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Biology subjects

Aleckovic, M.

Publications and source records attributed to Aleckovic, M..

2 recordsLinked to original sources

Click chemistry selectively activates an auristatin protodrug with either intratumoral or systemic tumor-targeting agents

The Click Activated Protodrugs Against Cancer (CAPAC) platform enables activation of powerful cancer drugs at tumor sites, maximizing efficacy and minimizing systemic toxicity. CAPAC utilizes a potent click chemistry reaction between tetrazine and trans-cyclooctene, called tetrazine ligation. The reaction between the activator, linked to a tumor targeting agent, and the protodrug leads to targeted activation of the drug. In this study, activation is accomplished either by intratumoral injection of a tetrazine-modified hyaluronic acid biopolymer (SQL70) or by systemic infusion of a tetrazine-modified HER2-targeting antigen-binding fragment (SQT01). The drug used is monomethyl auristatin E (MMAE), a cytotoxic agent hindered in its clinical use by severe toxicity. MMAE modification with a trans-cyclooctene moiety to form the protodrug SQP22 reduced its cytotoxicity in vitro and in vivo. Treatment of SQP22 paired with SQL70 biopolymer demonstrated anti-tumor effects in Karpas 299 and RENCA murine tumor models, establishing the requirement of click chemistry for protodrug activation. Furthermore, SQP22 paired with SQT01 induced anti-tumor effects in the HER2-positive NCI-N87 murine tumor model, showing that activation could be accomplished by systemic dosing of a tumor-targeting antibody conjugate. Observed toxicities were limited to modest, transient myelosuppression and moderate body weight loss in these tumor models. This study further delineates the capabilities of the CAPAC platform by demonstrating anti-tumor activity of SQP22 with two differentiated targeting approaches and underscores the power of click chemistry to precisely control the activation of cancer drugs at tumor sites. TOC graphic O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=75 SRC="FIGDIR/small/534625v1_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@1563a70org.highwire.dtl.DTLVardef@16ac78org.highwire.dtl.DTLVardef@95214eorg.highwire.dtl.DTLVardef@bdbb78_HPS_FORMAT_FIGEXP M_FIG C_FIG SynopsisClick chemistry efficiently activates protodrugs at tumors. A novel protodrug delivering monomethyl auristatin E, SQP22, and preclinical experiments with a biopolymer and antibody fragment as targeting agents are reported.

pharmacology and toxicology↗

SQ3370, the first clinical click chemistry-activated cancer therapeutic, shows safety in humans and translatability across species

BackgroundSQ3370 is the first demonstration of the Click Activated Protodrugs Against Cancer (CAPAC) platform that uses click chemistry to activate drugs directly at tumor sites, maximizing therapeutic exposure. SQ3370 consists of a tumor-localizing biopolymer (SQL70) and a chemically-attenuated doxorubicin (Dox) protodrug SQP33; the protodrug is activated upon clicking with the biopolymer at tumor sites. Here, we present data from preclinical studies and a Phase 1 dose-escalation clinical trial in adult patients with advanced solid tumors (NCT04106492) demonstrating SQ3370s activation at tumor sites, safety, systemic pharmacokinetics (PK), and immunological activity. MethodsTreatment cycles consisting of an intratumoral or subcutaneous injection of SQL70 biopolymer followed by 5 daily intravenous doses of SQP33 protodrug were evaluated in tumor-bearing mice, healthy dogs, and adult patients with solid tumors. ResultsSQL70 effectively activated SQP33 at tumor sites, resulting in high Dox concentrations that were well tolerated and unachievable by conventional treatment. SQ3370 was safely administered at 8.9x the veterinary Dox dose in dogs and 12x the conventional Dox dose in patients, with no dose-limiting toxicity reported to date. SQ3370s safety, toxicology, and PK profiles were highly translatable across species. SQ3370 increased cytotoxic CD3+ and CD8+ T-cells in patient tumors indicating T-cell-dependent immune activation in the tumor microenvironment. ConclusionsSQ3370, the initial demonstration of click chemistry in humans, enhances the safety of Dox at unprecedented doses and has the potential to increase therapeutic index. Consistent safety, toxicology, PK, and immune activation results observed with SQ3370 across species highlight the translatability of the click chemistry approach in drug development. Trial registrationNCT04106492; 7 September 2019

pharmacology and toxicology↗