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Published on: February 7, 2018
The Recycling Collagen Receptor uPARAP Is a Unique Mediator of Stromal Drug Delivery to Carcinoma Cells
Kirstine S Nørregaard1,2, Ida M E Larsen1,2, Henrik J Jürgensen1,2
1The Finsen Laboratory, Copenhagen University Hospital, Copenhagen, Denmark.
Abstract:
The genetic instability of cancer cells leads to cellular resistance against most targeted cancer drugs. Cancer-associated fibroblasts (CAF) infiltrate all carcinomas and are genetically stable. Using antibody-drug conjugates (ADC), we exploit the unique properties of a rapidly recycling endocytic receptor, uPARAP, to achieve highly efficient CAF-mediated drug delivery and killing of carcinomas. This receptor is generally not present on carcinoma cells and is only expressed in a restricted group of mesenchymal cancer cell types, which are sensitive to uPARAP-directed ADCs. However, we show that uPARAP is highly expressed in CAFs in all carcinoma types examined. This property is recapitulated in mouse xenograft carcinoma models. In these models, despite the absence of uPARAP on the carcinoma cells, uPARAP-targeting ADCs with clinically validated payloads, monomethyl auristatin E and deruxtecan, eradicated tumors with remarkable efficiency. Systemic treatment with anti-uPARAP ADC led to the permanent eradication of tumors in mice carrying subcutaneous xenografts with human EBC-1 lung carcinoma cells. A pronounced repression of tumor growth and a strongly increased mouse survival rate were also obtained with human HT29 colon adenocarcinoma cells, both when these tumors were growing subcutaneously and after the homing of tumor cells to bone from the circulation. CAFs were largely refractory to ADC treatment and retained a high expression of uPARAP. uPARAP-expressing fibroblasts could also process an anti-uPARAP ADC in vitro and deliver the cytotoxic component to carcinoma cells. The current bystander mechanism may be exploited in the majority of the most prevalent solid cancers, thus making uPARAP an extraordinarily versatile target for ADC-based cancer treatment.
Insights
Antibody-drug conjugates targeting uPARAP efficiently kill cancer by leveraging genetically stable cancer-associated fibroblasts (CAFs). This approach offers a versatile strategy for treating various solid tumors, overcoming drug resistance.
Area of Science:
- Oncology
- Cancer Biology
- Drug Development
Background:
- Cancer cells exhibit genetic instability, leading to resistance against targeted therapies.
- Cancer-associated fibroblasts (CAFs) are genetically stable and infiltrate most carcinomas.
Purpose of the Study:
- To investigate the potential of targeting the uPARAP receptor on CAFs for drug delivery using antibody-drug conjugates (ADCs).
- To evaluate the efficacy of uPARAP-targeting ADCs in eradicating established tumors in preclinical models.
Main Methods:
- Utilized antibody-drug conjugates (ADCs) designed to target the uPARAP receptor.
- Tested uPARAP-targeting ADCs in mouse xenograft models of human lung and colon carcinomas.
- Assessed tumor eradication, tumor growth repression, and mouse survival following ADC treatment.
Main Results:
- uPARAP is highly expressed on CAFs across all examined carcinoma types, but not on most carcinoma cells.
- uPARAP-targeting ADCs demonstrated remarkable tumor eradication efficiency in preclinical models, including complete eradication in lung carcinoma xenografts.
- Significant tumor growth repression and increased survival were observed in colon adenocarcinoma models.
- CAFs remained largely refractory to ADC treatment, maintaining uPARAP expression and potentially facilitating a bystander effect.
Conclusions:
- uPARAP-targeting ADCs represent a promising and versatile therapeutic strategy for a broad range of solid cancers.
- Exploiting the CAF-mediated drug delivery mechanism via uPARAP offers a novel approach to overcome cancer drug resistance.

