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Macrophage Checkpoint Nanoimmunotherapy Has the Potential to Reduce Malignant Progression in Bioengineered In Vitro
Sabrina N VandenHeuvel1, Eric Chau2, Arpita Mohapatra1
1Department of Biomedical Engineering, Texas A&M University, 3120 TAMU, College Station, Texas 77843, United States.
Abstract:
Most ovarian carcinoma (OvCa) patients present with advanced disease at the time of diagnosis. Malignant, metastatic OvCa is invasive and has poor prognosis, exposing the need for improved therapeutic targeting. High CD47 (OvCa) and SIRPα (macrophage) expression has been linked to decreased survival, making this interaction a significant target for therapeutic discovery. Even so, previous attempts have fallen short, limited by CD47 antibody specificity and efficacy. Macrophages are an important component of the OvCa tumor microenvironment and are manipulated to aid in cancer progression via CD47-SIRPα signaling. Thus, we have leveraged lipid-based nanoparticles (LNPs) to design a therapy uniquely situated to home to phagocytic macrophages expressing the SIRPα protein in metastatic OvCa. CD47-SIRPα presence was evaluated in patient histological sections using immunohistochemistry. 3D tumor spheroids generated on a hanging drop array with OVCAR3 high-grade serous OvCa and THP-1-derived macrophages created a representative model of cellular interactions involved in metastatic OvCa. Microfluidic techniques were employed to generate LNPs encapsulating SIRPα siRNA (siSIRPα) to affect the CD47-SIRPα signaling between the OvCa and macrophages. siSIRPα LNPs were characterized for optimal size, charge, and encapsulation efficiency. Uptake of the siSIRPα LNPs by macrophages was assessed by Incucyte. Following 48 h of 25 nM siSIRPα treatment, OvCa/macrophage heterospheroids were evaluated for SIRPα knockdown, platinum chemoresistance, and invasiveness. OvCa patient tumors and in vitro heterospheroids expressed CD47 and SIRPα. Macrophages in OvCa spheroids increased carboplatin resistance and invasion, indicating a more malignant phenotype. We observed successful LNP uptake by macrophages causing significant reduction in SIRPα gene and protein expressions and subsequent reversal of pro-tumoral alternative activation. Disrupting CD47-SIRPα interactions resulted in sensitizing OvCa/macrophage heterospheroids to platinum chemotherapy and reversal of cellular invasion outside of heterospheroids. Ultimately, our results strongly indicate the potential of using LNP-based nanoimmunotherapy to reduce malignant progression of ovarian cancer.
Insights
This study developed lipid-based nanoparticles (LNPs) to target CD47-SIRPα interactions in ovarian cancer (OvCa). This nanoimmunotherapy sensitizes cancer cells to chemotherapy and reduces invasion, offering a new therapeutic strategy for advanced OvCa.
Area of Science:
- Immunology and Cancer Biology
- Nanomedicine and Drug Delivery
Background:
- Ovarian carcinoma (OvCa) often presents at advanced stages with poor prognosis, necessitating novel therapeutic targets.
- The CD47-SIRPα signaling axis between cancer cells and macrophages promotes OvCa progression and chemoresistance.
- Previous therapeutic attempts targeting CD47 have been limited by antibody specificity and efficacy.
Purpose of the Study:
- To develop and evaluate a novel lipid-based nanoparticle (LNP) therapy targeting the CD47-SIRPα interaction in metastatic OvCa.
- To investigate the potential of LNPs encapsulating SIRPα siRNA (siSIRPα) to disrupt pro-tumoral signaling mediated by macrophages.
- To assess the impact of this nanoimmunotherapy on platinum chemotherapy sensitivity and invasiveness of OvCa.
Main Methods:
- Immunohistochemistry was used to evaluate CD47 and SIRPα expression in OvCa patient tumors.
- 3D OvCa/macrophage heterospheroids were generated as an in vitro model of the tumor microenvironment.
- Microfluidic techniques produced siSIRPα-loaded LNPs, which were characterized and tested for macrophage uptake and SIRPα knockdown efficacy.
Main Results:
- Macrophages within OvCa spheroids exhibited increased platinum chemoresistance and invasiveness.
- siSIRPα LNPs were effectively taken up by macrophages, leading to significant reduction in SIRPα expression and reversal of pro-tumoral activation.
- Disruption of CD47-SIRPα signaling sensitized OvCa/macrophage heterospheroids to platinum chemotherapy and reduced cellular invasion.
Conclusions:
- Targeting the CD47-SIRPα interaction with LNP-based nanoimmunotherapy can overcome macrophage-mediated chemoresistance in OvCa.
- This approach effectively reduces the malignant phenotype, including invasiveness, of OvCa.
- LNP-based nanoimmunotherapy holds significant potential for improving treatment outcomes in advanced ovarian cancer.
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