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Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Panobinostat Induced Spatial In Situ Biomarkers Predictive of Anti-PD-1 Efficacy in Mouse Mammary Carcinoma
Zuzana Tatarova1,2,3, Dylan C Blumberg1, AeSoon Bensen1,4
1Department of Biomedical Engineering, OHSU Center for Spatial Systems Biomedicine, Oregon Health & Science University, Portland, OR 97239, USA.
Abstract:
Immunotherapies, including anti-PD-1 immune checkpoint blocking (ICB) antibodies, have revolutionized the treatment of many solid malignancies. However, their efficacy in breast cancer has been limited to a subset of patients with triple-negative breast cancer, where ICBs are routinely combined with a range of cytotoxic and targeted agents. Reliable biomarkers predictive of the therapeutic response to ICB in breast cancer are critically missing, though a combination response has been associated with immunogenic cell death (ICD). Here, we utilized a recently developed integrated analytical platform, the multiplex implantable microdevice assay (MIMA), to evaluate the presence and spatial cell relations of literature-based candidate markers predictive of ICB efficacy in luminal mouse mammary carcinoma. MIMA integrates (i) an implantable microdevice for the localized delivery of small amounts of drugs inside the tumor bed with (ii) sequential multiplex immunohistochemistry (mIHC) and spatial cell analysis pipelines to rapidly (within days) describe drug mechanisms of action and find predictive biomarkers in complex tumor tissue. We show that the expression of cleaved caspase-3, ICAM-1, neuropilin-1, myeloperoxidase, calreticulin, galectin-3, and PD-L1 were spatially associated with the efficacy of panobinostat, a pan-HDAC inhibitor that was previously shown to induce immunogenic cell death and synergize with anti-PD-1 in breast cancer. PD-L1 by itself, however, was not a reliable predictor. Instead, ICB efficacy was robustly identified through the in situ hotspot detection of galectin-3-positive non-proliferating tumor zones enriched in cell death and infiltrated by anti-tumor cytotoxic neutrophils positive for ICAM-1 and neuropilin-1. Such hotspots can be specifically detected using distance-based cluster analyses. Single-cell measurements of the functional states in the tumor microenvironment suggest that both qualitative and quantitative effects might drive effective therapy responses. Overall, the presented study provides (i) complementary biological knowledge about the earliest cell events of induced anti-tumor immunity in breast cancer, including the emergence of resistant cancer stem cells, and (ii) newly identified biomarkers in form of specific spatial cell associations. The approach used standard cell-type-, IHC-, and FFPE-based techniques, and therefore the identified spatial clustering of in situ biomarkers can be readily integrated into existing clinical or research workflows, including in luminal breast cancer. Since early drug responses were detected, the biomarkers could be especially applicable to window-of-opportunity clinical trials to rapidly discriminate between responding and resistant patients, thus limiting unnecessary treatment-associated toxicities.
Insights
New biomarkers predict immunotherapy response in breast cancer. Specific spatial cell patterns, not PD-L1 alone, indicate efficacy of immune checkpoint blocking (ICB) therapy.
Area of Science:
- Oncology
- Immunology
- Biomarker Discovery
Background:
- Immunotherapies like anti-PD-1 immune checkpoint blocking (ICB) have transformed solid tumor treatment but show limited efficacy in breast cancer, primarily benefiting a subset of triple-negative cases.
- Reliable biomarkers predicting response to ICB in breast cancer are lacking, despite associations between combination therapy response and immunogenic cell death (ICD).
Purpose of the Study:
- To identify predictive biomarkers for ICB efficacy in luminal mouse mammary carcinoma using a novel integrated analytical platform.
- To evaluate the presence and spatial cell relationships of candidate markers associated with ICB response.
Main Methods:
- Utilized the multiplex implantable microdevice assay (MIMA), integrating localized drug delivery with sequential multiplex immunohistochemistry (mIHC) and spatial cell analysis.
- MIMA rapidly assesses drug mechanisms and identifies predictive biomarkers within tumor tissue.
Main Results:
- Expression of cleaved caspase-3, ICAM-1, neuropilin-1, myeloperoxidase, calreticulin, galectin-3, and PD-L1 were spatially linked to panobinostat efficacy.
- ICB efficacy was robustly predicted by detecting in situ hotspots of galectin-3-positive, non-proliferating tumor zones with cell death and infiltrated by cytotoxic neutrophils (ICAM-1+, neuropilin-1+).
- PD-L1 alone was not a reliable predictor; spatial analysis of specific cell associations proved more effective.
Conclusions:
- Identified novel biomarkers comprising specific spatial cell associations for predicting ICB efficacy in breast cancer.
- The findings provide insights into early anti-tumor immunity events and the emergence of resistant cancer stem cells.
- The approach uses standard techniques, allowing facile integration into clinical and research workflows for early response discrimination in trials.

