CN104780859B - 用于肾神经调节的自定位电极系统及方法 - Google Patents
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Abstract
公开了用于神经和组织调节的系统。示例性系统可包括血管内神经调节系统,其包括具有近端区域和远端区域的长形轴。系统可包括可扩张框架,其具有定位在框架上或周围的一个或更多个电极。包括偏压元件、中心轴和活塞的促动组件可构造成提供可扩张框架的受控扩张。系统还可还包括用于控制促动组件的控制元件。
Description
相关申请的交叉引用
本申请基于35 U.S.C.§1 19请求享有2012年9月17日提交的美国临时申请序列第61/702,065号的优先权,其全部内容通过引用并入本文中。
技术领域
本公开内容关于医疗装置及用于制作和使用医疗装置的方法。更具体而言,本公开内容关于用于执行肾神经调节的医疗装置及方法。
背景技术
已经开发出了多种体内医疗装置来用于医疗使用,例如,血管内使用。这些装置中的一些包括导线、导管等。这些装置由多种不同制造方法中的任一种制造,并且可根据多种方法中的任一种来使用。已知的医疗装置和方法均具有某些优点和缺点。不断需要提供备选的医疗装置以及备选方法用于制造和使用医疗装置。
发明内容
本公开内容针对用于医疗装置结构和组件的若干备选设计、材料和使用的备选方案。示例性装置可包括用于神经调节的系统。系统可包括长形轴,其具有近端、远端和在其间延伸的内腔。具有近端和远端的可扩张框架可定位在长形轴的远端附近。可扩张框架可构造成在扩张构造与溃缩构造之间转移。可扩张框架可包括在可扩张框架的近端与远端之间延伸的多个带。带中的至少一个可包括电极,其定位在关于可扩张框架的最大径向程度的沿径向向内的位置处。调节系统还可包括扩张机构,其构造成使可扩张框架在溃缩构造与扩张构造之间移动。扩张机构可包括可移动地设置在长形轴的内腔内的活塞,以及具有附接于可扩张框架的远端的远端和附接于活塞的近端的中心轴。扩张机构还可包括位于长形轴的远端与活塞之间的偏压元件。扩张系统还可包括从活塞的近端向近侧延伸的控制元件。
一些实施例的以上概述并非旨在描述本公开内容的各个公开的实施例或每个实施。以下的附图和具体实施方式更具体地例示了这些实施例。
附图说明
结合附图考虑以下详细描述可更完全理解本公开内容。
图1为示出在原位的肾神经调节系统的示意图。
图2为示范性血管内神经调节系统的局部截面。
图3为随框架的直径变化的示例性可扩张框架上的力的图解表示。
图4为处于第一构造的示例性医疗装置的局部截面侧视图。
图5为处于第二构造的示例性医疗装置的局部截面侧视图。
尽管本公开内容服从各种改型和备选形式,但其细节已经在附图中经由实例示出,并且将详细描述。然而,应当理解的是,不期望将本发明限于描述的特定实施例。相反,期望覆盖落入本公开内容的精神和范围内的所有改型、等同方案和备选方案。
具体实施方式
对于以下限定的用语,应当应用这些定义,除非不同的定义在权利要求中或本说明书的别处给出。
不论是否明确指出,所有数值在本文中都假定为由用语"大约"修饰。用语"大约"大体上是指本领域技术人员将认为是等同于所述的值(即,具有相同的功能或结果)的数字范围。在许多情况下,用语"大约"可指示为包括四舍五入成最接近的有效数字的数字。
由端点叙述数字范围包括该范围内的所有数字(例如,1到5,包括1、1.5、2、2.75、3、3.80、4和5)。
尽管公开了关于各种构件、特征和/或规格的一些适合的大小范围和/或值,但本领域技术人员由本公开内容启发将理解期望的大小、范围和/或值可偏离明确公开的那些。
如本说明书和所附权利要求中使用的,单数形式"一"、"一个"和"该"包括多个对象,除非内容清楚地另外指出。如本说明书和所附权利要求中使用的,用语"或者"大体上以包括"和/或"的其意义使用,除非内容另外清楚地指出。
对于本公开内容的目的,"近侧"是指使用期间接近装置操作者的一端,而"远侧"是指使用期间远离装置操作者的一端。
以下详细描述应当参照附图阅读,其中不同图中的相似元件标号相同。详细描述和不必按比例的附图绘出了示范性实施例,并且并不旨在限制本公开内容的范围。所绘的示范性实施例仅旨在为示例性的。任何示范性实施例的选定特征可并入附加实施例中,除非清楚地相反叙述。
注意的是,说明书中提到"实施例"、"一些实施例"、"其它实施例"等指出了所述实施例可包括特定特征、结构或特性,但每个实施例可不一定包括特定特征、结构或特性。此外,此类短语不一定是指相同的实施例。此外,当特定特征、结构或特性关于一个实施例描述时,应当理解的是,此类特征、结构或特性还可结合不论是否明确描述的其它实施例使用,除非清楚地相反叙述。
某些治疗需要选定神经功能的暂时或永久中断或修改。一个示例性治疗为肾神经切除,其有时用于治疗关于充血性心力衰竭或高血压的病症。肾产生对充血性心力衰竭的交感神经反应,这除了别的效果以外,可增大非期望的水和/或钠的保持。切除通向肾的神经中的一些可减小或消除该交感神经功能,这可提供相关联的非期望症状的对应减少。
尽管本文所述的装置和方法关于肾神经调节论述,但构想出的是,装置和方法可在其它位置和/或应用中使用,其中肾调节和/或其它组织调节,包括但不限于加热、活化、阻塞、分裂或切除是期望的,如但不限于:经由套管针和套管接近血管、尿管或其它组织。例如,本文中所述的装置和方法可应用于增生组织切除、肿块切除、良性前列腺肥大治疗、神经兴奋或阻塞或切除、肌肉活动调节、组织的过高热或其它加热等。还构想出本文所述的装置和方法可用于其中期望受控的框架扩张或切除的其它位置和/或应用。例如,本文中所述的装置和方法可用于静脉闭合的静脉切除,或用于心动过速的肺动脉口。在一些情况下,可合乎需要的是以射频(RF)能量来切除血管周肾神经。用语调节是指可改变神经和其它组织如脑组织或心脏组织的功能的切除和其它技术。当多个切除是合乎需要的时,它们可通过单个切除装置来按顺序执行。
图1为在原位的示范性肾神经调节系统10的示意图。系统10可包括一个或更多个传导功率元件12、中心长形轴14、护套16、控制和功率块18,以及返回电极片20A和20B(共同称为电极片20)。元件12向设置在中心长形轴14附近、周围和/或内并且可选在护套16内的电极或其它调节元件提供功率,其细节可在随后的附图中更好地看到。元件12的近端可连接于控制和功率块18,其供应所需的电能来触动元件12的远端处或附近的一个或更多个电极。控制和功率块18可包括监测元件以监测参数,如功率、温度、电压、脉冲大小和/或频率,以及其它适合的参数和用于执行期望程序的适合控制。在一些情况下,功率元件块18可控制切除电极。切除电极可构造成在大约460千赫(KHz)的频率下操作。构想出的是,可使用任何期望的频率,例如,从450到500KHz。此外,构想出的是,该范围外的频率也可按期望使用。还构想出的是,血管周神经可通过其它手段切除,包括将热、超声、激光、微波和其它相关能源施加于目标区域,并且这些装置可需要该功率由功率块18以不同形式供应。在一些情况下,返回电极片20可连接于控制和功率块18,并且可供应在腿上和/或在患者身体上的另一个常规位置处,以接通电路。
图2示出了血管内神经调节系统200的远侧部分。神经调节系统200可构造成在具有管壁202的身体内腔内前移,管壁202可由局部身体组织包绕,除肌肉管壁外,包括动脉外膜组织和结缔组织、神经、脂肪、流体等。包绕的组织的一部分可为期望的治疗区域。如所示,系统200可包括具有远端区204的长形轴211。长形轴211可从远端区域204向近侧延伸至近端区域(未示出),其构造成保持在患者身体外。长形轴211的近端可包括附接于其的套节(未示出),用于连接其它诊断和/或治疗装置,用于提供端口来便于其它介入。在一些情况下,长形轴211可前移至外护套或引导导管214内的期望区域,但这不是需要的。
长形轴211可具有长的细柔性管状构造。本领域技术人员将认识到还可构想出其它适合的构造,如但不限于矩形、椭圆形、无规则等。此外,长形轴211可具有适于收纳在期望的脉管如肾动脉中的截面构造。例如,长形轴211可尺寸和构造确定为容纳穿过血管内通路的通道,其从例如腿动脉、臂动脉或桡动脉中的经皮接近点通向例如在肾动脉内的目标治疗地点。
构想出的是,长形轴211的刚度可修改成形成用于各种脉管直径的调节系统200。为此,用于制造长形轴211的材料可包括任何适合的生物相容材料,如但不限于组合或单独的聚合物、金属或合金。使用的材料可具有足够的刚度来在各种内腔直径下使用,并且具有足够的柔性来操纵穿过曲折和/或狭窄的内腔,避免任何非合乎需要的组织损伤。
长形轴211还可包括延伸穿过其的一个或更多个内腔,如,内腔215。例如,长形轴211可包括导线内腔和/或一个或更多个辅助内腔。内腔可具有多种构造和/或布置。例如,导线内腔可延伸长形轴211的整个长度,如,在线上导管中,或者可仅沿长形轴211的远侧部分延伸,如,在单操作者交换(SOE)导管中。这些实例不旨在为限制性的,而相反是一些可选的构造的实例。尽管并未明确示出,但调节系统200可包括温度传感器/线、输注内腔、不透辐射的标记带、固定导线末端、导线内腔、外部护套和/或其它构件,以便于系统200在脉管系统内的使用和前移。
调节系统200还可包括可扩张框架208、中心轴210、控制元件212和促动组件401。可扩张框架208可包括一个或更多个沿纵向延伸的带216A,216B,216C,216D(共同为带216)的系统,其可以以一定数量的结构形式布置,如,可扩张的篮。尽管可扩张框架208示为具有四个带,但构想出的是,框架208可包括任何数量的期望的带,如但不限于一个、两个、三个、五个或更多。构想出的是,尽管用语"带"用于描述框架208的沿纵向延伸的部分,但带216可由期望的任何截面形状形成,如,但不限于圆形、正方形、矩形、长方形、多边形等。例如,在一些情况下,带216可由柱、线或细丝或其它适合的结构形成。带216可在它们的远端处由远侧焊接球218附接在一起,进一步由远侧海波管220包围,其一起形成神经调节系统200的远侧末端。在一些实施例中,远侧末端还可包括隔离件或其它结构,以保持带216的期望径向间距。带216的近端可附接于长形轴211的远端205。
本领域技术人员将理解使用本领域中已知的多种技术和材料来使远侧末端防止损伤和为柔性,用于将系统200无害地引导穿过患者的脉管系统。然而,可扩张框架208可构造用于基于定位在各种脉管内的标准和可靠系统200的脉管尺寸范围来扩张至特定范围的直径。
带216可沿周向围绕中心轴210沿可扩张框架208的纵轴线布置。在一些情况下,带216的远端可附连于中心轴210的远端和远侧海波管220。带216的近端可附接于长形轴211的远端205。为了附接带216,可使用多种方法,如,但不限于,冲压、焊接或回流软钎焊。如将在下文更详细论述的,中心轴210可通过中心轴210的纵向移动来有助于可扩张框架208的扩张。在一些情况下,中心轴210可在扩张期间向可扩张框架208提供附加支承。
各个带216可包括构造成接触脉管的壁的中间区域。中间区域或壁接触节段222A,222B(共同为壁接触节段222)可在可扩张框架208扩张时与脉管的壁202接触和对准。尽管并未明确示出,但构想出的是,带216C和216D也可包括构造成接触脉管的壁的中间区域。在一些实施例中,壁接触节段222可大体上位于带216的中心处,但这不是必需的。在所示的实施例中,带216可定形为大体上平的条,但可使用一定数量的截面形式,如,圆形、矩形、正方形等,以向带的不同部分提供可变的刚度。在一些实施例中,带216的壁接触节段222可具有相对于带216的其它部分或可扩张框架208的其它部分更高的刚度。
在一些实施例中,带216还可包括定位在壁接触节段222的远侧的电极224A,224B,224C,224D(共同为电极224),以及定位在壁接触节段222近侧的电极225A,225B,225C,225D(共同为电极225),它们可用于肾神经的射频(RF)切除。所示的实施例包括每个带的两个电极(例如,设置在带216A上的电极224A,225A),但构想出的是,调节系统200可包括如期望的每个带216的任何数量的电极224,225,如,但不限于一个、两个、三个、四个或更多。构想出的是,单个带上的所有电极都可形成电极组。例如,电极224A和224B可形成第一组电极。构想出的是,成组的电极可均包括任何期望数量的电极,如,但不限于一个、两个、三个、四个或更多。
在一些实施例中,电极224,225可定位在带216的端部附近。在一个实例中,电极224可定位在朝特定带216的远端的位置处,而电极225可定位在朝其近端的位置处。在另一个实例中,电极224,225可关于可扩张框架208的最大径向程度沿径向向内定位。作为备选,电极224,225可置于沿带216的长度的任何位置,而并未脱离本公开内容的范围和精神。
在一些实施例中,各个带216可构造成包括预先形成的弯曲部分226A,226B,226C,226D(共同为弯曲部分226)和228A,228B, 228C,228D(共同为弯曲部分228),其定位在带内的各个位置处。弯曲部分226,228的位置可取决于可扩张框架208扩张之后的带216的期望形状。应当注意的是,弯曲部分226,228的位置和预先形成的形状极大地确定可扩张框架208的最终形状。形状记忆材料如镍钛诺的使用可提高带216实现准确构造来配合各种应用的能力。本领域技术人员可构想出电极节段224,225可定位在弯曲部分226,228与各个带216的远端和近端之间。
还构想出的是,带216可形成为使得各个带216的刚度在其长度上变化。例如,带216可形成为使得壁接触节段222可比带216的近端区域或远端区域更硬。构想出的是,较硬区域的尺寸可选定成导致可扩张框架208的期望外径。
在一些情况下,可扩张框架208可由导电材料如但不限于镍钛诺制成。在一些实施例中,整个框架208可涂覆有绝缘材料,其中分离的绝缘区域随后除去来形成电活性区域。在如此提供时,这些电活性区域可限定电极。在其它实施例中,整个框架208可由期望的任何材料形成,并且可涂覆有绝缘材料。分离的独立电极224,225可通过任何适合的手段附连于框架208的绝缘材料,如,焊接、软钎焊、冲压或使用粘合剂。在一些实施例中,可扩张框架208可包括通过如上文所述地除去绝缘材料的一部分来形成的电活性区域和附连于绝缘材料的分离电极两者。在一些实施例中,电流可直接地供应至可扩张框架208。在其它情况中,调节系统200可包括用于将能量供应至电极224,225的单独的电导体。如下文更完整阐明的,朝带216的端部间隔开电极节段允许了电极节段在可扩张框架208配置时与管壁202间隔开。与管壁202间隔开可为预定的,以提供最佳的切除效果。
生物相容的材料如适合的聚合物或金属可用于形成可扩张框架208及其构件,如,带216和中心轴210。大体上,适合的聚合材料可包括但不限于聚酰胺、聚醚嵌段酰胺、聚氨基甲酸酯、聚乙烯、尼龙和聚对苯二甲酸乙二醇酯。还可使用金属材料如但不限于不锈钢或镍钛诺。此外,可扩张框架208可为绝缘的,使得仅电极节段224可不具有绝缘。该绝缘可防止从框架208的不需要的电流泄漏。可用于施加绝缘的方法包括但不限于浸渍和喷涂、化学汽相沉积、聚对二甲苯涂覆,或通过在带上面滑动紧密配合管,如,使用电绝缘收缩管。
调节系统200还可包括促动组件401,其构造成使可扩张框架208在扩张构造(图2和图5)与溃缩构造(图4)之间转移。促动组件401可包括从可扩张框架208的远端向近侧延伸并且延伸到长形轴211的内腔215中的中心轴210。中心轴210的远端可通过远侧海波管220或通过任何其它适合的机构附接于带216的远端。中心轴210的近端可附接于可滑动的活塞406。活塞406的近侧或远侧促动还可向近侧或远侧促动可扩张框架208的远端。在一些情况下,促动组件401可包括偏压元件404,如,但不限于,定位在长形轴211的远端205与活塞406之间的弹簧。在一些情况下,长形轴211的远端205可包括大体上正交于长形轴211的纵轴线延伸的凸缘或壁207。偏压元件404的远端可接触壁207,使得偏压元件404保持在长形轴211的内腔215内。
偏压元件404可具有第一状态,其中如图2中所示,没有外力施加于偏压元件404。当偏压元件404没有外力时,偏压元件404可推动活塞406,并且因此还向近侧拉动可扩张框架208的远端。由于形成框架的带216的近端沿纵向固定于长形轴211的远端205,故带216可在带216的远端向近侧移动来形成扩张框架208时向外弯或弯曲。扩张框架208可具有大于在溃缩位置(图4中所示)的框架的外径。偏压元件404可具有第二状态,其中外力施加于偏压元件404,引起其沿纵向压缩。在一些情况下,沿纵向延伸的控制元件212可用于将远侧力施加于活塞406的近侧,引起偏压元件404沿纵向压缩,如图4所示,向远侧偏压活塞406。尽管偏压元件404称为具有第一状态和第二状态,但应当理解的是,偏压元件404可用于最长的无应力长度与最短的最大应力长度之间的任何数量的长度。例如,在一些情况下,偏压元件404可不完全压缩来将可扩张框架208保持在图4中所示的溃缩构造。此外,尽管控制元件212描述为将远侧推力施加于活塞406,但构想出的是,相反的构造可使用,使得拉力将可扩张框架208保持在溃缩位置。还构想出的是,调节系统200可构造成使得推力和/或拉力可施加于活塞406,以使框架208扩张或收缩超过偏压元件404所提供的。
构想出的是,为了将可扩张框架的带216保持在如图4中所示的伸长的相对直的溃缩位置,使用者可使用控制元件212来保持活塞406上的压力,并且因此将可扩张框架208保持在溃缩状态。在一些实施例中,控制元件212可为由海波管形成的控制管。其它实施例可包括但不限于控制杆或控制线。控制元件212可适于为导电的,用于向电极224,225提供电流。为了该任务,控制元件212可连接于功率元件12,用于向中心轴210提供电流。操作肾神经切除系统的示例性方法随后参照图4和5论述。在其它实施例中,可提供单独的连接来将电功率传导至电极224,225。
在一些实施例中,偏压元件404可由形状记忆材料形成,如但不限于镍钛诺。构想出的是,偏压元件404可热固化来在高于体温的温度下伸长。当调节系统200前移至期望的治疗区域时,偏压元件404可处于大体上压缩状态。一旦可扩张框架208邻近期望的治疗区域,则偏压元件404可加热,如,但不限于电加热,以引起偏压元件404沿纵向扩张。偏压元件404的纵向扩张可引起活塞406向近侧移动,因此引起可扩张框架208的远端也向近侧移动。由于形成框架的带216的近端沿纵向固定于长形轴211的远端205,故带216可在带216的远端向近侧移动来形成扩张框架208时向外弯或弯曲。扩张框架208可具有大于在溃缩位置(图4中所示)的框架的外径。在一些情况下,在偏压元件404由形状记忆材料形成时,控制元件212可不是所需的。然而,构想出的是,可提供控制元件212来允许施加于弹簧的附加力。
图3示出了扩张可扩张框架208时涉及的力。如上文提到的,在压缩状态,可扩张框架208具有最小直径,并且促动弹簧可被压缩。在除去约束时,弹簧开始作用在中心轴210上,将其向近侧推动,并且处于引起带沿径向扩张或退出的过程中。图表300示出了相对于x轴上的所得的可扩张框架直径绘制的y轴上的框架208上的施加力。给定自由空间环境,框架的扩张将在曲线A上继续。然而,在点P处,可扩张框架208与管壁202进行接触,这阻止了可扩张框架208的进一步扩张。从该点向前,力/直径曲线在曲线A上方行进,朝点B移动。
在直径D1处,可扩张框架208具有与管壁202的内径相同的直径。可扩张框架208的进一步扩张需要管壁202的扩张,并且可理解的是,组织的扩张将在一些点处引起对该组织的破坏。这里,直径D2表示管壁202的最大扩张,其可在没有组织破坏的情况下完成,同时还相对于管壁202将电极224,225置于适合位置,以提供充分的治疗。因此,D1-D2绘出了操作窗口,示出了可扩张框架208的最大外径,在其内,系统200可安全且有效地操作。构想出的是,促动组件401的使用可提供一致的力至可扩张框架208,而不管使用者。这可允许框架208一致地扩张至期望的外径,同时最小化管壁破坏的风险。
图4和图5示出了根据本公开内容的实施例的使用图2的神经调节系统200来执行肾神经切除的示范性方法的方面。在一个实施例中,神经调节系统200包括长形轴211,其具有远侧开口402、可扩张框架208、中心轴210,以及如结合图2所述地操作的控制元件212。在一些实施例中,长形轴211包括位于远侧开口402近侧的促动组件401。然而,促动组件可位于可扩张框架208近侧的任何适合的位置处,如可由本领域技术人员构想出的。如前文所述,促动组件401可有助于将可扩张框架208保持在期望的操作窗口D1-D2内。
促动组件包括偏压元件404,其可为螺旋弹簧,以及活塞406,其可为在中心轴210的近端处的凸缘元件。偏压元件404可设置在包括将偏压元件404保持在轴211内的壁207的长形轴211的远端与活塞406之间。在图4的溃缩状态中,偏压元件404可在使用者如由箭头230所示向远侧推动控制元件212时保持在压缩位置。当使用者释放控制元件212时,偏压元件404由于压缩的偏压元件404的储存能量而沿纵向扩张,从而如由图5中箭头232所示向近侧推动活塞406中心轴210,并且扩张可扩张框架208。本领域技术人员将理解的是,偏压元件404可构造成使得需要使用者将推力施加在控制元件212上,以将偏压元件404保持在溃缩状态。在此之后,偏压元件404可构造成在使用者撤回此类拉力时呈现扩张状态。由于促动组件401位于系统200的远侧末端的近侧,故沿长形轴211的摩擦可最小化,从而允许偏压元件404与可扩张框架208之间的直接力传递,并且因此便于可重复的扩张结果。
使用者可取决于用于驱动长形轴211内的促动组件401的控制元件212的类型来将机械或电推/拉力施加在控制元件212上。在一个实施例中,控制元件212可为控制杆或柱塞,其可由使用者机械地推动用于驱动促动组件401。在另一个实施例中,控制元件212可为控制线或任何其它传导材料,其构造成在提供有电流或电压时电性地推动长形轴211内的促动组件401。因此,中心轴210可向近侧/远侧延伸来使可扩张框架208在溃缩构造与扩张构造之间转移。
偏压元件404可由多种生物相容且形状记忆的材料制成,包括但不限于镍钛诺。偏压元件404可构造成任何形式,如,螺线,其可提供控制动作用于操作可扩张框架208。偏压元件404的刚度和长度可基于图3的描述中论述的操作窗口D1-D2来选择,以允许中心轴210的受控纵向移动,用于扩张可扩张框架208,其中,此类扩张对脉管无害。
在所示的实施例中,偏压元件404的远端通过促动组件401的远端处的结构保持就位,该结构可具有唇部、凸缘或卷曲边缘,或如本领域中已知的任何类似的结构。中心轴210延伸到内腔215中,终止于活塞406中,其中偏压元件404作用于活塞406上。将注意的是,当控制元件212被取回时,偏压元件404仅扩张至其结构极限,并且控制元件212可在该点处不与活塞406接触。
在操作期间,神经调节系统200可引入脉管内,同时系统200可处于溃缩构造。神经调节系统200可构造成通过切割或适合的自然开口来引入脉管中。此外,系统200可构造成借助于适合的引入护套如外护套214(其可为内窥镜的一部分)来前移到脉管内的期望位置。护套214可包括一个或更多个工作通道,除神经调节系统200外,其可用于引入光源、相机、注射器或粉碎器。
操作者可操纵护套214至脉管内的期望位置。尽管并未明确示出,但调节系统200还可包括温度传感器/线、输注内腔、不透辐射的标记带、固定的导线末端、导线内腔、外部护套,和/或其它构件,以便于护套214在脉管系统内的使用和前移。
在该过程期间,操作者可使用目视机构,如,荧光检查,以确定脉管内的护套214的位置。可扩张框架208可构造成溃缩,用于引入脉管中和在促动时扩张。为了将框架208保持在溃缩构造,使用者可例如抵靠活塞406机械地或电性地向远侧推动控制元件212,以在长形轴211内向远侧压缩偏压元件404。在达到期望的位置之后,框架208可从溃缩构造切换至扩张构造。因此,在一个实施例中,操作者可撤回控制元件212上的施加的推力,以释放偏压元件404,使得允许元件404经由活塞406在长形轴211内向近侧扩张,连同中心轴210向近侧延伸。中心轴210的此类近侧移动可由于带216的两端与中心轴210之间的操作连接而扩张可扩张框架208。在扩张构造中,可扩张框架208扩张来在图3的描述中所述的可允许的操作窗口D1-D2内与脉管的壁202接触。
在一些实施例中,一旦可扩张框架208与管壁202接触,则控制元件212可用于将电流供应提供至中心轴210,这继而将把电流传送至电极224,225。在其它实施例中,单独的电导体可向电极224,225供应所需的电能。激励的电极224,225可切除大致位于电极224,225的近侧的神经、静脉或其它组织变化。可扩张框架208上的电极224,225的数量和尺寸可确定需要通过用于神经切除的控制元件212激励的电极224,225的时间数。一旦切除特定部位,则可合乎需要的是在不同位置处执行另外的切除程序。一旦可扩张框架208重新定位在脉管内,则能量可再次输送至控制元件212和电极224,225。在一个实例中,如果需要,则电极224,225可旋转,以在各个电极位置处执行围绕可扩张框架208的圆周的切除。该过程可在脉管内的任何数量的纵向位置处按期望重复。
本领域的技术人员将认识到本发明可以以除本文中所述和构想的特定实施例之外的多种形式出现。因此,形式和细节上的偏离可产生,而不脱离如所附权利要求中所述的本公开内容的范围和精神。
Claims (13)
1.一种用于神经调节的系统,包括:
长形轴,其具有近端、远端,以及在其间延伸的内腔;
定位在所述长形轴的远端附近的可扩张框架,所述可扩张框架构造成在扩张构造与溃缩构造之间转移,所述可扩张框架包括:
近端和远端以及在其间延伸的多个带,所述带中的至少一个具有电极,其定位在关于所述可扩张框架的最大径向程度的径向向内的位置处;以及
扩张机构,其包括:
定位在所述可扩张框架的近端附近的偏压元件;
可移动地设置在所述长形轴的内腔内的活塞,所述活塞定位在所述长形轴的远端近侧;
中心轴,其具有附接于所述可扩张框架的远端的远端和附接于所述活塞的近端;以及
从所述活塞的近端向近侧延伸的控制元件,
其中所述偏压元件设置在所述长形轴的远端与所述活塞之间。
2.根据权利要求1所述的用于神经调节的系统,其特征在于,各个带的中心区域比各个带的近端区域和远端区域更硬。
3.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述偏压元件构造成在第一压缩状态与第二伸长状态之间移动。
4.根据权利要求3所述的用于神经调节的系统,其特征在于,所述第一压缩状态与所述第二伸长状态之间的所述偏压元件的移动使所述可扩张框架在所述溃缩构造与所述扩张构造之间转移。
5.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述偏压元件为弹簧。
6.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述控制元件包括海波管。
7.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述控制元件包括拉线。
8.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述偏压元件包括形状记忆材料。
9.根据权利要求1至权利要求2中任一项所述的用于神经调节的系统,其特征在于,所述控制元件为电导体。
10.一种用于神经调节的医疗装置组件,所述组件包括:
长形轴,其具有近端、远端,以及在其间延伸的内腔;
构造成在扩张构造与溃缩构造之间转移的可扩张框架,所述可扩张框架具有近端和远端以及附接在其间的一个或更多个带;
设置在所述可扩张框架的近端附近的偏压元件;
可移动地设置在所述长形轴的内腔内且定位在所述偏压元件的近端附近的活塞;以及
从所述活塞的近端向近侧延伸的控制元件,
其中所述偏压元件设置在所述长形轴的远端与所述活塞之间。
11.根据权利要求10所述的医疗装置组件,其特征在于,所述一个或更多个带中的至少一个包括电极。
12.根据权利要求10至权利要求11中的一项所述的医疗装置组件,其特征在于,所述偏压元件构造成使所述可扩张框架在所述溃缩构造与所述扩张构造之间移动。
13.根据权利要求10至权利要求11中任一项所述的医疗装置组件,其特征在于,所述控制元件构造成将向远侧推动所述活塞的力施加在所述活塞上。
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US9173696B2 (en) | 2015-11-03 |
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US20140081261A1 (en) | 2014-03-20 |
EP2895095A2 (en) | 2015-07-22 |
WO2014043687A2 (en) | 2014-03-20 |
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