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Published on: November 19, 2019
Tumor Priming by SMO Inhibition Enhances Antibody Delivery and Efficacy in a Pancreatic Ductal Adenocarcinoma Model
Jun Wang1, Darren K W Chan1, Arindam Sen2,3
1Department of Pharmaceutical Sciences, University at Buffalo, State University of New York, Buffalo, New York.
Abstract:
Despite frequent overexpression of numerous growth factor receptors by pancreatic ductal adenocarcinomas (PDAC), such as EGFR, therapeutic antibodies have not proven effective. Desmoplasia, hypovascularity, and hypoperfusion create a functional drug delivery barrier that contributes to treatment resistance. Drug combinations that target tumor/stroma interactions could enhance tumor deposition of therapeutic antibodies, although clinical trials have yet to support this strategy. We hypothesize that macromolecular or nanoparticulate therapeutic agents may best exploit stroma-targeting "tumor priming" strategies, based on the fundamental principles of the Enhanced Permeability and Retention phenomenon. Therefore, we investigated the molecular and pharmacologic tumor responses to NVP-LDE225, an SMO inhibitor of sonic hedgehog signaling (sHHI), of patient-derived xenograft models that recapitulate the desmoplasia and drug delivery barrier properties of PDAC. Short-term sHHI exposure mediated dose- and time-dependent changes in tumor microvessel patency, extracellular matrix architecture, and interstitial pressure, which waned with prolonged sHHI exposure, and increased nanoparticulate permeability probe deposition in multiple PDAC patient-derived xenograft isolates. During sHHI-mediated priming, deposition and intratumor distribution of both a nontargeted mAb and a mAb targeting EGFR, cetuximab, were enhanced. Sequencing the sHH inhibitor with cetuximab administration resulted in marked tumor growth inhibition compared with cetuximab alone. These studies suggest that PDAC drug delivery barriers confound efforts to employ mAb against targets in PDAC, and that short-term, intermittent exposure to stromal modulators can increase tumor cell exposure to therapeutic antibodies, improving their efficacy, and potentially minimize adverse effects that may accompany longer-term, continuous sHHI treatment.
Insights
Pancreatic cancer drug delivery is hindered by its dense stroma. Short-term sonic hedgehog signaling inhibition (sHHI) improves antibody delivery and efficacy, offering a new strategy for pancreatic ductal adenocarcinoma (PDAC) treatment.
Area of Science:
- Oncology
- Cancer Biology
- Drug Delivery
Background:
- Pancreatic ductal adenocarcinoma (PDAC) frequently overexpresses growth factor receptors like EGFR, but therapeutic antibodies are often ineffective.
- Tumor desmoplasia, hypovascularity, and hypoperfusion in PDAC create a significant drug delivery barrier, contributing to treatment resistance.
Purpose of the Study:
- To investigate if short-term inhibition of sonic hedgehog signaling (sHHI) can overcome PDAC drug delivery barriers.
- To evaluate the impact of sHHI on tumor microenvironment and enhance the deposition of therapeutic antibodies.
Main Methods:
- Utilized patient-derived xenograft (PDX) models of PDAC that mimic the desmoplastic and drug delivery barrier characteristics.
- Administered NVP-LDE225, an SMO inhibitor targeting sHHI, and assessed changes in tumor microvessel patency, extracellular matrix, and interstitial pressure.
- Evaluated the deposition and distribution of nanoparticulate probes and monoclonal antibodies (mAbs), including cetuximab, during sHHI-mediated tumor priming.
Main Results:
- Short-term sHHI exposure modulated tumor microvessel patency, extracellular matrix, and interstitial pressure, enhancing nanoparticulate probe deposition in PDAC PDX models.
- sHHI-mediated priming increased the deposition and intratumor distribution of both non-targeted and EGFR-targeted mAbs (cetuximab).
- Sequencing sHHI inhibitor with cetuximab significantly inhibited tumor growth compared to cetuximab alone.
Conclusions:
- Drug delivery barriers in PDAC impede the efficacy of therapeutic antibodies.
- Intermittent, short-term stromal modulation via sHHI can enhance tumor exposure to therapeutic antibodies, improving efficacy.
- This strategy holds potential for optimizing antibody-based therapies in PDAC and minimizing potential adverse effects.
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