The present invention relates to an analysis system comprising a cartridge and an instrument being designed for operating the cartridge and use thereof. The present invention also relates to spacing means and to the instrument for carrying out the analysis system.
Over the past few years, a forward thinking field of medicine focuses on personalized medicine to provide new levels of proteomics and genomics information and paves the way for new and tailored medical services. Personalized medicine aims at predicting, diagnosing or monitoring disease(s) at the level of individual contrary to the “one size fits all” approach. Generally, personalized medicine involves detection assays designed for detecting and quantifying one or more target biomarker(s) comprised in a sample from a patient.
When running a detection assay, the sample is usually comprised in an assay chamber of a cartridge which is processed by a detection device. The detection device usually comprises an observation window coupled to an optical system designed for the optical readout of the content of the assay chamber. In this respect, the assay chamber is conveniently placed opposite the observation window. When one or more target biomarker(s) is detected in the sample, one or more signal(s) is emitted from the assay chamber through the observation window toward the optical system of the detection device.
Typically, the detection of one or more target biomarker(s) is based on biochemical interactions between capture molecules and one or more target biomarker(s) allowing emission of one or more signal(s) which is detected by the optical system. For instance, the optical system can detect a fluorescent signal emitted when an antibody recognizes a target protein.
However, the applicant noticed that when the cartridge is processed with such a detection device, optical effects creating shadows on the observation window frequently occur. Said shadows significantly decrease the transmission of the signal through the observation window and the homogeneity of said signal so that the data provided by the detection assay are degraded by these optical effects.
Another example is disclosed in D1=US2013114076 and describes a device and an examination system providing means for optical examinations of a sample.
Technical features designed to avoid measurement errors are also described in the prior art D2=U.S. Pat. No. 6,552,784 which relates to a disposable optical cuvette device for spectrophotometric measurement of liquid samples.
Therefore, the existing detection device fails to provide reliable and accurate data when it comes to detecting and quantifying targets biomarkers.
The present invention aims to remedy all or part of the disadvantages mentioned above.
The present invention fulfills these objectives by providing an analysis system comprising a cartridge and an instrument being designed for operating the cartridge,
the cartridge comprising a chamber formed by a cavity in a portion of the cartridge, said chamber being sealed by a foil extending along said portion, said foil being capable of protruding when the chamber is pressurized, the instrument comprising an analysis window being transparent to electromagnetic signals, said analysis window comprising a detection portion designed for being crossed by a signal emitted from the chamber toward the instrument when the chamber is placed opposite the detection portion, the instrument further comprising docking means for docking the cartridge on the instrument in order to place the chamber opposite the detection portion so that when the chamber is pressurized, the foil protrudes toward the detection portion,
the analysis system being characterized in that it further comprises spacing means to ensure that, when the cartridge is docked on the instrument via the docking means and the chamber is pressurized, said spacing means ensure a gap between the foil and the detection portion.
The invention also relates to spacing means for carrying out the analysis system according to the present invention, wherein said spacing means comprise a shim.
Furthermore, the invention concerns an instrument for carrying out the analysis system according to the present invention.
The invention also concerns the use of an analysis system according to the present invention for detecting at least a target component.
Thus, the present invention solves the problem by providing an analysis system further comprising spacing means to ensure a gap between a foil of a cartridge and a detection portion of an instrument that operates said cartridge.
The applicant found out that the optical effects observed on the detection portion of the instrument according to the prior art are at least partially caused by the contact between the foil sealing the cartridge and the detection portion of the instrument. When the instrument operates the cartridge and the chamber is pressurised, the foil protrudes toward the detection portion and contacts said detection portion. Due to friction forces, the foil does not form a uniform layer but tends to generate the aforementioned optical effects, i.e. the shadows also called ripples.
Therefore, the applicant discovered that when the chamber is pressurized, the spacing means of the analysis system according to the present invention ensures a gap between the foil and the detection portion. Thus, the spacing means prevent any contact between the foil and the detection portion to avoid the optical effects observed in the prior art.
Moreover, the applicant discovered that with the analysis system of the prior art, when the chamber is pressurized and the foil contacts the detection portion, the number of transmission media crossed by a signal from the chamber to the instrument varies between a first point and a second point of the detection portion. Hence, with the analysis system according to the prior art:
Contrary to the analysis system according to the prior art, in the present invention when the chamber is pressurized, the spacing means prevent the contact between the foil and the detection portion so that the number of transmission media is constant at any point of the detection portion. Thus, the spacing means of the analysis system according to the present invention allows that the number of transmission media crossed by the signal from the chamber to the instrument is constant at any point of the detection portion.
Additionally, it has also been discovered that, with the analysis system of the prior art, when the foil contacts the detection portion on a contact point of the instrument creating the aforementioned optical effects, the transmission of the signal that crossed the detection portion at said contact point decreased (typically by 20%). In the present invention, the spacing means prevent the contact point and hence the decrease of the transmission of signal related thereof. Thus, the spacing means of the analysis system according to the present invention allows improving the sensitivity of the analysis system by detecting signal that would not have been detected by analysis system according to the prior art. In this respect, the spacing means also permit to improve the efficiency of the detection by preventing any contact point and hence the decrease in the transmission of the signal related thereof. The quantification is also improved.
According to an embodiment, the spacing means are separable from the analysis system. Thus, the spacing means can be installed on instrument of the prior art.
According to an embodiment, the electromagnetic signals are electromagnetic signals of which the wavelengths are comprised in a range between deep ultraviolet and deep infrared.
According to an embodiment, the electromagnetic signals are emitted from the chamber.
In an embodiment, the instrument further comprises a support comprising a recess shaped to accommodate the analysis window and the spacing means, said recess further comprising an opening opposite said analysis window.
In an embodiment, the chamber is designed for being pressurized up to 7 bars.
In an embodiment, the thickness of the shim is adapted to the foil and to the foil dimensions in order to be greater than the maximum deformation of the foil when the chamber is pressurized.
In an embodiment, the instrument further comprises heating element, said heating element being capable of transferring heat to the spacing means. Therefore, when the instrument operates the cartridge, a first part of the cartridge contacting the instrument can be at the same temperature than a second part of the cartridge contacting the spacing means. Thus, the variation of temperature between the first part of the cartridge and the second part of the cartridge is minimized.
According to an embodiment, when the cartridge is docked to the instrument via the docking means and the chamber is pressurized, the distance (d) between said detection portion and said foil is comprised between about 1 micrometer and about 250 micrometer, preferably between about 5 micrometer and about 100 micrometer, more preferably between about 10 micrometer and about 50 micrometer.
In an embodiment, the instrument comprises the spacing means.
In another embodiment, the spacing means cooperate with the analysis window.
According to a technical feature, the spacing means are designed for being placed opposite the analysis window.
According to an embodiment, the shim has a thermal conductivity between about 300 W/m K and about 1000 W/m K at 20° C. Thus, when the shim is heated, the heat is transferred to the part of the cartridge contacting the shim.
The spacing means, more particularly the shim, can be made or comprise(s) any material. In one embodiment, the shim is made of or comprises metal, more particularly the shim is made of or comprises copper.
In an embodiment, the shim further comprises reversible fastening means for fastening the shim to the instrument. Thus, when the shim is fastened to the fastening means, the shim is integral with the instrument. Furthermore, when the cartridge is docked to the instrument via the docking means and the shim is fastened to the instrument via the fastening means, the cartridge is integral with the shim. Moreover, the fastening means ensure the positioning of the shim with respect to the analysis window to maintain the gap between the detection portion and the foil of the cartridge when the cartridge is docked to the instrument.
In one embodiment, the fastening means comprises a first part and a second part, the first part comprising a tab extending from the perimeter of the shim, the second part comprising a hollow shaped in the instrument, so that when the tab is received in the hollow, the shim is fastened to the instrument.
According to an embodiment, the shim is designed for being placed on the analysis window.
In an embodiment, when the shim is placed opposite the analysis window, the shim and the support are coplanar meaning that the shim comes up with the support. In this embodiment, the support comprising the analysis window and the shim define a plan surface on the support. Thus, when the instrument operates the cartridge, the cartridge lays flat on the plan surface of support of the instrument. Therefore, if the cartridge is heated by the instrument, for instance via the heating element, the heat loss between the instrument and the cartridge is minimized.
In another embodiment, when the shim is placed opposite the analysis window, said shim defines a surface on the analysis window that matches with the detection portion of the analysis window.
The spacing means, more particularly the shim, can be of any shape. According to an embodiment, the shim is U shaped.
In an embodiment, the shim has a thickness between about 50 micrometer and about 250 micrometer, preferably between about 100 micrometer and about 200 micrometer, more preferably between about 130 micrometer and about 170 micrometer.
The present invention is further illustrated by the following detailed description set forth in view of the appended drawings, which represent an exemplary and explanatory embodiment of an analysis system according to the present invention:
An analysis system 1 according to the present invention, partially illustrated in
The cartridge 3 comprises a chamber 4 formed by a cavity 5 in a portion 6 of the cartridge 2. In the embodiment shown in
The instrument 2 of the embodiment presented in
The analysis system 1 further comprises spacing means to ensure that, when the cartridge 3 is docked to the instrument 2 via the docking means and the chamber 4 is pressurized, said spacing means ensure a gap between the foil 8 and the detection portion 16. For instance, in the embodiment shown in
Other embodiments of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with the true scope and spirit of the invention being indicated by the following claims.
Number | Date | Country | Kind |
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15163221.3 | Apr 2015 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/057931 | 4/11/2016 | WO | 00 |