Nova Patents
WO2017192542A2

Catheter sensing and irrigating

Abstract

Ablation systems of the present disclosure facilitate the safe formation of wide and deep lesions. For example, ablation systems of the present disclosure can allow for the flow of irrigation fluid and blood through an expandable ablation electrode, resulting in efficient and effective cooling of the ablation electrode as the ablation electrode delivers energy at a treatment site of the patient. Additionally, or alternatively, ablation systems of the present disclosure can include a deformable ablation electrode and a plurality of sensors that, in cooperation, sense the deformation of the ablation electrode, to provide a robust indication of the extent and direction of contact between the ablation electrode and tissue at a treatment site.

WO2017192542A2, drawing sheet 1
Sheet 1 of 232

Term

No projected expiry on record.

  1. Priority and filed
  2. Published
  3. Today

182 claims: 128 independent, 54 dependent

  1. 1
    WHAT IS CLAIMED IS:1. A catheter comprising: a catheter shaft having a proximal end portion and a distal end portion, the catheter shaft defining a lumen extending from the proximal end portion to the distal end portion;an irrigation element coupled to the distal end portion of the catheter shaft, the irrigation element defining irrigation holes in fluid communication with the lumen;and an ablation electrode coupled to the catheter shaft, the ablation electrode having an inner portion and an outer portion opposite the inner portion, wherein the irrigation holes of the irrigation element are directed toward the inner portion of the ablation electrode.
  2. 3
    The catheter of any one of claims 1-2, wherein the total area of the irrigation holes is greater than about 0.05 mm 2 and less than about 0.5 mm 2 .
  3. 4
    The catheter of any one of claims 1-3, wherein the ablation electrode envelops the irrigation element.
  4. 9
    The catheter of any one of claims 4-8, wherein the irrigation element is expandable.
  5. 11
    The catheter of any one of claims 1-10, wherein the ablation electrode is expandable.
  6. 12
    The catheter of any one of claims 1-11, wherein the irrigation holes are spacedcircumferentially and axially along the irrigation element.
  7. 13
    The catheter of any one of claims 1-12, wherein at least a portion of the irrigation holes are arranged to direct fluid in a distal direction with respect to the ablation electrode, and at least a portion of the irrigation holes are arranged to direct fluid in a proximal direction with respect to the ablation electrode.
  8. 14
    The catheter of any one of claims 1-13, wherein the irrigation element includes one of a non- compliant balloon or a semi-compliant balloon.
  9. 15
    The catheter of any one of claims 1-14, wherein the irrigation element is a resilient, expandable structure.
  10. 16
    The catheter of any one of claims 1-15, wherein the irrigation element includes a porous membrane.
  11. 17
    The catheter of any one of claims 1-16, wherein the irrigation element includes an open-cell foam.
  12. 18
    The catheter of any one of claims 1-17, wherein at least one of the irrigation element or the ablation electrode is expandable to have a cross-sectional dimension larger than a cross-sectional diameter of the catheter shaft.
  13. 19
    The catheter of any one of claims 1-18, wherein the irrigation element is electrically isolated from the ablation electrode.
  14. 20
    The catheter of any one of claims 1-19, wherein the irrigation element is electrically isolated from the ablation electrode over a predetermined frequency range.
  15. 21
    The catheter of any one of claims 1-20, further comprising a center electrode disposed along the irrigation element.
  16. 22
    The catheter of any one of claims 1-21, wherein the irrigation element is thermally isolated from the ablation electrode.
  17. 23
    The catheter of any one of claims 1-22, further comprising a thermocouple disposed along the irrigation element.
  18. 24
    The catheter of any one of claims 1-23, further comprising a handle coupled to the proximal end portion of the catheter shaft, the handle including an actuation portion configured to actuate deflection of the catheter shaft.
  19. 25
    The catheter of any one of claims 1-24, further comprising a plurality of sensors, wherein the ablation electrode includes a deformable portion and the plurality of sensors is supported on the deformable portion of the ablation electrode.
  20. 28
    A method of ablating tissue in a human patient, the method comprising:positioning an ablation electrode at a treatment site, the ablation electrode having an outer portion disposed toward tissue and an inner portion opposite the outer portion;directing energy to some of the outer portion of the ablation electrode;and providing a flow of irrigation fluid at the inner portion of the electrode, the flow of irrigation fluid having a Reynolds number greater than about 2300 at the inner portion of the ablation electrode, in the absence of external force applied to the ablation electrode.
  21. 31
    The method of any one of claims 29 or 30, further comprising delivering the ablation electrode and the irrigation element to a tissue treatment site, wherein the ablation electrode and the irrigation element are each coupled to a distal end portion of a catheter shaft, and delivery of the ablation electrode and the irrigation element to the tissue treatment site includes moving the ablation electrode and the irrigation element, each in a collapsed state, through an 8F introducer sheath.
  22. 32
    A catheter comprising:a catheter shaft having a proximal end portion and a distal end portion, the catheter shaft defining a lumen extending from the proximal end portion to the distal end portion;an irrigation element coupled to the distal end portion of the catheter shaft, the irrigation element in fluid communication with the lumen;and an ablation electrode coupled to the catheter shaft, the ablation electrode having an inner portion and an outer portion opposite the inner portion, and the ablation electrode including a deformable portion, the deformable portion resiliently flexible from a compressed state to an uncompressed state, wherein the inner portion of the ablation electrode along the deformable portion is closer in the compressed state than in the uncompressed state to at least a portion of a surface of the irrigation element.
  23. 34
    The catheter of any one of claims 32 or 33, wherein the irrigation element defines a plurality of irrigation holes in fluid communication with the lumen, with more than one irrigation hole of the plurality of irrigation holes arranged along the irrigation element to direct fluid toward the inner portion of the ablation electrode along the deformable portion.
  24. 36
    The catheter of any one of claims 34 and 35, wherein the irrigation element includes an open- cell foam.
  25. 37
    The catheter of any one of claims 34-36, wherein, in an expanded state, the irrigation element includes an ellipsoidal portion.
  26. 39
    The catheter of any one of claims 34-38, wherein the irrigation holes are spacedcircumferentially and axially along the irrigation element.
  27. 40
    The catheter of any one of claims 34-39, wherein at least a portion of the irrigation holes are arranged to direct fluid in a distal direction with respect to the ablation electrode, and at least a portion of the irrigation holes are arranged to direct fluid in a proximal direction with respect to the ablation electrode.
  28. 41
    The catheter of any one of claims 32-40, wherein the deformable portion of the ablation electrode is resiliently flexible in an axial direction relative to the catheter shaft and in a radial direction relative to the catheter shaft.
  29. 42
    The catheter of any one of claims 32-41, wherein, in the uncompressed state, the deformable portion of the ablation electrode envelops the irrigation element.
  30. 43
    The catheter of any one or more of claims 41 and 42, wherein the irrigation element is expandable from a delivery state to an expanded state.
  31. 44
    The catheter of any one of claims 32-43, wherein the ablation electrode has a conductive surface, the conductive surface having greater than about 50 percent and less than about 95 percent open area along both the inner portion and the outer portion.
  32. 45
    The catheter of any one of claims 32-43, wherein the ablation electrode is a mesh.
  33. 46
    The catheter of any one of claims 32-43, wherein the ablation electrode is a braid.
  34. 47
    The catheter of any one of claims 32-46, wherein the ablation electrode is formed of nitinol.
  35. 51
    The catheter of any one of claims 32-50, wherein the ablation electrode is at least partially radiopaque.
  36. 52
    The catheter of any one of claims 32-51, wherein the irrigation element includes a balloon formed of one or more of:thermoplastic polyurethane, silicone, poly(ethylene terephthalate), and polyether block amide.
  37. 53
    The catheter of any one of claims 32-52, further comprising a plurality of sensors supported on the deformable portion of the ablation electrode.
  38. 55
    The catheter of any one of claims 53 and 54 wherein none of the plurality of sensors supported on the deformable portion of the ablation electrode is in contact with the irrigation element when the deformable portion of the ablation electrode is in the uncompressed state.
  39. 56
    The catheter of any one of claims 53-55, wherein the deformable portion of the ablation electrode, in the uncompressed state, includes an ellipsoidal portion and the sensors of the plurality of sensors are spaced from one another in a circumferential direction along an inner portion of the ellipsoidal portion of the ablation electrode.
  40. 58
    The catheter of any one of claims 53-57, wherein the plurality of sensors includes a first set of sensors and a second set of sensors, the first set of sensors disposed distal to the second set of sensors along the inner portion of the ablation electrode.
  41. 59
    The catheter of any one of claims 53-58, wherein the sensors of the plurality of sensors are substantially uniformly distributed along the inner portion of the ablation electrode.
  42. 60
    The catheter of any one of claims 53-59, wherein at least one of the sensors includes a radiopaque portion.
  43. 63
    The catheter of any one of claims 32-62, wherein the irrigation element and the deformable portion of the ablation electrode are collapsible to a size deliverable through an 8F introducer sheath.
  44. 64
    A catheter ablation system comprising:a catheter including a catheter shaft having a proximal end portion and a distal end portion, the catheter shaft defining a lumen extending from the proximal end portion to the distal end portion, an irrigation element coupled to the distal end portion of the catheter shaft, the irrigation element in fluid communication with the lumen, and an ablation electrode coupled to the catheter shaft, the ablation electrode having an inner portion and an outer portion opposite the inner portion, the ablation electrode including a deformable portion, the deformable portion resiliently flexible from a compressed state to an uncompressed state, the inner portion of the ablation electrode along the deformable portion being closer in the compressed state than in the uncompressed state to at least a portion of a surface of the irrigation element, and a plurality of sensors supported on the deformable portion of the ablation electrode;and a controller configured to: i) receive a measurement resulting from an electrical signal generated between at least one of the sensors and another electrode;and ii) based at least in part on the measurement, determining a state of the deformable portion of the ablation electrode.
  45. 67
    The system of any one of claims 64-66, wherein the controller is further configured to send electrical energy between at least one of the sensors and the irrigation element, and the received measurement is based on the electrical energy between the at least one of the sensors and the irrigation element.
  46. 68
    The system of any one of claims 64-67, further comprising a center electrode disposed about the irrigation element, wherein the controller is further configured to send electrical energy between at least one of the sensors and the center electrode, and the received measurement is based on the electrical energy between the at least one of the sensors and the center electrode.
  47. 69
    A method of determining shape of an ablation catheter, the method comprising:receiving a measurement resulting from an electrical signal generated between at least one sensor and another electrode, the at least one sensor supported on a deformable portion of an ablation electrode;based at least in part on the measurement, determining whether the deformable portion of an ablation electrode is in contact with an irrigation element enveloped by the deformable portion of the ablation electrode;and sending, to a graphical user interface, an indication of the determined contact between the deformable portion of the ablation electrode and the irrigation element.
  48. 71
    A method of making an ablation catheter, the method comprising:coupling an irrigation element to a distal end portion of a catheter shaft such that the irrigation element is in fluid communication with a lumen defined by the catheter shaft;forming a deformable portion of an ablation electrode;positioning deformable portion of the ablation electrode relative to the irrigation element such that an inner portion of the ablation electrode envelops the irrigation element;and coupling the deformable portion of the ablation electrode to the catheter shaft relative to the irrigation element, the inner portion of the ablation electrode along the deformable portion movable between a compressed state and an uncompressed state, the inner portion of the ablation electrode being closer in a compressed than in an uncompressed state to a least a portion of a surface of the irrigation element.
  49. 77
    The method of any one of claims 74-76, wherein the flat sheet of material is nitinol.
  50. 78
    A catheter comprising:a catheter shaft having a proximal end portion and a distal end portion;and an ablation electrode coupled to the distal end portion of the catheter shaft, the ablation electrode including struts coupled to one another at joints to define collectively a plurality of cells, wherein each cell of the plurality of cells is bounded and the coupled struts are movable relative to one another such that a maximum radial dimension of the ablation electrode increases by at least a factor of two as the coupled struts move relative to one another to transition the ablation electrode from a compressed state, in the presence of external force, to an uncompressed state, in the absence of external force.
  51. 80
    The catheter of any one of claims 78 and 79, wherein the struts are movable relative to one another to self-expand the ablation electrode from the compressed state to the uncompressed state.
  52. 81
    The catheter of any one of claims 78-80, wherein the ablation electrode includes an inner portion and an outer portion, opposite the inner portion, and the inner portion is in fluid communication with the outer portion through the plurality of cells.
  53. 82
    The catheter of any one of claims 78-81, wherein, in the uncompressed state, at least some of the struts extend circumferentially with respect to an axis defined by the proximal end portion and the distal end portion of the catheter shaft.
  54. 83
    The catheter of any one of claims 78-82, wherein the ablation electrode has a maximum axial dimension that changes by less than about 33 percent as the coupled struts move relative to one another to expand the ablation electrode from the uncompressed state to the compressed state upon a change in an external radial force applied to the ablation electrode.
  55. 84
    The catheter of any one of claims 78-83, wherein, in the uncompressed state, the maximum radial dimension of the ablation electrode is at least about 20 percent greater than an outer diameter of the distal end portion of the catheter shaft.
  56. 85
    The catheter of any one of claims 78-84, wherein the ablation electrode is bulbous in the uncompressed state.
  57. 86
    The catheter of any one of claims 78-85, wherein the catheter shaft defines a center axis extending from the proximal end portion to the distal end portion, and at least some of the cells of the plurality of cells have a respective symmetry plane passing through the respective cell and containing the center axis of the catheter shaft.
  58. 88
    The catheter of any one of claims 78-87, wherein the catheter shaft defines a center axis extending from the proximal end portion to the distal end portion, and at least some of the cells of the plurality of cells have a respective symmetry plane passing through a distal end of the cell, a proximal end of the cell, and the center axis.
  59. 89
    The catheter of any one of claims 78-88, wherein the ablation electrode includes a distal region and a proximal region, the proximal region coupled to the distal end portion of the catheter, and the struts along the distal region coupled to one another to define a closed shape along the distal region of the ablation electrode.
  60. 90
    The catheter of any one of claims 78-89, wherein at least some of the cells of the plurality of cells have a larger area in the uncompressed state of the ablation electrode than in thecompressed state of the ablation electrode.
  61. 91
    The catheter of any one of claims 78-90, wherein, in the compressed state, the ablation electrode is deliverable through an 8 Fr sheath.
  62. 92
    The catheter of any one of claims 78-91, wherein, in the compressed state, strain in the ablation electrode is less than about ten percent.
  63. 93
    The catheter of any one of claims 78-92, wherein at least some of the plurality of cells are substantially diamond-shaped in the uncompressed state.
  64. 94
    The catheter of any one of claims 78-93, wherein each end of each of the struts is coupled to an end of another strut or to the distal end portion of the catheter shaft.
  65. 95
    The catheter of any one of claims 78-94, wherein the ablation electrode has an outer portion and an inner portion opposite the outer portion and each cell extends from the outer portion to the inner portion.
  66. 96
    The catheter of any one of claims 78-95, wherein the struts are formed of nitinol.
  67. 97
    The catheter of any one of claims 78-96, wherein the plurality of cells is circumferentially and axially disposed about the ablation electrode.
  68. 98
    The catheter of any one of claims 78-97, wherein each of the struts defines a portion of at least two cells.
  69. 99
    The catheter of any one of claims 78-98, wherein a combined area of the plurality of cells along an outer surface of the ablation electrode is greater than a combined surface area of the struts along the outer surface of the ablation electrode.
  70. 100
    The catheter of any one of claims 78-99, wherein some of the struts are wider than other ones of the struts.
  71. 103
    The catheter of any one of claims 78-102, wherein at least some of the struts include a nonuniform width along a length of the respective strut.
  72. 104
    A catheter comprising:a catheter shaft having a proximal end portion and a distal end portion;an irrigation element positioned relative to the catheter shaft to direct irrigation fluid distal to the distal end portion of the catheter shaft;and an ablation electrode including a distal region and a proximal region, the proximal region coupled to the distal end portion of the catheter shaft, and the distal region including struts coupled to one another to define collectively a plurality of cells, wherein each cell is bounded by at least four of the struts, and the struts are coupled to one another to define a closed shape along the distal region, the closed shape of the distal end region enveloping the irrigation element.
  73. 107
    The catheter of any one of claims 105 or 106, wherein a portion of the struts define respective eyelets through which the fastener extends to couple the portion of the struts to one another.
  74. 109
    The catheter of any one of claims 107 or 108, wherein the fastener is a rivet.
  75. 110
    The catheter of any one of claims 107-109, wherein the fastener extends through the eyelets at a distalmost position of the ablation electrode.
  76. 111
    The catheter of any one of claims 107-110, wherein the plurality of cells includes a first set of cells and a second set of cells, the first set of cells are bounded by the portion of the struts defining respective eyelets, the second set of cells are bounded by the struts without eyelets, and the second set of cells are bounded by fewer struts than the first set of cells.
  77. 112
    The catheter of any one of claims 105-111, wherein the catheter shaft defines a center axis extending from the proximal end portion to the distal end portion, the center axis extending through the fastener in the absence of an external force applied to the ablation electrode.
  78. 113
    The catheter of any one of claims 104-112, wherein each end of the struts is coupled to an end of at least one of the other struts or to the distal end portion of the catheter shaft.
  79. 114
    The catheter of any one of claims 104-113, wherein at least one portion of the ablation electrode is resiliently flexible between a compressed state, in the presence of an external force, and an uncompressed state, in the absence of an external force.
  80. 116
    The catheter of any one of claims 114 and 115, wherein the ablation electrode is self- expandable from the compressed state to the uncompressed state.
  81. 117
    The catheter of any one of claims 114-116, wherein, in the compressed state, the ablation electrode is deliverable through an 8 Fr sheath.
  82. 118
    The catheter of any one of claims 114-117, wherein, in the compressed state, strain in the ablation electrode is less than about ten percent.
  83. 119
    The catheter of any one of claims 114-118, wherein the ablation electrode is bulbous in the uncompressed state.
  84. 120
    The catheter of any one of claims 104-119, wherein the struts are formed of nitinol.
  85. 121
    The catheter of any one of claims 104-120, wherein the plurality of cells iscircumferentially and axially disposed about the ablation electrode.
  86. 122
    The catheter of any one of claims 104-121, wherein each of the struts defines a portion of at least two cells.
  87. 123
    A method of forming a catheter, the method comprising:forming an ablation electrode having two open ends, the ablation electrode including struts collectively defining a first set of cells, a portion of the struts having a first end region coupled to another one of the struts and a second end region uncoupled from each of the other struts;inserting a fastener through the respective second end regions of the portion of the struts to couple the second end regions to one another to define a second set of cells and to close one of the two open ends of the ablation electrode;and coupling the ablation electrode to a distal end portion of a catheter shaft.
  88. 125
    The method of any one of claims 123 or 124, wherein, with the second end regions of the portion of the struts coupled to one another, the ablation electrode is resiliently flexible between a compressed state, in the presence of an external force, and an uncompressed state, in the absence of an external force.
  89. 126
    The method of any one of claims 123-125, wherein the second end region of each respective strut of the portion of struts defines an eyelet and inserting the fastener through the respective second end regions of the portion of struts includes aligning the eyelets of the second end regions such that the fastener is inserted through the aligned eyelets.
  90. 127
    The method of any one of claims 123-126, wherein forming the ablation electrode includes removing material from a flat sheet of material to form the first set of cells.
  91. 129
    The method of any one of claims 123-128, wherein forming the ablation electrode includes removing material from a tube of material to form the first set of cells.
  92. 131
    The method of any one of claims 123-130, wherein the ablation electrode is formed of nitinol.
  93. 132
    A catheter compri sing :a catheter shaft having a proximal end portion and a distal end portion;and an ablation electrode coupled to the distal end portion of the catheter shaft and in electrical communication with an electrical power source, the ablation electrode including a deformable portion resiliently flexible between a compressed state and an uncompressed state, the deformable portion having less than about ±10 percent variation in current density at 1 mm away in a medium of uniform conductivity from an outer portion of the deformable portion in the uncompressed state as current from the electrical power source moves through the deformable portion of the ablation electrode.
  94. 135
    The catheter of any one of claims 132-134, wherein the deformable portion is substantially spherical in the uncompressed state.
  95. 136
    The catheter of any one of claims 132-135, wherein the ablation electrode is nitinol.
  96. 137
    The catheter of any one of claims 132-136, wherein at least the deformable portion of the ablation electrode includes electropolished surfaces.
  97. 138
    The catheter of any one of claims 132-137, wherein the deformable portion includes struts collectively defining a plurality of cells, each cell extending from the outer portion of the deformable portion to an inner portion of the deformable portion.
  98. 140
    The catheter of any one of claims 132-139, wherein the catheter shaft defines a center axis extending from the proximal portion to the distal portion and the deformable portion is symmetric about a plane including the center axis.
  99. 141
    A catheter compri sing :a catheter shaft having a proximal end portion and a distal end portion;and an ablation electrode including a distal region and a proximal region, the proximal region coupled to the distal end portion of the catheter shaft, the ablation electrode connectable in electrical communication with an electrical power source, the ablation electrode including struts collectively defining a plurality of cells, wherein open area of the cells of the plurality of cells varies from the proximal region to the distal region of the ablation electrode, and the struts defining the plurality of cells are electrically conductive.
  100. 143
    The catheter of any one of claims 141 and 142, wherein a number of cells along a meridian of the proximal region is less than a number of cells along a meridian passing through a maximum radial dimension of the ablation electrode.
  101. 144
    The catheter of any one of claims 141-143, wherein the struts defining the plurality of cells have a substantially uniform width.
  102. 145
    The catheter of any one of claims 141-144, wherein the struts include a first set of struts having a first width and a second set of struts having a second width, different from the first width, and the first set of struts are axially spaced from the second set of struts.
  103. 146
    The catheter of any one of claims 141-145, wherein at least some of the struts have a nonuniform width along a respective length of the strut.
  104. 148
    A catheter comprising:a catheter shaft having a proximal end portion and a distal end portion;and an ablation electrode coupled to the distal end portion of the catheter shaft, the ablation electrode including a deformable portion resiliently flexible between a compressed state and an uncompressed state, the deformable portion in the uncompressed state positionable at multiple different angles relative to tissue at a treatment site, and, for the same amount of ablation energy delivered from the deformable portion to the tissue at a given amount of pressure between the deformable portion and the tissue, the deformable portion generating lesions of substantially similar size at each of the multiple different angles.
  105. 150
    The catheter of any one of claims 148 and 149, wherein the lesions corresponding to each of the multiple different angles have similar depth and similar width at each of the multiple different angles.
  106. 151
    The catheter of any one of claims 148-150, wherein the lesions corresponding to each of the multiple different angles have a depth varying by less than about ±30 percent.
  107. 153
    The catheter of any one of claims 148-152, wherein the deformable portion in the uncompressed state has a maximum lateral dimension at least 20 percent greater than a maximum lateral dimension of the catheter shaft.
  108. 154
    The catheter of any one of claims 148-153, wherein the deformable portion includes an open framework through which fluid is movable through the framework to cool the deformable portion.
  109. 155
    A cardiac catheter comprising:a catheter shaft having a proximal end portion and a distal end portion;a center electrode coupled to the distal end portion of the catheter shaft;an enclosure coupled to the distal end portion of the catheter shaft, the enclosure resiliently flexible in response to external force, and the enclosure enveloping the center electrode in the absence of external force;and surface electrodes disposed along the enclosure and spaced apart from the center electrode in the absence of external force applied to the enclosure.
  110. 157
    The cardiac catheter of any one of claims 155 or 156, wherein, independent of orientation of the enclosure relative to tissue, the enclosure makes initial contact with the tissue before the center electrode makes initial contact with the tissue.
  111. 158
    The cardiac catheter of any one of claims 155-157, wherein, in the absence of external force applied to the enclosure, the surface electrodes are noncoplanar relative to one another.
  112. 159
    The cardiac catheter of any one of claims 155-158, wherein the enclosure is an ablation electrode.
  113. 160
    The cardiac catheter of any one of claims 155-159, wherein each surface electrode is electrically isolated from the enclosure.
  114. 161
    The cardiac catheter of any one of claims 155-160, wherein the enclosure includes an outer portion opposite an inner portion, the enclosure defining a plurality of cells extending from the outer portion to the inner portion.
  115. 163
    The cardiac catheter of any one of claims 161 and 162, wherein each surface electrode is disposed along the outer portion of the enclosure.
  116. 164
    The cardiac catheter of any one of claims 161-163, wherein each surface electrode is disposed along the inner portion of the enclosure.
  117. 165
    The cardiac catheter of any one of claims 161-164, wherein each surface electrode extends through the enclosure, from an outer portion of the enclosure to an inner portion of the enclosure.
  118. 166
    The cardiac catheter of any one of claims 155-165, wherein the enclosure, in the absence of external force, has a maximum radial dimension greater than a maximum radial dimension of the distal end portion of the catheter shaft.
  119. 168
    The catheter of any one of claims 155-167, wherein, in the absence of external force applied to the enclosure, at least a portion of the enclosure is substantially spherical.
  120. 169
    The catheter of any one of claims 155-168, wherein the center electrode is spaced distally from the distal end portion of the catheter shaft.
  121. 170
    The catheter of any one of claims 155-169, wherein the center electrode is disposed on an irrigation element in fluid communication with the catheter shaft.
  122. 171
    The catheter of any one of claims 155-170, wherein the center electrode is disposed substantially along a center axis defined by the catheter shaft.
  123. 172
    A system comprising:a catheter shaft having a proximal end portion and a distal end portion;a center electrode coupled to the distal end portion of the catheter shaft;an enclosure coupled to the distal end portion of the catheter shaft, the enclosure resiliently flexible in response to an external force, and the enclosure enveloping the center electrode in the absence of the external force;surface electrodes disposed along the enclosure and spaced apart from the center electrode in the absence of external force applied to the enclosure;and a catheter interface unit including a graphical user interface, one or more processors and a non-transitory, computer readable storage medium having stored thereon computer executable instructions for causing the one or more processors to acquire a plurality of electrograms, each respective electrogram based on a difference between a first electrical signal and a second electrical signal, the first electrical signal from a respective one of the surface electrodes, and the second electrical signal from the center electrode, and display a representation of at least one of the plurality of electrograms on the graphical user interface.
  124. 175
    A method of determining electrical activity associated with a heart of a patient, the method comprising:receiving a first electrical signal from a center electrode of a cardiac catheter;for surface electrodes disposed on an enclosure enveloping the center electrode, receiving a plurality of second electrical signals, each respective second electrical signal associated with one of the surface electrodes;and determining a plurality of electrograms, each electrogram based on a difference between a respective one of the second electrical signals and the first signal.
  125. 177
    The method of any one of claims 175 and 176, further comprising sending a representation of one or more of the electrograms to a graphical user interface.
  126. 178
    The method of any one of claims 175-177, further comprising determining a voltage map of the heart based at least in part on the plurality of electrograms.
  127. 179
    The method of any one of claims 175-178, further comprising sending electrical energy to an irrigation element of the cardiac catheter, wherein the center electrode is disposed along the irrigation element, and the electrical energy to the irrigation element reduces noise on one or more of the first electrical signal and the plurality of the second electrical signals.
  128. 180
    A method of treating a cardiac condition, the method comprising:moving a distal end region of a catheter shaft toward a cavity of a heart of a patient;for an enclosure coupled to the catheter shaft, expanding the enclosure such that surface electrodes disposed on the enclosure move in a direction away from a center electrode enveloped by the enclosure and coupled to the catheter shaft;and selectively treating tissue of the cavity based on a plurality of electrograms, each electrogram based on a difference between a first electrical signal from the center electrode and a second electrical signal from at least one surface electrode disposed on the enclosure.
Independent claims128