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An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL.

Publication ,  Journal Article
Mai, Y; Yu, JJ; Bartholdy, B; Xu-Monette, ZY; Knapp, EE; Yuan, F; Chen, H; Ding, BB; Yao, Z; Das, B; Zou, Y; Young, KH; Parekh, S; Ye, BH
Published in: Blood
December 15, 2016

Diffuse large B-cell lymphomas (DLBCLs) contain 2 major molecular subtypes; namely, the germinal center B-cell-like (GCB) and the activated B-cell-like (ABC) DLBCLs. It is well documented that ABC-DLBCL cases have a significantly poorer survival response than GCB-DLBCLs in both the CHOP (cyclophosphamide, vincristine, doxorubicin, and prednisone) and the rituximab (R)-CHOP eras. However, the underlying cause of this subtype disparity is poorly understood. Nevertheless, these clinical observations raise the possibility for an ABC-DLBCL-specific resistance mechanism that is directed toward 1 of the CHOP components and is inadequately addressed by rituximab. Here, we report that the main cytotoxic ingredient in CHOP, doxorubicin (Dox), has subtype-specific mechanisms of cytotoxicity in DLBCLs resulting from differences in the subcellular distribution pattern. Specifically, in cell line models of ABC-DLBCL, Dox is often enriched in the cytoplasm away from the nuclear DNA. As a result, Dox-induced cytotoxicity in ABC-DLBCLs is often dependent on oxidative stress, rather than DNA damage response. These findings are corroborated by gene signature analysis, which demonstrates that basal oxidative stress status predicts treatment outcome among patients with ABC-DLBCL, but not patients with GCB-DLBCL. In terms of redox-related resistance mechanism, our results suggest that STAT3 confers Dox resistance in ABC-DLBCLs by reinforcing an antioxidant program featuring upregulation of the SOD2 gene. Furthermore, a small-molecule STAT3 inhibitor synergizes with CHOP to trigger oxidative stress and kill ABC-DLBCL cells in preclinical models. These results provide a mechanistic basis for development of novel therapies that target either STAT3 or redox homeostasis to improve treatment outcomes for ABC-DLBCLs.

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Published In

Blood

DOI

EISSN

1528-0020

Publication Date

December 15, 2016

Volume

128

Issue

24

Start / End Page

2797 / 2807

Location

United States

Related Subject Headings

  • Treatment Outcome
  • Small Molecule Libraries
  • STAT3 Transcription Factor
  • Reactive Oxygen Species
  • Platinum Compounds
  • Oxidative Stress
  • Lymphoma, Large B-Cell, Diffuse
  • Lymphocyte Activation
  • Immunology
  • Humans
 

Citation

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Mai, Y., Yu, J. J., Bartholdy, B., Xu-Monette, Z. Y., Knapp, E. E., Yuan, F., … Ye, B. H. (2016). An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL. Blood, 128(24), 2797–2807. https://doi.org/10.1182/blood-2016-03-705814
Mai, Yun, J Jessica Yu, Boris Bartholdy, Zijun Y. Xu-Monette, Esther E. Knapp, Fei Yuan, Hongshan Chen, et al. “An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL.Blood 128, no. 24 (December 15, 2016): 2797–2807. https://doi.org/10.1182/blood-2016-03-705814.
Mai Y, Yu JJ, Bartholdy B, Xu-Monette ZY, Knapp EE, Yuan F, et al. An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL. Blood. 2016 Dec 15;128(24):2797–807.
Mai, Yun, et al. “An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL.Blood, vol. 128, no. 24, Dec. 2016, pp. 2797–807. Pubmed, doi:10.1182/blood-2016-03-705814.
Mai Y, Yu JJ, Bartholdy B, Xu-Monette ZY, Knapp EE, Yuan F, Chen H, Ding BB, Yao Z, Das B, Zou Y, Young KH, Parekh S, Ye BH. An oxidative stress-based mechanism of doxorubicin cytotoxicity suggests new therapeutic strategies in ABC-DLBCL. Blood. 2016 Dec 15;128(24):2797–2807.

Published In

Blood

DOI

EISSN

1528-0020

Publication Date

December 15, 2016

Volume

128

Issue

24

Start / End Page

2797 / 2807

Location

United States

Related Subject Headings

  • Treatment Outcome
  • Small Molecule Libraries
  • STAT3 Transcription Factor
  • Reactive Oxygen Species
  • Platinum Compounds
  • Oxidative Stress
  • Lymphoma, Large B-Cell, Diffuse
  • Lymphocyte Activation
  • Immunology
  • Humans