Inhibition of PERK-mediated unfolded protein response acts as a switch for reversal of residual senescence and as senolytic therapy in glioblastoma

Author:

Ketkar Madhura12ORCID,Desai Sanket31,Rana Pranav2,Thorat Rahul4,Epari Sridhar5,Dutt Amit316,Dutt Shilpee172ORCID

Affiliation:

1. Homi Bhabha National Institute, Training School Complex , Anushakti Nagar, Mumbai 400094 , India

2. Shilpee Dutt Laboratory, Tata Memorial Centre, Advanced Centre for Treatment, Research and Education in Cancer , Navi Mumbai 410210 , India

3. Integrated Genomics Laboratory, Advanced Centre for Treatment Research Education in Cancer (ACTREC) , Navi Mumbai, 410210   India

4. Laboratory Animal Facility, Advanced Centre for Treatment, Research and Education in Cancer (ACTREC), Tata Memorial Centre (TMC) , Kharghar, Navi Mumbai 410210 , India

5. Tata Memorial Centre, Advanced Centre for Treatment, Research and Education in Cancer , Navi Mumbai 410210 , India

6. University of Delhi South Campus Integrated Cancer Genomics Laboratory, Department of Genetics, , Benito Juarez Marg, New Delhi 110021 , India

7. Shilpee Dutt Laboratory, School of Life Sciences, Jawaharlal Nehru University , New Mehrauli Road, New Delhi , India

Abstract

Abstract Background Glioblastoma due to recurrence is clinically challenging with 10–15 months overall survival. Previously we showed that therapy-induced senescence (TIS) in glioblastoma reverses causing recurrence. Here, we aim to delineate the TIS reversal mechanism for potential therapeutic intervention to prevent glioblastoma (GBM) recurrence. Methods Residual senescent (RS) and end of residual senescence (ERS) cells were captured from GBM patient-derived primary-cultures and cell lines mimicking clinical scenarios. RNA-sequencing, transcript/protein validations, knock-down/inhibitor studies, ChIP RT-PCR, biochemical assays, and IHCs were performed for the mechanistics of TIS reversal. In vivo validations were conducted in GBM orthotopic mouse model. Results Transcriptome analysis showed co-expression of endoplasmic reticulum (ER) stress-unfolded protein response (UPR) and senescence-associated secretory phenotype (SASP) with TIS induction and reversal. Robust SASP production and secretion by RS cells could induce senescence, Reactive oxygen specis (ROS), DNA damage, and ER stress in paracrine fashion independent of radiation. Neutralization of most significantly enriched cytokine from RS-secretome IL1β, suppressed SASP, and delayed senescence reversal. Mechanistically, with SASP and massive protein accumulation in ER, RS cells displayed stressed ER morphology, upregulated ER stress markers, and PERK pathway activation via peIF2α-ATF4-CHOP which was spontaneously resolved in ERS. ChIP RT-PCR showed CHOP occupancy at CXCL8/IL8, CDKN1A/p21, and BCL2L1/BCLXL aiding survival. PERK knockdown/inhibition with GSK2606414 in combination with radiation led to sustained ER stress and senescence without SASP. PERKi in RS functioned as senolytic via apoptosis and prevented recurrence in vitro and in vivo ameliorating overall survival. Conclusion We demonstrate that PERK-mediated UPR regulates senescence reversal and its inhibition can be exploited as a potential seno-therapeutic option in glioblastoma.

Funder

Department of Science and Technology

The Department of Biotechnology

Department of Atomic Energy

Publisher

Oxford University Press (OUP)

Reference51 articles.

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