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Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Microparticle drug sequestration provides a parallel pathway in the acquisition of cancer drug resistance
Joyce Gong1, Frederick Luk, Ritu Jaiswal
1School of Pharmacy, Graduate School of Health, University of Technology, Sydney, NSW 2007, Australia; Vascular Immunology Unit, Discipline of Pathology, Sydney Medical School and Bosch Institute, The University of Sydney, NSW 2006, Australia.
Abstract:
Expanding on our previous findings demonstrating that microparticles (MPs) spread cancer multidrug resistance, we now show that MPs sequester drugs, reducing the free drug concentration available to cells. MPs were isolated from drug-sensitive and drug-resistant sub-clones of a human breast adenocarcinoma cell line and from human acute lymphoblastic leukemia cells. MPs were assessed for size, mitochondria, RNA and phospholipid content, P-glycoprotein (P-gp) expression and orientation and ATPase activity relative to drug sequestration capacity. Of the drug classes examined, MPs sequestered the anthracycline class to a significant degree. The degree of sequestration was likely due to the size of MPs and thus the amount of cargo they contain, to which the anthracyclines bind. Moreover, a proportion of the P-gp present on MPs was inside-out in orientation, enabling it to influx drugs rather than its typical efflux function. This was confirmed by surface immunofluorescence and by assessment of drug-stimulated ATPase activity following MP permeabilization. Thus we determined that breast cancer MPs carried a proportion of their P-gp oriented inside-out, providing active sequestration within the microvesicular compartment. These results demonstrate a capacity for MPs to sequester chemotherapeutic drugs, which has a predominantly active sequestration component for MPs derived from drug-resistant cells and a predominantly passive component for MPs derived from drug-sensitive cells. This reduction in available drug concentration has potential to contribute to a parallel pathway and complements that of the intercellular transfer of P-gp. These findings lend further support to the role of MPs in limiting the successful management of cancer.
Insights
Cancer microparticles (MPs) sequester drugs, reducing their availability to cells. This sequestration, partly via inside-out P-glycoprotein, contributes to multidrug resistance and limits cancer treatment success.
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Microparticles (MPs) are known to spread cancer multidrug resistance.
- Understanding the mechanisms by which MPs confer resistance is crucial for improving cancer therapy.
Purpose of the Study:
- To investigate the capacity of MPs to sequester chemotherapeutic drugs.
- To elucidate the role of P-glycoprotein (P-gp) orientation in MP-mediated drug sequestration.
Main Methods:
- Isolation of MPs from drug-sensitive and drug-resistant cancer cell lines (breast adenocarcinoma and acute lymphoblastic leukemia).
- Characterization of MPs for size, content (mitochondria, RNA, phospholipids), and P-gp expression/orientation.
- Assessment of drug sequestration capacity, particularly for anthracyclines.
- Analysis of P-gp function using surface immunofluorescence and ATPase activity assays.
Main Results:
- MPs significantly sequester anthracycline drugs, with sequestration capacity linked to MP size and cargo.
- A proportion of P-gp on MPs exhibits an inside-out orientation, facilitating drug influx into the microvesicular compartment.
- Drug-resistant cell-derived MPs show predominantly active sequestration, while drug-sensitive cell-derived MPs exhibit passive sequestration.
- This sequestration reduces free drug concentration, potentially contributing to treatment failure.
Conclusions:
- MPs actively and passively sequester chemotherapeutic drugs, impacting their availability to cancer cells.
- The inside-out orientation of P-gp on MPs plays a role in active drug sequestration.
- MP-mediated drug sequestration represents a novel mechanism contributing to cancer multidrug resistance and challenging effective cancer management.
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