Homogeneous immunosubtraction integrated with sample preparation enabled by a microfluidic format
1Department of Bioengineering, University of California Berkeley, Berkeley, California 94720, USA.
Insights
We developed a faster, automated immunosubtraction assay for protein analysis. This new method integrates sample preparation and uses a homogeneous format for rapid detection of biomarkers like S100B and C-reactive protein in cerebrospinal fluid.
Area of Science:
- Biochemistry
- Analytical Chemistry
- Biotechnology
Background:
- Immunosubtraction is a valuable but labor-intensive laboratory assay for protein analysis.
- Existing methods lack automation and integrated sample preparation, limiting throughput.
Purpose of the Study:
- To develop an automated, homogeneous immunosubtraction assay with integrated sample preparation.
- To expedite protein mobility and binding specificity analysis in complex biological matrices.
Main Methods:
- A novel homogeneous immunosubtraction assay using polyacrylamide gel electrophoresis (PAGE) with a step-decrease in pore size.
- Integrated sample preparation including enrichment, labeling, and antibody mixing via polyacrylamide membranes.
- Optimization of antibody-antigen ratios for selective target subtraction (~95% target subtraction).
Main Results:
- Demonstrated simultaneous detection of S100B and C-reactive protein in cerebrospinal fluid (CSF) within ~2 minutes.
- Achieved a lower limit of detection for S100B in raw human CSF of 3.25 nM, relevant for traumatic brain injury (TBI) diagnosis.
- Validated the assay's ability to report protein mobility and binding specificity in a complex sample matrix.
Conclusions:
- The developed homogeneous immunosubtraction assay offers a rapid, automated, and sensitive platform for protein biomarker detection.
- This technology has the potential to significantly impact routine laboratory medicine assays, particularly in diagnostics research for conditions like TBI.
- The integrated sample preparation and homogeneous format enable on-the-fly subtraction of multiple protein targets, enhancing assay efficiency.
Abstract:
Immunosubtraction is a powerful and resource-intensive laboratory medicine assay that reports both protein mobility and binding specificity. To expedite and automate this electrophoretic assay, we report on advances to the electrophoretic immunosubtraction assay by introducing a homogeneous, not heterogeneous, format with integrated sample preparation. To accomplish homogeneous immunosubtraction, a step-decrease in separation matrix pore-size at the head of a polyacrylamide gel electrophoresis (PAGE) separation channel enables "subtraction" of target analyte when capture antibody is present (as the large immune-complex is excluded from PAGE), but no subtraction when capture antibody is absent. Inclusion of sample preparation functionality via small pore size polyacrylamide membranes is also key to automated operation (i.e., sample enrichment, fluorescence sample labeling, and mixing of sample with free capture antibody). Homogeneous sample preparation and assay operation allows on-the-fly, integrated subtraction of one to multiple protein targets and reuse of each device. Optimization of the assay is detailed which allowed for ~95% subtraction of target with 20% non-specific extraction of large species at the optimal antibody-antigen ratio, providing conditions needed for selective target identification. We demonstrate the assay on putative markers of injury and inflammation in cerebrospinal fluid (CSF), an emerging area of diagnostics research, by rapidly reporting protein mobility and binding specificity within the sample matrix. We simultaneously detect S100B and C-reactive protein, suspected biomarkers for traumatic brain injury (TBI), in ~2 min. Lastly, we demonstrate S100B detection (65 nM) in raw human CSF with an estimated lower limit of detection of 3.25 nM, within the clinically relevant concentration range for detecting TBI in CSF. Beyond the novel CSF assay introduced here, a fully automated immunosubtraction assay would impact a spectrum of routine but labor and time-intensive laboratory medicine assays.
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