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MicroRNA Based Liquid Biopsy: The Experience of the Plasma miRNA Signature Classifier (MSC) for Lung Cancer Screening
Published on: October 26, 2017
Haemolysis during sample preparation alters microRNA content of plasma
Michaela B Kirschner1, Steven C Kao, J James Edelman
1Asbestos Diseases Research Institute, Bernie Banton Centre, University of Sydney, Sydney, Australia.
Abstract:
The presence of cell-free microRNAs (miRNAs) has been detected in a range of body fluids. The miRNA content of plasma/serum in particular has been proposed as a potential source of novel biomarkers for a number of diseases. Nevertheless, the quantification of miRNAs from plasma or serum is made difficult due to inefficient isolation and lack of consensus regarding the optimal reference miRNA. The effect of haemolysis on the quantification and normalisation of miRNAs in plasma has not been investigated in great detail. We found that levels of miR-16, a commonly used reference gene, showed little variation when measured in plasma samples from healthy volunteers or patients with malignant mesothelioma or coronary artery disease. Including samples with evidence of haemolysis led to variation in miR-16 levels and consequently decreased its ability to serve as a reference. The levels of miR-16 and miR-451, both present in significant levels in red blood cells, were proportional to the degree of haemolysis. Measurements of the level of these miRNAs in whole blood, plasma, red blood cells and peripheral blood mononuclear cells revealed that the miRNA content of red blood cells represents the major source of variation in miR-16 and miR-451 levels measured in plasma. Adding lysed red blood cells to non-haemolysed plasma allowed a cut-off level of free haemoglobin to be determined, below which miR-16 and miR-451 levels displayed little variation between individuals. In conclusion, increases in plasma miR-16 and miR-451 are caused by haemolysis. In the absence of haemolysis the levels of both miR-16 and miR-451 are sufficiently constant to serve as normalisers.
Insights
Haemolysis significantly impacts plasma microRNA (miRNA) quantification, affecting the reliability of reference genes like miR-16. Red blood cell contamination is the primary cause of variation, highlighting the need to account for haemolysis in biomarker studies.
Area of Science:
- Biochemistry
- Molecular Biology
- Biomarker Discovery
Background:
- Cell-free microRNAs (miRNAs) in body fluids are promising disease biomarkers.
- Quantifying plasma miRNAs is challenging due to isolation inefficiencies and lack of standardized reference miRNAs.
- The impact of haemolysis on miRNA quantification and normalization remains poorly understood.
Purpose of the Study:
- To investigate the effect of haemolysis on miRNA quantification in plasma.
- To evaluate the suitability of miR-16 and miR-451 as reference miRNAs in the presence of haemolysis.
- To identify factors influencing miRNA variability in plasma samples.
Main Methods:
- Quantification of miR-16 and miR-451 in plasma samples from healthy individuals and patients.
- Analysis of samples with varying degrees of haemolysis.
- Measurement of miRNA levels in whole blood, plasma, red blood cells, and peripheral blood mononuclear cells.
- Determination of free haemoglobin levels as an indicator of haemolysis.
Main Results:
- miR-16 levels showed minimal variation in non-haemolysed plasma but varied significantly with haemolysis.
- miR-16 and miR-451 levels were proportional to the degree of haemolysis.
- Red blood cells were identified as the main source of miR-16 and miR-451 variation in plasma.
- A free haemoglobin cut-off was established, below which miRNA levels were stable.
Conclusions:
- Haemolysis is a major confounder in plasma miRNA quantification, particularly for miR-16 and miR-451.
- These miRNAs can serve as reliable normalizers in non-haemolysed samples.
- Accounting for haemolysis is crucial for accurate miRNA biomarker development.
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