MICRONEEDLE AND CHIP
20220023606 · 2022-01-27
Inventors
Cpc classification
A61B5/14546
HUMAN NECESSITIES
A61B5/150068
HUMAN NECESSITIES
A61B5/150282
HUMAN NECESSITIES
A61B5/14532
HUMAN NECESSITIES
A61B5/150396
HUMAN NECESSITIES
A61B5/150969
HUMAN NECESSITIES
A61B5/14514
HUMAN NECESSITIES
International classification
A61M37/00
HUMAN NECESSITIES
A61B10/00
HUMAN NECESSITIES
A61B5/145
HUMAN NECESSITIES
Abstract
A microneedle and a chip are disclosed for extraction fluids. The microneedle is provided on a substrate and comprises an elongated body extending from a distal end with a bevel to a proximal end on the substrate along a longitudinal axis. The elongated body comprises a capillary bore extending in a longitudinal direction thereof and defines a fluid path. The proximal end is integrally connected with the substrate and the capillary bore is in fluid communication with a fluid channel of the substrate. The cross-sectional area of the capillary bore in the distal end is larger than the cross-sectional area of the capillary bore in the proximal end.
Claims
1. A microneedle provided on a substrate, comprising: an elongated body extending from a distal end thereof with a bevel to a proximal end on the substrate along a longitudinal axis, wherein: the elongated body comprises a capillary bore extending in a longitudinal direction thereof and defines a fluid path; the proximal end is connected to the substrate and the capillary bore is in fluid communication with a fluid channel of the substrate; wherein the cross-sectional area of the capillary bore comprises a triangular cross-section in a perpendicular direction relative the longitudinal direction of the microneedle.
2. A microneedle according to claim 1, wherein the triangular cross-section of the capillary bore further comprises at least one rounded corner.
3. A microneedle according to claim 1, wherein the triangular cross-section of the capillary bore comprises a convex base connected to straight sections via two rounded corners.
4. A microneedle according to claim 1, wherein the capillary bore comprises a hydrophilic surface.
5. A microneedle according to claim 1, wherein the fluid channel is configured to provide an under-pressure, relative the atmospheric pressure, to the capillary bore, whereby fluid flow through the capillary bore is promoted.
6. A microneedle according to claim 1, wherein the elongated body further comprises a lateral hole from a side of the microneedle and extends in a radial direction relative the longitudinal direction, wherein the lateral hole is in fluid communication with the capillary hole.
7. A chip, comprising: a plurality of microneedles integrally formed on a substrate, each microneedle comprising: an elongated body extending from a distal end thereof with a bevel to a proximal end thereof on the substrate along a longitudinal axis; wherein the elongated body comprises a capillary bore extending in a longitudinal direction thereof and defining a fluid path, wherein the cross-sectional area of the capillary bore comprises a triangular cross-section in a perpendicular direction relative the longitudinal direction of the microneedle; and wherein the proximal end is integrally formed with the substrate and the first fluid path is in fluid communication with a fluid channel of the substrate.
8. A chip according to claim 7, wherein the substrate comprises a fluid channel which forms a fluid path, wherein the fluid channel has a width larger than the depth of the fluid channel.
9. A chip according to claim 7, wherein at least a part of a wall of the capillary bore forms a part of a wall of the fluid channel.
10. A chip according to claim 7, wherein the fluid channel comprises directional changes with an angle (Θ) smaller than 90 degrees.
11. A chip according to claim 7, further comprising a base substrate, which comprises a fluid port in fluid communication with the fluid channel, and which opens in the backside of the base substrate.
12. A chip according to claim 11, wherein the fluid port comprises an increasing area in the longitudinal direction of the port towards the back of the base substrate.
13. A chip according to claim 7, wherein the base substrate is operatively connected to the substrate by means of bonding.
14. A chip according to claim 7, wherein the plurality of microneedles are surrounded by an edge which is in level with the distal end of the microneedles.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] A more thorough understanding of the abovementioned and other features and advantages of the present invention will be evident from the following detailed description of embodiments with reference to the enclosed drawings, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] The present invention is based on the insights below. When examined carefully, it is clear that the microneedles in the prior art either cannot be manufactured with good yield, they are not robust enough to allow for safe use in mammals or the actual extraction is performed with several caveats described in the smallest possible font. Examples of caveats and disclaimers described in prior art are for instance that extraction only has been demonstrated on pig skin, on mammals with blisters in controlled studies or with the outmost skin layer, stratum corneum, removed prior to extraction. It's therefore safe to say that it was utterly surprising that a robust, volume manufacturable design of microneedles could be invented, designed and realized allowing for safe extraction where the extraction is performed using only capillary forces and no sub pressure or suction.
[0030] According to certain embodiments of the invention, the invention regards a design of a Microneedle chipset comprising a plurality of needles organized in an array or matrix at a minimum distance from each other of 100 micrometers but not greater than 1 mm apart, has a sharp tip in the same plane or slightly below a surrounding structure and where the tip has a 54.7 degree bevel and the needle a hollow bore with a capillary dimension that allows extraction without clogging and a shaft, longer than 200 micrometers as well as interior dimensions and geometry that allow capillary forces to act on liquid all the way to the collecting channels/voids/cavities where misaligned holes in backside channels connect.
[0031] According to some embodiments of the invention, the invention is characterized by a chipset with the above described plurality of microneedles where: [0032] The needles have a sharp tip defined by crystallographic planes. [0033] The bevel slope of each needle is defined by the 111 planes. [0034] Each microneedle may comprise a capillary bore, e.g. a single capillary bore. [0035] Thereby bodily fluid may be extracted by means of capillary suction through the microneedle, fluid cavity and fluid exit port. [0036] Each microneedle may be provided with a cap at a distal end for shielding the capillary bore from clogging, whereby at least one opening to the capillary bore is provided in a lateral direction of the microneedle, perpendicular to the axial or longitudinal extension of the microneedle. The capillary bore of each microneedle may be provided with a hydrophilic surface. Thereby capillary flow of bodily fluid may be assisted. [0037] Each microneedle may comprise a plurality of cutting elements extending along a longitudinal direction of the microneedle. Thereby the skin may be cut and opened to facilitate extraction of bodily fluid. [0038] The perimeter of the bore hole in each microneedle as projected on the bevel of the needle is located at a distance from the tip in a way where the tip is outside the perimeter. [0039] Each microneedle may have a length of 200-1000 μm, preferably 400-900 μm, more preferably 300-600 μm, and an outer circumference of 400-800 μm. Thereby, the microneedle has dimensions suitable for penetration of the skin and extraction of bodily fluid. [0040] A portion of the bore hole as projected on the side that contains the capillary system is outside the connecting capillary generating a maximized wall surface that minimizes surface tension. [0041] Each connection between the bore hole and the capillary should be designed with a minimized contact angle in order to enable tension driven flow. [0042] Surfaces in contact with the fluid should be hydrophilic [0043] The shaft of each needle is without a hilt [0044] The vertical bore holes may be filled with material that is selective and specific to certain molecules and thereby creating an integrated extraction and sensing chipset. The filler material could for instance be glucose oxidase and carbon powder and thereby creating a glucose specific extraction and sensing chipset. [0045] A plurality of openings may be provided in a lateral direction, around a circumference of the microneedle. The at least one opening may be provided about midways along a longitudinal extension of the microneedle. Thereby, the extraction of bodily fluid is facilitated and the risk for clogging is further reduced.
[0046] According to some embodiments of the invention, the invention is further characterized by the above described chipset where the plurality of needles: [0047] Have a frame structure dimensioned to support the tip of a finger constructed as structure protruding along the longitudinal direction of the microneedles, and preferably having a diameter of less than 15 mm. [0048] May be at least partly surrounded by a frame structure dimensioned to support the tip of a finger. Thereby the skin of the tip of the finger may be supported and tensioned to facilitate penetration of the at least one microneedle into the skin. [0049] Are protected by a surrounding structure protruding to at least the same plane as the tip of the needles enabling for instance handling of wafers in the case of MEMS manufacturing of the herein described chipset. [0050] Have a surrounding structure that stretches the skin prior to penetration by the above-mentioned plurality of needles. [0051] With their hollow structure constitute inlets for sampling of bodily fluid. Thereby bodily fluid, such as interstitial fluid (ISF) may be extracted and introduced into a sensor with minimal discomfort for the patient. [0052] Have the collecting network of capillaries in different patterns and as an [0053] advantage is collection of liquid and storage made without evaporation problems. Hence, the chip can sample and the analysis can be made ex situ. [0054] Have the interface between the vertical bore holes and the collecting capillary laterally misaligned to allow liquid to wet the walls and hence by capillary action fill the collecting channels on the backside. [0055] Are located at minimum distance from each other of 200 microns in order to avoid the effect of bed of nails. [0056] Have the bevel oriented in the crystallographic directions or preferred in the same direction. [0057] Are oriented in a way that enables connection between at least a subset of needles using integrated, for instance etched, capillaries. [0058] Could all be combined with a capillary system enabling a capillary flow to a fluid exit port.
Configurations
[0059] In another configuration, the above described sampling chipset may be used in conjunction with a sensing unit. The sensing unit may be wafer bonded or attached to the extraction chipset by other means but may also be connected through capillary tubing or an equivalent flow system. [0060] The sensing unit may be configured for detecting a level of glucose in bodily fluid, i.e. a glucose sensor. Thereby a sensor for rapid and accurate detection of the level of glucose in bodily fluid may be provided. [0061] The sensor may be configured for detecting a concentration or presence of lactate, carbon dioxide, or other molecules in bodily fluid. Thereby a sensor for rapid and accurate detection of the level of above-mentioned molecule or other molecules, ions or biomarkers in bodily fluid may be provided.
[0062] In a first embodiment of the present invention, a chip, generally designated 115, is shown in a perspective view in
[0063] In
[0064]
[0065] The microneedle 101 is further illustrated in
[0069] In the exemplary process outlined above, the photo resist applied to the substrate 102 may be spray coating resist or dry film resist. The bevel 505 of the distal end 504 provides a sharp edge particularly suitable for bio sensing applications. The capillary bore 507 opens in the bevel 505 such that a distance between the periphery of the capillary bore 507 and the tip of the sharp edge of the bevel is obtained. The capillary bore 507 extends from the bevel 505 of the distal end 504 of the elongated body 503 towards the proximal end 506 on the substrate 102. The cross-sectional area of the capillary bore in the distal end 504 is larger than the cross-sectional area of the capillary bore 507 in the proximal end 506. This way, capillary action is enhanced and the fluid flow through the capillary bore 507 increases.
[0070] An embodiment of the microneedle 101 is shown from above in
[0071] In
[0072] Finally,
[0073] Additional features that are disclosed in relation to the first embodiment can also be applied to the second embodiment.
[0074] In one embodiment, the substrate 102 made of silicon, and the base substrate 413 is made of glass.
[0075] The claims attached are drafted to define the scope of invention including the embodiments disclosed and modifications and implementations thereof which can be derived from the disclosure.