张部件130长度的多个位置处,至少一个温度传感器340可包括多个配置成监测靶组织、有源电极、接地电极、或其任何组合的温度的温度传感器。
使用中,可推进消融装置300通过血管至邻近靶组织(例如,肾动脉内)的位置处。在一些实施方式中,靶组织可以是一个或多个在肾动脉周围的肾神经。当合适定位时,可扩张部件130可从塌缩递送形态扩张至扩张形态。这可将有源电极335放置成抵住血管壁。可激活有源电极335。消融能量可从有源电极335通过靶组织(在这里肾神经可被消融、调制、或以其他方式受到影响)传递,并通过接地电极330返回(在双极配置下),或者通过共用的接地电极返回(在单极配置下)。
可用于消融装置300(和/或本文披露的其他装置)的各种组件的材料可包括那些通常与医疗器械相关的材料。为简明起见,以下谈论参照消融装置300。然而,这并不旨在限制本文公开的装置和方法,因为讨论可适用于其他类似的管状部件和/或可扩张部件和/或本文公开的管状部件和/或可扩张部件的组件。
消融装置300及其各种组件可由金属,金属合金,聚合物(下文公开了其一些示例),金属-聚合物复合物,陶瓷,及其组合等,或者其他合适的材料。合适的聚合物的一些示例可包括聚四氟乙烯(PTFE),乙烯-四氟乙烯(ETFE),氟化乙烯丙烯(FEP),聚氧甲烯(POM,例如,杜邦公司出售的),聚醚嵌段酯,聚氨酯(例如,聚氨酯85A),聚丙烯(PP),聚氯乙烯(PVC),聚醚酯(例如,DSM工程塑料公司出售的),醚基或酯基共聚物(例如,丁烯/聚(亚烃基醚)邻苯二甲酸酯和/或诸如杜邦公司出售的的聚酯弹性体),聚酰胺(例如,拜尔公司出售的或埃尔夫阿托公司出售的),弹性体聚酰胺,嵌段聚酰胺/醚,聚醚嵌段酰胺(PEBA,例如以为商标名出售的产品),乙烯-乙酸乙烯酯共聚物(EVA),硅树脂,聚乙烯(PE),马勒克斯高密度聚乙烯,马勒克斯低密度聚乙烯,线性低密度聚乙烯(例如,),聚酯,聚对苯二甲酸丁二醇酯(PBT),聚对苯二甲酸乙二醇酯(PET),聚对苯二甲酸丙二醇酯(polytrimethylene terephthalate),聚萘二甲酸乙二醇酯(PEN),聚醚醚酮(PEEK),聚酰亚胺(PI),聚醚酰亚胺(PEI),聚苯硫醚(PPS),聚苯醚(PPO),聚对苯二甲酰对苯二胺(例如,),聚砜,尼龙,尼龙-12(诸如EMS American Grilon公司出售的),全氟(丙基乙烯基醚)(PFA),乙烯基乙烯醇,聚烯烃,聚苯乙烯,环氧树脂,聚偏二氯乙烯(PVdC),聚(苯乙烯-b-异丁烯-b-苯乙烯)(例如,SIBS及/或SIBS 50A),聚碳酸脂,离聚物,生物相容聚合物,其他适材料,或者前述材料的混合物,组合物,共聚物,聚合物/金属组合物,等等。在一些实施方式中,鞘套可与液晶聚合物(LCP)混合。例如,混合物可包含高达大约6%的LCP。
合适的金属和金属合金的一些示例包括诸如304V,304L,和316LV不锈钢的不锈钢;软钢;诸如线弹性和/或超弹性镍钛诺的镍-钛合金;诸如镍-铬-钼合金(例如,诸如625的UNS:N06625,诸如 的UNS:N06022,诸如的UNS:N10276,其他合金等)的其他镍合金,镍-铜合金(例如,诸如400,400,400等的UNS:N04400),镍-钴-铬-钼合金(例如,诸如等的UNS:R30035),镍-钼合金(例如,诸如的UNS:N10665),其他镍-铬合金,其他镍-钼合金,其他镍-钴合金,其他镍-铁合金,其他镍-铜合金,其他镍-钨合金或钨合金等;钴-铬合金;钴-铬-钼合金(例如,诸如等的UNS:R30003);铂富集不锈钢;钛;及其组合等;或者任何其他合适的材料。
如本文提到的,在市售镍-钛或镍钛诺合金的家族里,有称作“线弹性”或“非超弹性”的种类,尽管其在化学性质方面类似于常见的形状记忆和超弹性种类,但其可呈现出独特且有益的机械性能。线弹性和/或非超弹性镍钛诺与超弹性镍钛诺的区别可在于,线弹性和/或非超弹性镍钛诺在应力/应变曲线中不具有实质的“超弹性坪(superelasticplateau)”或“标志区域(flag region)”,而超弹性镍钛诺则具有。相反,在线弹性和/或非超弹性镍钛诺中,随着可恢复应变增大,应力以大致线性,或稍微线性,但不必完全线性的关系持续增大直至塑性变形开始或者至少以比超弹性镍钛诺所示的超弹性坪和/或标志区域更为线性的关系。这样,为了本公开的目的,线弹性和/或非超弹性镍钛诺也可称为“大致”线弹性和/或非超弹性镍钛诺。
在一些情况下,线弹性和/或非超弹性镍钛诺与超弹性镍钛诺的区别也可在于,线弹性和/或非超弹性镍钛诺可在保持大致弹性的同时承受多达大约2-5%的应变(例如,在塑性变形之前),而超弹性镍钛诺在塑性变形之前可承受多达大约8%的应变。这两种材料都能够与诸如不锈钢的其他线弹性材料(其也能够根据组分而区别开)区别开,其他线弹性材料在塑性变形之前仅可承受大约0.2到0.44%的应变。
在一些实施方式中,线弹性和/或非超弹性镍-钛合金是不具有任何马氏体相变/奥氏体相变的合金,相变可通过差示扫描量热仪(DSC)和动态金属热分析(DMTA)在很大的温度范围内进行分析而检测得到。例如,在一些实施方式中,在大约-60摄氏度(℃)到大约120℃的范围内通过差示扫描量热仪(DSC)和动态金属热分析(DMTA)未测得线弹性和/或非超弹性镍-钛合金的马氏体相变/奥氏体相变。因此,在这个非常宽广的温度范围内,这种材料的机械弯曲性能通常不会受到温度的影响。在一些实施方式中,线弹性和/或非超弹性镍-钛合金在环境温度或室温下的机械弯曲性能与在体温下的机械性能基本相同,例如,都不显示超弹性坪和/或标志区域。换句话说,在宽广的温度范围内,线弹性和/或非超弹性镍-钛合金保持其线弹性和/或非超弹性特性和/或性能。
在一些实施方式中,线弹性和/或非超弹性镍-钛合金中镍的重量百分比可在大约50到大约60的范围内,其余部分基本为钛。在一些实施方式中,镍的重量百分比在大约54到大约57的范围内。合适的镍-钛合金的一个示例是日本神奈川县的Furukawa TechnoMaterial Co.销售的FHP-NT合金。在美国专利第5,238,004号和6,508,803号中公开了镍钛合金的一些示例,通过引用将其合并在此。其他合适的材料可包括ULTANIUMTM(可从Neo-Metrics公司购买)和GUM METALTM(可从丰田公司购买)。在一些其他的实施方式中,超弹性合金(例如超弹性镍钛诺)能够用来实现期望的性能。
在至少一些实施方式中,消融装置300的部分也可掺杂有,材料为,或包括不透射线的材料。不透射线的材料理解为能够在医疗过程中在荧光透视屏或其他成像技术上生成相对较亮图像的材料。这个相对较亮的图像可帮助消融装置300的使用者判定其位置。不透射线的材料的一些示例能够包括但不限于,金,铂,钯,钽,钨合金,装有不透射线填料的聚合物材料等。此外,其他不透射线的标记带和/或线圈也可包括在消融装置300的设计中以实现相同的结果。
在一些实施方式中,给予消融装置300一定程度的磁共振成像(MRI)兼容性。例如,装置的部分可由基本不使图像失真及不生成实质伪影(即,图像中的间隙)的材料制成。例如,某些铁磁材料可能不适合,因为它们会在MRI图像中生成伪影。在这些实施方式中的一些或其他实施方式中,消融装置300的部分也可由MRI机器能够成像的材料制成。显示出这些特性的一些材料包括,例如钨,钴-铬-钼合金(例如,诸如等的UNS:R30003),镍-钴-铬-钼合金(例如,诸如等的UNS:R30035),镍钛诺等,以及其他材料。
2013年1月25日提交的、名为“Methods And Apparatuses For RemodelingTissue Of Or Adjacent To A Body Passage”的美国专利申请序号第13/750,879号,现在公布为美国专利公告第US20130165926A1号,通过引用合并在此。///
附加实施方式
公开了用于肾神经消融的医疗器械。该医疗器械包括导管杆。可扩张球囊连接至导管杆,球囊能够在折叠形态和扩张形态之间转换。支撑结构连接至球囊,支撑结构能够使球囊朝向折叠形态转换。多个细长柔性电极组件设置在球囊上,其中细长柔性电极组件相对于球囊的纵轴线成一角度取向。
作为上述任一实施方式的替代或附加,支撑结构包括多个沿球囊延伸的细长支撑元件。
作为上述任一实施方式的替代或附加,柔性细长电极组件中的至少一些设置在细长支撑元件之间。
作为上述任一实施方式的替代或附加,多个细长支撑元件包含镍钛合金。
作为上述任一实施方式的替代或附加,多个细长支撑元件包含聚合物。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括成对的相邻双极电极。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括单极电极。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括温度传感器。
作为上述任一实施方式的替代或附加,温度传感器定位在其中一个电极组件的底面与球囊的外表面之间。
作为上述任一实施方式的替代或附加,细长柔性电极组件中的至少一个具有平行于球囊的纵轴线延伸的近侧部分,和弯曲部分,在所述弯曲部分,细长柔性电极组件成一角度远离球囊的纵轴线。
作为上述任一实施方式的替代或附加,各细长柔性电极组件的近侧部分具有不同的长度。
作为上述任一实施方式的替代或附加,多个柔性电极组件中的每一个的弯曲部分相对于球囊的纵轴线以相同的角度取向。
作为上述任一实施方式的替代或附加,一个或多个细长柔性电极组件沿其长度大致直线延伸,并与球囊的纵轴线成一角度。
作为上述任一实施方式的替代或附加,所有的细长柔性电极组件沿其长度大致直线延伸,并与球囊的纵轴线成一角度。
作为上述任一实施方式的替代或附加,球囊包括多个在其中形成的通道,所述通道相对于球囊的纵轴线成一角度延伸。
作为上述任一实施方式的替代或附加,多个细长柔性电极组件与多个通道交替。
作为上述任一实施方式的替代或附加,多个细长柔性电极组件与多个通道相对于球囊的纵轴线以相同角度延伸。
作为上述任一实施方式的替代或附加,多个细长柔性电极组件设置在多个通道中。
作为上述任一实施方式的替代或附加,支撑结构包括多个沿球囊延伸的细长支撑元件,其中各支撑元件设置在通道中。
公开了用于肾神经消融的医疗器械。该医疗器械包括导管杆。可扩张球囊连接至导管杆,球囊具有近端和远端,并具有在近端和远端之间延伸的长度。支撑结构连接至球囊,支撑结构能够使球囊在缩回到引导导管中时以预定方式折叠。多个柔性电极组件连接至支撑结构。
作为上述任一实施方式的替代或附加,支撑结构包括多个沿球囊的长度延伸的细长支撑元件。
作为上述任一实施方式的替代或附加,细长支撑元件沿球囊的长度与球囊的纵轴线成一角度延伸。
作为上述任一实施方式的替代或附加,球囊包括多个沿长度延伸的通道。
作为上述任一实施方式的替代或附加,细长支撑元件设置在通道中。
作为上述任一实施方式的替代或附加,通道和细长支撑元件沿球囊的长度与球囊的纵轴线成一角度延伸。
作为上述任一实施方式的替代或附加,电极组件沿纵向偏移。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括成对的相邻双极电极。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括单极电极。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括温度传感器。
作为上述任一实施方式的替代或附加,球囊是顺应性球囊。
作为上述任一实施方式的替代或附加,球囊是非顺应性球囊。
作为上述任一实施方式的替代或附加,支撑结构在可扩张球囊的主体上以螺旋结构延伸。
公开了消融肾神经的示范方法。该方法包括推进医疗器械通过引导导管并进入血管至肾动脉内的位置处。该医疗器械包括导管杆,连结至导管杆的可扩张球囊,球囊能够在折叠形态和扩张形态之间转换,连结至球囊的支撑结构,支撑结构能够使球囊朝向折叠形态转换,以及多个设置在球囊上的细长柔性电极组件,其中细长柔性电极组件相对于球囊的纵轴线成一角度取向。该方法还包括扩张球囊,激活细长柔性电极组件中的至少一些,以及将球囊缩回到引导导管中,其中支撑结构与引导导管之间的相互作用使球囊转换至折叠形态。
作为上述任一实施方式的替代或附加,电极组件中的至少一些包括电阻性部件。
作为上述任一实施方式的替代或附加,电阻性部件构成微加热器。
应当理解,本发明在许多方面仅是说明性的。在不超出本发明范围的情况下,可详细作出改变,特别是在形状,尺寸,和步骤布局方面。在某种适当的程度上,这可包括将一个示范性实施方式的特征中的任何一个用在其他实施方式中。当然,本发明的范围由所附的权利要求表示。

Claims (26)

1.用于肾神经消融的医疗器械,包括:
导管杆;
连接至所述导管杆的可扩张球囊,所述球囊具有近端和远端,并具有在所述近端和所述远端之间延伸的长度,并且所述球囊包括多个沿球囊的长度延伸的通道;
连接至所述球囊的支撑结构,所述支撑结构构造成在缩回球囊和所述支撑结构进入引导导管时以预定方式扭绞并折叠球囊,并且所述支撑结构包括多个沿所述球囊的长度延伸的细长支撑元件,所述细长支撑元件设置在所述通道中;以及
多个柔性电极组件,其连接至所述球囊、在所述通道之间。
2.根据权利要求1所述的医疗器械,其中所述细长支撑元件在其近端彼此连接,并且其中所述细长支撑元件沿所述球囊的长度延伸并与所述球囊的纵轴线成一角度扭绞。
3.根据权利要求1所述的医疗器械,其中所述细长支撑元件在其近端彼此连接,并且其中所述通道和所述细长支撑元件沿所述球囊的长度延伸并与所述球囊的纵轴线成一角度扭绞。
4.根据权利要求1-3中任一所述的医疗器械,其中所述电极组件纵向地偏移。
5.根据权利要求1-3中任一所述的医疗器械,其中所述电极组件中的至少一些包括成对的相邻双极电极。
6.根据权利要求1-3中任一所述的医疗器械,其中所述电极组件中的至少一些包括单极电极。
7.根据权利要求1-3中任一所述的医疗器械,其中所述电极组件中的至少一些包括温度传感器。
8.根据权利要求1-3中任一所述的医疗器械,其中所述球囊是顺应性球囊。
9.根据权利要求1-3中任一所述的医疗器械,其中所述球囊是非顺应性球囊。
10.根据权利要求1-3中任一所述的医疗器械,其中所述细长支撑元件在其近端连接在一起并沿所述球囊的主体以螺旋结构延伸。
11.用于肾神经消融的医疗器械,包括:
导管杆;
连接至所述导管杆的可扩张球囊,所述球囊能够在折叠形态和扩张形态之间转换,并且所述球囊包括沿球囊的长度延伸的多个通道;
连接至所述球囊的支撑结构,所述支撑结构包括沿所述球囊的长度延伸的多个细长支撑元件,所述多个细长支撑元件设置在所述多个通道中,并且所述支撑结构构造成在缩回球囊和支撑结构进入引导导管时使所述球囊扭绞和折叠;以及
设置在所述球囊上所述多个通道之间的多个细长柔性电极组件,其中所述多个细长柔性电极组件相对于所述球囊的纵轴线成一角度扭绞。
12.根据权利要求11所述的医疗器械,其中所述多个细长柔性电极组件中的至少一些设置在所述细长支撑元件之间。
13.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长支撑元件包含镍钛合金。
14.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长支撑元件包含聚合物。
15.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长柔性电极组件中的至少一些包括成对的相邻双极电极。
16.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长柔性电极组件中的至少一些包括单极电极。
17.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长柔性电极组件中的至少一些包括温度传感器。
18.根据权利要求17所述的医疗器械,其中所述温度传感器定位在其中一个所述细长柔性电极组件的底面与所述球囊的外表面之间。
19.根据权利要求11-12中任一所述的医疗器械,其中所述细长柔性电极组件中的至少一个具有近侧部分和弯曲部分,所述近侧部分平行于所述球囊的所述纵轴线延伸,所述细长柔性电极组件在所述弯曲部分成一角度远离所述球囊的所述纵轴线。
20.根据权利要求19所述的医疗器械,其中所述细长柔性电极组件中的每一个的所述近侧部分具有不同的长度。
21.根据权利要求20所述的医疗器械,其中所述细长柔性电极组件中的每一个的所述弯曲部分相对于所述球囊的所述纵轴线以相同的角度取向。
22.根据权利要求11-12中任一所述的医疗器械,其中所述多个细长柔性电极组件中的一个以上沿其长度基本直线延伸,并与所述球囊的所述纵轴线成一角度。
23.根据权利要求22所述的医疗器械,其中所述多个细长柔性电极组件全部沿其长度与所述球囊的所述纵轴线成一角度大致直线延伸。
24.根据权利要求11-12中任一所述的医疗器械,其中所述多个通道相对于所述球囊的所述纵轴线成一角度延伸。
25.根据权利要求24所述的医疗器械,其中所述多个细长柔性电极组件与所述多个通道交替。
26.根据权利要求24所述的医疗器械,其中所述多个细长柔性电极组件与所述多个通道相对于所述球囊的所述纵轴线以相同角度延伸。
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