Intravascular blood pump system with integrated conductor(s) in housing and methods thereof
11141580 ยท 2021-10-12
Assignee
Inventors
- Matthew D. Cambronne (North Oaks, MN, US)
- Joseph P. Higgins (Minnetonka, MN, US)
- Matthew W. Tilstra (Rogers, MN, US)
- Benjamin D. Haselman (St. Paul, MN, US)
Cpc classification
A61M60/237
HUMAN NECESSITIES
A61M60/531
HUMAN NECESSITIES
A61M2205/3344
HUMAN NECESSITIES
A61M2205/0238
HUMAN NECESSITIES
A61M60/13
HUMAN NECESSITIES
A61M60/523
HUMAN NECESSITIES
A61M60/174
HUMAN NECESSITIES
A61M2205/3569
HUMAN NECESSITIES
A61M60/414
HUMAN NECESSITIES
A61M60/148
HUMAN NECESSITIES
International classification
A61M60/148
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
The present invention provides an intravascular blood pump comprising a housing region that may be expandable, wherein the housing region comprises at least one trough extending along and/or around at least a portion of the length of the housing region, wherein the integrated lead trough(s) may be defined by or within the housing region. The integrated lead trough(s) may be configured to receive one or more electrical leads therein that may be in operative connection with a sensor and/or working element.
Claims
1. A blood pump comprising: an impeller assembly comprising a housing defined by a wall forming an interior and having an outer surface, the housing region comprising an expandable region, inlet apertures distal to the impeller assembly and outflow apertures proximal to the impeller assembly; at least one trough defined within the wall of the housing, the at least one trough comprising a shape, a width, a depth and a length, wherein the at least one trough does not extend into the interior of the housing, wherein the length of the at least one trough extends at least from the inlet apertures to the outflow apertures, wherein the at least one trough traverses the expandable region of the housing, and wherein at least one trough is configured to slidably receive and accommodate at least one electrical lead therein, and wherein the at least one electrical lead is adapted to slide within the at least one trough.
2. The blood pump of claim 1, further comprising an outer layer of material covering the at least one trough and the at least one electrical lead received within the at least one trough.
3. The blood pump of claim 2, wherein the outer layer of material comprises a polymer.
4. The blood pump of claim 3, wherein the polymer comprises a reflowed polymer.
5. The blood pump of claim 1, further comprising a polymer jacket covering the at least one trough adapted to secure the at least one electrical lead within the at least one trough.
6. The blood pump of claim 1, wherein the at least one trough defines a linear path within the wall of the housing region.
7. The blood pump of claim 1, wherein the at least one trough defines an at least partially non-linear path within the wall of the housing region.
8. The blood pump of claim 7, wherein the at least one trough defines a spiral path within the wall of the housing region.
9. The blood pump of claim 1, wherein the at least one electrical lead is received within the at least one trough is at least partially disposed within the at least one trough.
10. The blood pump of claim 1, wherein the at least one trough is configured such that the at least one electrical lead does not extend beyond the outer surface of the wall of the housing region when the at least one electrical lead is received within the at least one trough.
11. The blood pump of claim 1, further comprising a sensor operatively connected with at least one of the at least one electrical leads received within the at least one trough.
12. The blood pump of claim 11, wherein the sensor is selected from the group consisting of: flow rate sensor, pressure sensor, signal emitter, and signal receptor.
13. The blood pump of claim 1, further comprising at least one working element operatively connected with at least one of the electrical leads received within the at least one trough.
14. The blood pump of claim 13, wherein the at least one working element is configured to be controlled by signals transmitted along the at least one electrical lead that is in operative connection with the at least one working element.
15. The blood pump of claim 14, wherein the at least one working element is configured to receive and/or transmit signals transmitted along the at least one electrical lead in operative connection with the at least one working element.
16. The blood pump of claim 1, wherein the at least one trough comprises a shape, and wherein the at least one electrical lead comprises a shape that is complementary to the shape of the at least one trough.
17. The blood pump of claim 1, wherein the depth of the at least one trough is selected such that the at least one lead accommodated therein is recessed relative to, and does not extend outwardly beyond, the outer surface of the housing.
18. A method for sending and/or receiving electrical signals to a sensor and/or a working element associated with a blood pump that is adapted to be disposed at least partially within a patient's heart, comprising: providing a blood pump according to claim 1; collapsing the expandable region to achieve a collapsed delivery configuration of the blood pump; delivering the blood pump in the collapsed delivery configuration through a blood vessel to the patient's heart; expanding the expandable region to achieve an expanded working configuration, wherein the at least one electrical lead is adapted to slidingly extend within the at least one trough to accommodate the expansion of the expandable region.
19. The method of claim 18, further comprising operatively connecting a working element to one of the at least one electrical leads, and transmitting control signals to the working element along the at least one electrical lead in operative connection with the working element.
20. The method of claim 18, further comprising providing a sensor in operative connection with at least one of the at least one electrical lead.
21. The method of claim 19, further comprising transmitting control signals to the working element when the expandable region has achieved the expanded working configuration.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1)
(2)
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(6)
DETAILED DESCRIPTION OF THE INVENTION
(7) Generally, various embodiments of the present invention are directed to mechanical assist devices for pumping blood in a patient. Improved temporary LVAD or VAD blood pumps are described herein that are delivered percutaneously and intravascularly.
(8) Referring now to
(9) The entire length of outer housing 14 is shown as comprising a relatively constant diameter from the inlet or inflow apertures 12 to the outlet or outflow apertures 10. Guide wire 16 is positioned alongside the exterior of the device until reaching the inlet apertures 12 where it enters the lumen of cannula C and extends distally therefrom as shown. Thus, the guide wire 16 does not pass through the impeller or rotor 8 or pump assembly. The configuration shown in
(10) With reference generally to the Figures, the device 100 may comprise an expandable region 102 that may be located distal to the impeller or rotor or pump assembly, such that the housing diameter surrounding the impeller or rotor or pump assembly does not change diameter during delivery or during rotation. Stated differently, a proximal non-expandable region 122 may be provided and comprises at least the impeller or rotor or pump assembly and the housing surrounding that assembly does not expand or contract appreciably but may be flexible. Further, a distal non-expandable region 124 may also be provided comprising at least the inlet region including at least the inlet apertures 12. Thus, the expandable region 102 comprises a proximal end 106 and a distal end 108. The proximal end 106 of the expandable region 102 abuts or is adjacent to a distal end of the proximal non-expandable region 122 while the distal end 108 of the expandable region 102 abuts or is adjacent to a proximal end of the distal non-expandable region 124. The housing H surrounding the non-expandable region(s) 122, 124 may, however, be flexible or pliable, but they are not disposed to a biased expansion.
(11) Alternatively, the housing H of device 100 in
(12)
(13) With continued reference to
(14) In many of the embodiments described herein, the expandable region 102 may comprise a single expandable region, without need or reason to distinguish between a proximal transition section, central expandable section and/or distal transition section.
(15) Generally, the expandable region 102 of the present invention may comprise a support structure 130 surrounded by a polymer coating or jacket that adapts to expansion and collapsing of the expandable region 102.
(16) Further, the support structure 130 may comprise an expandable stent-like structure formed of a series of cells formed from interacting and/or interconnected wires and/or struts and that enable collapsing and biased expansion of a structure, e.g., a stent, as is known in the art. For example, see U.S. Pat. No. 5,776,183 to Kanesaka; U.S. Pat. No. 5,019,090 to Pinchuk; U.S. Pat. No. 5,161,547 to Tower; U.S. Pat. No. 4,950,227 to Savin; U.S. Pat. No. 5,314,472 to Fontaine; U.S. Pat. Nos. 4,886,062 and 4,969,458 to Wiktor; and U.S. Pat. No. 4,856,516 to Hillstead, the disclosures of each of which are hereby incorporated in their entirety by reference.
(17) As illustrated in
(18) The expandable region 102 described herein is merely exemplary and not limiting in any regard. As such, any expandable housing H of a blood pump device 100 is readily adaptable to the various embodiments of the present invention relating to insulation and/or spacing and/or profile reduction or integration of electrical leads or conductors E within or along the blood pump housing.
(19) Alternatively, the housing H of the subject blood pump device 100 may not be expandable, embodiments that are also readily adaptable to the various embodiments of the present invention.
(20) Turning now to
(21)
(22) The trough 200 may comprise a single trough or more than one trough. The at least one trough 200 may also comprise a generally straight path from the proximal point to the distal point along the expandable region or housing as shown in
(23) As seen in the Figures, once the at least one electrical lead is disposed within the at least one trough, physiological sensor(s) S or other working element(s) may be disposed therealong. For example and without limitation, flow rate sensors, pressure sensors, signal emitters, signal receptors and the like may be enabled by operative communication with the at least one electrical lead. The working element(s) may be also disposed within an extension of the at least one trough to reduce the collapsed crossing profile, as well as the expanded working profile, of the device with electrical lead(s) E and working element(s). In certain embodiments, one working element may be disposed on an electrical lead E in an upstream region relative to, e.g., the aortic valve, and a second working element may be disposed on an electrical lead in the downstream region relative to the aortic valve.
(24) It is preferred that the device be configured as described above to move from a collapsed delivery configuration to an expanded working configuration, as best seen in
(25) The description of the invention and is as set forth herein is illustrative and is not intended to limit the scope of the invention. Features of various embodiments may be combined with other embodiments within the contemplation of this invention. Variations and modifications of the embodiments disclosed herein are possible and practical alternatives to and equivalents of the various elements of the embodiments would be understood to those of ordinary skill in the art upon study of this patent document. These and other variations and modifications of the embodiments disclosed herein may be made without departing from the scope and spirit of the invention.