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Expanding the Comprehension of the Tumor Microenvironment using Mass Spectrometry Imaging of Formalin-Fixed and Paraffin-Embedded Tissue Samples
Published on: June 29, 2022
Accelerated instability testing reveals quantitative mass spectrometry overcomes specimen storage limitations
Alexander Haragan1, Daniel C Liebler2, Dimple M Das3
1Institute of Translational Medicine, University of Liverpool, Liverpool, UK.
Insights
Stored tissue sections lose immunohistochemistry (IHC) signal due to environmental factors. Storing formalin-fixed, paraffin-embedded (FFPE) tissues with desiccant can mitigate this loss, preserving biomarker integrity for accurate analysis.
Area of Science:
- Biopathology
- Biomarker Analysis
- Proteomics
Background:
- Immunohistochemistry (IHC) on stored formalin-fixed, paraffin-embedded (FFPE) tissues faces limitations like epitope masking and immunoreactivity loss.
- Conformational epitopes, crucial for assays like programmed-death-ligand-1 (PD-L1) IHC, are particularly vulnerable to degradation in stored tissues.
Purpose of the Study:
- To evaluate environmental factors influencing immunoreactivity loss in stored FFPE tissue sections.
- To assess the impact of storage conditions on PD-L1 IHC assays using different antibodies.
- To compare IHC results with quantitative mass spectrometry (MS) for protein integrity.
Main Methods:
- Analyzed 1206 FFPE tissue sections using PD-L1 IHC with four antibodies (22C3, 28-8, E1L3N, SP142).
- Utilized quantitative mass spectrometry (MS) for global proteome analysis and peptide oxidation assessment.
- Correlated PD-L1 quantitation by MS with IHC expression across varying storage conditions.
Main Results:
- PD-L1 quantitation by MS correlated well with IHC expression (R²=0.744), with no significant loss of PD-L1 protein detected by MS even with IHC signal loss.
- Antibody clones 22C3 and 28-8 showed the highest susceptibility to signal loss, while E1L3N was most robust.
- Increased humidity and temperature significantly accelerated immunoreactivity loss, which was effectively mitigated by storage with desiccant. Peptide oxidation was not a major factor.
Conclusions:
- Environmental factors like humidity and temperature cause structural distortion of epitopes, leading to antibody binding failure in stored FFPE tissues.
- The use of desiccant is a cost-effective method to mitigate biomarker analysis limitations in stored FFPE tissue sections.
- Mass spectrometry offers a complementary approach for retrospective analysis of archival FFPE tissues, especially when IHC signal integrity is compromised.
Abstract:
Immunohistochemistry (IHC) using formalin-fixed, paraffin embedded (FFPE) tissue is limited by epitope masking, posttranslational modification and immunoreactivity loss that occurs in stored tissue by poorly characterized mechanisms. Conformational epitopes recognized by many programmed-death-ligand-1 (PD-L1) IHC assays are particularly susceptible to degradation and provide an ideal model for understanding signal loss in stored FFPE tissue. Here we assessed 1206 tissue sections to evaluate environmental factors impacting immunoreactivity loss. PD-L1 IHC using four antibodies (22C3, 28-8, E1L3N, and SP142), raised against intracellular and extracellular epitopes, was assessed in stored FFPE tissue alongside quantitative mass spectrometry (MS). Global proteome analyses were used to assess proteome-wide oxidation across an inventory of 3041 protein groups (24,737 distinct peptides). PD-L1 quantitation correlated well with IHC expression on unaged sections (R2 = 0.744; P < 0.001), with MS demonstrating no loss of PD-L1 protein, even in sections with significant signal loss by IHC impacting diagnostic category. Clones 22C3 and 28-8 were most susceptible to signal loss, with E1L3N demonstrating the most robust signal (56%, 58%, and 33% reduction respectively; p < 0.05). Increased humidity and temperature resulted in significant acceleration of immunoreactivity loss, which was mitigated by storage with desiccant. MS demonstrated only modest oxidation of 274 methionine-containing peptides and aligned with IHC results suggesting peptide oxidation is not a major factor. These data imply immunoreactivity loss driven by humidity and temperature results in structural distortion of epitopes rendering them unsuitable for antibody binding following epitope retrieval. Limitations of IHC biomarker analysis from stored tissue sections may be mitigated by cost-effective use of desiccant when appropriate. In some scenarios, complementary MS is a preferred approach for retrospective analyses of archival FFPE tissue collections.
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