The presently disclosed technology relates generally to the field of portable handheld devices, sampling systems and methods for collecting a sample from exhaled breath of a subject, and/or for detecting the presence (i.e., qualitative) and/or determining the quantitative amount of at least one specific and/or illicit drug, substance or compound in exhaled breath. More particularly, in one embodiment, the presently disclosed technology relates to improved construction of such devices.
Exhaled breath is commonly used in alcohol testing, for example, and the prior art makes it possible to perform on-site breath testing with legally defensible results using infrared spectroscopy. In addition, systems and methods are known for detecting the presence or amount of at least one biomarker for medical diagnosis of a subject or the presence of certain drug substances that the subject had taken. For example, U.S. Pat. Pub. No. 2014/0366609 and U.S. Pat. Pub. No. 2015/0033824, which are incorporated by reference herein in their entireties, disclose portable drug sampling devices configured for receiving and containing the exhaled breath of a subject.
Sensabues AB is a Swedish company that produces an exhaled breath-based biomatrix platform, which they refer to as ExaBreath® or EB. EB is configured to facilitate collection of exhaled breath for detection and identification of nonvolatile substances in a subject's blood. EB may be used, for example, to detect the presence of exogenous substances in a subject's blood, such as performance enhancing substances in athletes and narcotics for drug testing. The test method includes chromatographic-mass spectroscopy.
One such prior art breath collection device includes a thin electrostatic-based air filter, which captures and retains submicron bioaerosol particles that originate from the subject's airway lining fluid. In use, the collection device is connected in fluid communication with a plastic bag to receive some of the exhaled breath passing through the collection device. The bag serves two functions. First, inflation of the bag shows that the subject has properly exhaled into the device. Second, when fully inflated, the bag indicates that the minimum amount of exhaled air has passed through the filter to sufficiently collect biological samples.
To better illustrate an embodiment of the EB system of Sensabues AB,
While the above-described device of the prior art is certainly beneficial and provides a convenient means for biological testing, its construction is not optimal in certain respects. For one, the need to puncture the bag with the port and access the loose adapter within the bag can be troublesome for some users, and may not provide a reliable seal between the port and the bag. Further, the bulbous configuration of the housing 406 may be difficult for a user to reliably grip during use. In addition, the prior art does not include a tamper evident mechanism to indicate whether the housing, after containing a biological sample, was improperly accessed or otherwise tampered with.
Accordingly, the presently disclosed technology overcomes the above and other drawbacks of the prior art, and satisfies the above-outlined and other objectives.
In one aspect, the presently disclosed technology is directed to a system for collecting and retaining a sample from exhaled breath of a subject for analysis. The system includes a housing having a first portion removably attachable to a second portion. The first portion includes an inlet and the second portion includes an outlet.
In another aspect, the presently disclosed technology is directed to a system for collecting and retaining a sample from exhaled breath of a subject for analysis. The system includes a trap section having a first portion and a second portion. The trap section includes a mouthpiece at one end thereof and an outlet at an opposing end thereof. The outlet is configured to removably attach to the inlet of the housing. The trap section further includes an extraction port.
In another aspect, the presently disclosed technology is directed to a system for collecting and retaining a sample from exhaled breath of a subject for analysis. The system includes a fitment having a shaft portion and a winged portion. The shaft portion can be configured to surround at least a portion of the extraction port of the trap section. An exterior surface of the shaft portion includes at least one rib extending perpendicularly to a longitudinal axis of the shaft portion.
In another aspect, the presently disclosed technology is directed to a system for collecting and retaining a sample from exhaled breath of a subject for analysis. The system includes a bag surrounding a winged portion of a boat fitment.
Optionally, the presently disclosed technology is directed to a portable fluid sampling device having a housing including a first portion removably attachable to a second portion. The first and second portions can be configured to combine to form a chamber therein. The chamber can be configured to at least temporarily hold a biological sample therein. At least one of the first portion and the second portion includes an inlet. The other of the first portion and the second portion includes an outlet. Optionally, the device comprises at least one of the following: a) at least one of the first portion and the second portion can include an end having a projection, the other of the at least one of the first portion and the second portion can include an end having a groove configured to receive at least a portion of the projection therein; or b) tamper evident means for indicating that the first portion of the housing has previously been separated from the second portion of the housing.
The foregoing summary, as well as the following detailed description of the presently disclosed technology, will be better understood when read in conjunction with the appended drawings, wherein like numerals designate like elements throughout. For the purpose of illustrating the presently disclosed technology, there are shown in the drawings various illustrative embodiments. It should be understood, however, that the presently disclosed technology is not limited to the precise arrangements and instrumentalities shown. In the drawings:
While systems, devices and methods are described herein by way of examples and embodiments, those skilled in the art recognize that the systems, devices and methods of the presently disclosed technology are not limited to the embodiments or drawings described. Rather, the presently disclosed technology covers all modifications, equivalents and alternatives falling within the spirit and scope of the appended claims. Any headings used herein are for organizational purposes only and are not meant to limit the scope of the description or the claims. As used herein, the word “unitary” means a component created or formed as a single, integral piece or unit. That is, a component that includes pieces that are created separately and then coupled together as a unit is not a “unitary” component or body. As used herein, the word “may” is used in a permissive sense (i.e., meaning having the potential to) rather than the mandatory sense (i.e., meaning must). Similarly, the words “include,” “including,” and “includes” mean including, but not limited to. Unless specifically set forth herein, the terms “a,” “an” and “the” are not limited to one element but instead should be read as meaning “at least one.” The terminology includes the words noted above, derivatives thereof and words of similar import.
Referring now in detail to the various figures of the drawings, wherein like reference numerals refer to like parts, there is shown in
The device 141 of
In one embodiment, the fitment may be assembled to an initially open end of a bag. The open end or another portion of the bag may then be sealed around the fitment using thermal energy. This step can be done by a manufacturer. The remainder of the open end of the bag may also be heat sealed, such that the only fluid access to the inside of the bag is through the lumen of the adapter. Optionally, a tight connection between the male extraction port 104 and the adapter may be provided via a slip or taper interference fit. This configuration is easier and more reliable for a user to handle than the conventional design of
Referring now to
In an optional aspect of the disclosed concept, the tamper evident feature 220 can include a heat stamped symbol or the like that deforms an interface between the two components and/or extends between the two components. In this way, if the components are pulled apart, it is either impossible for one to re-attach them or it is clearly visually evident that the components had previously been pulled apart. This would prevent a person from providing a tampered sample to a laboratory. Alternatively, the tamper evidence means 220 can be in the form of a sticker that extends across to two components 218, 219 of the housing 206. When the housing 206 is opened, the sticker could tear or rip, thereby indicating that the housing 206 had been opened. Regardless of the specific structure used, the tamper evident means 220 indicates that the first portion of the housing 206 has previously been separated from the second portion of the housing 206.
A cap unit 356 can include a first cap 358 attached to a second cap 360 via a plastic, flexible connection strip 361. The first cap 358 can be sized, shaped and/or configured to surround and/or enclose the inlet 307 of the housing 306, and the second cap 360 can be sized, shaped and/or configured to be inserted into or surround and/or enclose the outlet 308 of the housing 306. In any embodiment, such as that shown in
Similar to the benefit of the configuration of the device 141 shown in
As shown in
Referring to
In one embodiment, as shown in
As shown in
Referring again to
In operation, the bag (e.g., made of plastic) surrounds the entire winged portion 382 and at least a portion of the shaft portion 380. Thus, at least a portion of the shaft portion 380 extends outside of the bag. In any embodiment, one or more O-rings (not shown) can surround at least a portion of the bag and the shaft portion 380 of the adapter 305. The O-ring(s) can contact one or more of the ribs 386 to help hold the O-ring in a desired position or location.
As mentioned above, another benefit of the design shown in
In operation of one embodiment, the various separable components of the system (see
Optionally, the presently disclosed technology provides for a portable fluid (e.g., gas) sampling device for collecting aerosols comprising biomarkers from exhaled breath of a subject for further sensor based analysis. By sampling biomarkers from exhaled breath, the device can provide vital information for early detection and/or diagnosis of diseases or illnesses as well as monitoring of disease progression and/or therapy response. Some known non-volatile biomarkers that may be transported by aerosols in exhaled breath includes lipids, peptides, nucleotides, prostanoids, proteins, DNA and/or RNA.
The following exemplary embodiments further describe optional aspects of the presently disclosed technology and are part of this Detailed Description. These exemplary embodiments are set forth in a format substantially akin to claims (each with numerical designations followed by the letter A), although they are not technically claims of the present application. The following exemplary embodiments refer to each other in dependent relationships as “embodiments” instead of “claims.”
1A. A portable fluid sampling device, the device comprising:
2A. The device of embodiment 1A, further comprising:
3A. The device of embodiment 1A or 2A, wherein the adapter surrounds at least a portion of the trap section.
4A. The device of any one of embodiments 1A-3A, wherein the adapter includes a shaft portion and a winged portion.
5A. The device of any one of embodiments 1A-4A, wherein the winged portion includes two wings, each of which taper away from a mid-section of the winged portion.
6A. The device of any one of embodiments 1A-5A, wherein the adapter is not fixed or otherwise secured to the bag.
7A. The device of any one of embodiments 1A-6A, wherein the adapter does not include a sharp point or spike.
8A. The device of any one of embodiments 1A-7A, wherein the chamber is configured to contain a filter therein.
9A. The device of any one of embodiments 1A-7A, wherein the housing includes a first portion removably attachable to a second portion, and wherein the chamber is configured to fixedly hold a filter therein when the first portion is attached to the second portion.
10A. A portable drug sampling device for handheld collection of a sample from exhaled breath of a subject for further sensor-based analysis, the device comprising:
11A. The device according to embodiment 10A, further comprising:
12A. The device according to embodiment 10A or 11A, wherein the membrane comprises at least one layer of non-woven filtration media with a specific weight in the range of 23 g/m3 to 500 g/m3.
13A. A method of screening an individual for the consumption of a particular substance, the method comprising:
14A. The method according to embodiment 13A, wherein one or more O-rings surround the shaft portion of the adapter.
15A. A method of using a portable fluid sampling device, the method comprising:
16A. The method of embodiment 15A, further comprising:
17A. The method of embodiment 16A, further comprising:
18A. The method of any one of embodiment 15A-17A, wherein prior to attaching the trap section to the first portion of the housing, the method comprises:
19A. An adapter configured to fluidly connect a portable fluid sampling device to a volume measure unit, the adapter comprising:
20A. The adapter according to embodiment 19A, wherein the boat fitment includes a shaft portion and a winged portion, the shaft portion surrounding at least a portion of the extraction port of the trap section, an exterior surface of the shaft portion including at least one rib extending perpendicularly to a longitudinal axis of the shaft portion.
21A. The adapter according to embodiment 19A or 20A, wherein the volume measure unit is a plastic bag.
While the presently disclosed technology has been described in detail and with reference to specific examples thereof, it will be apparent to one skilled in the art that various changes and modifications can be made therein without departing from the spirit and scope thereof. It is understood, therefore, that the presently disclosed technology is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present presently disclosed technology as defined by the appended claims.
The present application is a National Phase of PCT/US2018/057219 filed Oct. 24, 2018 and titled “PORTABLE FLUID SAMPLING DEVICE, SYSTEM FOR USING SAME, AND METHOD OF MAKING AND USING SAME,” which claims priority to U.S. Provisional Application No. 62/576,607 filed Oct. 24, 2017 and titled “PORTABLE SAMPLING DEVICE AND SYSTEM FOR USING THE SAME,” and U.S. Provisional Application No. 62/619,983 filed Jan. 22, 2018 and titled “PORTABLE SAMPLING DEVICE, SYSTEM FOR USING SAME, AND METHOD OF MAKING AND USING SAME,” all of which are hereby incorporated by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2018/057219 | 10/24/2018 | WO |
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WO2019/084092 | 5/2/2019 | WO | A |
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20210177382 A1 | Jun 2021 | US |
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