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Updated: Jul 12, 2026

Quantitative Mass Spectrometric Profiling of Cancer-cell Proteomes Derived From Liquid and Solid Tumors
Published on: February 27, 2015
Single Cell-Pair Proteomics for Decoding Immune-Cancer Cell Interactions
Qin-Qin Xu1, Yi-Rong Jiang1, Jian-Bo Chen1
1Institute of Microanalytical Systems, Department of Chemistry, Zhejiang University, Hangzhou, 310058, China.
Insights
This study introduces a novel microfluidic platform for single-cell proteomics, enabling detailed analysis of immune-cancer cell interactions. The platform identifies functional NK cell sub-clusters and potential biomarkers for cancer immunotherapy efficacy.
Area of Science:
- Proteomics
- Cancer Research
- Microfluidics
- Immunology
Background:
- Cancer immunotherapy effectiveness is limited by tumor and immune response heterogeneity.
- Understanding single immune-cancer cell interactions is crucial for advancing cancer treatments.
Purpose of the Study:
- To develop and validate a microfluidic platform for single-cell proteomics profiling of immune-cancer cell interactions.
- To investigate the functional heterogeneity of natural killer (NK) cells interacting with K562 tumor cells.
Main Methods:
- A microfluidic platform was engineered for precise single-cell pairing, co-culture, and retrieval.
- Stable-isotope labeling and mass spectrometry were employed for proteomic analysis of individual cell pairs.
- Real-time microscopy monitored cell-pair interactions.
Main Results:
- Achieved a 95% success rate in single-cell pairing with minimal cell damage.
- Identified over 1000 protein groups per single cell pair.
- Discovered distinct functional sub-clusters within NK cells and identified potential biomarkers.
Conclusions:
- The developed platform offers a powerful tool for comprehensive immune-cancer cell interaction profiling.
- This approach facilitates the discovery of heterogeneous immune responses and prediction of biomarkers for cancer immunotherapy.
Abstract:
The efficacy of cancer immunotherapy is significantly influenced by the heterogeneity of individual tumors and immune responses. To investigate this phenomenon, a microfluidic platform is constructed for profiling immune-cancer cell interactions at the single-cell proteomics level for the first time. Based on the platform, a comprehensive workflow is proposed for achieving accurate single-cell pairing of an immune cell and a cancer cell with low cell damage and high success rate up to 95%, cell pair co-culture, and real-time microscopic monitoring of the cell-pair interactions, cell pair retrieval, mass spectrometry-based proteomic analysis of singe cell pairs, and decoupling of the proteomic information for each cell within the cell pair with the stable-isotope labeling method. With the workflow, the interactions of single natural killer (NK) cells and single K562 tumor cells are investigated based on real-time images and single cell-pair proteomics. Notably, an identification depth of over 1000 protein groups in a single cell-pair is achieved, leading to the discovery of sub-clusters of NK cells with different functions and the identification of important biomarkers for cancer treatments. This demonstrates the unique capability of the present platform in providing substantial and comprehensive datasets for profiling immune-cancer cell interactions, discovering heterogeneous immune responses, and predicting biomarkers in the study of cancer immunotherapy.
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