Determining the amount of the analyte in the plasma based on measuring the amount of the analyte in the whole blood sample.

A method for determining analyte amounts in plasma from whole blood samples using nonlinear hematocrit correction factors addresses the inefficiencies of existing separation and calibration methods, providing accurate and efficient measurements with reduced complexity.

JP7795654B2Active Publication Date: 2026-01-07RADIOMETER AS
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Patent Information

Application Number
JP2024566348
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-05-10
Filing Date
2023-05-09
Publication Date
2026-01-07
Estimated Expiration
2043-05-09

AI Technical Summary

Technical Problem

Existing methods for determining the amount of an analyte in plasma from a whole blood sample are time-consuming due to the need for separating plasma and red blood cells, and require complex multivariate polynomial calibrations prone to overfitting.

Method used

A method involving calibration of a group of analyzer units using nonlinear functional relationships between hematocrit measurements and analyte ratios, allowing direct determination of analyte amounts in plasma by applying hematocrit correction factors derived from stored fitted functions, reducing the need for repeated calibration and minimizing polynomial coefficients.

Benefits of technology

Accurate and robust determination of analyte amounts in plasma is achieved with reduced calibration effort, minimizing overfitting and enabling efficient measurements across a wide range of hematocrit values and analyte concentrations.

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Abstract

Disclosed herein are embodiments of a method for calibrating a group of analyzer units, wherein each analyzer unit of the group of analyzer units is configured to determine the amount of an analyte in the plasma of a whole blood sample. The method includes providing a plurality of calibration whole blood samples, the plurality of calibration whole blood samples including calibration whole blood samples having respective hematocrit values; for each calibration whole blood sample of the plurality of calibration whole blood samples, measuring a hematocrit measurement value indicative of the hematocrit value of the calibration whole blood sample, measuring a whole blood measurement value indicative of the amount of the analyte in the calibration whole blood sample using at least one calibration analyzer unit of the group of analyzer units, measuring a plasma measurement value indicative of the amount of the analyte in the plasma of the calibration whole blood sample, and calculating a ratio between the whole blood measurement value and the plasma measurement value; generating a non-linear functional relationship between the calculated ratio and the corresponding hematocrit measurement value by curve fitting of a non-linear function parameterized by one or more calibration parameters, the curve fitting resulting in respective parameter values for each of the one or more calibration parameters; and storing an expression of the fitted non-linear function in each analyzer unit of the group of analyzer units to enable each analyzer unit of the group of analyzer units to calculate a hematocrit correction factor.
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Description

[Technical Field]

[0001] The present invention relates to various aspects of determining the amount of an analyte in plasma based on measuring the amount of the analyte in a whole blood sample. [Background technology]

[0002] Analyzer units for measuring the amount of an analyte in a blood sample by means of a respective detector or sensor are widely used in the medical and clinical fields, and such analyzer units are often simply referred to as analyzers.

[0003] In addition to the general requirements in terms of accuracy, precision and reliability, analyzer units for clinical applications are often subject to further significant constraints, including the need for low operating costs, low downtime, ease of use, efficiency of use, and in particular reduced sample preparation requirements.

[0004] Many analyzer units perform measurements on biological samples that include blood with all its components, including, in particular, plasma and red blood cells. This has the advantage that the need to pre-treat the blood sample before performing the desired measurement is minimized, if not completely eliminated. Generally, a blood sample that contains both plasma and red blood cells is referred to as a "whole blood" sample.

[0005] Typically, the concentration of at least some analytes is defined as the concentration of the analyte in plasma. Thus, direct measurement of the concentration of an analyte in plasma based on a whole blood sample requires first separating the whole blood sample into plasma and other blood components, particularly red blood cells. However, this is a time-consuming process.

[0006] Therefore, it is desirable to determine the amount of an analyte in plasma directly from measuring the amount of the analyte in a whole blood sample. To this end, U.S. Pat. No. 10,132,800 proposes a method for determining the amount of an analyte in a whole blood sample, which method comprises the steps of determining the hematocrit value of the whole blood sample, directly measuring the amount of the analyte in the whole blood sample, and the steps of: p =P a (D ST ,D H Calculating the corrected analyte amount according to the formula: D p is the corrected analyte amount, and D ST is the measured amount of analyte, and D H is the measured hematocrit value, and P a is the measured amount of analyte D as an unknown value. ST and the measured hematocrit D H and wherein the polynomial coefficients are a function of the analyte.

[0007] However, multivariate polynomials with two independent variables require a relatively large number of polynomial coefficients to be determined in the calibration process, thus complicating the process and making them prone to overfitting. For example, even the lowest-order multivariate polynomials containing only a single cross term contain four polynomial coefficients that need to be determined by calibration. Summary of the Invention [Problem to be solved by the invention]

[0008] Therefore, it remains desirable to provide a method for determining the amount of an analyte in a whole blood sample that is accurate and robust, requires little calibration effort, or at least provides an alternative to known methods.

[0009] It would be further desirable to provide a method for correcting deviations in measurements for whole blood samples from corresponding measurements for plasma samples without requiring repeated calibration of each individual analyzer unit by an analyzer unit operator. Instead, it would be desirable for the applicable corrections to be determined during design or manufacture of the device and / or associated assays, and to be transmitted to each analyzer unit. [Means for solving the problem]

[0010] Against this background, according to a first aspect, disclosed herein are method embodiments for calibrating a group of analyzer units, each analyzer unit of the group of analyzer units configured to determine an amount of an analyte in plasma of a whole blood sample. a) providing a plurality of calibration whole blood samples, the plurality of calibration whole blood samples including calibration whole blood samples having respective hematocrit values; b) for each calibration whole blood sample of the plurality of calibration whole blood samples, i) measuring a hematocrit measurement indicative of the hematocrit of said calibration whole blood sample; ii) measuring a whole blood measurement indicative of the amount of analyte in a calibration whole blood sample using at least one calibration analyzer unit of the group of analyzer units; iii) measuring a plasma measurement indicative of the amount of analyte in the plasma of said calibration whole blood sample; iv) calculating the ratio of the whole blood measurement to the plasma measurement; c) generating a nonlinear functional relationship between the calculated ratio and the corresponding hematocrit measurement by curve fitting a nonlinear function parameterized by one or more calibration parameters, the curve fitting resulting in a parameter value for each of the one or more calibration parameters; d) storing a representation of the fitted nonlinear function in each analyzer unit of the group of analyzer units to enable each analyzer unit of the group of analyzer units to calculate a hematocrit correction factor; Includes.

[0011] The representation of the fitted nonlinear function is a representation of a parameterized nonlinear function, with one or more calibration parameters having parameter values ​​resulting from the curve fitting. Once calibrated, each of the analyzer units of the group of analyzer units can determine the amount of analyte in the plasma of the whole blood sample by measuring a whole blood measurement indicative of the amount of analyte in the whole blood sample and a hematocrit measurement indicative of the hematocrit value of the whole blood sample, by determining a hematocrit correction factor from the hematocrit measurement and from the stored representation of the fitted nonlinear function including the fitted parameter values, and by applying the hematocrit correction factor to the whole blood measurement.

[0012] In particular, according to one aspect, disclosed herein are embodiments of a method for determining the amount of an analyte in plasma of a whole blood sample, the method comprising: - measuring a whole blood measurement indicative of a measured amount of an analyte in the whole blood sample; - measuring a hematocrit measurement indicative of a measured hematocrit value of the whole blood sample; - calculating a hematocrit correction factor from a stored representation of a fitted non-linear function of the measured hematocrit values, in particular a fitted non-linear function parameterized by one or more calibration parameters having parameter values ​​previously determined by performing the steps of the method for calibrating a group of analyzer units disclosed above and below; - calculating the amount of analyte in the plasma by applying the calculated hematocrit correction factor to the whole blood measurement; Includes.

[0013] Thus, the amount of analyte is calculated as a simple product or ratio of a measurement value indicating the measured amount of analyte in a whole blood sample and a hematocrit correction factor that depends on the measured hematocrit value. In particular, the hematocrit correction factor is derived from a fitted nonlinear function of a variable variable representing the hematocrit value, the fitted nonlinear function being parameterized by one or more calibration parameters. The parameter values ​​of the one or more calibration parameters in the fitted nonlinear function depend at least on the type of analyte and / or the type of assay used to measure the analyte.

[0014] In some embodiments, the nonlinear function has a single variable, particularly hematocrit as the only variable, thus facilitating an accurate and robust calibration fit using only a few calibration parameters. In some embodiments, the nonlinear function further depends on the measured amount of analyte, but preferably involves only three or fewer calibration parameters. Preferably, the calibration function is a non-polynomial function, such as including an exponential function.

[0015] In some embodiments, the non-linear function is parameterized by fewer than four calibration parameters, such as three or two calibration parameters or a single calibration parameter.

[0016] The inventors have realized that this process provides accurate determination of analyte amount in plasma over a wide range of analyte amounts and hematocrit values, while reducing the risk of undesired overfitting.

[0017] Calculating the hematocrit correction factor from the stored representation of the fitted nonlinear function may include evaluating the fitted nonlinear function at the measured hematocrit values ​​either by explicit calculation of the function values, or by lookup in a lookup table and optional interpolation, or in another suitable manner to obtain function values ​​of the fitted nonlinear function at the measured hematocrit values. In particular, in some embodiments, the nonlinear function is represented by a lookup table having hematocrit values ​​as keys, optionally including interpolation. Applying the calculated hematocrit values ​​to the whole blood measurements may include multiplying the whole blood measurements by the calculated hematocrit correction factor or dividing the whole blood measurements by the calculated hematocrit correction factor. This may depend on whether the ratio of the whole blood and plasma measurements during calibration was calculated by dividing the whole blood measurements by the corresponding plasma measurements or by dividing the plasma measurements by the corresponding whole blood measurements.

[0018] Preferably, the calibration process is performed using two or more calibration analyzer units to accommodate possible differences between the analyzer units of the group of analyzer units. Thus, in some embodiments, step b) of the method for calibrating a group of analyzer units comprises, for each of the set of calibration analyzer units of the group of analyzer units, for each of the set of calibration whole blood samples of the plurality of whole blood samples: i) measuring a hematocrit measurement indicative of the hematocrit of said calibration whole blood sample; ii) measuring a whole blood measurement indicative of the amount of analyte in the calibration whole blood sample using the calibration analyzer unit; iii) measuring a plasma measurement indicative of the amount of analyte in the plasma of said calibration whole blood sample; iv) calculating the ratio of the whole blood measurement to the plasma measurement; This includes carrying out the following.

[0019] Preferably, the set of calibration analyzer units comprises two or more calibration analyzer units, such as more than 5, such as 3 to 20, such as 5 to 10, such as 6 to 10. The calibration analyzer units may be used to perform measurements on the same set of calibration whole blood samples or on respective sets of calibration whole blood samples.

[0020] In some embodiments, during calibration, the hematocrit and / or plasma measurements are measured by the same calibration analyzer unit used to measure the corresponding whole blood measurements of the calibration whole blood samples. To this end, a calibration plasma sample may be prepared from each calibration whole blood sample in a known manner, such as by centrifugation. The prepared calibration plasma samples may then be presented to the calibration analyzer unit for measurement of a plasma measurement indicative of the amount of analyte in the plasma sample obtained from the original whole blood sample.

[0021] Thus, in some embodiments, generating a nonlinear functional relationship by curve fitting includes generating a plurality of data points, each data point representing a hematocrit measurement value of a calibration whole blood sample and a corresponding calculated ratio between a whole blood measurement value measured by one of the set of calibration analyzer units for the calibration whole blood sample and a corresponding plasma measurement value measured by the same one of the set of calibration analyzer units. The corresponding plasma measurement value is preferably measured for a plasma sample obtained from the calibration whole blood sample. The hematocrit measurement value of the calibration whole blood sample is preferably measured using the same one of the set of calibration analyzer units as the corresponding whole blood measurement value belonging to the same data point. Preferably, the curve fitting is based on data points obtained using each of the set of calibration analyzer units and data points obtained using each of the plurality of calibration whole blood samples.

[0022] In various embodiments, calibration parameters associated with a particular analyte are determined by curve fitting a parameterized nonlinear function to a generated calibration data set derived from measured analyte amounts of the particular analyte in a calibration whole blood sample and a corresponding plasma sample, the measured analyte amounts of the particular analyte in the calibration whole blood sample being obtained by one or more calibration analyzer units in the same group as the measurement analyzer unit used for the subsequent measurement.

[0023] In some embodiments, the parameterized nonlinear function is a nonlinear, non-polynomial function of hematocrit. In particular, in some embodiments, the nonlinear, non-polynomial function is an exponential function of hematocrit. The inventors have realized that non-polynomial functions, particularly exponential functions, provide specific, accurate correction factors with low risk of overfitting, at least for some types of analytes. In some embodiments, the non-polynomial function is a function that differs from a small fraction of two polynomials.

[0024] In some embodiments, the hematocrit correction factor HCF (Hct) is: HCF(Hct)=exp(f(Hct)) where f(Hct) is a function of at least the measured hematocrit Hct. In some embodiments, the function f is a parameterized function parameterized by one or more parameters. In some embodiments, the function f has Hct as its only indeterminate variable, while in other embodiments, the function f depends on one or more additional quantities to be determined, such as the temperature and / or concentration of the analyte.

[0025] In some embodiments, the hematocrit correction factor HCF(Hct) is calculated with calibration parameters a and b as: HCF(Hct)=exp(a·Hct b ) is calculated from the measured hematocrit value Hct as: In some embodiments, the calibration parameter a has a parameter value of 2.0 to 2.4, e.g., 2.20 to 2.21, e.g., a=2.204, and the calibration parameter b has a parameter value of 2.2 to 2.7, e.g., 2.4 to 2.5, e.g., 2.45 to 2.47, e.g., b=2.468. In other embodiments, the calibration parameter a has a parameter value of 1.9 to 2.0, e.g., 1.96 to 1.97, and the calibration parameter b has a parameter value of 1.5 to 1.6, e.g., 1.53 to 1.54.

[0026] In some embodiments, the hematocrit correction factor HCF(Hct) is calculated with calibration parameters a, b, and c as follows: HCF(Hct)=exp(a·Hct b conc c ) The analyte concentration (conc) is calculated from the measured hematocrit (Hct) as: where conc indicates the measured amount of analyte in the whole blood sample, or an approximation thereof. In some embodiments, the calibration parameter a has a parameter value between 0.8 and 3.0, e.g., between 1.5 and 2.0, e.g., between 1.7 and 1.9. In some embodiments, the calibration parameter b has a parameter value between 1.5 and 2.0, e.g., between 1.7 and 1.9. The parameter c can be selected from between -0.01 and 1.5, e.g., between -0.01 and 0.2, or between 0.05 and 1.5. In some embodiments, the parameter c can be selected depending on the concentration (conc). For example, the parameter c can be determined from a lookup table indexed by the concentration (conc). In particular, each value of c can be associated with a different concentration range, or the parameter c can be determined by interpolation between parameter values ​​obtained from the lookup table or by other methods. Thus, accurate calibration can be achieved using relatively few calibration parameters.

[0027] In some embodiments, measuring the whole blood measurement and / or measuring the plasma measurement includes using an immunoassay. The fitted nonlinear function, and therefore the hematocrit correction factor, can be specific to the type of immunoassay. The immunoassay can be provided in the form of a replaceable cartridge that can be inserted into the analyzer unit. The fitted nonlinear function, and therefore the hematocrit correction factor, is therefore specific to the type of immunoassay, but not specific to a particular analyzer unit, as long as the analyzer unit belongs to a group of analyzer units that apply the fitted nonlinear function, for example, all analyzer units of a particular make and model.

[0028] In some embodiments, the analyte is an antigen. In some embodiments, the analyte is cardiac troponin I. Thus, in some embodiments, whole blood measurements are obtained using a troponin I assay, particularly a high-sensitivity troponin I assay (hsTnI). Various embodiments of the methods disclosed herein provide accurate measurements of analytes, particularly hsTnI, even when the whole blood sample is slightly diluted. Thus, high sensitivity can be achieved. The inventors have realized that hematocrit correction factors for hsTnI and other analytes, such as NT-proBNP and / or others, can be accurately determined based on hematocrit alone, independent of analyte concentration, particularly based on a nonlinear function of only hematocrit value as the variable variable. For some analytes, e.g., procalcitonin (PCT), a nonlinear function independent of analyte concentration can be used, although a non-polynomial nonlinear function that also depends on analyte concentration may be particularly suitable.

[0029] The present disclosure relates to different aspects, including methods, corresponding apparatus, systems, methods, and / or articles of manufacture described above and below, each providing one or more of the benefits and advantages described in connection with one or more of the other aspects, and each having one or more embodiments corresponding to the embodiments described in connection with one or more of the other aspects and / or disclosed in the appended claims.

[0030] In particular, according to one aspect, disclosed herein is an embodiment for measuring an amount of an analyte in plasma of a whole blood sample using a measuring analyzer unit of a group of analyzer units, the method comprising: - providing a plurality of calibration whole blood samples, the plurality of calibration whole blood samples including calibration whole blood samples having respective hematocrit values; - for each calibration whole blood sample of a plurality of calibration whole blood samples, measuring a hematocrit measurement indicative of the hematocrit value of said calibration whole blood sample, measuring using at least one calibration analyzer unit of said group of analyzer units a calibrated whole blood measurement indicative of the amount of analyte in the calibration whole blood sample, measuring a calibrated plasma measurement indicative of the amount of analyte in the plasma of said calibration whole blood sample, and calculating a ratio between the calibrated whole blood measurement and the calibrated plasma measurement; - generating a non-linear functional relationship between the calculated ratio and the corresponding hematocrit measurement by curve fitting a non-linear function parameterized by one or more calibration parameters, the curve fitting resulting in a parameter value for each of the one or more calibration parameters; - storing a representation of the fitted nonlinear function in at least the measurement and analysis device unit; - measuring, with a measurement analyzer unit, a whole blood measurement indicative of a measured amount of an analyte in the whole blood sample; - measuring, by the measurement analyzer unit, a hematocrit measurement indicative of a measured hematocrit value of the whole blood sample; - calculating a hematocrit correction factor from the stored representation of the fitted nonlinear function; - calculating the amount of analyte in the plasma by applying the calculated hematocrit correction factor to the measured whole blood reading; Includes.

[0031] According to another aspect, disclosed herein are embodiments of a computer-implemented method for determining an amount of an analyte in plasma based on a measurement of the amount of the analyte in a whole blood sample, the method comprising: - receiving a whole blood measurement obtained by the measurement analyzer unit, the whole blood measurement indicating a measured amount of an analyte in the whole blood sample; - receiving a hematocrit measurement obtained by the measurement analyzer unit, the hematocrit measurement indicating a measured hematocrit value of the whole blood sample; - calculating a hematocrit correction factor from the stored representation of a fitted non-linear function of the measured hematocrit values, the fitted non-linear function being parameterized by one or more calibration parameters, in particular one or more calibration parameters having parameter values ​​previously determined by performing the steps of the method for calibrating a group of analyzer units described above and below; - calculating the amount of analyte in the plasma by applying the calculated hematocrit correction factor to the whole blood measurement, in particular by multiplying or dividing the whole blood measurement by the calculated hematocrit correction factor; Includes.

[0032] Furthermore, according to yet another aspect, disclosed herein are embodiments of a data processing system configured to perform steps of the computer-implemented methods described herein. In particular, the data processing system may have stored thereon program code adapted, when executed by the data processing system, to cause the data processing system to perform steps of the computer-implemented methods described herein. The data processing system may be embodied as a single computer or other data processing unit or device, or as a distributed system including multiple computers and / or other data processing devices, such as a client-server system, a cloud-based system, etc. The data processing system may include a data storage device for storing computer programs and / or sensor data.

[0033] In some embodiments, the data processing system is integrated into the analyzer unit, for example as a suitably programmed internal data processing unit of the analyzer unit. In other embodiments, the data processing system may be a remote data processing system that is physically separate from the analyzer unit. To this end, the remote data processing system may include a communications interface for receiving measurements from the analyzer unit, for example directly from the analyzer unit or indirectly via one or more intermediate nodes, for example via a suitable wired or wireless connection.

[0034] According to one aspect, disclosed herein is an embodiment of an analyzer unit for determining an amount of an analyte in plasma of a whole blood sample, the analyzer unit comprising: - an analyte sensor for measuring a whole blood measurement indicative of an amount of an analyte in a whole blood sample; - a hematocrit sensor for measuring a hematocrit measurement indicative of the hematocrit value of the whole blood sample; - a data processing system as described above and below; Equipped with.

[0035] The analyzer unit may be an analyzer unit of a group of analyzer units that are all calibrated by the method described herein. In particular, all analyzer units of a group of analyzer units may have stored therein a representation of the same fitted non-linear function.

[0036] A group of analyzer units may comprise or consist of analyzer units of the same make and model, or otherwise a selected class of analyzer units that apply the same measurement protocol for measuring analyte amounts and therefore can apply the same calibration. Thus, calibration may be performed as part of the design of a particular analyzer unit model and / or during the design of a measurement immunoassay to be used by a particular analyzer unit model for measuring a particular type of analyte.

[0037] In this regard, it should be understood that the parameterized non-linear function may be analyte-specific and / or specific to a particular type of immunoassay, however, the parameterized non-linear function may be applicable to a predefined group of analyzer units, such as for multiple analyzer units, and particularly to analyzer units of a particular make and model.

[0038] The amount of analyte determined by various embodiments of the processes disclosed herein can be an absolute amount or a relative amount, particularly an analyte concentration. Yet another aspect disclosed herein relates to an embodiment of a computer program configured to cause a data processing system to perform the actions of the computer-implemented methods described above and below. The computer program may comprise program code means adapted, when executed on the data processing system, to cause the data processing system to perform the actions of the computer-implemented methods disclosed above and below. The computer program may be stored on a computer-readable storage medium, in particular a non-transitory storage medium, or may be embodied as a data signal. The non-transitory storage medium may include any suitable circuit or device for storing data, such as RAM, ROM, EPROM, EEPROM, flash memory, magnetic or optical storage devices, e.g., CD-ROM, DVD, hard disk, and / or the like.

[0039] The preferred embodiments will now be described in more detail in connection with the accompanying drawings. [Brief explanation of the drawings]

[0040] [Figure 1] FIG. 2 is a diagram illustrating schematically an example of an analyzer unit. [Figure 2] FIG. 10 illustrates schematically a process for calibrating a group of analyzer units. [Figure 3] FIG. 10 schematically illustrates an example of a calibration process and a subsequent measurement process. [Figure 4A] FIG. 1 shows the measured data and corresponding nonlinear fits of exemplary calibrations using different types of assays. [Figure 4B] FIG. 1 shows the measured data and corresponding nonlinear fits of exemplary calibrations using different types of assays. [Figure 4C] FIG. 1 shows the measured data and corresponding nonlinear fits of exemplary calibrations using different types of assays. [Figure 5]FIG. 1 shows the correlation of calculated analyte concentrations and reference analyte concentrations over a range of concentrations. DETAILED DESCRIPTION OF THE INVENTION

[0041] 1 illustrates generally one example of an analyzer unit, generally designated 100. The analyzer unit comprises an analyte sensor 130, a hematocrit sensor 120, and a processing unit 110.

[0042] It should be understood that the analyzer unit may include one or more additional components not explicitly shown in FIG. 1 and known per se in the field of analyzer units. Examples of such additional components include a sample inlet for receiving a blood sample, a fluid handling system for presenting the received blood sample to the analyte sensor and the hematocrit sensor, etc. The analyzer unit may further include a suitable user interface that allows a user to interact with the analyzer unit. To this end, the user interface may include a display for displaying measurement results.

[0043] The analyte sensor 130 may employ any suitable measurement methodology for measuring the concentration of one or more analytes in a whole blood sample. In particular, the analyte sensor may be configured to measure the concentration of the analyte through the use of an immunoassay as known in the art. To this end, the analyte sensor may be a cartridge-based immunoassay sensor, and the analyzer may be configured to receive an assay cartridge 140. The cartridge may include a plurality of reagent cups 141.

[0044] In some embodiments, the immunoassay is based on the dry chemistry concept and a detection method based on unenhanced time-resolved fluorescence (TRF) technology. In this regard, the term dry chemistry means that the required assay-specific reagents, including, for example, tracer antibodies, capture antibodies, and stabilizing reagents, are dry-coated into one or more assay-specific reagent cups 141 of the assay cartridge 140.

[0045] In one embodiment, each reagent cup is coated with streptavidin. Biotinylated capture antibodies can be immobilized on the cup surface through binding between streptavidin and biotin. Streptavidin and biotin form a strong non-covalent biological interaction. An insulating layer containing carbohydrates and all the specific additives required for the assay prevents any contact between the capture antibody and the tracer antibody. Europium-labeled tracer antibodies can be added on top of the insulating layer.

[0046] Typically, the cups 141 may be pre-packed into sealed cartridges 140, each cartridge containing multiple cups, for example, 16 cups or another suitable number of cups. The cartridge may further include a desiccant in a pouch to control humidity. Each cup may be individually sealed in a separate chamber to extend shelf life.

[0047] In some embodiments, the only other reagent required to perform the analysis, besides the sample itself, is a buffer, in particular a liquid buffer, which may be the same for all tests. To this end, the analyzer unit may include an on-board solution pack, which may be a closed system containing the buffer in a bag, and also has a waste cup and a container for waste collection of both liquid waste. This means that the user does not need to come into direct contact with the sample or any used reagents.

[0048] The analyte sensor is configured to analyze a blood sample. The blood sample can be either whole blood or plasma. However, during normal use of the analyzer unit, e.g., during clinical use, it is often preferred to perform measurements directly on a whole blood sample to reduce the time and effort required for sample preparation before measurement. The sample can be received by the analyzer unit in a sample tube, particularly a closed sample tube. The analyzer unit can automatically perform aspiration from the closed sample tube. The analyzer unit can acquire a small amount of sample and add the acquired sample to a reagent cup. The sample is typically diluted with a buffer. When the sample (and possibly the buffer) is added, it dissolves the insulating layer of the cup. This can occur over a relatively short period of time, such as less than 15 seconds.

[0049] The cup may be incubated at a suitable temperature, such as 37°C. During this incubation, an antibody-antigen-antibody "sandwich" complex forms, which remains immobilized at the bottom of the reagent cup by the capture antibody. The cup is washed to remove any unbound material and dried. After drying, the analyte sensor 130 exposes the cup to an excitation light and measures the europium response to the excitation light. The response may be expressed in counts per second or another suitable format. The response is directly proportional to the emitted photons, which are directly proportional to the amount of antigen present. Thus, the measured response may serve as a measurement indicative of the concentration of the analyte in the sample. In particular, when the sample is a whole blood sample, the measured response may serve as a whole blood measurement indicative of the concentration of the analyte in the whole blood sample. Similarly, when the sample is a plasma sample, the measured response may serve as a plasma measurement indicative of the concentration of the analyte in a plasma sample, e.g., a plasma sample of a corresponding whole blood sample, i.e., a plasma sample obtained from the corresponding whole blood sample.

[0050] It should be understood that other embodiments of the analyzer unit may include different types of analyte sensors configured to perform the measurement of analyte concentration in different ways. Hematocrit sensor 120 may use a suitable measurement methodology to determine the hematocrit value of the received whole blood sample, which may be performed in parallel with the assay measurement. Generally, the hematocrit value may be determined based on an automated measurement of the electrical conductivity of the whole blood sample. In one embodiment, the conductivity is measured at two frequencies. Based on the measured conductivity, the Hct is determined, optionally corrected for the salt concentration of the sample. It should be understood that other embodiments of the analyzer unit may include different types of hematocrit sensors or may be configured to perform hematocrit measurement in different ways.

[0051] Analyte sensor 130 and hematocrit sensor 120 are communicatively coupled to processing unit 110 and transfer their respective measurement results to processing unit 110 for further processing. It should be understood that the sensors may transfer raw measurement signals or preprocessed measurement signals or data, such as A / D converted, filtered, amplified, and / or otherwise preprocessed signals or data, to processing unit 110.

[0052] The processing unit 110 may include a suitably programmed CPU 111 and a data storage device 112. The processing unit 110 is configured to execute program code 113 to control the operation of the analyzer unit. The data storage device 112 may be a hard drive, an EEPROM, a solid-state drive, or another suitable data storage device. The data storage device may have the program code 113 stored thereon. The processing unit 110 may thus load the program code 113 from the data storage device 112 into the CPU 111, which may then execute the loaded program code.

[0053] In particular, program code 113 is configured to cause processing unit 110 to process measurements obtained from the analyte sensor and the hematocrit sensor, to present the processed measurement results to a user, e.g., via a suitable display or otherwise, and / or to communicate the processed measurement results to a remote data processing system. In various embodiments of the analyzer unit, processing of the measurements includes calculating an analyte concentration in plasma based on measurements performed on the whole blood sample as described herein. To this end, data storage device 112 may store a representation 114 of a fitted nonlinear function for use by the analyzer unit, e.g., to calculate a hematocrit correction factor, as described in more detail below. It should be understood that the representation of the fitted nonlinear function may be stored as part of the computer program or separately, e.g., as a configuration file or in another suitable manner. In some embodiments, the computer program and the representation of the nonlinear function may be stored on different storage devices. The representation of the nonlinear function may also be accessed by the analyzer unit from a remote data storage device.

[0054] FIG. 2 schematically illustrates a process for calibrating a group of analyzer units, e.g., analyzer units of the same make and model. Calibration process 300 is performed on a set of calibration analyzer units, resulting in a representation of a fitted nonlinear function representing a hematocrit-dependent correction factor for use by each analyzer unit of the group when performing measurement process 200 on a whole blood sample, the measurement result of which will represent the analyte concentration in plasma. Thus, the representation of the fitted nonlinear function may be stored in each of the analyzer units of the group. This may be done during manufacture of the analyzer units. Alternatively, for example, when a new type of immunoassay is designed for use with the analyzer units, assay-specific calibration process 300 may be performed using the set of calibration analyzer units, and the resulting representation of the new fitted nonlinear function may then be communicated to the analyzer units of the group. The representation of the fitted nonlinear function may be distributed, for example, on a suitable data carrier or downloaded to the individual analyzer units via a suitable computer network. It should be understood that the nonlinear function representation may be specific to a particular type of immunoassay, or at least to a particular type of analyte to be measured. However, the nonlinear function representation obtained during the calibration described herein for a particular assay or analyte is analyzer-independent, i.e., applicable to all analyzer units of a given group, e.g., all analyzer units of the same make and model. Preferably, the obtained nonlinear function is independent of analyte concentration. Preferably, for at least some types of analytes / assays, the obtained nonlinear function depends only on hematocrit. For other types of analytes / assays, non-polynomial nonlinear functions that depend on analyte concentration may be used.

[0055] It should be understood that the representation of the nonlinear function may be represented in several ways, for example, as an executable function call that implements a mathematical function, as a look-up table, optionally including interpolation between tabular function values, or in another suitable manner.

[0056] It should further be understood that the calibration analyzer unit of a set of calibration analyzer units does not necessarily have to be a particular analyzer unit of a group of analyzer units, as calibration can preferably be transferred from any analyzer unit of the group to another.

[0057] FIG. 3 illustrates schematically an example of a calibration process 300 and subsequent measurement process 200 . In the calibration process 300, the whole blood to plasma ratio R is determined experimentally by comparing analyzer measurements from plasma and whole blood samples with varying hematocrit values.

[0058] In particular, in one embodiment, in initial step S201, multiple calibration whole blood (WB) samples are obtained such that the calibration whole blood samples have hematocrit values ​​covering a relevant range, for example, 10-70% or even 0-70%.

[0059] In step S202, the hematocrit value (Hct), or at least a hematocrit measurement indicative of the hematocrit value, and the whole blood analyte volume, or a whole blood measurement indicative of the whole blood analyte volume (AWB), are measured directly in each of a plurality of calibration whole blood samples. The measurements are performed by a set analyzer unit selected, e.g., randomly selected, from a group of analyzer units to be calibrated, using a suitable immunoassay, in particular, for measuring the analyte in question. For purposes of this description, the analyzer unit used to perform the calibration process is also referred to as the calibration analyzer unit.

[0060] In step S203, a plasma analyte quantity (APL), or at least a plasma measurement indicative of the plasma analyte quantity, is measured in the plasma sample from each of the plurality of calibration whole blood samples, also preferably performed using the same calibration analyzer unit as the corresponding measurement of the whole blood analyte quantity using the same type of immunoassay.

[0061] In step S204, the process calculates the ratio R(Hct)=AWB / APL for plasma and whole blood samples with equal analyte concentrations, where AWB and APL are obtained by the same calibration analyzer unit. Each ratio is calculated for plasma and whole blood analyte amounts measured using a selected set of calibration analyzer units.

[0062] In step S205, the process generates a parameterized nonlinear, preferably non-polynomial, functional relationship between the discovered R value and Hct by curve fitting. The curve fitting may use any suitable fitting process, for example, a least-squares fitting process. To this end, the nonlinear functional relationship is parameterized by one or more calibration parameters, the parameter values ​​of which are determined by the curve fitting process, for example, by calibration parameters a1, ...a n , with n>0, R(Hct) = R(Hct|a1,…,a n ) is determined as

[0063] In one particular embodiment, the analyte to be measured is cardiac troponin I, and the assay used to measure the cardiac troponin I concentration in the sample is a high-sensitivity troponin I assay (hsTnI). For hsTnI, the following nonlinear relationship exists: R hsTnI (Hct)=exp(-a Hct b ) has been found to be appropriate, with the calibration parameters a and b.

[0064] In one example, the curve fitting process results in a parameter value for the calibration parameter a of 2.0 to 2.4, such as 2.20 to 2.21, e.g., a=2.204, and a parameter value for the calibration parameter b of 2.2 to 2.7, such as 2.4 to 2.5, e.g., 2.45 to 2.47, e.g., b=2.468.

[0065] The measured data and corresponding nonlinear fit 401 of an exemplary calibration using the hsTnI assay are illustrated in Figure 4A. The nonlinear fit is based on data points acquired from calibration samples having different hematocrit values ​​and different analyte concentrations. Furthermore, the nonlinear fit is based on data points acquired using multiple calibration analyzer units, eight calibration analyzer units in this particular example.

[0066] For other analytes, such as NT-proBNP, the above functional form may be equally appropriate. For example, for NT-proBNP, the following non-linear relationship: R NT proBNP =exp(-a Hct b ) has been found to be suitable, where calibration parameter a has a parameter value between 1.9 and 2.0, such as between 1.96 and 1.97, and calibration parameter b has a parameter value between 1.5 and 1.6, such as between 1.53 and 1.54.

[0067] The measured data and corresponding nonlinear fit 402 of an exemplary calibration using an NT-proBNP assay are illustrated in Figure 4B. The nonlinear fit is based on data points acquired from calibration samples having different hematocrit values ​​and different analyte concentrations. Furthermore, the nonlinear fit is based on data points acquired using multiple calibration analyzer units.

[0068] The above functional form, using suitably selected calibration parameter values, may also be appropriate for other analytes. For still other analytes, other non-linear functional relationships may be appropriate as well. For some analytes, a functional relationship that is more dependent on the analyte concentration may be more suitable. For example, for PCT, the following functional relationship: R PCT =exp(-a Hct b *AWB c ) has been found to be particularly suitable, at least for a range of commonly encountered analyte concentrations, where AWB is a measured whole blood value, or an approximation thereof, e.g., a non-temperature-corrected approximation of the measured whole blood value, along with calibration parameters a, b, and c. In some embodiments, calibration parameter a has a parameter value between 0.8 and 3.0, e.g., between 1.5 and 2.0, e.g., between 1.7 and 1.9. In some embodiments, calibration parameter b has a parameter value between 1.5 and 2.0, e.g., between 1.7 and 1.9. Parameter c can be selected between −0.01 and 1.5, e.g., between −0.01 and 0.2, or between 0.05 and 1.5. In some embodiments, parameter c can be selected depending on the concentration AWB. For example, parameter c can be determined from a lookup table indexed by the concentration AWB. In particular, each value of c can be associated with a different concentration range, or parameter c can be determined by interpolation between parameter values ​​obtained from the lookup table, or by other methods.

[0069] The measured data and corresponding nonlinear fit 403 of an exemplary calibration using a PCT assay are illustrated in Figure 4C. The nonlinear fit is based on data points acquired for a given concentration range from calibration samples with different hematocrit values, as well as the corresponding selection of c. Furthermore, the nonlinear fit is based on data points acquired using multiple calibration analyzer units.

[0070] Referring again to FIG. 3, in step S205, a representation of a computer program, for example a lookup table for looking up and optionally completing function values ​​of a suitable function or non-linear function, is generated for distribution to other analyzer units in the group of analyzer units to be calibrated.

[0071] Each of the analyzer units of the group can subsequently determine the amount of analyte in the plasma based on the measurement on the whole blood sample for those analytes for which the determined non-linear relationship is applicable. To this end, the analyzer unit used for the measurement, also referred to herein as the measurement analyzer unit, can perform the following measurement process 300:

[0072] In an initial step S301, the hematocrit value Hct and the analyte amount AWB are measured directly in the whole blood sample to be analyzed by the measurement analyzer unit. In step S302, a hematocrit correction factor HCF(Hct) corresponding to the measured hematocrit value Hct is calculated from a stored representation of the nonlinear relationship, e.g.,

[0073]

number

[0074] is determined as follows. In step S303, the determined hematocrit correction factor HCF(Hct) is, in particular,

[0075]

number

[0076] is applied to the measured analyte amount AWB to obtain the corresponding plasma analyte amount according to For example, the correction factor R hsTnI For the above example, and with parameter values ​​a=2.204 and b=2.468, the applicable transformation is APL=HCF·AWB=AWB / R hsTnI =AWB·exp(2.204·Hct 2.468 ) is.

[0077] In step S304, the process outputs, eg, displays, the calculated plasma value APL of the analyte amount. Above, embodiments of methods for measuring analyte concentrations directly in whole blood samples are described. In various embodiments of the methods and devices disclosed herein, analyte concentrations can be measured interchangeably for whole blood and plasma samples. All reported analyte concentrations represent the analyte concentrations in the plasma phase of the sample.

[0078] Therefore, there is no need to separate red blood cells from plasma and measure them against plasma, or to manually determine Hct and manually correct the measured analyte concentration in the whole blood sample. The measurements are performed automatically, the measurements are corrected, and only the corrected results are reported to the user. Furthermore, the described calibration and correction have been found to be accurate and reliable, and involve only a small number of calibration parameters that need to be determined by fitting experimental data.

[0079] Figure 5 shows the correlation between the calculated amount of analyte in plasma based on measuring the amount of analyte in a whole blood sample and the corresponding reference analyte concentration in plasma over a range of concentrations. As can be seen from Figure 5, the methods described herein provide accurate determinations of the amount of analyte in plasma over a wide range of concentrations. In particular, for at least some analytes / assays, correction factors determined as a function of hematocrit alone have been found to be accurate, independent of analyte concentration.

[0080] Embodiments of at least some steps of the methods described herein may be computer-implemented. In particular, embodiments of at least some steps of the methods may be implemented by means of hardware comprising several distinct elements and / or at least partly by means of a suitably programmed microprocessor. In device claims enumerating several means, several of these means may be embodied by one and the same element, component, or item of hardware. The mere fact that certain measures are recited in mutually different dependent claims or described in different embodiments does not indicate that a combination of these measures cannot be used to advantage.

[0081] It is emphasized that the term "comprises / comprising", when used in this specification, is taken to specify the presence of stated features, elements, steps or components, but does not exclude the presence or addition of one or more other features, elements, steps, components or groups thereof.

Claims

1. 1. A method for calibrating a group of analyzer units, each analyzer unit of the group of analyzer units configured to determine an amount of an analyte in plasma of a whole blood sample, the method comprising: providing a plurality of calibration whole blood samples, the plurality of calibration whole blood samples including calibration whole blood samples having respective hematocrit values; for each calibration whole blood sample of the plurality of calibration whole blood samples, measuring a hematocrit measurement indicative of the hematocrit value of the calibration whole blood sample; measuring, using at least one calibration analyzer unit of the group of analyzer units, a whole blood measurement indicative of the amount of the analyte in the calibration whole blood sample; measuring a plasma measurement indicative of the amount of the analyte in the plasma of the calibration whole blood sample; and calculating a ratio between the whole blood measurement and the plasma measurement; generating a non-linear functional relationship between the calculated ratio and the corresponding hematocrit measurement by curve fitting a non-linear function parameterized by one or more calibration parameters, the curve fitting resulting in a parameter value for each of the one or more calibration parameters; storing a representation of the fitted nonlinear function in each analyzer unit of the group of analyzer units to enable each analyzer unit of the group of analyzer units to calculate a hematocrit correction factor; A method comprising:

2. 1. A method for determining the amount of an analyte in plasma of a whole blood sample, comprising: measuring a whole blood measurement indicative of a measured amount of an analyte in the whole blood sample; measuring a hematocrit measurement indicative of a measured hematocrit value of the whole blood sample; calculating a hematocrit correction factor from a stored representation of a fitted nonlinear function of the measured hematocrit value; calculating the amount of analyte in the plasma by applying the calculated hematocrit correction factor to the whole blood measurement; A method comprising:

3. The method of claim 1 or 2, wherein the fitted non-linear function is parameterized by fewer than four calibration parameters, such as two calibration parameters or a single calibration parameter.

4. The method of claim 1 or 2, wherein the fitted non-linear function is a non-linear, non-polynomial function of the hematocrit value.

5. The method of claim 4 , wherein the nonlinear, non-polynomial function is an exponential function of the hematocrit value.

6. The method of claim 1 or 2, wherein the analyte is an antigen.

7. The method of claim 1 or 2, wherein the analyte is cardiac troponin I.

8. 8. The method of claim 7, wherein the whole blood measurement is obtained using a troponin I assay.

9. The method of claim 1 or 2, wherein the analyte is procalcitonin or NT-proBNP.

10. The hematocrit correction factor HCF, together with calibration parameters a and b, is HCF=exp(a・Hct b ) The method according to claim 1 or 2, wherein the measured hematocrit Hct is calculated as follows:

11. The method of claim 10, wherein the calibration parameter a has a parameter value between 2.0 and 2.4, and the calibration parameter b has a parameter value between 2.2 and 2.

7.

12. The method described in claim 11, wherein the calibration parameter a has a parameter value of 2.20 to 2.21, and the calibration parameter b has a parameter value of 2.4 to 2.5, or 2.45 to 2.

47.

13. The method of claim 10, wherein the calibration parameter a has a parameter value between 1.9 and 2.0, and the calibration parameter b has a parameter value between 1.5 and 1.

6.

14. The method of claim 13, wherein the calibration parameter a has a parameter value between 1.96 and 1.97, and the calibration parameter b has a parameter value between 1.53 and 1.

54.

15. The hematocrit correction factor HCF, together with calibration parameters a, b, and c, is HCF(Hct)=exp(a・Hct b ・conc c ) 3. The method of claim 1, wherein c is calculated from the measured hematocrit Hct as: where c depends on the analyte concentration conc.

16. 1. A computer-implemented method for determining an amount of an analyte in plasma based on a measurement of an amount of the analyte in a whole blood sample, comprising: receiving a whole blood measurement obtained by a measurement analyzer unit, the whole blood measurement indicating a measured amount of an analyte in the whole blood sample; receiving a hematocrit measurement obtained by the measurement analyzer unit, the hematocrit measurement indicating a measured hematocrit value of the whole blood sample; calculating a hematocrit correction factor from a stored representation of a fitted non-linear function of the measured hematocrit value, the fitted non-linear function being parameterized by one or more calibration parameters; calculating the amount of analyte in the plasma by applying the calculated hematocrit correction factor to the whole blood measurement; A method comprising:

17. 17. A computer program comprising program code configured to, when executed by a data processing system, cause said data processing system to perform the steps of the method of claim 16.

18. 17. A data processing system configured to perform the steps of the method of claim 16.

19. 1. An analyzer unit for determining the amount of an analyte in plasma of a whole blood sample, comprising: an analyte sensor for measuring a whole blood measurement indicative of the amount of an analyte in the whole blood sample; a hematocrit sensor for measuring a hematocrit measurement indicative of the hematocrit value of the whole blood sample; A data processing system according to claim 18; An analyzer unit comprising:

20. 20. The analyzer unit of claim 19, comprising a memory in which a representation of the fitted non-linear function is stored.

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