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Proteomic Sample Preparation from Formalin Fixed and Paraffin Embedded Tissue
Published on: September 2, 2013
A Microdissection Protocol for Proteogenomic Analysis of Histological Sections to Advance Drug Development
Ik Jae Shin1, Michael Tangrea2, Michael Emmert-Buck3
1Winthrop P Rockefeller Cancer Institute, University of Arkansas for Medical Sciences, Little Rock, AR, USA.
Abstract:
Combining proteogenomics with laser capture microdissection (LCM) in cancer research offers a targeted way to explore the intricate interactions between tumor cells and the different microenvironment components. This is especially important for immuno-oncology (IO) research where improvements in the predictability of IO-based drugs are sorely needed, and depends on a better understanding of the spatial relationships involving the tumor, blood supply, and immune cell interactions, in the context of their associated microenvironments. LCM is used to isolate and obtain distinct histological cell types, which may be routinely performed on complex and heterogeneous solid tumor specimens. Once cells have been captured, nucleic acids and proteins may be extracted for in-depth multimodality molecular profiling assays. Optimizing the minute tissue quantities from LCM captured cells is challenging. Following the isolation of nucleic acids, RNA-seq may be performed for gene expression and DNA sequencing performed for the discovery and analysis of actionable mutations, copy number variation, methylation profiles, etc. However, there remains a need for highly sensitive proteomic methods targeting small-sized samples. A significant part of this protocol is an enhanced liquid chromatography mass spectrometry (LC-MS) analysis of micro-scale and/or nano-scale tissue sections. This is achieved with a silver-stained one-dimensional sodium dodecyl sulfate polyacrylamide gel electrophoresis (1D-SDS-PAGE) approach developed for LC-MS analysis of fresh-frozen tissue specimens obtained via LCM. Included is a detailed in-gel digestion method adjusted and specifically designed to maximize the proteome coverage from amount-limited LCM samples to better facilitate in-depth molecular profiling. Described is a proteogenomic approach leveraged from microdissected fresh frozen tissue. The protocols may also be applicable to other types of specimens having limited nucleic acids, protein quantity, and/or sample volume.
Insights
Proteogenomic analysis using laser capture microdissection (LCM) enables detailed molecular profiling of limited cancer tissue samples. This approach enhances understanding of tumor microenvironments for improved immuno-oncology research and drug development.
Area of Science:
- Cancer Research
- Proteogenomics
- Immuno-Oncology
Background:
- Immuno-oncology (IO) research requires understanding complex tumor microenvironments and cell interactions.
- Laser capture microdissection (LCM) isolates specific cell types from heterogeneous solid tumors.
- Analyzing minute tissue quantities from LCM presents challenges for molecular profiling.
Purpose of the Study:
- To develop and detail a proteogenomic approach for analyzing small tissue samples obtained via LCM.
- To optimize proteomic analysis for amount-limited specimens.
- To facilitate in-depth molecular profiling for cancer and IO research.
Main Methods:
- Utilized laser capture microdissection (LCM) to isolate distinct cell populations from fresh-frozen solid tumor specimens.
- Performed nucleic acid extraction for RNA-seq and DNA sequencing.
- Developed an enhanced liquid chromatography-mass spectrometry (LC-MS) protocol using silver-stained 1D-SDS-PAGE for micro-scale proteomic analysis.
- Optimized an in-gel digestion method to maximize proteome coverage from limited LCM samples.
Main Results:
- Successfully applied a proteogenomic workflow to microdissected fresh-frozen tissue.
- Demonstrated a sensitive LC-MS approach for analyzing minute tissue samples.
- Maximized proteome coverage from amount-limited LCM samples through optimized in-gel digestion.
Conclusions:
- The described proteogenomic protocol effectively enables in-depth molecular profiling of LCM-captured cells.
- This method addresses the need for sensitive proteomic analysis of small biological samples.
- The protocol is applicable to various specimens with limited nucleic acid, protein, or sample volume, advancing cancer and IO research.

