Structure–Activity Relationships of Triple-Action Platinum(IV) Prodrugs with Albumin-Binding Properties and Immunomodulating Ligands
Author(s) -
Philipp Fronik,
Isabella Poetsch,
Alexander Kastner,
Theresa Mendrina,
Sonja Hager,
Katharina Hohenwallner,
Hemma Schueffl,
Dietmar HerndlerBrandstetter,
Gunda Koellensperger,
Evelyn Rampler,
Joanna Kopecka,
Chiara Riganti,
Walter Berger,
Bernhard K. Keppler,
Petra Heffeter,
Christian R. Kowol
Publication year - 2021
Publication title -
journal of medicinal chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.01
H-Index - 261
eISSN - 1520-4804
pISSN - 0022-2623
DOI - 10.1021/acs.jmedchem.1c00770
Subject(s) - chemistry , prodrug , albumin , platinum , action (physics) , mechanism of action , stereochemistry , serum albumin , structure–activity relationship , combinatorial chemistry , pharmacology , biochemistry , in vitro , catalysis , physics , quantum mechanics , medicine
Chemotherapy with platinum complexes is essential for clinical anticancer therapy. However, due to side effects and drug resistance, further drug improvement is urgently needed. Herein, we report on triple-action platinum(IV) prodrugs, which, in addition to tumor targeting via maleimide-mediated albumin binding, release the immunomodulatory ligand 1-methyl-d-tryptophan (1-MDT). Unexpectedly, structure-activity relationship analysis showed that the mode of 1-MDT conjugation distinctly impacts the reducibility and thus activation of the prodrugs. This in turn affected ligand release, pharmacokinetic properties, efficiency of immunomodulation, and the anticancer activity in vitro and in a mouse model in vivo . Moreover, we could demonstrate that the design of albumin-targeted multi-modal prodrugs using platinum(IV) is a promising strategy to enhance the cellular uptake of bioactive ligands with low cell permeability (1-MDT) and to improve their selective delivery into the malignant tissue. This will allow tumor-specific anticancer therapy supported by a favorably tuned immune microenvironment.
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