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Highly Multiplexed, Super-resolution Imaging of T Cells Using madSTORM
Published on: June 24, 2017
Cyclic Multiplexed-Immunofluorescence (cmIF), a Highly Multiplexed Method for Single-Cell Analysis
Jennifer Eng1, Guillaume Thibault1, Shiuh-Wen Luoh2,3
1Department of Biomedical Engineering and OHSU Center for Spatial Systems Biomedicine, Oregon Health and Science University, Portland, OR, USA.
Insights
Predicting immunotherapy response in breast cancer is challenging. New cyclic multiplexed-immunofluorescence (cmIF) assays analyze tumor-infiltrating lymphocytes (TILs) and spatial patterns to improve patient stratification and treatment strategies.
Area of Science:
- Oncology
- Immunology
- Computational Pathology
Background:
- Immunotherapy, particularly immune checkpoint inhibitors, has transformed cancer treatment but predicting patient response remains difficult due to tumor heterogeneity.
- Breast cancer (BC) subtypes, hormone receptor-positive (HR+) and triple-negative (TNBC), present distinct clinical challenges regarding recurrence and immunotherapy outcomes.
- Tumor-infiltrating lymphocytes (TILs) and their spatial arrangement show prognostic value, but current methods lack the resolution to fully characterize these complex interactions.
Purpose of the Study:
- To address the need for predictors of late recurrence in HR+ BC and immunotherapy outcomes in advanced TNBC.
- To investigate whether TIL clusters in different breast cancer subtypes represent similar or distinct immune landscapes.
- To explore the utility of a novel cyclic multiplexed-immunofluorescence (cmIF) assay for detailed spatial analysis of tumor microenvironments.
Main Methods:
- Development and optimization of a cyclic multiplexed-immunofluorescence (cmIF) assay for formalin-fixed, paraffin-embedded tissues.
- Application of cmIF to differentiate TIL subsets, tumor heterogeneity, and microenvironment composition.
- Development of a computational framework for quantitative, single-cell-based spatial analysis of digital images from cmIF assays.
Main Results:
- The cmIF assay enables differentiation of immune cell subsets and characterization of spatial patterns within the tumor microenvironment.
- The developed computational framework allows for quantitative interpretation of complex spatial relationships between TILs and tumor cells.
- This approach facilitates a deeper understanding of tumor heterogeneity and its impact on treatment response.
Conclusions:
- Cyclic multiplexed-immunofluorescence (cmIF) offers a powerful approach to dissecting the tumor immune microenvironment in breast cancer.
- Quantitative spatial analysis of TILs and tumor cells can provide critical insights into predicting treatment outcomes.
- This technology has the potential to refine patient stratification and guide the development of more effective immunotherapies for diverse breast cancer subtypes.
Abstract:
Immunotherapy harnesses the power of the adaptive immune system and has revolutionized the field of oncotherapy, as novel therapeutic strategies have been introduced into clinical use. The development of immune checkpoint inhibitors has led to durable control of disease in a subset of advanced cancer patients, such as those with melanoma and non-small cell lung cancer. However, predicting patient responses to therapy remains a major challenge, due to the remarkable genomic, epigenetic, and microenvironmental heterogeneity present in each tumor. Breast cancer (BC) is the most common cancer in women, where hormone receptor-positive (HR+; estrogen receptor and/or progesterone receptor) BC comprises the majority (>50%) and has better prognosis, while a minority (<20%) are triple negative BC (TNBC), which has an aggressive phenotype. There is a clinical need to identify predictors of late recurrence in HR+ BC and predictors of immunotherapy outcomes in advanced TNBC. Tumor-infiltrating lymphocytes (TILs) have recently been shown to predict late recurrence in HR+, counter to the findings that TILs confer good prognosis in TNBC and human epidermal growth factor receptor 2 positive (HER2+) subtypes. Furthermore, the spatial arrangement of TILs also appears to have prognostic value, with dense clusters of immune cells predicting poor prognosis in HR+ and good prognosis in TNBC. Whether TIL clusters in different breast cancer subtypes represent the same or different landscapes of TILs is unknown and may have treatment implications for a significant portion of breast cancer patients. Current histopathological staining technology is not sufficient for characterizing the ensembles of TILs and their spatial patterns, in addition to tumor and microenvironmental heterogeneity. However, recent advances in cyclic immunofluorescence enable differentiation of the subsets based on TILs, tumor heterogeneity, and microenvironment composition between good and poor responders. A computational framework for understanding the importance of the spatial relationships between TILs and tumor cells in cancer tissues, which will allow for quantitative interpretation of cyclic immunostaining, is also under development. This chapter will explore the workflow for a newly developed cyclic multiplexed-immunofluorescence (cmIF) assay, which has been optimized for formalin-fixed. paraffin-embedded tissues and developed to process digital images for quantitative single-cell based spatial analysis of tumor heterogeneity and microenvironment, including immune cell composition.
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