Skip to main navigation Skip to search Skip to main content

Uncoupling DNA damage from chromatin damage to detoxify doxorubicin

  • Xiaohang Qiao
  • , Sabina Y. van der Zanden
  • , Dennis P.A. Wander
  • , Daniel M. Borràs
  • , Ji Ying Song
  • , Xiaoyang Li
  • , Suzanne van Duikeren
  • , Noortje van Gils
  • , Arjo Rutten
  • , Tessa van Herwaarden
  • , Olaf van Tellingen
  • , Elisa Giacomelli
  • , Milena Bellin
  • , Valeria Orlova
  • , Leon G.J. Tertoolen
  • , Sophie Gerhardt
  • , Jimmy J. Akkermans
  • , Jeroen M. Bakker
  • , Charlotte L. Zuur
  • , Baoxu Pang
  • Anke M. Smits, Christine L. Mummery, Linda Smit, Ramon Arens, Junmin Li, Hermen S. Overkleeft, Jacques Neefjes
  • Netherlands Cancer Institute
  • Leiden University
  • Shanghai Jiao Tong University
  • Vrije Universiteit Amsterdam

Research output: Contribution to journalArticleAcademicpeer-review

15 Downloads (Pure)

Abstract

The anthracycline doxorubicin (Doxo) and its analogs daunorubicin (Daun), epirubicin (Epi), and idarubicin (Ida) have been cornerstones of anticancer therapy for nearly five decades. However, their clinical application is limited by severe side effects, especially dose-dependent irreversible cardiotoxicity. Other detrimental side effects of anthracyclines include therapy-related malignancies and infertility. It is unclear whether these side effects are coupled to the chemotherapeutic efficacy. Doxo, Daun, Epi, and Ida execute two cellular activities: DNA damage, causing double-strand breaks (DSBs) following poisoning of topoisomerase II (Topo II), and chromatin damage, mediated through histone eviction at selected sites in the genome. Here we report that anthracycline-induced cardiotoxicity requires the combination of both cellular activities. Topo II poisons with either one of the activities fail to induce cardiotoxicity in mice and human cardiac microtissues, as observed for aclarubicin (Acla) and etoposide (Etop). Further, we show that Doxo can be detoxified by chemically separating these two activities. Anthracycline variants that induce chromatin damage without causing DSBs maintain similar anticancer potency in cell lines, mice, and human acute myeloid leukemia patients, implying that chromatin damage constitutes a major cytotoxic mechanism of anthracyclines. With these anthracyclines abstained from cardiotoxicity and therapy-related tumors, we thus uncoupled the side effects from anticancer efficacy. These results suggest that anthracycline variants acting primarily via chromatin damage may allow prolonged treatment of cancer patients and will improve the quality of life of cancer survivors.

Original languageEnglish
Pages (from-to)15182-15192
Number of pages11
JournalProceedings of the National Academy of Sciences of the United States of America
Volume117
Issue number26
DOIs
Publication statusPublished - 30 Jun 2020

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Cardiotoxicity
  • Chromatin Damage
  • DNA damage
  • Therapy-Related Tumors
  • doxorubicin

Fingerprint

Dive into the research topics of 'Uncoupling DNA damage from chromatin damage to detoxify doxorubicin'. Together they form a unique fingerprint.

Cite this