System and method for bone loss assay
10557857 ยท 2020-02-11
Assignee
Inventors
Cpc classification
G01N21/6428
PHYSICS
G01N33/5302
PHYSICS
B01L2300/041
PERFORMING OPERATIONS; TRANSPORTING
G01N2333/47
PHYSICS
B01L2300/069
PERFORMING OPERATIONS; TRANSPORTING
B01L3/5023
PERFORMING OPERATIONS; TRANSPORTING
G01N2333/916
PHYSICS
G01N2333/78
PHYSICS
International classification
Abstract
Disclosed are embodiments of a lateral flow test strip (LFTS) platform which measure osteocalcin (OC) and deoxypyridinoline (Dpd) in saliva to identify early indications of bone loss and minimize bone fracture risk associated with osteoporosis. The OC assay embodiments are based on the experimentally identified optimal markers which exhibit selectivity with very low false positives, and sensitivity relevant to clinical requirements. A prospective clinical study sampling of 20 patients demonstrated excellent correlation of OC in saliva with bone mineral density (BMD). Salivary OC and Dpd levels were validated with a standard commercial ELISA kit against serum (OC) and urine (Dpd).
Claims
1. A method for screening for osteoporosis comprising: a. obtaining a saliva sample from a subject; b. applying the saliva sample to a lateral flow test strip, wherein the strip comprises a conjugate pad deposited with a fluorescently labeled detector antibody, and at least one capture line reactive to osteocalcin; c. placing the test strip in a fluorescent reader calibrated to quantitatively measure osteocalcin concentration at a given sample volume; d. performing a screening diagnostic evaluation according to a quantitative measurement obtained from the reader; wherein the at least one capture line comprises a capture antibody specific to osteocalcin, and a control line; wherein the capture antibody and the fluorescently labeled detector antibody pair are chosen from the group consisting of: a. 940/939, b. 11F8/939, c. 2H9/939, d. 940/H10, e. 2H9/H10, f. 940/3G8, g. 11F8/3G8.
2. The method for screening for osteoporosis as in claim 1, wherein the conjugate pad fluorescent reagent is a labeled detector antibody conjugated to fluorescent microparticles which is paired with a capture antibody immobilized on the membrane on one of the at least one capture line.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) The disclosed LFTS platform is a rapid immunochromatographic assay comprised of a test strip with several membranes that house all the reagents necessary for the test. The analyte of interest is applied in the sample medium (OC or Dpd in saliva), wherein it is captured in the test in a sandwich-antibody immunocomplex coupled to fluorescent detection. Monoclonal antibodies specific for OC or Dpd are conjugated to fluorescently labeled microparticles and deposited on the conjugate pad. Upon adding the sample to the sample pad, the saliva resolubilizes the dried antibody conjugates and forms an analyte-antibody conjugate complex, which is captured by another monoclonal antibody specific for OC or Dpd immobilized to the nitrocellulose membrane. Excitation of captured fluorescent particles generates signal response proportional to the concentration of reagent in the sample.
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(15) Experimental results for determining optimal configuration of the LFTS system were conducted by the following procedure. Separate, finalized test strips for OC and Dpd were placed in plastic cassettes for testing. The cassettes have an open window to view the test results, and a sample port where the sample is applied. In this embodiment the widely-used Qiagen ESE test strip fluorescent reader was adapted and calibrated with customized optical settings of emission and excitation wavelengths to read the selected fluorescent label. Other readout devices can be used for the reported platform measurements; such as LRE/SOFIA by Quidel, Cell-phone readout by Holomics, and RDS-1500 PRO by Detekt Biomedical. Saliva samples from 20 donor patients were obtained. Collected saliva samples were kept frozen at 80 C. until tested. Frozen samples were thawed, centrifuged to remove large particulates, and diluted 1 to 1 with our running buffer. Tests were performed in triplicate with each saliva sample. After adding 100 uL of sample volume to each test, the tests flowed for 10 minutes before the results were read with the ESE reader.
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(18) A standard commercial enzyme-linked immunosorbent assay (ELISA) test kit was used to validate the embodiment LFTS platform with patient saliva samples. A correlation value of 0.85 was obtained with OC.
(19) In various embodiments salivary OC and Dpd concentrations are correlated with serum (OC) and urinary (Dpd) levels from the same patient using ELISA measurements. Samples are normalized by protein concentration to adjust for salivary specific gravity. The resulting high correlation confirms the reliability of salivary markers for the disclosed embodiment.
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(21) Note that for purposes of testing various embodiments, after adding 100 uL of sample volume to each test, the tests flowed for 10 minutes before the results were read with the ESE reader.
(22) To determine the optimum LFA components, incremental assay optimization steps were carried out for both OC and DPD assays, including capture antibody concentration, assay running buffers, purification of the antibody reagents, addition of surfactants, selection of LFA membranes, conjugate pad selection, and fabrication/drying protocols.
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(24) Salivary OC and Dpd concentrations were correlated with serum (OC) and urinary (Dpd) levels from the same patient using ELISA measurements. Samples were normalized by protein concentration to adjust for salivary specific gravity. The resulting high correlation suggested the reliability of salivary markers. Shown in
(25) A standard commercial ELISA test kit was used to validate the disclosed LFTS platform with patient saliva samples. A correlation value of 0.85 was obtained with OC.
(26) In various embodiments, the disclosed quantifiable LFTS may contain multiplexed biomarkers for both OC and Dpd. The LFTS shown in
(27) In various embodiments, additional biomarkers are utilized in the disclosed LFTS in either the disclosed single or multiplexed quantifiable methodology. Bone turnover biomarkers are represented in compounds such as collagen precursors, enzymes, and by-products, or degradation products involved with the bone formation (osteoblast) and bone resorption (osteoclast) processes. In various embodiments, one or more of these biomarkers are utilized in the disclosed LFTS for optimal or additional accuracy for screening examination.
(28) The disclosed sensitive lateral flow assay-based technique are capable of the detecting bone formation marker osteocalcin in saliva at clinically relevant levels which has been demonstrated and correlated to BMD, utilizing the disclosed readout system which as disclosed is easily integrated in a single platform for point-of-care (POC) applications.
(29) Other embodiments of the invention utilize equivalent monoclonal antibody capture and detector reagents and reagent pairs for the assay.
(30) What has been described herein is considered merely illustrative of the principles of this invention. Accordingly, it is well within the purview of one skilled in the art to provide other and different embodiments within the spirit and scope of the invention.