Literature DB >> 34580063

Elimination of Radiation-Induced Senescence in the Brain Tumor Microenvironment Attenuates Glioblastoma Recurrence.

Eliot Fletcher-Sananikone1, Suman Kanji2, Nozomi Tomimatsu2, Luis Fernando Macedo Di Cristofaro3, Rahul K Kollipara4, Debabrata Saha1, John R Floyd2, Patrick Sung5, Robert Hromas6, Terry C Burns7, Ralf Kittler4, Amyn A Habib8,9, Bipasha Mukherjee2, Sandeep Burma10,5.   

Abstract

Glioblastomas (GBM) are routinely treated with ionizing radiation (IR) but inevitably recur and develop therapy resistance. During treatment, the tissue surrounding tumors is also irradiated. IR potently induces senescence, and senescent stromal cells can promote the growth of neighboring tumor cells by secreting factors that create a senescence-associated secretory phenotype (SASP). Here, we carried out transcriptomic and tumorigenicity analyses in irradiated mouse brains to elucidate how radiotherapy-induced senescence of non-neoplastic brain cells promotes tumor growth. Following cranial irradiation, widespread senescence in the brain occurred, with the astrocytic population being particularly susceptible. Irradiated brains showed an altered transcriptomic profile characterized by upregulation of CDKN1A (p21), a key enforcer of senescence, and several SASP factors, including HGF, the ligand of the receptor tyrosine kinase (RTK) Met. Preirradiation of mouse brains increased Met-driven growth and invasiveness of orthotopically implanted glioma cells. Importantly, irradiated p21-/- mouse brains did not exhibit senescence and consequently failed to promote tumor growth. Senescent astrocytes secreted HGF to activate Met in glioma cells and to promote their migration and invasion in vitro, which could be blocked by HGF-neutralizing antibodies or the Met inhibitor crizotinib. Crizotinib also slowed the growth of glioma cells implanted in preirradiated brains. Treatment with the senolytic drug ABT-263 (navitoclax) selectively killed senescent astrocytes in vivo, significantly attenuating growth of glioma cells implanted in preirradiated brains. These results indicate that SASP factors in the irradiated tumor microenvironment drive GBM growth via RTK activation, underscoring the potential utility of adjuvant senolytic therapy for preventing GBM recurrence after radiotherapy. SIGNIFICANCE: This study uncovers mechanisms by which radiotherapy can promote GBM recurrence by inducing senescence in non-neoplastic brain cells, suggesting that senolytic therapy can blunt recurrent GBM growth and aggressiveness. ©2021 American Association for Cancer Research.

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Year:  2021        PMID: 34580063     DOI: 10.1158/0008-5472.CAN-21-0752

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   13.312


  12 in total

1.  BAY 11-7082 inhibits the secretion of interleukin-6 by senescent human microglia.

Authors:  Maxwell Cook; Houmin Lin; Sandeep K Mishra; Gavin Y Wang
Journal:  Biochem Biophys Res Commun       Date:  2022-05-30       Impact factor: 3.322

2.  Isobavachalcone's Alleviation of Pyroptosis Contributes to Enhanced Apoptosis in Glioblastoma: Possible Involvement of NLRP3.

Authors:  Yueshan Wu; Jing Chang; Juanjuan Ge; Kangyan Xu; Quan Zhou; Xiaowen Zhang; Ni Zhu; Meichun Hu
Journal:  Mol Neurobiol       Date:  2022-09-02       Impact factor: 5.682

3.  IL1 Pathway in HPV-Negative HNSCC Cells Is an Indicator of Radioresistance After Photon and Carbon Ion Irradiation Without Functional Involvement.

Authors:  Dinesh Kumar Tiwari; Ricarda Hannen; Kristian Unger; Sibylla Kohl; Julia Heß; Kirsten Lauber; Florentine S B Subtil; Ekkehard Dikomey; Rita Engenhart-Cabillic; Ulrike Schötz
Journal:  Front Oncol       Date:  2022-04-22       Impact factor: 5.738

Review 4.  Alterations in Molecular Profiles Affecting Glioblastoma Resistance to Radiochemotherapy: Where Does the Good Go?

Authors:  Juliana B Vilar; Markus Christmann; Maja T Tomicic
Journal:  Cancers (Basel)       Date:  2022-05-13       Impact factor: 6.575

5.  Sorafenib, rapamycin, and venetoclax attenuate doxorubicin-induced senescence and promote apoptosis in HCT116 cells.

Authors:  Homood M As Sobeai; Munirah Alohaydib; Ali R Alhoshani; Khalid Alhazzani; Mashal M Almutairi; Tareq Saleh; David A Gewirtz; Moureq R Alotiabi
Journal:  Saudi Pharm J       Date:  2021-12-31       Impact factor: 4.330

6.  Developing a far-red fluorogenic beta-galactosidase probe for senescent cell imaging and photoablation.

Authors:  Seung Koo Lee; Zhenhua Shen; Myung Shin Han; Ching-Hsuan Tung
Journal:  RSC Adv       Date:  2022-02-04       Impact factor: 3.361

7.  Profiling of gene expression in the brain associated with anxiety-related behaviors in the chronic phase following cranial irradiation.

Authors:  Hae-June Lee; Joong-Sun Kim; Changjong Moon; Yeonghoon Son
Journal:  Sci Rep       Date:  2022-08-01       Impact factor: 4.996

8.  An in vivo model of glioblastoma radiation resistance identifies long noncoding RNAs and targetable kinases.

Authors:  Christian T Stackhouse; Joshua C Anderson; Zongliang Yue; Thanh Nguyen; Nicholas J Eustace; Catherine P Langford; Jelai Wang; James R Rowland; Chuan Xing; Fady M Mikhail; Xiangqin Cui; Hasan Alrefai; Ryan E Bash; Kevin J Lee; Eddy S Yang; Anita B Hjelmeland; C Ryan Miller; Jake Y Chen; G Yancey Gillespie; Christopher D Willey
Journal:  JCI Insight       Date:  2022-08-22

Review 9.  From the divergence of senescent cell fates to mechanisms and selectivity of senolytic drugs.

Authors:  Valentin L'Hôte; Carl Mann; Jean-Yves Thuret
Journal:  Open Biol       Date:  2022-09-21       Impact factor: 7.124

Review 10.  Senescence and cancer - role and therapeutic opportunities.

Authors:  Clemens A Schmitt; Boshi Wang; Marco Demaria
Journal:  Nat Rev Clin Oncol       Date:  2022-08-31       Impact factor: 65.011

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