Identification of pancreatic cancer-specific protease substrates for protease-dependent targeted delivery
Etienne J Slapak1,2, Danny A Zwijnenburg1, Jan Koster1
1Amsterdam UMC location University of Amsterdam, Center of Experimental and Molecular Medicine, Meibergdreef 9, 1105 AZ, Amsterdam, The Netherlands.
Abstract:
Pancreatic ductal adenocarcinoma (PDAC) presents significant challenges due to the inadequacy of existing chemotherapeutics, which often result in toxicity-dependent dose limitations and premature cessation of therapy. Targeted delivery of therapeutic molecules offers a promising solution. Given that PDAC is marked by a desmoplastic reaction with extensive aberrant protease activity, protease-dependent targeted delivery could minimize off-target toxicities and is of increasing interest. The efficacy of targeted delivery hinges on the specificity of the substrates used; insufficient specificity can lead to off-target effects, reducing the advantage over non-targeted methods. Here, we employ an unbiased library approach to screen over 7 million peptide substrates for proteolytic cleavage by PDAC cell lysates, identifying 37 substrates enriched by at least 500-fold after three rounds of selection. As systemically administered targeted delivery depends on the absence of substrate cleavage in circulation, the peptide library was also screened against whole blood lysates, and enriched substrates were removed from the PDAC-enriched dataset to obtain PDAC-specific substrates. In vitro validation using FRET-peptides showed that 13 of the selected 15 substrates are cleaved by a panel of PDAC cell line lysates. Moreover, evaluation against healthy murine organ and human blood lysates to assess off-target cleavage revealed that the identified substrates are indeed PDAC-specific and that several substrates may be superior with respect to PDAC specificity over the CAPN2-responsive substrate, which has recently shown preclinical potential in targeted therapy, but future animal models should address the potential superiority. Overall, we thus identified substrates with high selectivity and sensitivity for PDAC that could be employed in protease-dependent targeted therapies.
Insights
Researchers identified highly selective peptide substrates for pancreatic ductal adenocarcinoma (PDAC) targeting. These substrates minimize off-target effects, offering a promising advancement for protease-dependent targeted cancer therapies.
Area of Science:
- Biochemistry
- Oncology
- Drug Delivery
Background:
- Pancreatic ductal adenocarcinoma (PDAC) treatment is limited by chemotherapy toxicity and premature therapy cessation.
- Targeted drug delivery presents a promising strategy to overcome these limitations.
- PDAC's desmoplastic reaction and aberrant protease activity create opportunities for protease-dependent targeting.
Purpose of the Study:
- To identify highly specific peptide substrates cleaved by PDAC proteases for targeted drug delivery.
- To develop substrates that minimize cleavage in circulation and off-target tissues.
- To evaluate the PDAC specificity of identified substrates compared to existing methods.
Main Methods:
- Screening of over 7 million peptide substrates using PDAC cell lysates.
- Iterative selection process to enrich PDAC-specific substrates.
- Counter-screening against whole blood and healthy organ lysates to ensure specificity.
- In vitro validation using FRET-peptides and PDAC cell lines.
Main Results:
- Identified 37 peptide substrates enriched >500-fold by PDAC cell lysates.
- 13 of 15 validated substrates showed cleavage by PDAC cell line lysates.
- Identified substrates demonstrated high specificity for PDAC, outperforming a known CAPN2-responsive substrate in preliminary assessments.
- Off-target cleavage in healthy murine organs and human blood was minimal.
Conclusions:
- Discovered novel peptide substrates with high selectivity and sensitivity for PDAC.
- These substrates are suitable for protease-dependent targeted therapies, potentially reducing systemic toxicity.
- The identified substrates represent a significant advancement for PDAC-targeted drug delivery strategies.


