Salivary biomarkers of brain injury
Saliva-based RNA biomarkers, particularly miRNAs, enable precise TBI diagnosis and monitoring, addressing the lack of reliable tools for assessing TBI severity and guiding effective treatment.
Patent Information
- Application Number
- JP2021547328
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-08-07
- Filing Date
- 2020-02-14
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2040-02-14
AI Technical Summary
Current diagnostic tools lack reliable biomarkers for assessing traumatic brain injury (TBI) severity, particularly for mild TBI, which is difficult to detect and manage, leading to inadequate clinical management and potential long-term health risks.
The use of specific RNA biomarkers, including miRNAs, in saliva samples to diagnose and monitor TBI through detection systems and methods, enabling accurate assessment of injury severity and guiding treatment decisions.
Provides accurate diagnosis and monitoring of TBI severity, facilitating timely and appropriate treatment interventions, especially for mild TBI, thereby improving patient outcomes and reducing long-term health risks.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to compositions, kits, systems and methods for diagnosing and / or monitoring brain injury, including but not limited to traumatic brain injury (TBI), and more particularly to the diagnosis and monitoring of TBI using RNA biomarkers. [Background technology]
[0002] Traumatic brain injury (TBI) is the leading cause of death and disability in Western countries among people under the age of 45. Its medical and societal costs are expected to continue to rise, and by 2020, the World Health Organization predicts that TBI will be the third leading cause of disability worldwide.
[0003] Despite extensive research, no reliable biomarkers have been identified for assessing TBI severity and predicting recovery. This is particularly true for mild TBI (mTBI), which remains difficult to assess in clinical practice. TBI patients are initially evaluated using the Glasgow Coma Score (GCS) and neuroimaging techniques, but these require costly equipment. Current diagnostic tools lack the ability to accurately define and quantify the actual severity of brain injury. Thus, while severe TBI is easily detected, mTBI, which accounts for the majority of cases (75–90%), is not easily detected.
[0004] Accurate diagnosis of mTBI is especially important in athletes, military personnel, and children, who are at high risk for repetitive mTBI and the devastating brain injury known as second impact syndrome (SIS), in which the synergistic effects of repetitive TBI can lead to severe injury and even death. Early diagnosis and assessment of the severity of TBI is therefore crucial to protecting the patient's health and ultimately their life.
[0005] The subject technology was conceived with these issues in mind. Summary of the Invention [Means for solving the problem]
[0006] The present disclosure provides methods and detection systems for diagnosing, monitoring, and treating traumatic brain injury (TBI), including mild traumatic brain injury (mTBI), in human subjects who have suffered a head injury by detecting one or more miRNA molecules in a biological sample from the subject. In the context of the following disclosure, the terms "level" and "amount," referring to the level or amount of one or more miRNA molecules in a biological sample, are used interchangeably.
[0007] In one aspect, the present disclosure relates to a method for diagnosing and treating traumatic brain injury (TBI) in a human subject in need thereof, the method comprising obtaining a saliva sample from the subject; * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-469, put -miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTA A, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof, and / or (b) put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, contacting a saliva sample with a probe comprising a nucleic acid capable of binding to at least one RNA biomarker selected from the group consisting of put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; detecting the presence of at least one RNA biomarker in the saliva sample; identifying subjects having TBI in which the amount of at least one RNA biomarker is increased or decreased relative to a predetermined threshold or relative to the amount of the RNA biomarker in a control sample; and treating the subjects identified as having TBI according to one or more of the following: subjecting the subject to language testing, cognitive testing, motor testing, or optical testing, or any combination of the foregoing; subjecting the subject to diagnostic imaging in the form of CT or MRI, or a combination thereof; and / or administering one or more neuroprotective therapies to the subject.
[0008] In certain embodiments of this method, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0009] In another aspect, the present disclosure relates to a method for diagnosing and / or monitoring traumatic brain injury (TBI) in a subject, the method comprising determining the level of at least one RNA biomarker in a saliva sample obtained from the subject, the at least one RNA biomarker being selected from the group consisting of: (a) hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325 , put-miR-444, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958 , RNU4-6p, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, t RNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and and / or (b) selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof.
[0010] In one embodiment of this method, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0011] In another aspect, the present disclosure relates to a sensor element for a detection system for diagnosing and / or monitoring TBI, the sensor element comprising: (a) hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put- miR-444, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, S NORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof and / or (b) put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put- The substrate comprises a probe functionalized with a probe specific for at least one RNA biomarker selected from the group consisting of miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof.
[0012] In one embodiment of the sensor element, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0013] In another aspect, the present disclosure relates to a detection system for diagnosing and / or monitoring TBI, comprising a sensor element according to the present disclosure and a detection device capable of detecting binding of a target RNA biomarker to the probe.
[0014] In another aspect, the present disclosure relates to a method of determining a course of treatment for a subject suspected of having a TBI, comprising applying a saliva sample obtained from the subject to a detection system according to the present disclosure, and providing treatment for the TBI if an upregulated or downregulated level of at least one RNA biomarker is detected.
[0015] In another aspect, the present disclosure provides a method for treating a subject suspected of having a TBI, the method comprising: (a) administering to a subject a miR-1246-3p (miR-126); * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-444, put-miR-4 65, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRN A18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or (b) put-miR-1003, put-miR-1080, put-miR-1084, put-mi R-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, p ut-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof, is detectable in a saliva sample obtained from the subject; and providing the subject with treatment for TBI if an upregulated or downregulated level of the at least one RNA biomarker is detected.
[0016] In one embodiment of this method, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0017] In another aspect, the present disclosure relates to a method for detecting RNA biomarkers in a saliva sample. The method includes obtaining a saliva sample from a human subject, and filtering the saliva sample with (a) hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-444, pu t-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNORD3B-2, tRNA and / or (b) put-miR-1003, put-m iR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6- and YRNA-255, or any combination thereof; amplifying the at least one RNA biomarker using polymerase chain reaction; and detecting the amplified RNA biomarker.
[0018] In one embodiment of this method, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0019] In another aspect, the present disclosure relates to a kit for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject, the kit comprising: (a) hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put- miR-444, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, S NORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof and / or (b) a combination of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put -miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof.
[0020] In one embodiment of the kit, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0021] In another aspect, the present disclosure relates to a composition for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject, the composition comprising: (a) hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put- miR-444, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, S NORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof and / or (b) put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put- The biomarkers include at least one probe specific to at least one RNA biomarker selected from the group consisting of miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof.
[0022] In one embodiment of this composition, the at least one RNA biomarker is (a) hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-148a-3p, hsa- miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748 and / or (b) one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof. DETAILED DESCRIPTION OF THE INVENTION
[0023] The present invention provides methods for diagnosing or monitoring traumatic brain injury (TBI) in a subject, as well as methods for treating a subject identified as having suffered from TBI.
[0024] The search for TBI biomarkers has been greatly stimulated by the increasing profile of sports concussions in the media. In recent years, much research has focused on biomarkers that can support clinical decision-making at the pitchside or in sports clinics. However, protein biomarkers reported in the literature lack specificity or sensitivity, or are not detectable for some time after injury. This may be due to the fact that after a concussion, a form of TBI, only very small amounts of brain-derived compounds are released, and the blood-brain barrier remains largely closed.
[0025] MicroRNAs (miRNAs) are an abundant class of highly conserved, approximately 22-nucleotide-long noncoding RNA molecules that induce mRNA degradation, translational repression, or both through pairing with partially complementary sites in the 3'UTRs of target genes. The human genome encodes over 2,000 miRNAs, which can target approximately 60% of all genes. However, despite the abundance of miRNAs, their biomolecular functions and involvement in pathology have not been fully elucidated. miRNAs play a central role in many biological processes, including cell cycle, cellular metabolism, apoptosis, and immune response, and are attracting increasing interest in clinical research as potential biomarkers for the detection, identification, and classification of cancer and other disease states, including neurodegenerative disorders.
[0026] For the avoidance of doubt, as used herein, "at least one miRNA is selected from a group of miRNAs" is understood to mean that the method in question, whether performed for diagnostic, prognostic, or therapeutic purposes, may be performed with any one of the listed miRNAs or any multiple of the listed miRNAs (e.g., two, three, four, or more listed miRNAs), and thus may explicitly exclude any one or more of the listed miRNAs.
[0027] Traumatic brain injury occurs when an external force traumatically injures the brain. Various systems exist for classifying TBI based on, for example, severity, type of injury, and prognosis. The most commonly used system for classifying TBI is the Glasgow Coma Scale (GCS), which rates a person's level of consciousness on a scale of 3 to 15 based on verbal, motor, and eye-opening responses to stimuli. Generally, a GCS score of 13 or higher is defined as mild, a GCS score of 9 to 12 as moderate, and a GCS score of 8 or lower as severe. Another system, the Mayo classification system, has three main classifications, including definite moderate-to-severe TBI, probable mild TBI, and possible TBI. Multiple criteria are used for each diagnosis, including evidence of loss of consciousness, posttraumatic amnesia, skull fracture, and neuroradiological abnormalities, including subdural hematoma, cerebral contusion, and hemorrhagic contusion. Classification of TBI using the GCS system or the Mayo system will be known to those skilled in the art.
[0028] As used herein, references to "mild," "moderate," and "severe" TBI are made according to the GCS. References herein to "moderate-to-severe" TBI encompass both moderate and severe TBI according to the GCS.
[0029] As used herein, reference to mild TBI (mTBI) is also a reference to concussion.
[0030] The diagnosis and / or monitoring of TBI using the biomarkers of the present invention is expected to aid in clinical decision-making and treatment regimens in a variety of settings, including as part of an initial assessment by paramedics to determine whether a patient should be transported to a facility with neurosurgical expertise, a major trauma center, or a regional trauma unit; in hospital emergency departments to determine appropriate treatment, including the need for a CT brain scan; pitchside to assist in decisions regarding removing a player from play and assessing the need to transport the player to a hospital; in sports clinics to identify concussive events and enable return-to-play decisions; and in combat situations to determine the need for rescue teams and evacuation of victims. Accordingly, subjects for whom the present invention provides particular benefit may include, but are not limited to, accident victims, athletes, and military personnel.
[0031] In either case, but perhaps especially if the subject is at high risk for TBI (e.g., if the subject is a professional athlete or in the military), a sample can be taken from the subject prior to the known or recent trauma (e.g., near the beginning of an athletic career or prior to deployment to the military) and the miRNA of interest assessed at that time or later when the subject may have experienced a TBI. Such a sample can thereby provide an internal reference standard.
[0032] In some embodiments, the subject is a human.
[0033] The TBI can be mild TBI (mTBI), moderate TBI, or severe TBI (sTBI). In some embodiments, the TBI is a moderate-severe TBI (m-sTBI).
[0034] The level of the or each miRNA in a sample can be determined quantitatively or semi-quantitatively. By "quantitatively," it is understood that the absolute amount or concentration of the or each miRNA in the sample is determined. The absolute amount of the or each miRNA in the sample can then be compared to a predetermined threshold (e.g., a published literature value for expected normal levels), the known level of the same or reference miRNA in a control sample taken from a healthy subject, or the amount of the reference miRNA in a sample taken from the subject. In some aspects, a subject is diagnosed with TBI when the level of the miRNA is below a predetermined threshold or is decreased compared to the reference or control sample. In other embodiments, a subject is diagnosed with TBI when the level of the miRNA is increased compared to a predetermined threshold.
[0035] By "semi-quantitatively" it is understood that the level of the or each miRNA of interest is measured relative to a reference.
[0036] The reference may be an invariant miRNA, i.e., a miRNA whose expression level remains substantially unchanged between healthy subjects and subjects with TBI. If the level of the or each miRNA of interest is increased or decreased compared to the level of the invariant miRNA, the subject can be diagnosed as suffering from TBI.
[0037] In some embodiments, the level of the or each miRNA in a sample obtained from a subject may be about 0.01-fold to about 100-fold, about 0.05-fold to about 50-fold, about 0.1-fold to about 10-fold, about 0.5-fold to about 5-fold, about 1.0-fold to about 3-fold, or about 1.5-fold to about 2.0-fold lower or higher than the level in a control sample, reference level, or published value.
[0038] When a device or method is used to generate a value, the value can be modified with the term "about" to capture the stated value and any variation in that value inherent in the device or method used. When a value or range of values is specifically disclosed, "about" can mean plus or minus 10% of the stated value or range. For example, about 10 minutes can mean 9 to 11 minutes.
[0039] The level of the or each miRNA of interest can be determined using methods known to those of skill in the art. In some embodiments, determining the level of the or each miRNA of interest includes amplifying the miRNA. In some embodiments, total miRNA can first be isolated from the sample using standard techniques, for example, using the miRNeasy Mini Kit (Qiagen). The amount of the miRNA of interest can then be determined. In some embodiments, the level of the or each miRNA of interest in the sample is determined using PCR (polymerase chain reaction). For example, quantitative PCR can be used for quantitative determination of the level of the or each miRNA of interest. PCR can also be used for semi-quantitative determination by comparing the level of the or each miRNA of interest in the sample to the level of a reference (e.g., an invariant miRNA).
[0040] Suitable techniques for detecting and / or quantitating miRNAs that are known to those skilled in the art include qPCR, miRNA assays, next generation sequencing (NGS), and multiplex miRNA profiling assays.
[0041] In some embodiments, the level of the or each miRNA of interest is determined using in situ hybridization, for example, using a probe specific for the miRNA (eg, a labeled probe).
[0042] The miRNA levels can be determined in samples obtained from the subject immediately after injury (i.e., less than one hour after injury) and / or in samples obtained at one or more time points, such as several hours or days after injury. Thus, changes in miRNA levels can be detected over time, allowing for monitoring of TBI. If miRNA levels change over time, the methods described herein for monitoring TBI can be expanded to include maintaining or adjusting the subject's treatment regimen accordingly.
[0043] Depending on the specific miRNA and the type of TBI, the level of the miRNA in a subject can change significantly over time. In some embodiments, therefore, it may be advantageous to measure the miRNA relatively soon after injury to enable accurate diagnosis. In some embodiments, the level of the miRNA is determined in a sample obtained from the subject within 72 hours, 48 hours, 36 hours, 24 hours, 12 hours, 6 hours, 4 hours, 2 hours, or 1 hour after injury.
[0044] The levels of some miRNAs are substantially stable over time, thus allowing diagnosis to be made hours, days, or weeks after injury. In some embodiments, the levels of the miRNA are determined in samples obtained from the subject up to 20, 18, 15, 12, 10, 8, 5, or 2 days after injury.
[0045] In some embodiments, the level of the miRNA is determined in a sample obtained from the subject immediately after injury (e.g., T=0 hours), 4 to 12 hours after injury, 48 to 72 hours after injury, or 15 days after injury.
[0046] In some embodiments, the miRNA level is determined in a sample obtained from the subject at least 24 hours after the injury. In some embodiments, the miRNA level is determined in a sample obtained from the subject within 15 days after the injury. In some embodiments, the miRNA level is determined in a sample obtained from the subject 24 hours to 15 days after the injury, 24 hours to 10 days after the injury, 24 hours to 7 days after the injury, or 48 hours to 5 days after the injury.
[0047] In some embodiments, the TBI is a mild TBI (mTBI) or a moderate-severe TBI (m-sTBI).
[0048] In some embodiments, the TBI is a mild TBI (mTBI).
[0049] Advantageously, the sample may be any suitable fluid or tissue sample obtained from a subject. For example, the biological sample may comprise at least one of the group consisting of urine, saliva, whole blood, plasma, serum, sputum, semen, feces, nasal swab, tears, vaginal swab, rectal swab, cervical smear, tissue biopsy, and urethral swab. In some embodiments, the sample is a fluid sample. Suitably, the sample is one that can be easily obtained from an individual, such as urine, saliva, blood, and sputum. In some embodiments, the sample comprises saliva, blood, plasma, or serum. It is understood that in some embodiments, the process of obtaining the sample does not form part of the invention described herein.
[0050] In some embodiments, the sample comprises or consists of serum. Serum has practical advantages, as well as being free of anticoagulants such as heparin, which are potential inhibitors of PCR reactions. Serum may also be less susceptible to hemolysis than plasma.
[0051] In some embodiments, the sample is saliva, which can be easily obtained from a patient (e.g., pitchside or in the field) without specialist training or medical equipment.
[0052] When a subject is diagnosed with TBI, particularly when a mild TBI or moderate-to-severe TBI is diagnosed, the determination of an appropriate treatment can be facilitated. Thus, the present invention provides a test that allows medical professionals, such as physicians, clinicians, and paramedics, as well as non-medical professionals (e.g., teachers, sports coaches, and military personnel), to determine the appropriate course of action for a subject suspected of having TBI. Thus, a subject determined to have TBI can receive the most appropriate treatment as a result of the diagnosis. Therefore, the method of the present invention can further include prescribing an appropriate treatment for a subject diagnosed with TBI.
[0053] Subjects diagnosed with TBI can be further evaluated, for example, by CT scan. In some embodiments, the subject is admitted to a hospital. In some embodiments, if moderate to severe TBI can be ruled out, the subject may not need to be admitted to a hospital for evaluation. Subjects diagnosed with moderate to severe TBI can be admitted to a hospital or specialized center with expertise in neurotrauma.
[0054] For example, in a sporting event, a subject diagnosed with a TBI (particularly mTBI) outside of a hospital setting while in combat or play can be immediately removed from play or combat, and the subject can then begin a gradual return to play or combat.
[0055] In a further aspect, a method is provided for determining whether administering a treatment to a subject to alleviate TBI is appropriate, the method comprising determining a level of at least one miRNA in a sample from the subject, and determining whether administering a treatment to alleviate TBI is appropriate based on the level of the at least one miRNA.
[0056] It is understood that the step of administering treatment to a subject does not form part of the claimed method, unless specifically stated otherwise.
[0057] In some embodiments, the method can further include administering an appropriate treatment to the subject. In some aspects, the treatment can include treatment to alleviate the TBI. Accordingly, the invention features methods of diagnosing and treating TBI in a subject, the method including: (a) obtaining a sample (e.g., a blood, plasma, urine, or saliva sample) from the subject; (b) detecting one or more miRNAs (selected from the miRNAs described herein); diagnosing the patient as having a TBI if the miRNA levels differ from a reference standard (described herein); and administering treatment for the TBI.
[0058] In a further aspect, the present invention provides a method for determining an appropriate treatment for a subject suspected of suffering from a TBI, the method comprising identifying whether the subject has a TBI by determining the level of at least one miRNA in a sample from the subject.
[0059] If a subject is identified as having a TBI, appropriate treatment may include, for example, one or more of further evaluating the subject with further testing (e.g., speech, cognitive, motor, and / or optical testing), CT and / or mill scanning, removing the subject from activity (e.g., the activity at the time the TBI occurred), admitting the subject to a hospital or specialized clinic, surgery, and administering treatment to the subject to mitigate the TBI.
[0060] Treatments to mitigate TBI can include neuroprotective drugs, e.g., drugs to treat brain swelling such as mannitol and hypertonic saline, and / or other neuroprotective measures such as avoidance of hypertensive resuscitation and use of sedatives.
[0061] In some embodiments, the subject may be subsequently monitored, for example in a hospital or clinic, to track recovery.
[0062] According to a further aspect of the present invention, there is provided a method for detecting and / or determining the level of a target miRNA in a subject, the method comprising the steps of: (a) obtaining a sample from the subject; and (b) detecting and / or determining the level of the target miRNA in the sample by contacting the sample with a probe specific for the target miRNA.
[0063] The sample may be any suitable fluid or tissue sample obtained from a subject, as defined above, hi some embodiments, the sample is blood, serum, plasma, urine, or saliva.
[0064] In some embodiments, the method can include determining the levels of two or more target miRNAs in a sample.
[0065] According to a further aspect of the present invention, there is provided a treatment for alleviating TBI for use in a method of treating a subject in need thereof, the subject being identified as having TBI by determining the level of at least one miRNA in a sample from the subject.
[0066] The step of determining the level of the target miRNA can include contacting the sample with a substrate functionalized with probes, e.g., a chip containing the probes. The substrate or chip can conveniently include multiple probes, each specific for a different target miRNA.
[0067] The subject may have suffered an injury, particularly a head injury. The subject may be suspected of having a TBI. The subject may be suspected of having an mTBI or concussion. In some embodiments, the sample is obtained within 72 hours, 48 hours, 36 hours, 24 hours, 12 hours, 6 hours, 4 hours, 2 hours, or 1 hour after the injury. In some embodiments, the sample is obtained 24 hours or more after the injury. In further embodiments, the sample is obtained from the subject within 15 days after the injury. In some aspects, the sample is obtained from the subject 24 hours to 15 days after the injury, 24 hours to 10 days after the injury, 24 hours to 7 days after the injury, or 48 hours to 5 days after the injury.
[0068] In some embodiments, the method further includes treating the subject. Treatment can include one or more of, for example, further evaluating the subject with additional testing (e.g., language, cognitive, motor, and / or optical testing), CT and / or MRI scanning, removing the subject from activity (e.g., the activity at the time the TBI occurred), admitting the subject to a hospital or specialized clinic, and administering treatment to the subject to mitigate the TBI. In some embodiments, treating includes administering an effective amount of a neuroprotective agent.
[0069] Accordingly, in a still further aspect, the present invention provides a method of treating TBI, the method comprising determining the level of at least one miRNA in a sample from a subject, and if the level of the at least one miRNA is indicative of mTBI, administering a treatment appropriate for mTBI, or if the level of the at least one miRNA is indicative of m-sTBI, administering a treatment appropriate for m-sTBI.
[0070] It will be understood by those skilled in the art that different treatment routes can be used for mTBI and m-sTBI.
[0071] A subject with an mTBI can be treated as follows.
[0072] Athletes diagnosed with mTBI are typically initiated on a phased return-to-play protocol (defined by the Berlin Consensus Conference on Concussion and individual sport authorities, e.g., RFU, IRB, NFL, NHL, NBA, and IMMAF). This involves a period of rest followed by a gradual increase in activity and contact exposure. Athletes with mTBI are typically prevented from competing for a period that varies between 6 and 23 days, depending on the level of medical supervision and age. Conversely, if mTBI is ruled out, the athlete is not subject to any restrictions and can train normally the following day. If mTBI is diagnosed in the prehospital setting, the patient should seek medical attention (e.g., at a hospital or primary care facility), but if mTBI is ruled out, medical confirmation is not indicated.
[0073] Patients with mTBI must be kept under observation for 24 to 48 hours and should not drive or operate forklifts or construction machinery until they have recovered.
[0074] A service member diagnosed with mTBI will be removed from the area of operations and placed on rest, but if mTBI is ruled out, the individual will continue on active duty.
[0075] In the NHS, according to guidance published by NICE, patients with mTBI can be admitted to hospital for observation or undergo a CT scan, but if mTBI is ruled out, the patient may be discharged immediately.
[0076] People diagnosed with mTBI are typically asked not to return to work or study for a period of time.
[0077] A person diagnosed with mTBI may be referred to a mild TBI clinic or a neurology or neurosurgery clinic. Typical interventions for mTBI consist of advice regarding education, work, studies, and driving, medical management of typical sequelae such as headache or anxiety or mood disorders or post-traumatic stress disorder, with medication and / or psychological intervention if necessary, and referral to other services as indicated, such as neuropsychology, neurovestibular, or ophthalmology.
[0078] Patients with mTBI should be monitored for delayed post-traumatic pituitary dysfunction, according to guidance published by the British Association of Neurological Surgeons.
[0079] In forensic settings, the diagnosis of mTBI is often unclear and speculative because radiological examinations are typically normal and symptoms are nonspecific. Objective confirmation of mTBI can lead to the award of damages and care needs. Appropriate treatment for mTBI can include removing the subject from activity, on-site or community treatment, further evaluation in a hospital without overnight hospitalization (mTBI patients are typically promptly discharged with head injury advice), or hospitalization for a period of observation (usually 1–2 days). Subjects can be further evaluated using tests (e.g., language, cognitive, motor, and / or optical tests). According to NICE guidelines, a CT scan is generally only required if certain signs are present, including suspected skull fracture, post-traumatic seizures, focal neurological deficits, recurrent vomiting, or a GCS score of less than 13 at initial evaluation (less than 14 for children and less than 15 for infants under 1 year old).
[0080] Appropriate treatment for m-sTBI may include administering treatments to mitigate the TBI, such as an MRI or CT scan (especially within one hour of the injury), hospitalization (which may include admission to an intensive care unit and / or transfer to a specialized clinic or major trauma center with neurosurgical facilities), neuromonitoring, surgery, administration of neuroprotective drugs, e.g., medications to treat brain swelling such as mannitol and hypertonic saline, and / or other neuroprotective measures such as avoidance of hypertensive resuscitation and use of sedatives.
[0081] Thus, the present invention allows subjects with TBI to be clinically and rapidly stratified into mTBI or m-sTBI so that they can receive the most appropriate treatment.
[0082] According to a further aspect of the present invention, there is provided a detection system for diagnosing and / or monitoring TBI, the detection system comprising a sensor element including a substrate functionalized with a probe specific for a target miRNA, the detection system further comprising a detection device capable of detecting binding of the target miRNA to the probe.
[0083] According to yet a further aspect of the present invention, there is provided a sensor element for use in a detection system for diagnosing and / or monitoring TBI, the sensor element comprising a substrate functionalized with a probe specific for a target miRNA.
[0084] The sensor element may further include a sample application zone for receiving a sample (eg, a fluid sample) thereon.
[0085] The probe can selectively bind to the miRNA of interest. The substrate can be functionalized with multiple probes. The probes can all be the same, or two or more different probes can be provided. For example, in some embodiments, the substrate can be functionalized with a first probe specific to a first miRNA and a second probe specific to a second miRNA. The first and second probes can be grouped together, for example, in different parts of the sensor element.
[0086] In a further aspect of the invention, a composition for use in a method of diagnosing and / or monitoring traumatic brain injury (TBI) in a subject is provided, the composition comprising a probe specific for a target miRNA, which may comprise any one of the listed miRNAs or any multiple of the listed miRNAs (e.g., two, three, four or more of the listed miRNAs).
[0087] The probe can comprise a biological molecule such as a protein (e.g., an antibody) or a nucleic acid. In some embodiments, the probe comprises a nucleic acid. The nucleic acid can comprise a sequence that is at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% identical to a sequence that is the complement of the full-length sequence of the target miRNA. In some embodiments, the nucleic acid comprises a sequence that is 100% identical to a sequence that is the complement of the sequence of the target miRNA (i.e., the receptor comprises a nucleic acid sequence that is the exact complement of the target miRNA sequence).
[0088] The probes can be attached to the surface of the substrate by any suitable means, such as coupling chemistries known to those of skill in the art. In some embodiments, each probe is attached to the surface of the substrate via a linker. In some embodiments, the probes include a moiety for immobilizing the probe on the substrate or for attaching the probe to a linker immobilized on the substrate.
[0089] Alternatively, or in addition, the probe may comprise a detectable label, which may be, for example, radioactive, fluorescent, luminescent, or antibody-based (e.g., may comprise a conventional tetrameric antibody or a detectable fragment thereof).
[0090] The substrate of the sensor element may be formed from any suitable material. In some embodiments, the substrate includes or is formed from metal, plastic, glass, silica, silicon, graphite, graphene, or any combination thereof. In some embodiments, the substrate includes multiple layers. For example, the substrate can be prepared by forming a surface or layer of graphene on a layer of silicon carbide or silica. The graphene surface can be chemically modified, for example, to graphene-oxide (GO) or graphene-amine (GA). Methods of forming graphene layers, such as epitaxial growth and sublimation growth, are known to those skilled in the art.
[0091] Conveniently, nucleic acid-containing or nucleic acid-constituted probes can be attached to the GO surface via a linker using an amide coupling reagent (e.g., O-(7-azabenzotriazol-1-yl)-N,N,N,N'-tetramethyluronium hexafluorophosphate (HATU)). The complementary miRNA can then be selectively detected using a sensor element containing a surface functionalized with the nucleic acid probe.
[0092] Suitable linkers can include an aniline moiety (or a derivative thereof), a benzoic acid moiety (or a derivative thereof), or an ethenediamine moiety (or a derivative thereof). An aniline linker can be formed by attaching a nitrobenzene molecule (or a derivative) to the graphene surface (e.g., using a diazonium salt) and reducing the nitrobenzene to aniline. The amine group of the aniline can then be used to attach to a probe. Similarly, a diazonium salt (e.g., 4-benzoic acid diazonium tetrafluoroborate) can be used to attach benzoic acid or a benzoic acid derivative to the graphene surface. An ethanediamine moiety can be attached to carboxylated graphene or graphene oxide.
[0093] The sensor element may be contained within a test strip, which may be disposable.
[0094] The detection device can be configured to detect binding of the target miRNA to the receptor by any suitable means known to those of skill in the art, for example, by detecting electrical impedance, changes in hydrogen ion concentration, or conformational changes due to hybridization.
[0095] The detection device may further include a user interface for outputting data to a user.
[0096] In some embodiments, the detection device includes a database of treatment information. The device can identify appropriate treatment options from the database depending on the level of the miRNA of interest. The treatment information can be provided to the user via a user interface.
[0097] Advantageously, the detection device may be portable, for example, handheld. The detection device may include a data storage unit for storing miRNA levels and other information about the subject. In some embodiments, the device includes a data communication means for communicating data to other devices. For example, the device may communicate data wirelessly via WiFi, 3G, 4G, Bluetooth, or via a mobile app. This allows medical professionals to easily access the data as needed, improving convenience.
[0098] It is therefore envisioned that the detection device of the present invention provides an affordable, portable, point-of-care means for non-invasively diagnosing and monitoring TBI. The device can be used by ambulance crews, the military, schools, sports clubs, and medical professionals, enabling accurate assessment and triage of patients suspected of having TBI.
[0099] A further aspect of the present invention is a system for detecting and / or monitoring mTBI in a subject.
[0100] One type of detection system is based on complementarity between the target miRNA and a nucleic acid probe, typically an oligonucleotide probe. The complementary or base-paired region may be 7 or 8 or more nucleotides in length. In embodiments, the complementary or base-paired region may be 9, 10, 12, 15, or more nucleotides in length, or the complementary or base-paired region may be the entire length of the miRNA. The oligonucleotide-functionalized substrate may be a bead or nanoparticle. The detection system may have additional components capable of converting the bound nucleic acid probe-miRNA into a detectable signal.
[0101] Another type of detection system is based on RT-PCR. Accordingly, the present invention encompasses a detection system for detecting and / or monitoring mTBI in a subject, comprising a primer pair designed for amplification of the cDNA complement of at least one miRNA described herein.
[0102] In a further aspect, kits for use in the methods are provided. The kits can include at least a probe (e.g., a protein such as an antibody, or a nucleic acid) capable of selectively binding to the miRNA of interest. In some embodiments, the kits include an array containing multiple probes. In some embodiments, at least one probe is a primer for performing PCR. The kits can further include instructions for use, e.g., for use in diagnosing and / or monitoring TBI. The kits can further include appropriate buffers and reagents, such as amplification primers and enzymes (e.g., DNA polymerase, reverse transcriptase for converting miRNA to cDNA).
[0103] Further Aspects and Embodiments In further aspects, the present disclosure provides methods, sensor elements, detection systems, kits, and compositions comprising various differentially expressed RNA biomarkers suitable for use in, inter alia, diagnosing, monitoring, and treating traumatic brain injury (TB), including mild traumatic brain injury (mTBI), in human subjects.
[0104] The sequences and accession numbers of these RNA biomarkers are shown in Table 1 below. [Table 1-1] [Table 1-2]
[0105] According to one aspect of the present disclosure, there is provided a method of diagnosing and treating traumatic brain injury (TBI) in a human subject in need thereof, the method including obtaining a saliva sample from the subject; t-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, pu t-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-135 2, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p; determining the amount of the at least one RNA biomarker in the saliva sample; identifying subjects in which the amount of the at least one RNA biomarker is increased or decreased relative to a predetermined threshold or relative to the amount of the RNA biomarker in a control sample as having TBI; and treating the subject identified as having TBI according to one or more of the following: subjecting the subject to a language test, a cognitive test, a motor test, or an optical test, or any combination of the foregoing; subjecting the subject to diagnostic imaging in the form of a CT or MRI, or a combination thereof; and / or administering one or more neuroprotective therapies to the subject.
[0106] Examples of neuroprotective therapies that may be selected by a clinician to treat TBI include, but are not limited to, statins, progesterone, corticosteroids, cell cycle inhibitors (such as flavopiridol, semi-synthetic flavonoids, and the purine analogs roscovitine and olomoucine), autophagy inhibitors including caspase inhibitors (the tetrapeptide caspase-3 inhibitor (z-DEVD-fmk), the pan-caspase peptide inhibitors Boc-aspartyl fluoromethyl ketone and Boc-aspartyl fluoromethyl ketone), inhibitors of poly(ADP-ribose) polymerase (PARP), anti-inflammatory agents (such as minocycline and anti-inflammatory cytokines (e.g., IL-10) or interleukin-1 receptor antagonists (IL-1ra)), sulfonylurea receptor 1 (SUR1)-regulated calcium channel inhibitors (such as glibenclamide), substance P (SP) antagonists, diketopiperazines, and cyclosporine A.
[0107] In some embodiments, the saliva sample is obtained during a period of time after injury selected from immediately after injury to any period of time after injury.
[0108] In some embodiments, the saliva sample is obtained during a post-injury period selected from immediately after the injury until the expression level of at least one of the RNA biomarkers returns to a predetermined threshold or the amount of the RNA biomarker in a control sample.
[0109] In some embodiments, the saliva sample is obtained during a period after injury selected from immediately after injury to up to 1 year, up to 10 months, up to 8 months, up to 6 months, up to 5 months, up to 4 months, up to 3 months, up to 2 months, up to 1 month, up to 25 days, up to 20 days, up to 15 days, up to 7 days, up to 5 days, up to 3 days, up to 2 days, and / or up to 24 hours after injury.
[0110] In some embodiments, the saliva sample is obtained during a period after injury selected from immediately after injury to 15 days, 1 hour to 15 days, 24 hours to 15 days, 24 hours to 7 days, and 2 to 5 days.
[0111] In some embodiments, the method further comprises obtaining one or more additional saliva samples from the subject at one or more additional times after the injury, and repeating the detection and amplification steps for each additional sample.
[0112] In some embodiments, the one or more additional saliva samples are obtained during a period after injury selected from immediately after injury to any period after injury.
[0113] In some embodiments, one or more additional saliva samples are obtained during a post-injury period selected from immediately after the injury until the expression level of at least one of the RNA biomarkers returns to a predetermined threshold or the amount of the RNA biomarker in a control sample.
[0114] In some embodiments, the one or more additional saliva samples are obtained during a period after injury selected from immediately after injury to up to 1 year, up to 10 months, up to 8 months, up to 6 months, up to 5 months, up to 4 months, up to 3 months, up to 2 months, up to 1 month, up to 25 days, up to 20 days, up to 15 days, up to 7 days, up to 5 days, up to 3 days, up to 2 days, and / or up to 24 hours after injury.
[0115] In some embodiments, one or more additional saliva samples are obtained during a period after injury selected from immediately after injury to 15 days, 1 hour to 15 days, 24 hours to 15 days, 24 hours to 7 days, and 2 to 5 days.
[0116] In some embodiments, one or more additional saliva samples are obtained at 1, 1.5, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, or 15 days after injury.
[0117] In some embodiments, detecting the amount of at least one RNA biomarker is performed using a PCR-based assay, a light array assay, a laminar flow chip assay, or any assay suitable for detecting at least one RNA biomarker.
[0118] In some embodiments, when using a PCR-based assay, the predetermined threshold corresponds to a fold change of 1.5 or greater using the 2 delta delta CT (2-ΔΔCT) method.
[0119] In some embodiments, the predetermined threshold corresponds to a fold change of 2 or greater using the 2 delta delta CT (2-ΔΔCT) method.
[0120] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0121] In some embodiments, the method further comprises identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0122] In another aspect of the present disclosure, a method of diagnosing and / or monitoring traumatic brain injury (TBI) in a subject is provided, the method comprising determining a level of at least one RNA biomarker in a saliva sample obtained from the subject, the at least one RNA biomarker being one of Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3 p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p, or any combination thereof.
[0123] In some embodiments, either an upregulated or downregulated level of at least one RNA biomarker is indicative of TBI.
[0124] In some embodiments, a subject is diagnosed with TBI if the level of at least one RNA biomarker is above or below a predetermined threshold, or is increased or decreased compared to a control.
[0125] In some embodiments, the method further comprises identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0126] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0127] In another aspect of the present disclosure, a sensor element for a detection system for diagnosing and / or monitoring TBI is provided, the sensor element comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, p The substrate comprises a probe functionalized with a probe specific for at least one RNA biomarker selected from the group consisting of ut-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p.
[0128] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0129] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0130] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, and 105.
[0131] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0132] In another aspect of the present disclosure, there is provided a detection system for diagnosing and / or monitoring TBI, comprising a sensor element according to the present disclosure and a detection device capable of detecting binding of a target RNA biomarker to a probe.
[0133] In some embodiments, the detection system further comprises a means for determining whether a target RNA biomarker is up-regulated or down-regulated.
[0134] In another aspect of the present disclosure, a method of determining a course of treatment for a subject suspected of having a TBI is provided, comprising applying a saliva sample obtained from the subject to a detection system according to the present disclosure, and providing treatment for the TBI if an upregulated or downregulated level of at least one RNA biomarker is detected.
[0135]
[0013] In another aspect of the present disclosure, a method of treating a subject suspected of TBI is provided, the method comprising: detecting any of Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-41 0, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-80 6, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-m determining whether an up-regulated or down-regulated level of at least one RNA biomarker selected from the group consisting of iR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p is detectable in a saliva sample obtained from the subject; and providing the subject with treatment for TBI if an up-regulated or down-regulated level of the at least one RNA biomarker is detected.
[0136] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0137] In another aspect of the present disclosure, a method for detecting RNA biomarkers in a saliva sample is provided, the method including obtaining a saliva sample from a human subject; filtering the saliva sample with any of the following: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, p with at least one oligonucleotide primer complementary to at least one RNA biomarker selected from the group consisting of ut-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p; amplifying the at least one RNA biomarker using polymerase chain reaction; and detecting the amplified RNA biomarker.
[0138] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0139] In another aspect of the present disclosure, a kit is provided for use in a method of diagnosing and / or monitoring traumatic brain injury (TBI) in the saliva of a human subject, the kit comprising: miR-1207, miR-1271, miR-1272, miR-1273, miR-1274, miR-1275, miR-1276, miR-1277, miR-1278, miR-1279, miR-1279-3p, miR-1271, miR-1272-4p, miR-1271, miR-1272-5p, miR-1271, miR-1271-6p, miR-1271, miR-1271-5 ... and at least one probe specific for at least one RNA biomarker selected from the group consisting of iR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p.
[0140] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0141] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0142] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, and 105.
[0143] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0144] In another aspect of the present disclosure, a composition is provided for use in a method of diagnosing and / or monitoring traumatic brain injury (TBI) in the saliva of a human subject, the composition comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-1271-6p, hsa-miR-1271-5 ... and at least one probe specific for at least one RNA biomarker selected from the group consisting of iR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, put-miR-1352, put-miR-1080, put-miR-750, put-miR-1003, put-miR-1098, hsa-miR-934, and hsa-miR-142-5p.
[0145] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0146] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0147] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, 102, 103, 104, and 105.
[0148] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0149] It will be understood that statements made herein with respect to any aspect of the invention may equally apply to any other aspect of the invention, where appropriate. Furthermore, various aspects and embodiments of the present disclosure may also be used in combination with various techniques, methods, systems, compositions, devices and / or disclosures, such as those described in WO 2017 / 153710 and WO 2018 / 138468, the entire disclosures of which are incorporated herein by reference.
[0150] Further Additional Aspects and Embodiments In further aspects, the present disclosure provides methods, sensor elements, detection systems, kits, and compositions comprising various differentially expressed RNA biomarkers suitable for use in, inter alia, diagnosing, monitoring, and treating traumatic brain injury (TB), including mild traumatic brain injury (mTBI), in human subjects.
[0151] As shown in Example 1 (below), in certain embodiments, suitable RNA biomarkers were identified following MiRNA qPCR validation studies performed on 176 saliva baseline samples (B), 42 samples from concussed players after injury (Ca group), 52 samples from concussed players after the match (Cb group) and 54 samples from concussed players 36-48 hours later (Cc group), 61 uninjured players after the match (Ub group), 45 uninjured players after 36-48 hours later (Uc group), 30 musculoskeletally injured players after the match (Mb group), and 24 musculoskeletally injured players after 36-48 hours later (Mc group).
[0152] The sequences and accession numbers of these RNA biomarkers are shown in Table 2 below. [Table 2-1] [Table 2-2] [Table 2-3] [Table 2-4]
[0153] As discussed in more detail in Example 1 (below), these biomarkers were found to be differentially expressed and statistically significant between different group comparisons and different time points (Ca vs. Ub, Cb vs. Ub, Cc vs. Uc, Ca vs. Mb, Cb vs. Mb, Cc vs. Mc, Ca vs. U+Mb, Cb vs. U+Mb, Cc vs. U+Mc, Ca vs. B, Cb vs. B, Cc vs. B).
[0154] According to one aspect of the present disclosure, there is provided a method of diagnosing and treating traumatic brain injury (TBI) in a human subject in need thereof, the method including obtaining a saliva sample from the subject; analyzing the saliva sample for detection of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *)、hsa-miR-148a-3p、hsa-miR-16-1-3p、hsa-miR-206、hsa-miR-21-5p、hsa-miR-29c-3p、hsa-miR-339-5p、hsa-miR-34b-3p、hsa-miR-425-5p、hsa-miR-449a、hsa-miR-497-5p、hsa-miR-671-3p、hsa-miR-6748-3p、hs a-miR-92a-3p, hsa-miR-934, put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-323, put-miR-325, put-miR-444, put -miR-465, put-miR-468, put-miR-469, put-miR-476, put-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, put-miR-893, put-miR-92, put-miR-958, put-miR-961, RNU4-6p, RNU6-4, RNU6- 45、RNU6-6、RNU6-7、RNU6-73、SNORA57、SNORD3B-2、tRNA120-AlaAGC、tRNA18-ArgCCT、tRNA27-MetCAT、tRNA2 -LeuTAA、tRNA73-ArgCCG、tRNA8-ThrAGT、tRNA9-TyrGTA、U2.3、U4.64、U6.1249、U6.168、U6.375、U6.428、U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684; determining the amount of the at least one RNA biomarker in the saliva sample; identifying subjects in which the amount of the at least one RNA biomarker is increased or decreased relative to a predetermined threshold or relative to the amount of the RNA biomarker in a control sample as having TBI; and treating the subjects identified as having TBI according to one or more of the following: administering one or more neuroprotective therapies to the subject.
[0155] Examples of neuroprotective therapies that may be selected by a clinician to treat TBI include, but are not limited to, statins, progesterone, corticosteroids, cell cycle inhibitors (such as flavopiridol, semi-synthetic flavonoids, and the purine analogs roscovitine and olomoucine), autophagy inhibitors including caspase inhibitors (the tetrapeptide caspase-3 inhibitor (z-DEVD-fmk), the pan-caspase peptide inhibitors Boc-aspartyl fluoromethyl ketone and Boc-aspartyl fluoromethyl ketone), inhibitors of poly(ADP-ribose) polymerase (PARP), anti-inflammatory agents (such as minocycline and anti-inflammatory cytokines (e.g., IL-10) or interleukin-1 receptor antagonists (IL-1ra)), sulfonylurea receptor 1 (SUR1)-regulated calcium channel inhibitors (such as glibenclamide), substance P (SP) antagonists, diketopiperazines, and cyclosporine A.
[0156] In some embodiments, the method further comprises identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0157] In another aspect of the present disclosure, a method of diagnosing and / or monitoring traumatic brain injury (TBI) in a subject is provided, the method comprising determining a level of at least one RNA biomarker in a saliva sample obtained from the subject, the at least one RNA biomarker being hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR -339-5p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, h sa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-934, put-miR-1003, put-miR-1080, put-miR-1084, p ut-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put- miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-468, put-miR-469, put-miR-476, pu t-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, put-miR-893, put -miR-92, put-miR-958, put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG SNORD3B-2, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6.428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684, or any combination thereof.
[0158] In some embodiments, either an upregulated or downregulated level of at least one RNA biomarker is indicative of TBI.
[0159] In some embodiments, a subject is diagnosed with TBI if the level of at least one RNA biomarker is above or below a predetermined threshold, or is increased or decreased compared to a control.
[0160] In some embodiments, the method further comprises identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0161] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0162] In another aspect of the present disclosure, a sensor element for a detection system for diagnosing and / or monitoring TBI is provided, the sensor element comprising: hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR-339-5p, hsa-miR-34b- 3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-934 , put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-miR -188, put-miR-209, put-miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-468, put-miR-469, put-miR-476, pu t-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, put-miR-893, put-miR-92, put-miR-958, put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT , tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6.428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684.
[0163] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0164] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0165] In some embodiments, the probes are selected from the group consisting of SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115 , 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0166] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0167] In another aspect of the present disclosure, there is provided a detection system for diagnosing and / or monitoring TBI, comprising a sensor element according to the present disclosure and a detection device capable of detecting binding of a target RNA biomarker to a probe.
[0168] In some embodiments, the detection system further comprises a means for determining whether a target RNA biomarker is up-regulated or down-regulated.
[0169] In another aspect of the present disclosure, a method of determining a course of treatment for a subject suspected of having a TBI is provided, comprising applying a saliva sample obtained from the subject to a detection system according to the present disclosure, and providing treatment for the TBI if an upregulated or downregulated level of at least one RNA biomarker is detected.
[0170] In another aspect of the present disclosure, a method of treating a subject suspected of TBI is provided, the method comprising administering to a subject a therapeutically effective amount of one or more of: hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR-339-5p, hsa-miR-34b-3p, hsa-miR-425-5p , hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-934, put-miR-1003, put-miR-1080, put-miR -1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-323, put-miR-325, put-miR-444 , put-miR-465, put-miR-468, put-miR-469, put-miR-476, put-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, pu t-miR-893, put-miR-92, put-miR-958, put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, SNORA57, SNORD3B-2, tRNA120-Ala AGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6 The method includes determining whether an upregulated or downregulated level of at least one RNA biomarker selected from the group consisting of .428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684 is detectable in a saliva sample obtained from the subject, and providing the subject with treatment for TBI if an upregulated or downregulated level of the at least one RNA biomarker is detected.
[0171] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0172] In another aspect of the disclosure, a method for detecting RNA biomarkers in a saliva sample is provided, the method including obtaining a saliva sample from a human subject; filtering the saliva sample with RNA biomarkers selected from hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR-339-5p, hsa-miR-34b-3p, hsa-miR -425-5p, hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-934, put-miR-1003, put-mi R-1080, put-miR-1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-323, pu t-miR-325, put-miR-444, put-miR-465, put-miR-468, put-miR-469, put-miR-476, put-miR-594, put-miR-6, put-miR-71, put-miR-74 2, put-miR-806, put-miR-856, put-miR-893, put-miR-92, put-miR-958, put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU 6-73, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-T with at least one oligonucleotide primer complementary to at least one RNA biomarker selected from the group consisting of yrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6.428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684; amplifying the at least one RNA biomarker using polymerase chain reaction; and detecting the amplified RNA biomarker.
[0173] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0174] In another aspect of the present disclosure, a kit is provided for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject, the kit comprising: hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR-339-5p, hsa-miR-34b- 3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-93 4, put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-mi R-188, put-miR-209, put-miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-468, put-miR-469, put-miR-476, p ut-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, put-miR-893, put-miR-92, put-miR-958 , put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCC The biomarkers comprise at least one probe specific to at least one RNA biomarker selected from the group consisting of T, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6.428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684.
[0175] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0176] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0177] In some embodiments, the probes are selected from the group consisting of SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115 , 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0178] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0179] In another aspect of the present disclosure, a composition for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject is provided, the composition comprising: hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-let-7i-5p, hsa-miR-103a-3p, hsa-miR-107, hsa-miR-1246, hsa-miR-126-3p (miR-126 * ), hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p(=miR-143), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144* ), hsa-miR-148a-3p, hsa-miR-16-1-3p, hsa-miR-206, hsa-miR-21-5p, hsa-miR-29c-3p, hsa-miR-339-5p, hsa-miR-34b- 3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-497-5p, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-92a-3p, hsa-miR-93 4, put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1204, put-miR-1207, put-miR-1306, put-mi R-188, put-miR-209, put-miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-468, put-miR-469, put-miR-476, p ut-miR-594, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-856, put-miR-893, put-miR-92, put-miR-958 , put-miR-961, RNU4-6p, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCC The biomarkers comprise at least one probe specific to at least one RNA biomarker selected from the group consisting of T, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.1249, U6.168, U6.375, U6.428, U6.601, UC022CJG1, YRNA-245, YRNA-255, and YRNA-684.
[0180] In some embodiments, the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0181] In some embodiments, the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0182] In some embodiments, the probes are selected from the group consisting of SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115 , 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0183] In some embodiments, the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0184] It will be understood that statements made herein in relation to any aspect of the invention may equally apply to any other aspect of the invention, as appropriate.
[0185] example Next, an embodiment of the present invention will be described as an example.
[0186] Example 1 Salivary non-coding RNA: Next-generation biomarkers in concussed rugby union players Study design The MicroRNA Study of Concussion in Rugby Union (SCRUM Study) is a prospective observational study of ~1100 players from the top two tiers of senior professional domestic rugby in England, the Premiership and Champions. The study is embedded in the ongoing RFU injury surveillance program for the 2017-2018 season.
[0187] All players were asked, with prior written consent, to provide a single baseline sample of approximately 2 mL of saliva at their club during preseason preparation (Group B), preferably before a training session, and to complete a consent form detailing sample processing and handling, data anonymization, and the right to revoke voluntary consent at any time. Researchers recorded the timing of these baseline samples in relation to preseason training sessions, other injuries, or supplement / medication use.
[0188] Throughout the season, players were asked to provide saliva samples whenever they entered the head injury assessment (HIA) process (Group C). Players who were removed from the match for pitchside evaluation provided samples during this medical evaluation, referred to as HIA1, and constituted Group C. If a player exhibited clear signs of concussion, also known as Category 1 signs, in accordance with World Rugby guidance, pitchside evaluation was not required and the player was immediately and permanently removed from the match. These players formed the "immediately permanently removed" group (IPR). All players who were evaluated pitchside for concussion or who were immediately and permanently removed from the match due to concussion were evaluated immediately after the match (HIA2) and 36-48 hours after the match (HIA3). Samples were collected at each of these evaluations. Therefore, we obtained saliva samples from Groups C and IPR immediately after the match (Group Cb and Group IPRb, respectively) and 36-48 hours after the match (Group Cc and Group IPRc, respectively).
[0189] The HIA at each time point took the form of the modified Sports Concussion Assessment Tool, 5th Edition (SCAT5), a well-studied diagnostic tool in the context of sports-related concussion. This was complemented by baseline performance data from these assessments collected by clubs during preseason preparation. In this way, we noninvasively investigated the presence of concussion-diagnostic miRNAs at multiple time points and aligned these miRNAs with standardized clinical assessments and diagnostic thresholds for concussion performed by clinicians with experience in rugby head injuries. All IPR players were considered concussed. Players in Group C were considered concussed if they failed the HIA at any time point (HIA1, HIA2, or HIA3); otherwise, they were considered not concussed. Players who participated in the HIA process with suspected concussion but were cleared were analyzed separately.
[0190] Players diagnosed with a concussion were asked to provide an additional saliva sample once they were cleared by their team physician to return to competitive play (Stage VI) (Cd group and IPRd) according to the Berlin Consensus Graded Return to Play (GRTP) protocol.
[0191] Whenever a player was sidelined for an HIA, the club's medical team also interviewed an "uninjured control" (U group) player and collected saliva samples after the match (Ub group) and 36-48 hours later (Uc group). The "uninjured control" was a non-concussive player who, whenever possible, played in the same match, in the same playing position, and for approximately the same duration (minutes) as the concussed player. This allowed for the characterization of miRNA profiles in response to the physical stress of athletic activity and exposure to subconcussive blows that may occur when participating in collision sports.
[0192] To exclude contamination by non-neurological injuries and musculoskeletal trauma, the club's health personnel collected samples from players (group M) who had left the playing field due to musculoskeletal injuries (orthopedic controls) at the same time points as the "uninjured control" groups (groups Mb and Mc).
[0193] Ethics and Dissemination The SCRUM study is being conducted under the University of Birmingham (UoB) ethical guidelines (ERN_11-0429AP28) as part of the Recurrent Concussion in Sport (RECOS) study. The study was approved by the East of England-Essex Research Ethics Committee (REC) on 22 September 2017, REC 17 / EE / 0275; IRAS 216703.
[0194] Saliva collection Samples were collected over a total of 8 weeks using the Oragene®-RNA RE-100 Saliva Self-Collection Kit (DNA Genotek) containing RNA stabilizing solution. Saliva was collected from each participant at enrollment after rinsing with tap water. Samples were then transported to the University of Birmingham, where they were processed, frozen, and stored according to the sample container manufacturer's guidelines.
[0195] Materials and Methods Next-generation sequencing – discovery phase All experiments were performed at QIAGEN Genomic Services, Germany.
[0196] RNA preparation RNA preparation was performed according to Oragene's recommendations, except that the miRNeasy kit (Qiagen, Germany) was used instead of the RNeasy kit.
[0197] Next-generation sequencing Library preparation and sequencing Library preparation was performed using the QIAseq miRNA Library Kit (QIAGEN). A total of 5 μl of total RNA was converted into a microRNA NGS library. UMI-containing adapters were ligated to the RNA. The RNA was then converted to cDNA. The cDNA was amplified using PCR (22 cycles), and an index was added during PCR. After PCR, the sample was purified. Library preparation QC was performed using either a Bioanalyzer 2100 (Agilent) or a TapeStation 4200 (Agilent). Libraries were pooled in equimolar ratios based on insert quality and concentration measurements. The library pool was quantified using a qPCR ExiSEQ LNA™ Quant Kit (Exiqon). The library pool was then sequenced on a NextSeq500 sequencing instrument according to the manufacturer's instructions (NEBNext Multiplex Small RNA Library Prep Set for Illumina) to generate libraries approximately 163–175 base pairs in size. The bcl2fastq software (Illumina) was used to generate demultiplexed and raw data as FASTQ files for each sample. The FASTQ data were validated using the FastQC tool (www.bioinformatics.babraham.ac.uk / proeects / fastqc / ).
[0198] trimming cutadapt was used to extract adapter and UMI information in raw reads, and the output from cutadapt was used to remove adapter sequences and collapse reads by UMI with an internal script.
[0199] UMI correction According to the experimental protocol, each raw read was expected to contain, starting from the 5' end, an insert sequence, an adapter sequence, a 12-nt UMI sequence, and other ligated sequences. Depending on the read length and insert length, not all parts were present in all reads. To correct for PCR bias using UMI information, the raw reads were processed as described below.
[0200] 1. Use cutadapt on the raw reads with the provided adapter sequences and get an output with information about the presence of adapters in each read.
[0201] 2. Analyze the output of cutadapt and keep only the reads that meet all of the following requirements: -Adapter included with lead. -The insert sequence must be equal to or greater than the minimum insert length (default 16nt). -UMI sequences must be equal to or greater than the minimum UMI length (default 10nt).
[0202] 3. Extract insert sequences from reads that do not contain full-length UMI sequences from step 2 and output them as partial UMI reads.
[0203] 4. Examine the full-length UMI reads output in step 2 and identify all unique insert + UMI combinations. Extract the insert sequences from each unique insert + UMI combination as complete UMI reads.
[0204] 5. Combine the partial UMI read and the complete UMI read as the output of the UMI correction.
[0205] mapping A reference profile of the sequencing data for each sample was obtained using the whole human genome sequence GRCh37 downloaded from the Genome Reference Consortium and mirbase_20 as the annotation reference. Reads were aligned to miRbase using Bowtie2. The mapping criterion for aligning reads to spike-in, enriched sequences, and miRBase was that the read must match the reference sequence perfectly. For mapping to the genome, a limit of one mismatch was allowed in the first 32 bases of the read. Indels were not allowed in the mapping. Unaligned reads were mapped to the host reference genome and used as input for mirPara and miRbase to predict putative miRNAs.
[0206] Differential expression The aligned reads were counted, and differential expression analysis, p-values of significantly differentially expressed microRNAs, and Benjamini-Hochberg false discovery rates were performed using EdgeR. For normalization, the trimmed mean M-value (TMM) method based on the log-fold expression levels and absolute gene changes between samples was used.
[0207] Analysis without a dependent variable Principal component analysis is performed in R using TMM-normalized quantification from a defined collection of samples as input.
[0208] miRNA qPCR data analysis - validation study All experiments were performed at QIAGEN Genomic Services, Germany.
[0209] MiRNA qPCR validation was performed on 176 saliva baseline samples (B), 42 samples from concussed players after injury (Ca group), 52 samples from concussed players after the match (Cb group) and 54 samples from concussed players 36-48 hours later (Cc group), 61 uninjured players after the match (Ub group), 45 uninjured players after 36-48 hours later (Uc group), 30 musculoskeletally injured players after the match (Mb group), and 24 musculoskeletally injured players after 36-48 hours later (Mc group).
[0210] RNA extraction and qPCR Total RNA was extracted from samples using the miRNeasy Serum / Plasma Kit (QIAGEN) according to the manufacturer's instructions. Purified total RNA was eluted in a final volume of 32 μl. 14 μl of RNA was reverse transcribed in a 70 μl reaction using the miRCURY LNA RT Kit (QIAGEN). cDNA was diluted 50-fold and assayed in a 10 μl PCR reaction according to the protocol for miRCURY LNA miRNA PCR. Each miRNA was assayed once by qPCR with a miRNA Ready-to-Use PCR, custom panel, using the miRCURY LNA SYBR Green Master Mix. Negative controls in which template was omitted from the reverse transcription reaction were performed and profiled similarly to the samples. Amplification was performed in a 384-well plate using a LightCyclerp 480 Real-Time PCR System (Roche). Amplification curves were analyzed using Roche LC software for both Cq determination (by second derivative method) and melting curve analysis. Amplification efficiency was calculated using an algorithm similar to that used in LinReg software. All assays were examined for separate melting curves to confirm that the Tm was within the known specifications of the assay. Furthermore, to be included in the data analysis, an assay had to be detected at 0 Cq lower than the negative control and at a Cq less than 37. Data that did not meet these criteria were excluded from further analysis. Cq was calculated as the second derivative. Normalization was performed based on the average of hsa-miR-29c-3p and hsa-let-7b-5p (custom normalizer assay), and the two more stable miRs were identified across all samples using Normofinder software (33). The formula used to calculate the normalized Cq value is the difference between the custom normalizer assay average Cq and the assay Cq (miRNA of interest). Higher values indicate that the miRNA is more abundant in that sample.
[0211] statistical analysis All analyses were performed using SPSS 20.0 (SPSS Inc., Chicago, IL, USA).
[0212] Group comparison We used a two-sided independent-samples t-test procedure to compare the means of the two case groups. The two-sided paired t-test procedure compares the means of two variables for a single group. The procedure calculates the difference between the values of the two variables for each case and tests whether the mean is different from 0. Bootstrapping is a method for deriving robust estimates of the standard error and confidence interval of an estimate. Bootstrapping is most useful as an alternative to parametric estimation when parametric inference is not possible.
[0213] The one-way ANOVA procedure produces a one-way analysis of variance for a quantitative dependent variable with a single factor (independent) variable. Analysis of variance is used to test the hypothesis that several means are equal. This technique is an extension of the two-sample t-test. In addition to determining that there is a difference in means, one may want to know which means differ. There are two types of tests for comparing means: a priori contrast tests and post hoc tests. Contrasts are tests set up before the experiment is conducted, while post hoc tests are conducted after the experiment has been conducted.
[0214] The General Linear Model Repeated Measures analyzes a set of related dependent variables that represent different measurements of the same attribute. It is possible to define one or more within-subjects factors for use in GLM Repeated Measures.
[0215] discriminant analysis Discriminant analysis (DA) was applied to the Cq values provided by Qiagen.
[0216] The main objective of DA was to find the dimensions along which groups differ and to find a classification function to predict group membership from a combination of variables (predictors). In this case, the two groups were subjects who had sustained a concussion (C+IPR group) and subjects who had not been injured (U group), and the predictors were a set of biomarkers selected from the NGS study.
[0217] DA uses data that have already been classified into groups to derive rules for classifying new (and unclassified) individuals based on observed variable values.
[0218] In univariate terms (t-tests, one-way anova), a significant difference between groups means that, given a score, it is possible to predict which group it comes from. In DA, efforts are often made to interpret the pattern of differences between predictors as a whole, in an attempt to understand the dimensions along which groups reliably differ.
[0219] With only two groups, there is only one linear combination of predictors that best separates them. The separation of the two group centroids (a multivariate version of the mean) represents the best linear combination of predictors that separates Group 1 and Group 2. The parallel lines connecting the two centroids represent the linear combination or discriminant function, the pattern of scores that distinguishes the two groups.
[0220] DA has two facets, and one or both may be emphasized in any given research application. Researchers may be interested in decision rules for classifying cases where the number of dimensions and their meanings are irrelevant. Alternatively, they may focus on interpreting DA results in terms of combinations of predictors (discriminant functions) that separate various groups from each other.
[0221] The classification function is used to predict group membership of new cases and to check the validity of classification of cases from the same sample by cross-validation.
[0222] Canonical correlations describe the percent of variance explained by the discriminant function scores between these groups. Canonical correlations are multiple correlations because there are multiple variables on both sides of the regression equation and, for each discriminant function, when squared, they indicate the proportion of variance shared between the groups and predictors on that function.
[0223] In standard (direct) dynamic analysis, as in standard multiple regression, all predictors enter the equation at once, and each predictor is assigned only its unique association with the group. The variance shared among predictors contributes to the overall relationship, but not to any one predictor.
[0224] In stepwise DA, a statistical criterion can be used to generate a reduced set of predictors.
[0225] All analyses were performed using SPSS 20.0 (SPSS Inc., Chicago, IL, USA).
[0226] ROC curve analysis The diagnostic performance of a test, or the accuracy of a test to distinguish experimental cases from normal cases, is assessed using receiver operating characteristic (ROC) curve analysis. ROC curves can also be used to compare the diagnostic performance of two diagnostic tests.
[0227] When considering the results of a particular test in two populations, one with the characteristic and the other without, complete separation between the two groups is rarely observed. In fact, the distributions of test results overlap.
[0228] In an ROC curve, the true positive rate (sensitivity) is plotted as a function of the false positive rate (100 - specificity) for different cutoff points of the parameter. Each point (cutoff) on the ROC curve represents a sensitivity / specificity pair corresponding to a particular decision threshold. The area under the ROC curve (AUC) is a measure of how well the parameter distinguishes between two diagnostic groups (experimental / normal). A test that is perfectly discriminatory (no overlap between the two distributions) will have an ROC curve that passes through the upper left corner (100% sensitivity, 100% specificity). Therefore, the closer the ROC curve is to the upper left corner, the higher the overall accuracy of the test.
[0229] ROC statistics Sensitivity: The probability that the test result will be positive when the trait is present (the true positive rate expressed as a percentage).
[0230] Specificity: The probability that the test result will be negative in the absence of the trait (the true negative rate expressed as a percentage).
[0231] Positive likelihood ratio: The ratio between the probability of a positive test result in the presence of the trait and the probability of a positive test result in the absence of the trait, i.e., = true positive rate / false positive rate = sensitivity / (1-specificity)
[0232] Negative likelihood ratio: the ratio between the probability of a negative test result in the presence of the trait and the probability of a negative test result in the absence of the trait, i.e., = false negative rate / true negative rate = (1-sensitivity) / specificity
[0233] result Sample Size A total of 906 players were recruited for the study between July 2017 and April 2018. This included players from 11 Premiership clubs and 11 IPA Championship clubs. One Premiership club chose not to participate after consultation with the RFU, as it was already involved in a concussion research project run by another organization that involved saliva collection for a different purpose. One IPA Championship club chose not to participate because it found it difficult to meet the study requirements due to limited medical staff resources, while another IPA Championship club decided to withdraw from the study for similar reasons, but after players had provided baseline samples. This brings the total number of Premiership clubs and 10 IPA Championship clubs to 11 participating in the in-season head injury event sample collection.
[0234] Overall, a total of 229 head injuries occurred across both sports. This number combines all cases in which a player was immediately and permanently removed from play due to exhibiting "Category 1" signs and symptoms, as well as all cases in which a player was temporarily removed from play for an off-field HIA1 assessment. Samples were received from a total of 129 of these cases, resulting in an overall compliance of 56%.
[0235] Samples were received from 73 (61%) of the 120 cases where the on-field or subsequent diagnosis was a possible concussion. Within this group, 26 (36%) were cases where the player was immediately and permanently removed from play due to "Category 1" signs and symptoms. Samples were received from 42 (39%) of the 109 cases where the on-field or subsequent diagnosis ruled out a possible concussion.
[0236] 71 (55%) received matched, uninjured control specimens. 39 (30%) received matched, musculoskeletally injured control specimens.
[0237] Next-generation sequencing – discovery phase MicroRNA / small RNA next-generation sequencing (NGS) was performed in an initial discovery phase using 15 saliva baseline samples (B), 15 samples from concussed players (10 concussed (C) and 5 IPR), and 20 controls (10 musculoskeletally injured (M) and 10 uninjured players (U)). All samples analyzed in this phase were collected after the match (time point b).
[0238] On average, 16.3 million reads were obtained per sample. A detailed microRNA / small RNA NGS data analysis report was obtained. The differential expression analysis step assumes that each microRNA is unique and attempts to distinguish between biological and technical variations within an experiment.
[0239] P values for significantly differentially expressed microRNAs were estimated using an exact test for the negative binomial distribution. A list of microRNAs predicted to be differentially expressed between given experimental conditions was generated. This list included various RNA fragments, including known microRNAs, other small non-coding RNAs, and predicted microRNAs (denoted as put-miRs) differentially expressed between the C+IP and M+U groups, the B and C+IPR groups, and the B and M+U groups.
[0240] Selection for validation A panel of microRNAs, small RNAs, and put-microRNAs that showed differential expression in the C+IPR and M+U groups was selected according to the following parameters: FDR < 0.5 or p-value < 0.05. A panel consisting of 168 small RNAs, 38 known microRNAs, and 233 put-miRs was used for a validation study by qPCR. After this test, the most significantly altered biomarkers were reduced to 30 known microRNAs, 34 putative miRs, and 28 small non-coding RNAs, which were further analyzed in 405 samples. The Cq values obtained from the two qPCR validation sets were finally merged, resulting in a total of 598 samples.
[0241] Statistical analysis - validation study SncRNAs differentially expressed in group C versus group U+M Concussion samples were compared with non-injured and musculoskeletal injury samples at different time points. Table 5 shows the sncRNAs that survived to p-values <0.05 among the different comparisons: Ca vs. U+Mb (since no samples were collected at time point a for categories U and M, the Ca group was compared to the closest time point, U+Mb), Cb vs. U+Mb, and Cc vs. U+Mc. The table also includes the AUC, CI, count, CT mean, SD, ddcq, fold change, and power analysis for each individual biomarker.
[0242] Selected biomarkers from the STEPWISE analysis are shown in the grey cells of Table 5, showing AUCs of 0.86, 0.86, and 0.97 for the comparisons of Ca vs. U+Mb, Cb vs. U+Mb, and Cc vs. U+Mc, respectively.
[0243] SncRNAs differentially expressed in C vs. U groups Concussion samples were compared with uninjured controls only at different time points. Table 6 shows the sncRNAs that survived to p-values <0.05 within the different comparisons: Ca vs. Ub, Cb vs. Ub, and Cc vs. Uc. The table also includes the AUC, CI, count, CT mean, SD, ddcq, fold change, and power analysis for each individual biomarker. Selected biomarkers from the STEPWISE analysis are shown in the gray cells of Table 6 and show AUCs of 0.83, 0.91, and 0.97 for the following comparisons: Ca vs. Ub, Cb vs. Ub, and Cc vs. Uc, respectively.
[0244] SncRNAs differentially expressed in group C versus group B Concussion samples were compared with baseline data from the same controls. Table 7 shows sncRNAs that survived to p-values <0.05 among the different comparisons: Ca vs. B, Cb vs. B, and Cc vs. B. The table also includes counts, CT mean, SD, ddcq, fold change, and power analysis for each individual biomarker.
[0245] SncRNAs differentially expressed between C and M groups Concussion samples were compared with musculoskeletal injury controls only at different time points. Table 8 shows sncRNAs that survived to p-values <0.05 within the different comparisons: Ca vs. Mb, Cb vs. Mb, and Cc vs. Mc. The table also includes the AUC, CI, count, CT mean, SD, ddcq, fold change, and power analysis for each individual biomarker. Selected biomarkers from the STEPWISE analysis are shown in the gray cells of Table 8 and show AUCs of 0.96, 0.83, and 0.94 for the following comparisons: Ca vs. Mb, Cb vs. Mb, and Cc vs. Mc, respectively.
[0246] The differentially expressed microRNAs (FDR<0.5 or p-value<0.05) between the Cb and U+Mb groups, selected by NGS analysis and used for the first qPCR validation step, are shown in Table 3A below. [Table 3-1] [Table 3-2]
[0247] Other differentially expressed sncRNAs (FDR<0.5 or p-value<0.05) between the Cb and U+Mb groups, selected by NGS analysis and used for the first qPCR validation step, are shown in Table 3B below. [Table 4-1] [Table 4-2] [Table 4-3] [Table 4-4] [Table 4-5]
[0248] The putative differentially expressed microRNAs (FDR<0.5 or p-value<0.05) between the Cb and U+Mb groups, selected by NGS analysis and used for the first qPCR validation step, are shown in Table 3C below. [Table 5-1] [Table 5-2] [Table 5-3] [Table 5-4] [Table 5-5] [Table 5-6] [Table 5-7]
[0249] The microRNA IDs selected for the second qPCR validation step are shown in Table 4A below. [Table 6]
[0250] The genomic locations and sequences of the putative microRNAs selected for the second qPCR validation step are shown in Table 4B below. [Table 7-1] [Table 7-2]
[0251] The genomic locations and sequences of other sncRNAs selected for the second qPCR validation step are shown in Table 4C below. [Table 8-1] [Table 8-2]
[0252] The differentially expressed SncRNAs in the C group versus the U+M group at the three time points are shown in Table 5 below, which also includes the AUC, CI, count, CT mean, SD, ddcq, fold change and power analysis for each individual biomarker, as well as STEPWISE analysis. [Table 9-1] [Table 9-2] [Table 9-3]
[0253] The differentially expressed SncRNAs in group C versus group U at the three time points are shown in Table 6 below, which also includes the AUC, CI, count, CT mean, SD, ddcq, fold change and power analysis for each individual biomarker, as well as STEPWISE analysis. [Table 10-1] [Table 10-2] [Table 10-3]
[0254] SncRNAs that were differentially expressed in Group C versus Group B at the three time points are shown in Table 7 below. The table also includes counts, CT mean, SD, ddcq, fold change and power analysis for each individual biomarker. [Table 11-1] [Table 11-2]
[0255] The differentially expressed SncRNAs in Group C versus Group M at the three time points are shown in Table 8 below, which also includes the AUC, CI, count, CT mean, SD, ddcq, fold change and power analysis for each individual biomarker, as well as STEPWISE analysis. [Table 12-1] [Table 12-2] [Table 12-3]
[0256] First Set of Example Embodiments of the Present Disclosure A1. A method of diagnosing and treating traumatic brain injury (TBI) in a human subject in need thereof, the method comprising: obtaining a saliva sample from a subject; Saliva samples were converted to Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR- 6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, pu with a probe comprising a nucleic acid capable of binding to at least one RNA biomarker selected from the group consisting of t-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352; determining the amount of at least one RNA biomarker in the saliva sample; identifying a subject having a TBI in which the amount of at least one RNA biomarker is increased or decreased relative to a predetermined threshold or relative to the amount of the RNA biomarker in a control sample; and One or more of the following: subjecting the subject to a language test, a cognitive test, a motor test, or an optical test, or any combination of the foregoing; subjecting the subject to diagnostic imaging in the form of CT or MRI or a combination thereof; and / or administering one or more neuroprotective therapies to the subject treating a subject identified as having a TBI according to A method comprising:
[0257] A2. The method of claim A1, further comprising identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0258] B1. A method of diagnosing and / or monitoring traumatic brain injury (TBI) in a subject, the method comprising determining a level of at least one RNA biomarker in a saliva sample obtained from the subject, the at least one RNA biomarker being Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put- miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352, or any combination thereof.
[0259] B2. The method of claim B1, wherein either an upregulated or downregulated level of at least one RNA biomarker is indicative of TBI.
[0260] B3. The method of claim B1, wherein the subject is diagnosed with TBI if the level of at least one RNA biomarker is above or below a predetermined threshold, or is increased or decreased compared to a control.
[0261] B4. The method of claim B1, further comprising identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0262] B5. The method of any one of Claims B1 to B4, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0263] C1. A sensor element for a detection system for diagnosing and / or monitoring TBI, the sensor element comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1 271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352.
[0264] C2. The sensor element of claim C1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0265] C3. The sensor element of claim C1 or C2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0266] C4. The sensor element of claim C1 or C2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, and 99.
[0267] C5. The sensor element of any one of C1 to C4, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0268] D1. A detection system for diagnosing and / or monitoring TBI comprising a sensor element according to the present disclosure and a detection device capable of detecting binding of a target RNA biomarker to a probe.
[0269] D2. The detection system of claim D1, further comprising a means for determining whether a target RNA biomarker is up-regulated or down-regulated.
[0270] E1. A method for determining a course of treatment for a subject suspected of having a TBI, comprising applying a saliva sample obtained from the subject to a detection system according to the present disclosure, and providing treatment for the TBI if an upregulated or downregulated level of at least one RNA biomarker is detected.
[0271] F1. A method of treating a subject suspected of having a TBI, the method comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR -6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put- determining whether an up-regulated or down-regulated level of at least one RNA biomarker selected from the group consisting of miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352 is detectable in a saliva sample obtained from the subject; and providing the subject with treatment for TBI if an up-regulated or down-regulated level of at least one RNA biomarker is detected; A method comprising:
[0272] F2. The method of claim F1, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0273] G1. A method for detecting an RNA biomarker in a saliva sample, the method comprising: obtaining a saliva sample from a subject; Saliva samples were converted to Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6. 748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, hsa-miR-1271-5p, hsa-miR-449a, put-m with at least one oligonucleotide primer complementary to at least one RNA biomarker selected from the group consisting of miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352. amplifying at least one RNA biomarker using polymerase chain reaction; and detecting the amplified RNA biomarker.
[0274] G2. The method of claim G1, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0275] H1. A kit for use in a method of diagnosing and / or monitoring traumatic brain injury (TBI) in the saliva of a human subject, the kit comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, ... A kit comprising at least one probe specific to at least one RNA biomarker selected from the group consisting of hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352.
[0276] H2. The kit of claim H1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0277] H3. The kit of claim H1 or H2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0278] H4. The kit of claim H1 or H2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, and 99.
[0279] H5. The kit of any one of Claims H1 to H4, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0280] I1. A composition for use in a method of diagnosing and / or monitoring traumatic brain injury (TBI) in the saliva of a human subject, the composition comprising: Y_RNA.255, RNU6-7, RNU6-4, RNU6-6, RNU6-73, RNU6-45, U6.375, put-miR-1207, U6.428, put-miR-742, hsa-miR-6748-3p, put-miR-6, put-miR-410, put-miR-476, put-miR-293, hsa-miR-34b-3p, A composition comprising at least one probe specific to at least one RNA biomarker selected from the group consisting of hsa-miR-1271-5p, hsa-miR-449a, put-miR-806, put-miR-71, put-miR-468, put-miR-1306, put-miR-1146, put-miR-1084, put-miR-92, put-miR-209, put-miR-961, U6.1249, put-miR-188, and put-miR-1352.
[0281] I2. The composition of claim I1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0282] I3. The composition of claim I1 or I2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0283] I4. The composition of claim I1 or I2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of SEQ ID NOs: 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, and 99.
[0284] I5. The composition of any one of claims I1 to I4, wherein the at least one RNA biomarker further comprises one or more miRNAs selected from the group consisting of hsa-miR-143-3p and hsa-miR-135b-5p.
[0285] Second Set of Example Embodiments of the Present Disclosure A1. A method of diagnosing and treating traumatic brain injury (TBI) in a human subject in need thereof, the method comprising: obtaining a saliva sample from a subject; The saliva sample is a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 * ), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; contacting the sample with a probe comprising a nucleic acid capable of binding to at least one RNA biomarker; determining the amount of at least one RNA biomarker in the saliva sample; identifying a subject having a TBI in which the amount of at least one RNA biomarker is increased or decreased relative to a predetermined threshold or relative to the amount of the RNA biomarker in a control sample; and One or more of the following: subjecting the subject to a language test, a cognitive test, a motor test, or an optical test, or any combination of the foregoing; subjecting the subject to diagnostic imaging in the form of CT or MRI or a combination thereof; and / or administering one or more neuroprotective therapies to the subject treating a subject identified as having a TBI according to
[0286] A2. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The method of claim A1, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0287] A3. The method of claim A1, further comprising identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0288] B1. A method of diagnosing and / or monitoring traumatic brain injury (TBI) in a subject, the method comprising determining the level of at least one RNA biomarker in a saliva sample obtained from the subject, wherein the at least one RNA biomarker is: a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. The method is selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof.
[0289] B2. The method of claim B1, wherein either an upregulated or downregulated level of at least one RNA biomarker is indicative of TBI.
[0290] B3. The method of claim B1, wherein the subject is diagnosed with TBI if the level of at least one RNA biomarker is above or below a predetermined threshold, or is increased or decreased compared to a control.
[0291] B4. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The method of any one of claims B1 to B3, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0292] B5. The method of claim B1, further comprising identifying the human subject as suitable for normal activity after successful treatment of the TBI.
[0293] At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The method of any one of claims B1 to B7, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0294] C1. A sensor element for a detection system for diagnosing and / or monitoring TBI, the sensor element comprising: a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 * ), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; A sensor element comprising a substrate functionalized with a probe specific for at least one RNA biomarker.
[0295] C2. The sensor element of claim C1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0296] C3. The sensor element of claim C1 or C2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0297] C4. The probe is selected from SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117, 118, 119, 220, 221, 222, 223, 224, 225, 226, 227, 228, 229, 230, 231, 232, 233, 234, 235, 236, 237, 238, 239, 240, 241, 242, 243, 244, 245, 246, 247, 248, 249, 250, 251, 252, 253, 254, 255, 256, 257, 258, 259, 300, 301, 302, 303, 304, 305, 306, 307, 308, 309, 310, 311, 312, 313, 314, 315 19, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0298] C5. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. A sensor element described in any one of claims C1 to C4, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0299] D1. A detection system for diagnosing and / or monitoring TBI comprising a sensor element according to the present disclosure and a detection device capable of detecting binding of a target RNA biomarker to a probe.
[0300] D2. The detection system of claim D1, further comprising a means for determining whether a target RNA biomarker is up-regulated or down-regulated.
[0301] E1. A method for determining a course of treatment for a subject suspected of having a TBI, comprising applying a saliva sample obtained from the subject to a detection system according to the present disclosure, and providing treatment for the TBI if an upregulated or downregulated level of at least one RNA biomarker is detected.
[0302] F1. A method of treating a subject suspected of having a TBI, comprising: a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 * ), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; determining whether an up-regulated or down-regulated level of at least one RNA biomarker is detectable in a saliva sample obtained from the subject; and If an upregulated or downregulated level of at least one RNA biomarker is detected, providing the subject with treatment for TBI.
[0303] F2. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The method of claim F1, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0304] G1. A method for detecting an RNA biomarker in a saliva sample, the method comprising: Obtaining a saliva sample from a human subject; The saliva sample is a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; contacting the sample with at least one oligonucleotide primer complementary to at least one RNA biomarker; amplifying at least one RNA biomarker using polymerase chain reaction; and detecting the amplified RNA biomarker.
[0305] G2. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 *), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The method of claim G1, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0306] H1. A kit for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject, comprising: a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 *), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; A kit comprising at least one probe specific for at least one RNA biomarker.
[0307] H2. The kit of claim H1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0308] H3. The kit of claim H1 or H2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0309] H4. The probe is selected from SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117, 118, 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150. The kit of claim H1 or H2, comprising a nucleic acid having at least 70% identity to a sequence that is the complement of 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0310] H5. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The kit of any one of claims H1 to H4, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0311] I1. A composition for use in a method for diagnosing and / or monitoring traumatic brain injury (TBI) in saliva from a human subject, comprising: a.hsa-miR-1246, hsa-miR-126-3p(miR-126 * ), hsa-miR-144-3p(miR-144 * ), hsa-miR-144-5p(=miR-144 * ), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-4 44, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNOR D3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-684, or any combination thereof; and / or b. selected from the group consisting of put-miR-1003, put-miR-1080, put-miR-1084, put-miR-1146(2), put-miR-1207, put-miR-1306, put-miR-188, put-miR-209, put-miR-468, put-miR-476, put-miR-6, put-miR-71, put-miR-742, put-miR-806, put-miR-92, put-miR-961, RNU6-4, RNU6-45, RNU6-6, RNU6-7, RNU6-73, U6.1249, U6.375, U6.428, and YRNA-255, or any combination thereof; A composition comprising at least one probe specific for at least one RNA biomarker.
[0312] I2. The composition of claim I1, wherein the probe comprises a nucleic acid capable of binding to at least one RNA biomarker.
[0313] I3. The composition of claim I1 or I2, wherein the probe comprises a nucleic acid having at least 70% identity to a sequence that is the complement of the sequence of the target RNA biomarker.
[0314] I4. The probe is selected from the group consisting of SEQ ID NOs: 1, 2, 14, 16, 23, 26, 27, 29, 39, 40, 48, 71, 72, 73, 74, 75, 77, 78, 79, 80, 81, 82, 84, 85, 86, 87, 89, 97, 98, 99, 100, 101, 102, 103, 104, 105, 106, 107, 108, 109, 110, 111, 112, 113, 114, 115, 116, 117, 118, , 119, 120, 121, 122, 123, 124, 125, 126, 127, 128, 129, 130, 131, 132, 133, 134, 135, 136, 137, 138, 139, 140, 141, 142, 143, 144, 145, 146, 147, 148, 149, and 150.
[0315] I5. At least one RNA biomarker is a.hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p(=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, and hsa-miR-934, or any combination thereof; and / or b. The composition of any one of claims I1 to I4, further comprising one or more miRNAs selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, and hsa-miR-92a-3p, or any combination thereof.
[0316] Other advantages, obvious and / or inherent in the present disclosure, will be apparent to those skilled in the art. It will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations. This is contemplated by and is within the scope of the claims. Because many possible embodiments can be made from the present disclosure without departing from the scope of the disclosure, it should be understood that all matter described or shown in the accompanying drawings should be interpreted as illustrative and not in a limiting sense. [Sequence List Free Text]
[0317] Sequence Listing 153 <223> / note="Explanation of unclear points: 'DEVD' Caspase-3 Inhibitor Sequence"
Claims
1. 1. A method of providing information for diagnosing and / or monitoring traumatic brain injury (TBI) in a subject, the method comprising determining the level of at least one RNA biomarker in a saliva sample obtained from the subject, wherein the at least one RNA biomarker is hsa-miR-1246; The saliva sample is obtained 2 to 12 hours after injury, provided that: An upregulated level of said at least one RNA biomarker is indicative of TBI. method.
2. 2. The method of claim 1, wherein the information is used to diagnose a subject as having TBI, and wherein the subject is diagnosed as having TBI if the level of the at least one RNA biomarker is above a predetermined threshold or is increased compared to a control.
3. 10. The method of claim 1, wherein the saliva sample is obtained 4 to 12 hours after injury.
4. obtaining one or more additional saliva samples from the subject at one or more additional times after the injury, and repeating the detection and amplification steps for each additional sample; 2. The method of claim 1, wherein the one or more additional saliva samples are obtained during a post-injury period selected from 4 to 12 hours after the injury and until the expression level of at least one of the RNA biomarkers returns to a predetermined threshold or the amount of the RNA biomarker in a control sample, and wherein the at least one RNA biomarker is hsa-miR-1246.
5. detecting the amount of the at least one RNA biomarker is performed using a PCR-based assay or any assay suitable for detecting at least one RNA biomarker; When using the PCR-based assay, the predetermined threshold corresponds to a fold change of 1.5 or greater using the 2 delta delta CT (2-ΔΔCT) method; The method of any of claims 1 to 4, wherein the predetermined threshold corresponds to a fold change of 2 or greater using the 2 delta delta CT (2-ΔΔCT) method.
6. The method of any one of claims 1 to 5, wherein the at least one RNA biomarker further comprises one or more miRNAs: a. hsa-let-7i-5p, hsa-miR-107, hsa-miR-126-5p (=miR-126 * ), hsa-miR-135b-5p, hsa-miR-142-3p, hsa-miR-142-5p, hsa-miR-143-3p (=miR-143), hsa-miR-148a-3p, hsa-miR-206, hsa-miR-29c-3p, hsa-miR-34b-3p, hsa-miR-425-5p, hsa-miR-449a, hsa-miR-671-3p, hsa-miR-6748-3p, hsa-miR-934, or any combination thereof, and / or a miRNA selected from the group consisting of hsa-let-7a-5p, hsa-let-7b-5p, hsa-let-7f-5p, hsa-miR-103a-3p, hsa-miR-21-5p, hsa-miR-92a-3p, or any combination thereof; or b. hsa-miR-126-3p (= miR-126 * ), hsa-miR-144-3p (miR-144*), hsa-miR-144-5p (= miR-144*), hsa-miR-16-1-3p, hsa-miR-339-5p, hsa-miR-497-5p, put-miR-1204, put-miR-323, put-miR-325, put-miR-444, put-miR-465, put-miR-469, put-miR-594, put-miR-856, put-miR-893, put-miR-958, RNU4-6p, SNORA57, SNORD3B-2, tRNA120-AlaAGC, tRNA18-ArgCCT, tRNA27-MetCAT, tRNA2-LeuTAA, tRNA73-ArgCCG, tRNA8-ThrAGT, tRNA9-TyrGTA, U2.3, U4.64, U6.168, U6.601, UC022CJG1, YRNA-245, and YRNA-68 A miRNA selected from:
7. Use of a sensor element for diagnosing and / or monitoring TBI in a method according to any one of claims 1 to 6, provided that the sensor element is in a detection system; and the sensor element comprises a substrate functionalized with a probe specific for at least one RNA biomarker; wherein the at least one RNA biomarker comprises hsa-miR-1246, and the probe comprises a nucleic acid capable of binding to the at least one RNA biomarker and having a sequence that is the complement of the sequence of SEQ ID NO:
110.
8. Use of a detection system in the method according to any one of claims 1 to 6, wherein the detection system comprises: a sensor element comprising a substrate functionalized with a probe specific for at least hsa-miR-1246; and A detection device capable of detecting binding of a target RNA biomarker to the probe, wherein the probe comprises a nucleic acid having a sequence that is the complement of SEQ ID NO: 110, capable of binding to at least one RNA biomarker.
9. 9. The use of the detection system of claim 8, wherein the detection system further comprises a means for determining whether the target RNA biomarker is upregulated or not.
10. The method of any of claims 1 to 6, further comprising detecting at least one RNA biomarker in a saliva sample by: obtaining a saliva sample from a human subject; contacting the saliva sample with at least one oligonucleotide primer complementary to at least one RNA biomarker and amplifying the at least one RNA biomarker using polymerase chain reaction; and Detecting the amplified RNA biomarkers.
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