Prediction of septic conditions
The method for predicting sepsis using BM1 biomarkers addresses the challenge of late diagnosis by providing early and accurate sepsis identification, enhancing treatment guidance and monitoring in high-risk populations.
Patent Information
- Application Number
- JP2022573301
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-25
- Filing Date
- 2021-05-05
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2041-05-05
AI Technical Summary
Current diagnostic methods for sepsis are inadequate for early and accurate identification, often leading to late interventions and misdiagnosis, particularly in high-risk populations, and lack reliable biomarkers for distinguishing between systemic inflammatory response syndrome (SIRS) and sepsis.
A method for predicting septic states by determining the level of a biomarker, specifically N6-Carbamoylthreonyl-D-adenosine (BM1) or its salts, and comparing it to a predetermined reference value to indicate risk or progression of sepsis, using techniques like immunoassays and mass spectrometry.
Enables early and accurate prediction of sepsis in high-risk populations, guiding antibiotic treatment and monitoring disease progression, reducing false positives and improving patient outcomes.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for predicting a septic state in a subject, the method comprising determining a biomarker. [Background technology]
[0002] Sepsis is defined as life-threatening organ dysfunction resulting from a dysregulated host response to infection. Recent estimates place the global incidence of sepsis at 49 million cases and 11 million sepsis-related deaths. The current definition of sepsis recognizes two stages of sepsis: sepsis and septic shock. Predicting sepsis and its progression is challenging, and diagnosis frequently occurs too late for appropriate interventions to prevent life-threatening organ dysfunction and subsequent death. Early and accurate identification of patients with sepsis in high-risk populations, such as hospitalized patients, especially those in the intensive care unit, is of significant clinical value. Conversely, ruling out the onset of sepsis is equally important in terms of sparing antibiotics (to avoid the development of secondary antibiotic-resistant infections) and additional sepsis-related testing.
[0003] Current diagnostic methods aim to distinguish between systemic inflammatory response syndrome (SIRS) and sepsis. Procalcitonin (PCT) is a common biomarker used to diagnose bacterial infections and distinguish them from noninfectious SIRS-like conditions. However, accurate measures of disease severity have yet to be developed and rely solely on clinical scores such as the APACHE, SAPS, and SOFA. The cutoff level of PCT to indicate certainty of bacterial infection is debated, and its application in clinical practice is uncertain. According to current practice, clinical ICUs use various PCT cutoffs of either 0.25 ng / mL, 0.5 ng / mL, or 1.0 ng / mL in plasma as thresholds for initiating antibiotic intervention and for ruling in / ruling out infection. Various cutoffs result in a trade-off between sensitivity and specificity; for example, using PCT at a lower cutoff to diagnose sepsis carries the risk of significant false positives (no bacterial infection despite elevated PCT), particularly in patients with multiple trauma, severe burns, major surgery, malaria, and newborns (up to at least 4 days of age).
[0004] WO84 / 04168A1 discloses a method and test kit for diagnosing cancer in humans. An exemplary test kit includes a monoclonal antibody that specifically recognizes N-[9-(β-D-ribofuranosyl)purin-6-ylcarbamoyl]-L-threonine.
[0005] Ludwig et al. (Molecular Biosystems 2017, 13(4):648-664) describe a mass spectrometry method for the discovery of biomarkers of sepsis.
[0006] WO2004 / 044554A2 discloses the diagnosis of sepsis or SIRS using biomarker profiles.
[0007] It can be important to provide a reliable diagnostic test for the early diagnosis of sepsis (especially in patients at high risk of developing sepsis) and for purposes of antibiotic treatment guidance (both initiation and discontinuation), stratification and / or monitoring of patients suffering from infectious diseases and receiving treatment with one or more antibiotics. Summary of the Invention
[0008] It is an object to provide means and methods for the determination of sepsis and / or the development of septic disease, especially in patients from risk populations, such as patients suffering from infectious diseases and patients presenting with pre-existing comorbidities.
[0009] This object is solved by the subject matter of the present claims and further described herein.
[0010] The present invention provides a method for predicting a septic state in a subject, comprising: a. determining the level of a biomarker in said subject's sample, wherein the biomarker is of structure (I) or a salt thereof, as further described herein; b. comparing said level with a predetermined reference value for the biomarker; Including, A method is provided in which elevated biomarker levels indicate risk of a septic condition.
[0011] Specifically, biomarkers are small molecule compounds that are endogenous or naturally occurring in a sample. The biomarker of structure (I) or a salt thereof can be any respective optical isomer, enantiomer, diastereomer, or racemate (one or more, e.g., all) determined in the sample.
[0012] In particular, the reference level is the level of the biomarker in said not-at-risk subject or group of subjects, or a threshold level indicative of a septic state.
[0013] The reference level may be a value obtained from calibration of the method to samples from patients with known disease or risk of disease.
[0014] In particular, the methods described herein may be quantitative or semi-quantitative, such as determining whether the level of a biomarker in a sample is above a reference or threshold level.
[0015] The threshold level (also referred to as the cut-off level) may distinguish between healthy subjects and subjects at high risk of developing the disease, at the onset of the disease, or already suffering from the disease.
[0016] In particular, the methods described herein are used for treatment guidance, stratification and / or control, particularly for antibiotic treatment, and to this end, the methods described herein further include administering, maintaining, reducing, intensifying or not administering treatment based on whether the subject is at risk.
[0017] Specifically, the septic condition is any one or more of the septic diseases selected from the group consisting of systemic inflammatory response syndrome (SIRS), sepsis, septic shock and multiple organ dysfunction syndrome (MODS).
[0018] According to a specific embodiment, the methods described herein are used to determine biomarkers in subjects not suffering from said septic condition, and the onset of such a septic condition is predicted based on the level of the biomarkers in the sample.
[0019] Specific septic conditions understood as sepsis include, for example, any one or more of septic diseases selected from the group consisting of sepsis (from a different source or of different origin), septic shock, and multiple organ dysfunction syndrome (MODS; an underlying component in the new Sepsis-3 definition, Singer et al., 2016).
[0020] In particular, the subject is an infected patient, ie, a patient who has been diagnosed with an infectious disease or who is likely to suffer from or has been confirmed to have an infectious disease.
[0021] In certain embodiments, risk of a septic state is indicated in an infected patient when the level of the biomarker is higher than a predetermined reference level typically found in a patient population that does not suffer from such an infection or develop such a septic state.
[0022] A predetermined reference level that is higher than the normal level in a particular assay can be, for example, a level that is at least 2-fold, 3-fold, 4-fold, or 5-fold higher than the standard deviation of the measurement of the normal level.
[0023] For example, the predetermined reference level in a blood, plasma or serum sample can be a threshold of about 15-40 ng BM1 / mL, eg, about 15, 20, 25, 30, 35 or 40 ng BM1 / mL.
[0024] Values significantly higher (or at least higher than a standard deviation) than such a threshold indicate a risk of a septic state. In examples of the present invention using a particular BM1 test to compare human patients with sepsis to controls with heart failure, a threshold of approximately 32 ng BM1 / mL of plasma or serum was established (Example 4, Matrix: Sensitivity / Specificity).
[0025] A predetermined reference level in plasma or serum samples from human newborns can be about 80-120 ng BM1 / mL. Human newborns with sepsis can have elevated levels of up to 300 ng / mL in plasma or serum.
[0026] The predetermined reference levels in blood, plasma or serum samples from calves, llamas, alpacas, goats or beef cattle are approximately 10-30 ng / mL, and septic calves showed concentration levels of approximately 40-80 ng / mL for BM1.
[0027] The given reference level in human synovial fluid may be about 15-40 ng BM1 / mL, and septic humans showed concentration levels of about 40-160 ng / mL for BM1.
[0028] A predetermined reference level in human urine may be a threshold of about 2500-4500 ng BM1 / mg creatinine.
[0029] Human patients with sepsis typically have elevated levels of approximately 5000-16000 ng BM1 / mg creatinine.
[0030] A case of septic shock is specifically indicated when the biomarker level is at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90% or 100% higher than the reference level indicating sepsis.
[0031] The present invention further provides a method for predicting a septic condition in a subject not suffering from said septic condition, comprising: a. determining the level of a small molecule biomarker in the subject's sample; b. comparing said level with a predetermined reference value for the biomarker; Including, Methods are provided in which elevated biomarker levels indicate a risk of developing a septic condition.
[0032] The present invention further provides a method for monitoring a septic condition in a subject not suffering from said septic condition, comprising: a. determining the level of a small molecule biomarker in a sample from a subject at a first time point; b. determining the level of the biomarker in a sample from the same subject at a later second time point; Including, an increase in the level of the biomarker between the first and second time points indicates the onset of a septic condition; A method is provided.
[0033] Specifically, the risk of developing septic state is indicated when biomarker level is higher than expected for the subject.In particular, if the subject is an infected patient, when the biomarker level in sample is higher than the predetermined reference level that is usually found in the patient population that does not suffer from bacterial infection or does not develop this septic state, the development of septic state is indicated or predicted.This predetermined reference level can be used as further described herein.
[0034] Generally, the higher the level of the biomarker in the test sample, the greater the likelihood of rapid onset of disease or disease progression.
[0035] Specifically, as further described herein, the biomarker is a small molecule biomarker endogenous to a sample generated from a subject, preferably having structure (I) or a salt thereof:
[0036] Specifically, the biomarkers described herein are of structure (I) or a salt thereof, and may be any one or more (or all) of the isomers (stereoisomers) of structure (I) or a salt thereof, or a mixture of one or more of such isomers, e.g., optical isomers, enantiomers, diastereomers, or racemates, each characterized by structure (I) or a salt thereof. According to certain examples, all structural conformations of the biomarker are determined, and each biomarker level represents the total concentration of the compound of structure (I) or a salt thereof.
[0037] In particular, the biomarkers are determined by applying an analytical method selected from the group consisting of immunoassay, chromatography, preferably HPLC chromatography, UPLC chromatography, gas chromatography (GC) or thin layer chromatography, capillary electrophoresis, mass spectrometry or NMR spectroscopy.
[0038] Specifically, the analytical method uses UV, fluorescence, MS or MS / MS detection, or detection of a label, preferably an enzyme label, a fluorescent label or a radioisotope label.
[0039] Specifically, the mass spectrometric analysis is selected from the group consisting of SELDI, MALDI, MALDI-Q TOF, MS / MS, TOF-TOF and ESI-Q-TOF.
[0040] Specifically, the immunoassay is selected from the group consisting of an enzyme immunoassay, such as an ELISA (eg, a sandwich ELISA), a lateral flow immunochromatographic assay, a fluorescent immunoassay, a radioimmunoassay, and a magnetic immunoassay.
[0041] Specifically, the sample is a biological sample, such as a bodily fluid selected from the group consisting of blood, plasma, serum, urine, stool, sputum, synovial fluid and saliva.
[0042] Specifically, the sample is prepared prior to testing by one or more suitable techniques to purify the sample or separate any interfering substances, for example, by cell separation, removal of proteins, for example by protein precipitation, or by dilution.
[0043] The urine sample may be diluted, for example, to a 1:20 or 1:50 dilution, before testing.
[0044] Serum or plasma samples may be treated to precipitate proteins before testing.
[0045] The blood sample may be treated to precipitate proteins before testing.
[0046] For HPLC-MS / MS determination, serum (or plasma or blood) proteins may be removed by precipitation, for example, using acetonitrile. After centrifugation, and thus separation of the precipitate from the clear supernatant, a portion of the supernatant can be used for HPLC-MS / MS determination.
[0047] Samples can be collected at different times, for example, at the time of hospital care or at the onset of clinical symptoms of infection, and can be used without preservation or stored, for example, at room temperature or frozen, until analysis.
[0048] Specifically, the sample is isolated from the subject within 48 hours, preferably within 24 hours, more preferably within 6 hours after the subject exhibits at least one or two early symptoms of sepsis seen in infected patients, at least one or two qSOFA points.
[0049] In particular, the subject is a human or non-human animal subject, especially a vertebrate, preferably a dog, horse, camel, cow, cat, rabbit, pig or rat.
[0050] According to a particular embodiment, the subject is a human patient, particularly a hospitalized patient, who is a patient group at high risk of developing sepsis or septic shock. In particular, the human patient is an adult, a child, a pediatric or a neonate.
[0051] According to specific embodiments, the subject is a non-human animal, eg, an animal used for experimental methods of disease treatment, eg, an animal model.
[0052] The biomarkers may be used for monitoring or supervision, for example, they can be used for supervision purposes to support a physician's predictions or to monitor disease progression.
[0053] The present invention provides a method for monitoring sepsis disease in a subject, comprising: a. determining the level of a biomarker in a sample from a subject at a first time point, wherein the biomarker is of structure (I) or a salt thereof, as further described herein; b. determining the level of the biomarker in a sample from the same subject at a later second time point; Including, an increase in the level of the biomarker between the first and second time points is indicative of progression of septic disease or of a higher risk of any subsequent sepsis episode; A method is further provided.
[0054] Specifically, in such methods, the sample is from an infectious disease patient who has been identified by conventional means as a low-risk patient, and an increased level of the biomarker indicates a risk of a more severe septic state, or the development of septic disease, or indicates a subsequent septic event that is expected, for example, within a short time frame, e.g., within hours, or within 1, 2, 3 or 4 days, after the first or second sample is taken, particularly if the patient is not properly treated to prevent such disease progression.
[0055] The present invention provides a method for monitoring the effectiveness of at least one treatment administered to a subject for a septic condition, comprising: a. determining the level of a biomarker in a sample from a subject at a first time point, wherein the biomarker is of structure (I) or a salt thereof, as further described herein; b. determining the level of the biomarker in a sample from the same subject at a later second time point; Including, a decrease in the level of the biomarker between the first and second time points indicates treatment success or indicates a lower risk of any subsequent sepsis episode; A method is further provided.
[0056] Specifically, in such methods, the sample is from an infectious disease patient who has been identified by conventional means as a high-risk or septic patient, and a decrease in the level of the biomarker indicates a less severe risk of the septic state, or an improvement in the septic disease or condition, or a subsequent cure of the septic disease or condition, particularly if treatment is continued, e.g., expected within a short time frame, e.g., within a few hours, or within 1, 2, 3 or 4 days, after the first or second sample is taken.
[0057] Specifically, the treatment is a medical treatment, such as antibiotic treatment with intravenous antibiotics, oral antibiotics, topical antibiotics, and the like.
[0058] Specifically, the first and second samples are of the same type of sample, for example, one of blood, plasma, serum, urine, stool, sputum, synovial fluid, and saliva.
[0059] Specifically, the second sample is obtained from the subject at a later time point, eg, within a few hours, or within 1, 2, 3, or 4 days, after the first sample.
[0060] Specifically, the methods described herein may optionally employ an internal standard that is added to the sample prior to protein precipitation or protein depletion.
[0061] Specifically, an internal standard compound is added to an aliquot of the sample, and the amount of biomarker is determined by comparing the level of the biomarker with the level of the internal standard compound.
[0062] Preferably, such an internal standard is determined together with the biomarker in the same sample and produces a different detection signal, making it distinguishable from the biomarker. Such an internal standard can serve as a positive control to determine whether the assay has performed properly. The internal standard can also serve as a reference for estimating or determining the amount of the biomarker in a sample, for example, by comparing the detection signal of a predetermined amount of the internal standard with the detection signal of the biomarker in the sample.
[0063] Specifically, the internal standard compound is a particular stereoisomer or derivative of a biomarker, or a labeled biomarker, and the method distinguishes between endogenous biomarkers contained in the sample and such internal standard.
[0064] Specifically, the internal standard compound is, for example, a biomarker containing an isotopic label suitable for HPLC-MS or HPLC-MS / MS analysis. Preferably, the internal standard compound is C 13 , D, N 15 , O 17 Or O 18 or combinations thereof, in particular, which replace one or more of the respective atoms in structure (I). For example, C 13 C 12 may replace H, and N 15 N 14 may be replaced by O 17 or O 18 O 16 may be replaced.
[0065] The present invention further provides the use of a diagnostic preparation comprising an immunological agent that specifically recognizes a biomarker of structure (I) or a salt thereof in a method of determining a sepsis state, as further described herein, wherein the diagnostic preparation further comprises a diagnostic reagent that is a detectable label or reagent that specifically reacts with the immunological agent and / or a reaction product of the immunological agent bound to the biomarker. For example, the label may be an enzymatic label, a fluorescent label, or a radioisotope label or tag that indicates an immune reaction between the immunological agent and the analyte.
[0066] In particular, the diagnostic preparations are provided as a composition or kit of parts, and optionally further comprise a solid support to which at least one of the immunological agent or diagnostic reagent is immobilized.
[0067] The present invention further provides the use of an immunological agent that specifically recognizes a biomarker of structure (I) or a salt thereof, as further described herein, for determining a sepsis state, wherein the immunological agent comprises a detectable label.
[0068] In particular, the biomarkers described herein are used as in vitro markers of a septic state, which are conveniently determined by in vitro methods, for example, in an ex vivo biological sample from a patient.
[0069] The present invention further provides the in vitro use of the diagnostic agents, immunizing agents or labeled compounds described herein in the methods described herein.
[0070] The present invention further provides novel uses of compounds of structure (I) or salts thereof as biomarkers for disease, as further described herein. [Brief explanation of the drawings]
[0071] [Figure 1] Chromatogram showing the BM1 peak measured in a healthy human plasma sample. [Figure 2] Chromatogram showing the BM1 peak measured in a plasma sample of a patient with sepsis. [Figure 3] Example 4: Graph showing area under the ROC curve. DETAILED DESCRIPTION OF THE INVENTION
[0072] Unless otherwise indicated or defined, all terms used herein have their ordinary meaning in the art, as would be apparent to one of ordinary skill in the art. Specific terms used throughout the specification have the following meanings:
[0073] Unless otherwise indicated, the term "about" as used herein refers to the same value or a value that differs by up to ±20% of the given value.
[0074] In order to provide a more precise description, some of the quantitative expressions given herein are not qualified by the term "about". Whether or not the term "about" is explicitly used, it is understood that all quantities given herein refer to an actual given value, and also refer to an approximation to such a given value that would be reasonably estimated based on ordinary skill in the art, including approximations resulting from experimental and / or measurement conditions for such a given value.
[0075] As used herein, the terms "comprise," "containing," "having," and "include" can be used interchangeably and are understood as non-exclusive definitions, allowing for additional members, parts, or elements. "Consisting of" is considered the closest definition that does not involve additional elements within the characteristics of the definition of "consisting of." Therefore, "comprising" is broader and includes the definition of "consisting of."
[0076] The present invention provides methods and means for diagnosing, prognosing, predicting, risk assessing and / or risk stratifying a subject, e.g., a high-risk patient, for the subsequent development of a septic state or sepsis-related complications, particularly where biomarker levels correlate with the likelihood of the subsequent development of a septic state.
[0077] The term "at risk" as used herein is understood as follows.
[0078] Risk of a septic state is herein understood as an increased likelihood of a septic state or the occurrence of such a septic state within a short time frame, for example within a few hours or within 1, 2, 3 or 4 days, after testing using the methods described herein, particularly in subjects from risk populations or groups including patients who have been diagnosed with an infectious disease but have not yet shown symptoms of sepsis, and / or in subjects at high risk of infectious diseases, particularly hospitalized patients, and patients with pre-existing comorbidities, trauma patients, and patients with compromised immune systems.
[0079] Specifically, the likelihood of the occurrence of a septic condition can be assessed by comparing the level of a biomarker in a sample with a reference.
[0080] The term "disease onset" is understood herein as the time when a subject develops the symptoms of disease that lead to diagnosis.Predicting disease onset provides a risk assessment that allows a skilled person to identify subjects with high probability of having the disease, and the subjects can receive respective treatment even before the disease is officially diagnosed.Disease onset is specifically the first appearance of signs and / or symptoms that can be directly attributed to the development of septic state.
[0081] According to the present invention, small molecule biomarkers can be used to predict the onset or progression of disease.Small molecule biomarkers are specifically understood to be low molecular weight (less than 900 daltons) organic compounds that are cellular metabolic products resulting from biological processes.In particular, biomarkers of structure (I) or any one of the salts described above.
[0082] In certain cases, the condition may be sepsis, and the subject may suffer from infectious disease, but the subject does not show at least two early symptoms of sepsis, or does not suffer from sepsis.However, such subject may only show one early symptom of sepsis, and / or may be at risk of developing sepsis.In such cases, the biomarker level in the subject's sample that is extracted before the subject shows obvious sepsis symptoms can indicate the increased risk of developing sepsis or septic shock, and early treatment can be recommended to prevent the development of sepsis and / or stop the progression of sepsis.
[0083] Early symptoms of sepsis include: Fever above 38°C or body temperature below 36°C A resting heart rate greater than approximately 90 beats per minute Respiratory rate greater than 20 breaths per minute Pale / patchy skin Altered mental state Examples include:
[0084] Each of these symptoms may indicate a risk of sepsis, especially when present in subjects from high-risk patient groups. High-risk patients, especially hospitalized patients, typically have a higher risk of infection. Among high-risk patient groups, also known as "risk populations," are, for example: People who have undergone biopsies and / or surgery People who have suffered injuries / accidents People with pre-existing diseases (e.g., diabetes, cardiovascular disease) Infants (under 1 year old) and elderly (over 65 years old) People with weakened immune systems, such as those with HIV or undergoing chemotherapy treatment for cancer People receiving treatment in an intensive care unit (ICU) for any reason People exposed to invasive devices, such as intravenous catheters or breathing tubes There is.
[0085] Symptoms of advanced sepsis are indicated when a subject exhibits one or more of the following symptoms: Discolored areas of skin Decreased urination · Changes in mental abilities - A decrease in platelet (blood clotting cell) count ·problems breathing Cardiac dysfunction Chills caused by a drop in body temperature ·Loss of consciousness Extreme weakness
[0086] The Quick SOFA score (quickSOFA or qSOFA) is a commonly accepted method to assist healthcare providers in estimating the risk of morbidity and mortality due to sepsis and to identify patients at high risk for poor outcomes from infection.
[0087] Evaluation qSOFA score Hypotension (SBP≦100mmHg) 1 High respiratory rate (over 22 breaths / min) 1 Altered mental status (GCS ≤ 14) 1
[0088] Scores range from 0 to 3 points. The presence of qSOFA points ≥ 2 near the onset of infection (and a change of 2 points from a pre-existing non-zero SOFA level) is associated with a greater risk of death or prolonged intensive care unit stay. These are more common outcomes in patients with infections that may be septic than in patients with uncomplicated infections. Based on these findings, the Third International Consensus Definitions for Sepsis recommends qSOFA as a simple prompt for identifying infected patients outside the ICU who may be septic.
[0089] According to Singer et al. (The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3); JAMA. 2016; 315(8):801-10), the definition of Sepsis-3 is as follows: Sepsis is defined as life-threatening organ dysfunction resulting from a dysregulated host response to infection. Organ dysfunction can be identified as an acute change in the total SOFA score of 2 or more as a result of infection. Baseline SOFA scores can be assumed to be zero in patients with no known pre-existing organ dysfunction. An ASOFA score of 2 or greater represents a global mortality risk of approximately 10% in the general hospitalized population with suspected infection. Even patients with moderate functional impairment may further deteriorate, highlighting the seriousness of this condition and the need for prompt and appropriate intervention if not already initiated. · In layman's terms, sepsis is a life-threatening condition that occurs when the body's response to infection damages its own tissues and organs. Patients with suspected infection who are likely to remain in the ICU for a long time or die during hospitalization can be rapidly identified at the bedside by qSOFA, altered mental status, systolic blood pressure ≥ 100 mmHg, or respiratory rate ≥ 22 / min. Septic shock is a subset of sepsis in which the underlying circulatory and cellular / metabolic abnormalities are severe enough to result in a significant increase in mortality. Patients with septic shock can be identified by the clinical components of sepsis with persistent hypotension, requiring vasopressors to maintain a median occlusion (MAP) of 65 mmHg or greater despite adequate volume resuscitation, and a serum lactate level greater than 2 mmol / L (18 mg / dL). According to these criteria, hospital mortality is greater than 40%.
[0090] Abbreviations: MAP means arterial pressure, qSOFA means quick SOFA, and SOFA means Sequential [Sepsis-related] Organ Failure Assessment.
[0091] The term "biomarker," as used herein, refers to a molecule of interest that is a biological marker that is objectively measured and evaluated as an indicator of normal biological processes, pathogenic processes, or pharmacological responses to therapeutic intervention. The biomarkers referred to herein are small molecule organic biomarkers, particularly molecules having the structure depicted in Formula (I) or salts thereof, including molecules of Formula (I) having particular conformations, including, for example, one or more isomers.
[0092] Specifically, the biomarkers described herein have the structure (I) shown below: [ka] or a salt thereof.
[0093] The biomarker is also referred to as BM1 and is understood to have the structure of formula (I) or a salt thereof. For example, BM1 can be determined as the acid or a salt thereof, such as a physiological salt, for example, a sodium salt. Name: N6-Carbamoylthreonyl-D-adenosine Other name: N6-(N-threonylcarbonyl)adenosine N6-Threonylcarbamoyladenosine N-{[(9-β-D-ribofuranosyl-9H-purin-6-yl)amino]carbonyl}-L-threonine Molecular formula:C 15 H 20 N6O8 CAS number: 24719-82-2 Deutsch et al.(J.Biol.Chem.2012,287:13666-13673);Miyauchi K et al.Nat Chem Biol.2013 Feb;9(2):105-11.
[0094] Biomarkers can include any respective optical isomer, enantiomer, diastereomer or racemate, particularly one or more compounds of structure (I), optionally contained in the sample as an endogenous or naturally occurring compound.
[0095] The biomarker described herein may comprise one or more labels, particularly one or more mass tags or mass labels.The term label used in this context is intended to refer to the moiety that is suitable for labeling the analyte for determination.The term label is synonymous with the term tag.Specifically, the term mass label is intended to refer to the moiety that can be detected by mass spectrometry.
[0096] Specifically, the biomarkers described herein include isotopic labels that are non-radioactive stable isotopes. Specifically, the isotopic labels are C 13 , D, N 15 , O 17 Or O 18or a combination thereof.
[0097] In particular, biomarkers containing isotopic labels can be used as internal standard compounds. A preferred internal standard compound can be added to a sample and analytically distinguished from the target biomarker in the sample.
[0098] Specifically, the internal standard compound may be an isotopologue, 13 , D, N 15 , O 17 Or O 18 or a combination thereof, in particular, which replace one or more of the respective atoms in structure (I). 13 C 12 may replace H, and N 15 N 14 may be replaced by O 17 or O 18 O 16 may be replaced.
[0099] An appropriate internal standard can be selected to produce accurate results. Specifically, for MS analysis, an isotopologue can often be the best choice because it can closely match the retention time of the biomarker and generate a signal on a different mass channel of the MS detector, thereby not interfering with the integration of the biomarker signal. Alternatively, structural isomers of the biomarker structure can be used to produce similar results, or closely related structures in the same or very similar chemical class can be utilized. Without wishing to be bound by theory, the more structurally similar the internal standard is to the biomarker structure, the more accurate the results will be.
[0100] An exemplary internal standard of BM1 has the following structure (II): [ka] (Available, for example, from Toronto Research Chemical, Canada, product number: T405562) Chemical Name:N6-(N-Threonylcarbonyl)adenosine-13C4,15N CAS number: 1195030-28-4 Molecular formula:C 11 13 C4H 20 N5 15 No.8 Includes.
[0101] As used herein, "diagnosis" refers to the recognition and (early) detection of a subject's clinical condition associated with a septic state. The assessment of the severity of a septic state may also be encompassed by the term "diagnosis." "Prognosis" refers to the prediction of an outcome or a particular risk for a subject. This may also include the estimation of the likelihood of recovery or the likelihood of disease progression for said subject.
[0102] The methods of the present invention may also be used for monitoring, therapy monitoring, therapy guidance and / or therapy control. "Monitoring" relates to keeping records of a subject, e.g., an infected or septic patient, and potentially any disease progression or complications, for example, to analyze the progress of the healing process or the impact of a particular treatment or therapy on the patient's health status.
[0103] The term "indicative" as used herein, in the context of indicating an event, such as a disease state, risk of a disease state, disease progression or treatment success, is understood herein as a measure of risk and / or likelihood. Preferably, an "indication" of the presence or absence of an event is intended as a risk assessment and typically should not be construed as being restrictive in definitively indicating the absolute presence or absence of said event.
[0104] Determining high or low biomarker levels, when using the reference values described herein, has proven to be very reliable for determining the risk of sepsis or the presence or absence of a septic state, and the risk estimation allows appropriate action by medical professionals.
[0105] It was quite surprising that the level of the biomarker can be correlated with the likelihood of subsequent development of sepsis in high-risk populations, such as ICU patients.A high level of the biomarker indicates a high severity level, and a low level indicates a low severity level.The respective concentrations that determine the reference values that can be used to assign each severity level can depend on multiple parameters, such as the time point at which the sample is isolated after bacterial infection, the prevalence of early sepsis symptoms, and the method used to determine the biomarker level in the sample.Therefore, the method described herein allows for a more accurate assessment of patient prognosis / risk depending on the situation of sample isolation and additional information available at the time, such as the increased risk of developing sepsis, sepsis, or certain sepsis-related complications.
[0106] The term "immunizing agent" as used herein is understood to mean a molecule containing an antigen-binding site that specifically binds to or immunoreacts with an antigen. Preferred immunoagents are antibodies or antigen-binding fragments thereof, such as monoclonal or polyclonal antibodies, or the respective antibody fragments. In particular, antibodies that specifically bind to biomarkers are used in immunoassays to determine the biomarkers.
[0107] A specific immunological agent can be a capture molecule or molecular scaffold, which is understood as a molecule that can be used to bind a target molecule or molecule of interest, i.e., an analyte such as a biomarker from a sample. Such molecules are appropriately shaped, both spatially and in terms of surface features, such as surface charge, hydrophobicity, hydrophilicity, and the presence or absence of Lewis donors and / or acceptors, to specifically bind to the target molecule. Here, binding can be mediated, for example, by ionic, van der Waals, pi-pi, sigma-pi, hydrophobic, or hydrogen bond interactions, or a combination of two or more of the foregoing interactions, or by covalent interactions, between the capture molecule or molecular scaffold and the target molecule. The capture molecule or molecular scaffold can be selected from the group consisting of, for example, nucleic acid molecules, carbohydrate molecules, PNA molecules, proteins, peptides, and glycoproteins, such as aptamers, DARpins (Designed Ankyrin Repeat Proteins), Affimers, etc.
[0108] Specifically, an immunizing agent is considered to specifically recognize a target antigen, e.g., a biomarker described herein, if its affinity for the target antigen is at least 100-fold or 1000-fold higher than for other molecules contained in the sample containing the biomarker. Methods for developing and selecting antibodies with a given specificity for recognizing a target antigen are well known in the art.
[0109] According to a specific embodiment, the immunoassay may use at least one labeled antibody and another antibody that is bound to or capable of selectively binding to a solid phase. The first and second antibodies may be dispersed in a liquid reaction mixture, and a first labeled component may be bound to the first antibody, and a second labeled component of the label system may be bound to the second antibody, resulting in the generation of a measurable signal that allows detection of the resulting sandwich complex in the measurement solution after binding of both antibodies to the biomarker to be detected.
[0110] According to a specific embodiment, the method described herein comprises: a) contacting the sample with a first antibody, or antigen-binding fragment thereof, specific for a first epitope of the biomarker and a second antibody, or antigen-binding fragment thereof, specific for a second epitope of the biomarker; and b) detecting binding of the first and second antibodies or antigen-binding fragments thereof to the biomarker. The assay may be carried out as an immunoassay comprising:
[0111] In particular, the first antibody and the second antibody may be present dispersed in a liquid reaction mixture, and the first labeled component binds to the first antibody and / or the second labeled component of the label system binds to the second antibody, resulting in the generation of a measurable signal that allows detection of the resulting sandwich complex in the measurement solution after binding of at least one biomarker or fragment thereof to both antibodies.
[0112] In a specific case, the method is carried out as a sandwich immunoassay, in particular one of the antibodies is immobilized on a solid phase, for example a coated test tube wall, a microtiter plate or magnetic particles, and the other antibody contains a detectable label, or a means allowing selective binding to a label, which serves to detect the sandwich structure formed.
[0113] As used herein, "infectious disease" within the scope of the present invention means a pathological process resulting from the invasion of normally sterile tissues or fluids by pathogenic or potentially pathogenic agents / pathogens, organisms and / or microorganisms, and particularly relates to preferably bacterial, viral, fungal and / or parasitic infections.
[0114] The biomarkers and / or immunoreagents described herein may be labeled. As used herein, the term "label" refers to a detectable compound or composition that is conjugated directly or indirectly to another compound to produce a "labeled" compound. A label comprises a detectable moiety. A detectable moiety may be capable of producing, either directly or indirectly, a detectable signal. The label may itself be detectable (e.g., a radioisotope label or a fluorescent label) or, in the case of an enzymatic label, may catalyze chemical alteration of a substrate compound or composition that is detectable.
[0115] The biomarkers or immunoreagents described herein can be directly or indirectly conjugated to a label that provides a detectable signal, such as a radioisotope, a fluorophore, an enzyme, an antibody, a particle such as a magnetic particle, a chemiluminescent material, a quantum dot, or a specific binding molecule. Preferred labels include, but are not limited to, fluorescent labels, labeling enzymes, and radioisotopes. Suitable labels include, for example, fluorescent or chemiluminescent compounds such as luciferin, fluorescein isothiocyanate, rhodamine, tetramethylrhodamine, eosin, erythrosine, coumarin, methylcoumarin, pyrene, malachite green, stilbene, Lucifer Yellow, CASCADE BLUE®, TEXAS RED®, IAEDANS, EDANS, BODIPY FL, LC Red 640, Cy 5, Cy 5.5, LC Red 705, and OREGON GREEN™.
[0116] Suitable labels include stable isotope labels (e.g., 2 H (same as D), 13 C. 15 N, etc.), radioactive labels, also called radioisotope labels (e.g. 125 I, 35 S, 32 P, 18 F, 14 C. 3H, etc.), biological labels including specific binding molecules (e.g., biotin, streptavidin, digoxin and antidigoxin, etc.), enzymes, such as alkaline phosphatase, β-galactosidase or horseradish peroxidase, as well as other labels.
[0117] As used herein, the term "mass spectrometry" or "MS" refers to an analytical technique that identifies compounds by mass. There are well-known techniques for quantifying the levels of biomarkers in a sample by mass.
[0118] Generally, MS can identify the amount and type of compounds (e.g., molecules) present in a sample by measuring their mass-to-charge ratio and the abundance of gas-phase ions. MS involves ionizing chemical compounds, generating charged molecules or molecular fragments, and then measuring their mass-to-charge ratio. Molecular ions and / or molecular fragments are actually charged ions with a specific mass. The mass of a molecular ion and / or fragment divided by its charge is called its "mass-to-charge ratio" (m / z). Because most molecular ions and / or fragments in positive ion mode carry a +1 charge, the mass-to-charge ratio typically represents the molecular weight of the molecular ion and / or fragment. MS uses a collision cell to generate a mass spectrum for each compound analyzed (called MS / MS mode or MRM mode), where the x-axis represents the mass-to-charge ratio and the y-axis represents the signal intensity (abundance) for each detected fragment. As those skilled in the art will appreciate with the aid of this disclosure, the mass spectrum and product ion spectrum produced by a given compound in MS / MS or MRM mode will always be essentially the same and can be thought of as the compound's "fingerprint," which can be reliably and reproducibly used to identify and quantify the compound.
[0119] The y-axis in a mass spectrum may be an axis of relative abundance. The most abundant peak is typically referred to as the "base peak," and for purposes of creating the relative abundance axis, the base peak intensity is set to 100% and the entire mass spectrum is normalized to the base peak. In some embodiments, the molecular ion peak may be the base peak. In such embodiments, the entire mass spectrum may be normalized to the molecular ion peak, which has a relative abundance of 100%.
[0120] According to a specific embodiment of the methods described herein, an internal standard is added to a sample from a subject or patient. By adding said internal standard to the sample, i.e., by adding it to the sample, the concentration of the internal standard in the sample is known and can thus be calculated, for example, by determining the area under the peak of the internal standard, i.e., the peak area, in an HPLC-mass spectroscopy chromatogram, for example, and the relationship between the peak area of the internal standard and / or a biomarker described herein and the concentration of the substance, for example, by calculating the ratio of the peak area of the biomarker described herein to the peak area of the internal standard, it being recognized that the internal standard may specifically be a biomarker described herein including an isotopic label.
[0121] In the specific case of mass spectrometry, the sample can be processed prior to MS analysis, for example, immunoenrichment techniques that are methods for sample preparation and / or chromatographic methods, e.g., MS, can be combined with liquid chromatography (LC), e.g., high performance liquid chromatography (HPLC) or ultra-high performance liquid chromatography (UHPLC).
[0122] Optional sample preparation methods include techniques for lysis, fractionation, digestion of the sample into peptides, clearing, concentration, dialysis, desalting, alkylation, peptide reduction, protein precipitation and / or extraction (liquid / liquid and solid phase).
[0123] Selective detection of the analyte can be performed by tandem mass spectrometry (MS / MS).
[0124] As used herein, the terms "subject" or "individual" or "patient" are intended to refer to warm-blooded mammals, particularly humans.
[0125] Specifically, the term "patient" includes mammals, particularly humans, subjects undergoing treatment for, at risk of, or diagnosed with a particular disease or disorder, particularly those conditions further described herein. The term "treatment" is meant to include both prophylactic and therapeutic treatment.
[0126] Specifically, the subject is a patient suffering from any disease state and at risk of developing sepsis. In particular, the subject may have already been diagnosed with an infectious disease and may have been treated with antibiotics. Therefore, the method described herein can be used to determine the onset of a sepsis state and / or to monitor the success of antibiotic treatment initiated to prevent sepsis or disease progression. In such cases, the biomarker level can be used as an indicator of the likelihood of the success of antibiotic treatment. It can also be determined whether antibiotic treatment should be continued or changed because it appears to be working or the patient's health condition is improving.
[0127] The term "reference level" as used herein is understood as follows.
[0128] The term "level" is understood herein as the absolute or relative amount or concentration of a biomarker, the presence or absence of a biomarker, the range of amounts or concentrations of a biomarker, the minimum and / or maximum amount or concentration of a biomarker, the average amount or concentration of a biomarker, and / or the median amount or concentration of a biomarker. Particular levels are provided as quantity values that represent concentrations, particularly expressed as weight / volume (w / v), or as fold change of a biomarker in a sample.
[0129] Specifically, the reference level is a threshold, also understood as a cut-off value indicating the biomarker concentration for each risk or severity of disease. The respective concentration determining the threshold depends on several parameters, such as the time point at which the sample is isolated and the assay or detection used to determine the biomarker level in said sample.
[0130] Elevated or " higher " level is, for example, significantly higher than reference.The term " significantly " used herein refers to at least 2 times higher than standard deviation, preferably at least 3 times difference.For example, for specific reference value derived from standard, training data or threshold, significant increase or increase amount is understood to refer to at least 1.5 times higher, preferably at least 2 times or 3 times difference.
[0131] As used herein, the term "cutoff value" refers to a threshold value that distinguishes subjects suffering from a disease or disease state from patients and / or subjects not suffering from the disease or disease state, and in particular, a threshold value that distinguishes subjects at a certain (e.g., high) risk of disease or disease progression from patients and / or subjects not at such risk of disease or disease progression, e.g., healthy subjects or subjects not infected with a pathogen.
[0132] As used herein, the term "reference" or "control" can be a factor or value that allows comparison with the results of such diagnostic assays, and allows conclusions to be reasonably drawn based on observed differences or similarities.Suitable values are, for example, a predetermined level of predictability for disease or disease progression, obtained from the biological samples of one or more patients who subsequently develop serious symptoms of disease or disease progression.In this regard, positive predictive value or negative predictive value can be used as reference.
[0133] The relevant reference level can be determined by well-known methods, for example, based on large-scale data that can be obtained automatically by comparing samples from diseased patients with samples from healthy subjects or subjects not suffering from such diseases. Such a reference is understood as the average level of a population, for example, the average biomarker population value, where a patient diagnosed with sepsis may be compared with a control population, preferably comprising more than 10, more than 20, more than 30, more than 40, more than 50 or more subjects. Non-disease concentration levels in plasma / serum / blood of different populations (Caucasians, Asians, Africans, etc.) may vary depending on ethnicity.
[0134] An appropriate normal reference level for a biomarker may be determined by measuring the level of the desired biomarker in one or more appropriate subjects, and such reference level may be tailored to a particular population of subjects (e.g., the reference level may be age-matched or sex-matched so that comparisons can be made between the biomarker level in a sample from a subject of a particular age or sex and the reference level for the appearance, phenotype, or lack thereof, of a sepsis state in a particular age or sex group).
[0135] Typically, the reference value for predicting the disease state in samples from patients not suffering from said disease state is lower than the reference value for predicting disease progression, which may be, for example, at least a 2-fold, 3-fold, 4-fold, 5-fold, 10-fold, 15-fold or even at least a 20-fold increase.
[0136] Functional assays can be used by established techniques to indicate statistically significant values for use as reference levels or cutoffs, and laboratories can independently establish the functional selectivity of the assay by clinically relevant protocols.
[0137] The terms "sample" or "biological sample" or "specimen" refer to biological material isolated from a subject. A biological sample may contain any biological material suitable for detecting a desired biomarker and may include cells and / or non-cellular material from a subject. A sample can be isolated from any suitable biological tissue or fluid, such as blood, plasma, serum, skin, epithelial tissue, adipose tissue, vena cava tissue, liver tissue, urine, sebum, a cell sample, sputum, synovial fluid, or saliva.
[0138] The present biomarkers can be used, for example, as stand-alone diagnostic measures or as predictive markers in combination with additional diagnostic measures, eg, the determination of additional markers (eg, in a diagnostic combination kit).
[0139] According to certain embodiments, the methods described herein additionally comprise determining the level of at least one additional biomarker in a sample from said patient, wherein the at least one additional biomarker is preferably procalcitonin (PCT) or a fragment thereof, and / or lactate.
[0140] Specific methods for detecting biomarkers in a sample may be selected from the group consisting of HPLC, UHPLC or UPLC (particularly combined with UV or fluorescence detection) coupled with mass spectrometry (MS), luminescence immunoassays (LIA), radioimmunoassays (RIA), chemiluminescence and fluorescence immunoassays, enzyme immunoassays (EIA), enzyme-linked immunoassays (ELISA), luminescence-based bead assays, magnetic bead-based assays, protein microarray assays, rapid test formats such as immunochromatographic strip tests and automated systems / analyzers.
[0141] In particular, a sandwich format can be used. For example, one or more binders (e.g., immunological agents that specifically recognize biomarkers among others) are conjugated to a substrate before contacting with a biological sample. The one or more binders can be conjugated to a detectable label and serve as detection molecules. In other embodiments, one or more binders are conjugated to a detectable label. In this configuration, one or more binders can be conjugated to a substrate before contacting with a biological sample and serve as capture agents. Furthermore, one or more binders can be conjugated to a substrate before contacting with a biological sample, and / or one or more binders can be conjugated to a detectable label. In such cases, one or more binders can act as either or both capture agents and detection agents.
[0142] According to a specific embodiment, a software system can be used that uses a machine learning algorithm, preferably using data from an electronic health record (EHR) to identify hospitalized patients at risk of sepsis or septic shock. Machine learning approaches can be trained in random forest classifiers using EHR data from patients (e.g., laboratory data, biomarker expression, vital signs, and demographics). Machine learning is a type of artificial intelligence that provides computers with the ability to learn complex patterns in data without being explicitly programmed, unlike simpler rule-based systems.
[0143] The diagnostic preparations further described herein may include an immunological agent that specifically recognizes a biomarker described herein and an additional diagnostic reagent that is a detectable label or a reagent that specifically reacts with the immunological agent and / or a reaction product of the immunological agent bound to the biomarker.
[0144] The diagnostic preparation comprises an immunizing agent that specifically recognizes a biomarker of the invention and optionally additional diagnostic reagents in a composition or kit of parts.
[0145] The term "diagnostic kit" as used herein refers to a kit or set of parts that, in combination or mixture, can be used to measure / detect one or more analytes or markers to determine a disease or disease state or to predict disease, and particularly disease onset or disease progression. In particular, the kit contains at least a detection molecule and / or binder (e.g., an immunological agent) that specifically recognizes the marker or respective analyte, or a reaction product of such marker or analyte. Additionally, various reagents or tools may be included in the kit. Diagnostic kits preferably contain all essential components for determining the amount of a biomarker in a biological sample, optionally without general or nonspecific substances or components, such as water, buffers, or excipients, that may conveniently be added when performing an assay. Diagnostic kits may include any reagents useful for performing the subject methods, including substrates such as microbeads or planar arrays or wells, reagents for isolating biomarkers, detection molecules directed to specific targets, detectable labels, solvents, buffers, linkers, various assay components, blockers, etc.
[0146] The kit may also include instructions for use in a diagnostic method. Such instructions can be provided, for example, in a device included in the kit, such as a tool or device for preparing a biological sample for diagnostic purposes, for example, separating a cell- and / or protein-containing fraction before determining a marker. The kit can conveniently be provided in a shelf-stable form, for example, in the form of a commercially available kit with a shelf life of at least 6 months. A shelf-stable kit can preferably be stored for at least 6 months, more preferably for at least 1 or 2 years. It may be composed of dry (e.g., lyophilized) components and / or may contain a preservative.
[0147] Preferred diagnostic kits are provided as packaged or prepackaged units, for example, where the components are contained in a single package, facilitating automated testing. Such packages may contain reagents necessary for one or more tests, suitable for performing tests on a series of biological samples, for example. The kit may further preferably contain a biomarker preparation, which may be a labeled biomarker, as a standard or reference control.
[0148] The diagnostic composition may be a ready-to-use reagent in a reaction mixture with a biological sample, or a preserved form of such a reagent, e.g., a storage-stable form such as lyophilized; flash-frozen (e.g., in liquid nitrogen); ultra-low temperature storage (-70°C and -80°C); cold storage (-20°C and 5°C); and controlled room temperature (15°C to 27°C); standard specimen storage methods such as glycerol stocks, tissue paraffin blocks, (mouth) swabs, and other standard biological specimen storage methods, which can be reconstituted or prepared to obtain a ready-to-use reagent. Such ready-to-use reagents are typically in the form of an aqueous solution, specifically in a (physiological) buffer state (e.g., EDTA buffer, phosphate buffer, HBSS, citrate buffer, etc.).
[0149] Additional diagnostic reagents included in the diagnostic preparation (particularly the composition or diagnostic kit) may be reagents that specifically react with immunological agents and / or reaction products of immunological agents bound to biomarkers. Suitable diagnostic reagents are preferably used to perform immunoassays to diagnose or monitor a septic state in a subject. Suitable diagnostic reagents may be solvents, buffers, dyes, anticoagulants, ligands that specifically bind to immunological agents and / or reaction products of immunological agents bound to biomarkers described herein.
[0150] Specifically, the present invention provides diagnostic formulations of immunological agents that bind to the biomarkers described herein, optionally containing a labeled immunological agent and / or an additional labeled diagnostic reagent, e.g., a reagent that specifically recognizes the immunological agent or an immune complex between the immunological agent and the biomarker, and / or a solid phase for immobilizing at least one of the immunological agent and the diagnostic reagent.
[0151] The immunological or diagnostic reagent can be directly or indirectly labeled. Indirect labels may involve a labeled binding agent that forms a complex with the immunological or diagnostic reagent.
[0152] A preferred diagnostic formulation or assay comprises, for example, an immunoreagent that specifically recognizes a biomarker described herein immobilized on a solid phase, e.g., latex beads, gold particles, etc., to test for the presence and amount of the biomarker in a sample being tested.
[0153] The present invention is further illustrated by the following examples, but is not limited thereto. [Example]
[0154] [Example 1] Materials and methods for detecting BM1 in serum, plasma, and urine The biomarker of structure (I) described herein is also referred to herein as BM1. According to this example, BM1 was detected by HPLC-MS / MS on a reversed-phase (RP) column after protein precipitation from serum, plasma, or blood, for example, with acetonitrile or methanol, or by dilution of urine.
[0155] equipment To detect BM1 in a sample of interest, the following equipment is used:
[0156] [Table 1]
[0157] Sample preparation To determine the concentration of BM1 in healthy human subjects, serum, plasma, and urine samples are obtained from human or non-human animal subjects. Samples are prepared as follows.
[0158] a) Sample preparation procedure
[0159] [Table 2]
[0160] b) Chromatography The samples prepared for analysis as described in a) are subsequently subjected to HPLC chromatography according to the following parameters:
[0161] [Table 3]
[0162] Detection of BM1 using mass spectrometry The prepared samples are then subjected to UPLC-mass spectrometry analysis according to the parameters listed in Table 4.
[0163] [Table 4]
[0164] Evaluating and calculating results An exemplary chromatogram showing BM1 content in plasma samples from healthy humans is provided as Figure 1. An exemplary chromatogram showing BM1 content in plasma samples from humans with sepsis is provided as Figure 2.
[0165] Rounding Procedure Concentration data fed into and read from the chromatography data system (CDS) are rounded to five significant figures. Further calculations in a spreadsheet are performed and then reported rounded to three significant figures. Accuracy and coefficient of variation (CV) are reported to one digit.
[0166] Note on rounding procedure: The last digit reported is rounded up if the subsequent digit is "5" or greater.
[0167] Regression and Statistics Based on the calibration standards, the fit of the calibration curve is established by the peak area ratio (analyte BM1 / internal standard) using data processing software. The analyte BM1 concentration is evaluated using the internal standard method.
[0168] For HPLC-MS / MS analysis, an appropriate and stable regression model is used. Therefore, a quadrupole regression model with a weighting factor of 1 / concentration is set as the default. This is used, among other things, to avoid changes in the regression model that can occur when a method is used over months or years in different projects.
[0169] The concentration of the analyte BM1 is determined using the following regression model, weighting factors and formula:
[0170] [Table 5]
[0171] Based on this, the mean values, precision results (in terms of CV) and accuracy (formulas shown below) are calculated using a spreadsheet.
[0172]
number
[0173] Suitable publications on statistical models are e.g. ·Green, JR, Statistical Treatment of Experimental Data (Elsevier, New York, 1977), page 210 ff ·Lothar Sachs,Angewandte Statistik - Anwendung statistischer Methoden (Springer,Berlin,Heidelberg,New York,Tokyo 1984) It is introduced in.
[0174] software
[0175] [Table 6]
[0176] PCT detection For comparison with PCT levels, PCT was determined by a commercially available assay, e.g., Elecsys BRAHMS PCT, Procalcitonin (Roche Diagnostics GmbH, Mannheim, Germany).
[0177] [Example 2] Determination of BM1 levels in healthy human or non-human animal subjects BM1 levels in healthy human subjects Samples were prepared as described above and the levels of BM1 in the samples were determined according to the method described in Example 1.
[0178] In healthy human subjects, the concentration of BM1 in urine is approximately 20-100 times higher than the concentration of BM1 in plasma. Therefore, the reference level in urine is approximately 20-100 times higher than in serum or plasma.
[0179] Reference levels based on data from a healthy or non-septic reference (negative control - heart failure) population are as follows:
[0180] The reference level in urine is approximately 2500-4500 ng BM1 / mg creatinine.
[0181] The reference level in plasma or serum is approximately 15-40 ng BM1 / mL.
[0182] BM1 levels in healthy non-human animal subjects The concentrations of BM1 in the plasma or serum of healthy non-human animals were tested and compared with the levels in healthy humans. Two or three different individuals or pools of rats, dogs, rabbits, hamsters, monkeys, and mice were tested. Rats, dogs, rabbits, hamsters, monkeys, and mice had very similar levels compared to humans.
[0183] Samples from calves, llamas, alpacas, goats and beef cattle showed concentration levels of approximately 10-30 ng / mL, and septic calves showed concentration levels of approximately 40-80 ng / mL for BM1.
[0184] [Example 3] Comparison of BM1 levels in healthy subjects and subjects at risk of developing sepsis 392 plasma / serum samples were obtained from 129 human patients suffering from sepsis or septic shock or from non-septic patients diagnosed with heart failure (=control group).
[0185] Samples were prepared as described above and the levels of BM1 in the samples were determined according to the method described in Example 1.
[0186] Number of patients, sepsis vs. cardiac disease (control)
[0187] [Table 7]
[0188] result The levels of BM1 in the plasma or serum of patients suffering from sepsis or septic shock were significantly higher than the respective samples from patients not suffering from a septic condition.
[0189] [Example 4] Performance comparison between BM1 and PCT BM1 and PCT levels were determined as described in Example 1.
[0190] Receiver Response Characteristics Area under the ROC curve (Figure 3)
[0191] [Table 8]
[0192] Matrix: Sensitivity / Specificity - Biomarker 1 The cutoff value used was 32 ng / mL (calculated).
[0193] [Table 9]
[0194] Matrix: Sensitivity / Specificity-Procalcitonin The cutoff value used was 0.5 ng / mL (according to the literature).
[0195] [Table 10]
[0196] Summary of indicators
[0197] [Table 11]
[0198] [Example 5] Biological characterization of BM1 as a biomarker Plasma vs. urine (ng BM1 / mg creatinine) The following isotopically labeled internal standards: N6-(N-threonylcarbonyl)adenosine-13C4,15N (compound of structure / formula (II)) Determine the amount of BM1 (1000 ng / mL) using the
[0199] Plasma (or serum) and urine samples from septic and control patients are analyzed and quantified.
[0200] BM1 is found to be highly hydrophilic, with urinary concentrations in healthy volunteers being approximately 20-100 times higher than in plasma / serum. Urinary concentrations in septic patients can be significantly higher. Reference levels of BM1 in the urine of septic patients are approximately 5,000-16,000 ng / mg creatinine (see Example 2 for healthy individuals).
[0201] BM1 levels in septic and non-septic human neonates Plasma samples from non-septic and septic newborns (1-10 days old) were analyzed. BM1 has been proven to be a reliable marker of disease. PCT levels are very high in plasma or serum immediately after birth (approximately 10-30 ng / mL) and decrease to normal concentrations within 4-6 days (the cutoff for sepsis for PCT is 0.5 ng / mL in plasma / serum). Therefore, PCT in newborns is not used in practice by clinicians for this patient group, as PCT levels are not stable and therefore not characteristic within the first 4-6 days after birth.
[0202] BM1 was determined in neonatal samples (septic and non-septic). Healthy levels were around 80-120 ng / mL (n=6), whereas levels increased to up to 300 ng / mL (n=7) in septic neonates.
[0203] Further research Determination of BM1 comparable to PCT results in the same patients in the following specific patient groups. Patients with multiple injuries Patients with severe burns Patients after major surgery Malaria patients Certain tumor patients
[0204] [Example 6] ELISA for detection of BM1 An immunological test is provided that is compatible with clinical laboratory equipment for rapid analysis. Using this exemplary ELISA, BM1-specific immunological agents can be used to determine BM1 in plasma or urine. Monoclonal antibodies that specifically recognize BM1 can be provided by commercial sources, for example, by custom design. Alternatively, polyclonal non-human animal (e.g., rabbit or sheep) antibodies can be used.
[0205] [Example 7] Internal Standards for HPLC-MS / MS Isotopically labeled BM1 is used as an internal standard for the quantitative biochemical analysis of analytical human plasma and urine samples (Example 1) mentioned above: 13 C4, 15 N1-BM1 (molecular weight 5 mass units higher).
[0206] The structure is of formula (II), as further described herein.
Claims
1. 1. A method of predicting a sepsis state in a subject, comprising: a. determining the level of a biomarker in the subject's sample, wherein the biomarker has structure (I): 【Chemistry 1】 or a salt thereof; b. comparing said level to a predetermined reference value for said biomarker; Including, Elevated biomarker levels indicate risk of said septic condition. method.
2. 2. The method of claim 1, wherein the reference level is the level of the biomarker in the not-at-risk subject or group of subjects, or a threshold level indicative of the sepsis state.
3. 3. The method of claim 1 or 2, wherein the septic condition is any one or more of septic diseases selected from the group consisting of systemic inflammatory response syndrome (SIRS), sepsis, septic shock, and multiple organ dysfunction syndrome (MODS).
4. The biomarker is (i) immunoassays, such as enzyme immunoassays, lateral flow immunochromatographic assays, fluorescent immunoassays, radioimmunoassays and magnetic immunoassays; (ii) chromatography, such as HPLC chromatography, UPLC chromatography, gas chromatography (GC) or thin layer chromatography; (iii) capillary electrophoresis, and (iv) mass spectrometry, such as SELDI, MALDI, MALDI-Q TOF, MS / MS, TOF-TOF and ESI-Q-TOF, or NMR spectrometry The method according to any one of claims 1 to 3, wherein the determination is made by applying an analytical method selected from the group consisting of:
5. 1. A method of monitoring sepsis disease in a subject, comprising: a. determining the level of a biomarker in a sample of a subject at a first time point, wherein the biomarker is as defined in claim 1; b. determining the level of said biomarker in a sample from the same subject at a second later time point; Including, an increase in the level of the biomarker between the first and second time points indicates progression of the sepsis disease. method.
6. 1. A method of monitoring the effectiveness of at least one treatment administered to a subject for a septic condition, comprising: a. determining the level of a biomarker in a sample of a subject at a first time point, wherein the biomarker is as defined in claim 1; b. determining the level of said biomarker in a sample from the same subject at a second later time point; Including, a decrease in the level of the biomarker between the first and second time points indicates successful treatment. method.
7. 7. The method of any one of claims 1 to 6, wherein the sample is a body fluid selected from the group consisting of blood, plasma, serum, urine, stool, sputum, synovial fluid and saliva.
8. 8. The method of any one of claims 1 to 7, wherein an internal standard compound is added to the sample and the amount of the biomarker is determined by comparing the level of the biomarker with the level of the internal standard compound, preferably the internal standard compound is the biomarker comprising an isotopic label.
9. The internal standard is of structure (I) or a salt thereof containing a detectable label, preferably wherein at least one of the atoms C, H, N, or O is the respective heavy isotope C 13 , D., N. 15 , O 17 and O 18 9. The method of claim 8 , wherein the compound is substituted with
10. 1. Use of a diagnostic preparation in a method for determining a sepsis state, said diagnostic preparation being provided as a composition or kit of parts, comprising the following components: a. an immunological agent that specifically recognizes a biomarker as defined in claim 1; b. An additional diagnostic reagent that is a detectably labeled or specifically reactive with the immunological agent and / or a reaction product of the immunological agent bound to the biomarker. Including, c. Optionally, the use further comprises a solid support for immobilizing at least one of said immunizing agent or said diagnostic reagent.
11. 10. Use of an immune agent that specifically recognizes a biomarker as defined in claim 1 in a method for determining a sepsis state, wherein said immune agent comprises a detectable label.
12. Structure (I) as a biomarker for septic conditions 【Chemistry 2】 Use of the compound or a salt thereof.
13. 1. A method of predicting a septic condition in a subject not suffering from said septic condition, comprising: a. determining the level of a small molecule biomarker in the subject's sample; b. comparing said level to a predetermined reference value for said biomarker; Including, Elevated biomarker levels indicate a risk of developing said septic condition, said biomarker being as defined in claim 1. method.
14. 1. A method of monitoring a septic condition in a subject not suffering from said septic condition, comprising: a. determining the level of a small molecule biomarker in a sample from a subject at a first time point; b. determining the level of said biomarker in a sample from the same subject at a second later time point; Including, An increase in the level of the biomarker between the first and second time points indicates the onset of a septic condition, wherein the biomarker is as defined in claim 1. method.
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