Manipulating anthracyclines for deeper tissue penetration and implications for glycolytic tissues

E Erik R. Abels (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) E Esther ter Linden (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) J Jos H. T. Rohling (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) L Lennard M. Voortman (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) D Dennis P. A. Wander (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) L Lennert Janssen (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) M Marten Hornsveld (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) H Herman S. Overkleeft (Leiden Institute of Chemistry) S Sabina Y. van der Zanden (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) M Marike L. D. Broekman (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center) J Jacques Neefjes (Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center)

Abstract

How drugs penetrate tissues is poorly understood yet important, since drugs that fail to reach their target will be ineffective. We followed the fate of anthracycline cancer drugs at high resolution by exploiting their intrinsic fluorescence. In a cell-based spheroid model, the soluble compound fluorescein penetrates the entire spheroid, unlike hydrophobic fluorescent lipids, which only enter the outermost cell layer. Anthracyclines have intermediate hydrophobicity. They enter the nucleus of a few outer cell layers at neutral pH, but penetrate the spheroids more deeply under acidic conditions, with a reduction in cell entry and cytotoxicity. The glycolytic conditions that prevail in the tumor microenvironment may thus limit cell entry and contribute to anthracycline drug resistance. We evaluated a library of anthracycline variants to determine the physicochemical properties related to tissue penetration depth. We find that this is determined by only three chemical properties: molar refractivity, topological polar surface area, and water solubility. Our findings suggest that modifications of anthracyclines may improve access and activity to deeply tissue-embedded targets such as pancreatic cancer.

Article Details

Volume / Issue Vol. 122, Issue 36
Published September 09, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

E

Erik R. Abels

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

E

Esther ter Linden

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

J

Jos H. T. Rohling

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

L

Lennard M. Voortman

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

D

Dennis P. A. Wander

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

L

Lennert Janssen

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

M

Marten Hornsveld

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

H

Herman S. Overkleeft

Leiden Institute of Chemistry

S

Sabina Y. van der Zanden

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

M

Marike L. D. Broekman

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center

J

Jacques Neefjes

Department of Cell and Chemical Biology and Oncode Institute, Leiden University Medical Center