Key result
An ELISA-based candidate secondary reference measurement procedure for cardiac troponin I was developed, displaying suitable linearity and a limit of detection of 0.052 μg/L with no apparent bias.
The development of a secondary reference measurement procedure for cardiac troponin I is a key step toward standardizing cTnI assays across different platforms.
May aid cTnI assay standardization; leaves open multi-platform validation before clinical adoption.
In this study, the first steps in the development of a secondary reference measurement procedure (RMP) 'higher metrological order measurement procedure' to support the cardiac troponin I (cTnI) standardization initiative is described. The RMP should be used to assign values to serum-based secondary reference materials (RMs) without analytical artifacts causing bias. A multiplexed bead-based assay and sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) were used to identify the optimum monoclonal antibody pair (clones 560 and 19C7) for the RMP. Using these antibodies, an ELISA-based procedure was developed to accurately measure the main cTnI forms present in blood. The proposed RMP appears to show no bias when tested on samples containing various troponin complexes, phosphorylated and dephosphorylated forms, and heparin. The candidate assay displayed suitable linearity and sensitivity (limit of detection, 0.052 μg/L) for the measurement of the proposed cTnI secondary RMs. Preliminary comparison data on patient samples with a commercial cTnI assay are also provided to support the suitability of RMP for value assignment to RMs. Full validation and final assessment of the RMP will be performed through transferability and inter-comparison studies.
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Noble et al. (2010) studied Cardiac troponin I measurement. ELISA-based secondary reference measurement procedure for cTnI vs. Commercial cTnI assay was evaluated on Assay linearity, sensitivity, and bias. An ELISA-based candidate secondary reference measurement procedure for cardiac troponin I was developed, displaying suitable linearity and a limit of detection of 0.052 μg/L with no apparent bias.
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