A New Class of Tunable Acid-Sensitive Linkers for Native Drug Release Based on the Trityl Protecting Group

Publication date

2022-09-21

Authors

Timmers, MattISNI 0000000512624344
Weterings, Jimmy
Van Geijn, Michiel
Bell, Roel
Lenting, Peter E.
Rijcken, Cristianne J.F.ISNI 0000000389611483
Vermonden, TinaISNI 0000000357250265
Hennink, WimISNI 0000000390382745
Liskamp, RobISNI 0000000393845493

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Core-cross-linked polymeric micelles (CCPMs) are a promising nanoparticle platform due to favorable properties such as their long circulation and tumor disposition exploiting the enhanced permeability and retention (EPR) effect. Sustained release of covalently linked drugs from the hydrophobic core of the CCPM can be achieved by a biodegradable linker that connects the drug and the core. This study investigates the suitability of trityl-based linkers for the design of acid-triggered native active pharmaceutical ingredient (API) release from CCPMs. Trityl linker derivatives with different substituent patterns were synthesized and conjugated to model API compounds such as DMXAA-amine, doxorubicin, and gemcitabine, and their release kinetics were studied. Hereafter, API release from CCPMs based on mPEG-b-pHPMAmLac block copolymers was investigated. Variation of the trityl substitution pattern showed tunability of the API release rate from the trityl-based linker with t1/2 varying from <1.0 to 5.0 h at pH 5.0 and t1/2 from 6.5 to >24 h at pH 7.4, all at 37 °C. A clear difference in release kinetics was found between gemcitabine and doxorubicin, with gemcitabine showing no detectable release for 72 h at pH 5.0 and doxorubicin showing a t1/2 of less than 1 h. Based on these findings, we show that the reaction mechanism of trityl deprotection plays an important role in the API release kinetics. The first step in this mechanism, which is protonation of the trityl-bound amine, is pKa-dependent, which explains the difference in release rate. In conclusion, acid-sensitive and tunable trityl linkers are highly promising for the design of linker-API conjugates and for their use in CCPMs.

Keywords

Biotechnology, Bioengineering, Biomedical Engineering, Pharmacology, Pharmaceutical Science, Organic Chemistry

Citation

Timmers, M, Weterings, J, Van Geijn, M, Bell, R, Lenting, P E, Rijcken, C J F, Vermonden, T, Hennink, W E & Liskamp, R M J 2022, 'A New Class of Tunable Acid-Sensitive Linkers for Native Drug Release Based on the Trityl Protecting Group', Bioconjugate Chemistry, vol. 33, no. 9, pp. 1707-1715. https://doi.org/10.1021/acs.bioconjchem.2c00310