Medical devices with microneedle arrays and methods for operating such medical devices
10524730 ยท 2020-01-07
Assignee
Inventors
- James A. Reitz (Simi Valley, CA, US)
- Raymond M. Russell (Arcadia, CA, US)
- Anthony C. Cannistraci (Sylmar, CA, US)
- David Pavell (Simi Valley, CA, US)
Cpc classification
A61B2562/12
HUMAN NECESSITIES
A61B5/7475
HUMAN NECESSITIES
A61B5/0002
HUMAN NECESSITIES
A61B5/14532
HUMAN NECESSITIES
A61B5/14514
HUMAN NECESSITIES
B21D22/28
PERFORMING OPERATIONS; TRANSPORTING
International classification
A61B5/00
HUMAN NECESSITIES
A61M37/00
HUMAN NECESSITIES
Abstract
Microneedle arrays, methods for fabricating microneedle arrays, medical devices, and methods for operating medical devices are provided. A method for fabricating a microneedle array includes providing a sheet blank of material. Further, the method includes stamping the sheet blank of material with a progression of dies, wherein the material is displaced into the microneedle array. A medical device includes a microneedle array, a base member having a first surface supporting the microneedle array and a second surface, and a flexible wall enclosing a chamber between the flexible wall and the second surface of the base member. The flexible wall is biased toward an extended configuration enclosing a first volume in the chamber. Further, the flexible wall is movable to a depressed configuration enclosing a second volume in the chamber less than the first volume.
Claims
1. A medical device comprising: a microneedle array; a base member having a first surface supporting the microneedle array and a second surface, wherein the base member includes inter-needle regions wherein the first surface is not covered with a microneedle from the microneedle array, and wherein the base member is perforated with holes extending from the first surface through the second surface in the inter-needle regions; and a flexible wall enclosing a chamber between the flexible wall and the second surface of the base member, wherein the flexible wall is biased toward an extended configuration enclosing a first volume in the chamber, wherein the flexible wall is movable to a depressed configuration enclosing a second volume in the chamber less than the first volume.
2. The medical device of claim 1 further comprising a sensor component between the base member and the flexible wall.
3. The medical device of claim 2 wherein the sensor component covers the second surface of the base member and is porous.
4. The medical device of claim 1 wherein microneedles in the microneedle array are solid and do not include holes therethrough.
5. The medical device of claim 1 wherein the microneedle array and the first surface of the base member form a front side of the medical device, wherein the medical device further comprises solid, liquid, or gel media on the front side of the medical device, and wherein the media is selected from insulin, medications, vitamins, hormones, nutritional media, tracing media, or hydration media.
6. The medical device of claim 1 wherein the flexible wall is a spherical dome.
7. The medical device of claim 1 wherein the microneedle array surrounds an opening, and wherein the medical device further comprises a sensor component located in the opening and supported by the first surface of the base member.
8. The medical device of claim 1 further comprising a sensor component supported by the first surface of the base member and at least partially surrounding the microneedle array.
9. The medical device of claim 1 wherein a selected microneedle in the microneedle array is formed with a hole extending from an exterior surface of the selected microneedle to an interior surface of the selected microneedle.
10. A medical device comprising: a microneedle array configured to pierce a treatment area; a base member having a first surface supporting the microneedle array and a second surface; a sensor component on the first surface of the base member; and a chamber connected to the second surface of the base member, wherein the chamber is bound by a flexible wall and configured to apply a suction force to the treatment area.
11. The medical device of claim 10 wherein the microneedle array surrounds an opening, and wherein the sensor component is located in the opening.
12. The medical device of claim 10 wherein the microneedle array has a periphery, wherein the first surface of the base member includes a peripheral region extending from the periphery of the microneedle array to an outer edge, and wherein the sensor component is located on the peripheral region of the base member and surrounds the microneedle array.
13. A method for operating a medical device, the method comprising: providing the medical device comprising: a microneedle array; a base member having a first surface supporting the microneedle array and a second surface; a flexible wall enclosing a chamber between the flexible wall and the second surface of the base member, wherein the flexible wall is biased toward an extended configuration enclosing a first volume in the chamber; and a fluid contained in the chamber, wherein the fluid is selected from insulin, medications, vitamins, hormones, nutritional media, tracing media, or hydration media; piercing a treatment area with the microneedle array; and applying a force to depress the flexible wall to a depressed configuration enclosing a second volume in the chamber less than the first volume and expelling the fluid onto and/or into the treatment area.
14. The method of claim 13 wherein the base member includes inter-needle regions wherein the first surface is not covered with a microneedle from the microneedle array, wherein the base member is perforated with holes extending from the first surface through the second surface in the inter-needle regions; and wherein expelling the fluid onto and/or into the treatment area comprises expelling the fluid through the holes in the inter-needle regions.
15. The method of claim 13 wherein a selected microneedle in the microneedle array is formed with a hole extending from an exterior surface of the selected microneedle to an interior surface of the selected microneedle, and wherein applying the force to depress the flexible wall to the depressed configuration comprises expelling the fluid from the chamber and through the hole in the selected microneedle.
16. The method of claim 13 wherein the flexible wall expands to the extended configuration after the force is removed from the flexible wall causing a body fluid to be drawn from the treatment area and to the medical device.
17. The method of claim 16 wherein the medical device further comprises a sensor component between the base member and the flexible wall, and wherein when the flexible wall expands to the extended configuration after the force is removed from the flexible wall the body fluid is drawn from the treatment area and into contact with the sensor component.
18. The method of claim 13 wherein the microneedle array has a periphery, wherein the first surface of the base member includes a peripheral region extending from the periphery of the microneedle array to an outer edge, and wherein the medical device further comprises a sensor component located on the peripheral region of the base member and surrounding the microneedle array.
19. The method of claim 13 wherein the microneedle array surrounds an opening, wherein the medical device further comprises a sensor component located in the opening and supported by the first surface of the base member, and wherein the medical device further comprises a sensor component supported by the first surface of the base member and at least partially surrounding the microneedle array.
20. The method of claim 13 wherein the medical device further comprises a sensor component supported by the first surface of the base member and at least partially surrounding the microneedle array, and wherein when the flexible wall expands to the extended configuration after the force is removed from the flexible wall a fluid is drawn from the treatment area and into contact with the sensor component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the subject matter may be derived by referring to the detailed description and claims when considered in conjunction with the following figures, wherein like reference numbers refer to similar elements throughout the figures, which may be illustrated for simplicity and clarity and are not necessarily drawn to scale.
(2)
(3)
(4)
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DETAILED DESCRIPTION
(8) The following detailed description is merely illustrative in nature and is not intended to limit the embodiments of the subject matter or the application and uses of such embodiments. As used herein, the word exemplary means serving as an example, instance, or illustration. Any implementation described herein as exemplary is not necessarily to be construed as preferred or advantageous over other implementations. Furthermore, there is no intention to be bound by any expressed or implied theory presented in the preceding technical field, background, brief summary or the following detailed description.
(9) While the microneedle arrays described herein can be implemented in a variety of devices, exemplary embodiments described below are implemented in the form of medical devices, such as infusion or sensing medical devices. Many different applications for microneedle arrays described herein are possible. For example, an exemplary device may be used to pierce a patient's skin to perform sensing of fluid, such as interstitial fluid or blood. In such an embodiment, an exemplary device may be used in glucose sensing. Another exemplary device may be used to pierce a patient's skin to deliver an active agent through the skin. In certain embodiments, a device may both sense fluid through the skin and delivery an active agent through the skin.
(10) For the sake of brevity, conventional techniques related to systems for use with microneedle arrays, such as infusion sets, insulin pumps, and the like (and the individual operating components of such systems) may not be described in detail here. Examples of infusion pumps may be of the type described in, but not limited to, U.S. Pat. Nos. 4,562,751; 4,685,903; 5,080,653; 5,505,709; 5,097,122; 6,485,465; 6,554,798; 6,558,320; 6,558,351; 6,641,533; 6,659,980; 6,752,787; 6,817,990; 6,932,584; and 7,621,893; each of which are herein incorporated by reference.
(11) Embodiments of the subject matter described herein generally relate to microneedle arrays for piercing a patient's skin. Exemplary microneedle arrays are precisely formed by progressively stamping a blank of material with a sequence of stamping dies. In an exemplary embodiment, a microneedle array is fabricated by a deep drawing process. To create deep drawn parts, a sheet of material, such as stainless steel, i.e., surgical stainless steel, or titanium or other inert and hypoallergenic materials, is first blanked, or cut into shaped flats, such as rectangular blanks. From there, the blanks of material are fed into a stamping machine, where a hydraulically-powered punch presses the material into the desired shape via a series of progressive dies. As each blank of material moves through the die sequence, the blanks are gradually formed into the desired part shape. The deep drawing process results in seamless, one-piece parts.
(12) Holes may be drilled into selected microneedles in the microneedle array following the drawing process. Further, excess material may be trimmed away from each microneedle array after the drawing process.
(13) Because deep drawing is a cold working process, the material is automatically work hardened when form as the microneedle array. As the material is stretched and formed into the finished microneedle array, the material's grain structure is altered, giving it greater physical strength than the original base material.
(14) Embodiments of medical devices incorporating microneedle arrays are also provided. In such medical devices, the microneedle arrays may or may not be formed according to the stamping processes described herein. Exemplary medical devices are provided with a flexible wall that encloses a chamber in fluid communication with the microneedle array. The flexible wall is biased toward an extended configuration enclosing a first volume in the chamber. During medical treatment, the flexible wall may be depressed by a force applied by a user to a depressed configuration enclosing a second volume in the chamber less than the first volume. After the force is released, the flexible wall expands to the extended configuration creating a low pressure or vacuum within the chamber.
(15) In certain embodiments, the medical device may be used to draw fluid toward or into the medical device, such as for fluid testing or sensing. In such embodiments, the chamber is initially empty, i.e., filled with air or other ambient gas. After depressing the flexible wall, the automatic expansion of the flexible wall back to its expanded configuration creates a low pressure within the chamber and draws fluid toward and possibly into the medical device. In exemplary embodiments, the medical device includes a testing or sensing substrate, fluid or device around, in, or behind the microneedles. As a result, movement of the flexible wall to the expanded configuration causes fluid to be drawn through the pierced skin and into contact with the testing or sensing substrate, fluid or device. In certain embodiments, the force applied by a user onto the medical device to pierce the skin with the microneedles also depresses the flexible wall such that the medical device is automatically primed for drawing fluid through the skin for testing or sensing.
(16) For such embodiments, the disclosure relates generally to devices, systems and methods for withdrawing fluid, such as interstitial fluid or blood through the skin of a medical patient. For example, interstitial fluid glucose may diffuse from interstitial fluid into a testing or sensing area for analyte communication therein. While the fluid may be withdrawn and tested for treating diabetes, other embodiments may be employed for testing for other conditions and for other purposes. For example, further embodiments may be employed for testing for medical conditions other than diabetes.
(17) In other embodiments, the medical device may be used to expel a fluid from the medical device and through the skin. In such embodiments, the fluid may be loaded into the chamber or in communication with the chamber such that depression of the flexible wall causes the fluid to be expelled from the medical device. For such embodiments, the disclosure relates generally to delivery devices, systems and methods for delivering media, such as a drug, to a recipient, such as a medical patient. For example such media may be provided for treating diabetes, though other embodiments may be employed for delivering media to a patient for other purposes. For example, further embodiments may be employed for delivering other types of drugs to treat diseases or medical conditions other than diabetes, including, but not limited to drugs for treating pain or certain types of cancers, pulmonary disorders or HIV. Thus, the media may be insulin, HIV drugs, drugs to treat pulmonary hypertension, iron chelation drugs, pain medications, anti-cancer treatments, medications, vitamins, hormones, or the like. Further embodiments may be employed for delivering media other than drugs, including, but not limited to, nutritional media including nutritional supplements, dyes or other tracing media, saline or other hydration media, or the like.
(18) Perspective views of various embodiments of a microneedle array are provided in
(19) As shown, the base member 8 is generally circular with an outer radial edge 15 and has a diameter 16. In an exemplary embodiment, diameter 16 is from about one eighth to about one inch, such as from about to about inches, for example about 5/16 inches. In
(20)
(21) As shown, the base member 8 is generally circular with an outer radial edge 25 and has a diameter 26. In an exemplary embodiment, diameter 26 is from about one eighth to about one inch, such as from about to about inches, for example about 5/16 inches. In
(22)
(23)
(24) While
(25) In other embodiments, the base member 8 may be formed in other shapes as desired. Further, in other embodiments, the base member 8 may be formed with any combination of center holes, radially spaced holes, and perforations, or formed without any holes and perforations.
(26)
(27) As shown, the die 61 includes a plurality of uniform spikes 62 separated by troughs or root relief regions 63. In an exemplary embodiment, each spike 62 is formed with an angle of sixty degrees. In
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(29) Referring now to
(30) As shown, the die 71 includes a plurality of uniform spikes 72 separated by troughs or root relief regions 73. In an exemplary embodiment, each spike 72 is formed with an angle of forty-five degrees. In
(31)
(32) Referring now to
(33) As shown, the die 81 includes a plurality of uniform spikes 82 separated by troughs or root relief regions 83. In an exemplary embodiment, each spike 82 is formed with rounded tip. In an exemplary embodiment, each spike 82 is formed with an angle of from about twenty to about thirty degrees. In
(34)
(35) Referring now to
(36) As shown, the die 91 includes a plurality of uniform spikes 92 separated by troughs or root relief regions 93. In an exemplary embodiment, each spike 92 is formed with rounded tip. In an exemplary embodiment, each spike 92 is formed with an angle of from about ten to about fifteen degrees. In
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(38) While the method may utilize any number of dies to form the desired shapes of microneedles,
(39) The method may continue by performing non-stamping processes on the microneedle array 100 and sheet blank of material 60. For example, the method may include drilling a hole through selected microneedles in the microneedle array. In an exemplary embodiment, holes may be drilled by an electrical discharge machining (EDM) process. For example, in
(40) Other processing may include cleaning and packaging. Further, microneedle arrays could be removed from the sheet blank of material. Referring now to
(41) After formation of the microneedle arrays 100 in the microneedle array regions 112, according to the processing of
(42) Referring now to
(43) In
(44)
(45)
(46) The illustrated medical device 200 further includes a sensor component 224 located adjacent the surface 216 of the base member 208. An exemplary sensor component 224 is a porous chemical test strip, such as a strip of glucose paper for reading by a glucose meter.
(47) Also, the illustrated medical device 200 includes a flexible wall 228 enclosing a chamber 232 between the flexible wall 228 and the second surface 216 of the base member 208. More specifically, in the embodiment of
(48) Referring now to
(49) In
(50) In
(51) Therefore, the medical device of
(52) The subject matter described herein is not limited to any type of fluid drawn into a medical device for sensing or to any type of fluid expelled from a medical device for treatment. For example, flowable solids, liquids or gels may be expelled from the medical device for treatment. In certain embodiments, solid, liquid, or gel formats of insulin may be applied.
(53) Further, it is noted that while embodiments herein have been described with holes or apertures through the microneedles and/or through the base member, the microneedle array need not be formed with any holes or apertures for passing media such as flowable solids, liquids or gels therethrough. For example, rather than applying media from the backside of the microneedle array to a treatment area through holes in the microneedle array, the media may be provided on the frontside, i.e., needle side, of the microneedle array. Therefore, the microneedles may pierce the skin and the media may contact fluids such as interstitial fluids or blood for treatment. In certain embodiments, the media may be in the form of solid, liquid, or gel and need not be flowable as prepared on the frontside of the microneedle array.
(54) In other embodiments, the microneedle array may include holes through the microneedles and/or base member as well as media applied to the frontside of the microneedle array. In such embodiments media can also be applied from the backside of the microneedle array through the holes, or the holes may be used to apply a low pressure regime to draw fluid toward and possibly into the medical device as described above.
(55) For the sake of brevity, conventional techniques related to glucose or other fluid sensing and/or monitoring, and other functional aspects of the subject matter may not be described in detail herein. In addition, certain terminology may also be used in the herein for the purpose of reference only, and thus is not intended to be limiting. For example, terms such as first, second, and other such numerical terms referring to structures do not imply a sequence or order unless clearly indicated by the context.
(56) While at least one exemplary embodiment has been presented in the foregoing detailed description, it should be appreciated that a vast number of variations exist. It should also be appreciated that the exemplary embodiment or embodiments described herein are not intended to limit the scope, applicability, or configuration of the claimed subject matter in any way. For example, the subject matter described herein is not necessarily limited to the infusion devices and related systems described herein. Moreover, the foregoing detailed description will provide those skilled in the art with a convenient road map for implementing the described embodiment or embodiments. It should be understood that various changes can be made in the function and arrangement of elements without departing from the scope defined by the claims, which includes known equivalents and foreseeable equivalents at the time of filing this patent application. Accordingly, details of the exemplary embodiments or other limitations described above should not be read into the claims absent a clear intention to the contrary.