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Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas.

Publication ,  Journal Article
Wei, S; Yin, D; Yu, S; Lin, X; Savani, MR; Du, K; Ku, Y; Wu, D; Li, S; Liu, H; Tian, M; Chen, Y; Bowie, M; Hariharan, S; Waitkus, M; Lu, Y ...
Published in: Clin Cancer Res
May 13, 2022

PURPOSE: To investigate the antitumor activity of a mitochondrial-localized HSP90 inhibitor, Gamitrinib, in multiple glioma models, and to elucidate the antitumor mechanisms of Gamitrinib in gliomas. EXPERIMENTAL DESIGN: A broad panel of primary and temozolomide (TMZ)-resistant human glioma cell lines were screened by cell viability assays, flow cytometry, and crystal violet assays to investigate the therapeutic efficacy of Gamitrinib. Seahorse assays were used to measure the mitochondrial respiration of glioma cells. Integrated analyses of RNA sequencing (RNAseq) and reverse phase protein array (RPPA) data were performed to reveal the potential antitumor mechanisms of Gamitrinib. Neurospheres, patient-derived organoids (PDO), cell line-derived xenografts (CDX), and patient-derived xenografts (PDX) models were generated to further evaluate the therapeutic efficacy of Gamitrinib. RESULTS: Gamitrinib inhibited cell proliferation and induced cell apoptosis and death in 17 primary glioma cell lines, 6 TMZ-resistant glioma cell lines, 4 neurospheres, and 3 PDOs. Importantly, Gamitrinib significantly delayed the tumor growth and improved survival of mice in both CDX and PDX models in which tumors were either subcutaneously or intracranially implanted. Integrated computational analyses of RNAseq and RPPA data revealed that Gamitrinib exhibited its antitumor activity via (i) suppressing mitochondrial biogenesis, OXPHOS, and cell-cycle progression and (ii) activating the energy-sensing AMP-activated kinase, DNA damage, and stress response. CONCLUSIONS: These preclinical findings established the therapeutic role of Gamitrinib in gliomas and revealed the inhibition of mitochondrial biogenesis and tumor bioenergetics as the primary antitumor mechanisms in gliomas.

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Published In

Clin Cancer Res

DOI

EISSN

1557-3265

Publication Date

May 13, 2022

Volume

28

Issue

10

Start / End Page

2180 / 2195

Location

United States

Related Subject Headings

  • Xenograft Model Antitumor Assays
  • Temozolomide
  • Oncology & Carcinogenesis
  • Mitochondria
  • Mice
  • Humans
  • Glioma
  • Cell Line, Tumor
  • Brain Neoplasms
  • Antineoplastic Agents
 

Citation

APA
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ICMJE
MLA
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Wei, S., Yin, D., Yu, S., Lin, X., Savani, M. R., Du, K., … Ashley, D. M. (2022). Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas. Clin Cancer Res, 28(10), 2180–2195. https://doi.org/10.1158/1078-0432.CCR-21-0833
Wei, Shiyou, Delong Yin, Shengnan Yu, Xiang Lin, Milan R. Savani, Kuang Du, Yin Ku, et al. “Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas.Clin Cancer Res 28, no. 10 (May 13, 2022): 2180–95. https://doi.org/10.1158/1078-0432.CCR-21-0833.
Wei S, Yin D, Yu S, Lin X, Savani MR, Du K, et al. Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas. Clin Cancer Res. 2022 May 13;28(10):2180–95.
Wei, Shiyou, et al. “Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas.Clin Cancer Res, vol. 28, no. 10, May 2022, pp. 2180–95. Pubmed, doi:10.1158/1078-0432.CCR-21-0833.
Wei S, Yin D, Yu S, Lin X, Savani MR, Du K, Ku Y, Wu D, Li S, Liu H, Tian M, Chen Y, Bowie M, Hariharan S, Waitkus M, Keir ST, Sugarman ET, Deek RA, Labrie M, Khasraw M, Lu Y, Mills GB, Herlyn M, Wu K, Liu L, Wei Z, Flaherty KT, Abdullah K, Zhang G, Ashley DM. Antitumor Activity of a Mitochondrial-Targeted HSP90 Inhibitor in Gliomas. Clin Cancer Res. 2022 May 13;28(10):2180–2195.

Published In

Clin Cancer Res

DOI

EISSN

1557-3265

Publication Date

May 13, 2022

Volume

28

Issue

10

Start / End Page

2180 / 2195

Location

United States

Related Subject Headings

  • Xenograft Model Antitumor Assays
  • Temozolomide
  • Oncology & Carcinogenesis
  • Mitochondria
  • Mice
  • Humans
  • Glioma
  • Cell Line, Tumor
  • Brain Neoplasms
  • Antineoplastic Agents