Lysine-specific histone demethylase 1A (KDM1A/LSD1) inhibition attenuates DNA double-strand break repair and augments the efficacy of temozolomide in glioblastoma

Author:

Alejo Salvador1ORCID,Palacios Bridgitte E1,Venkata Prabhakar Pitta1,He Yi1,Li Wenjing2,Johnson Jessica D1,Chen Yihong1345,Jayamohan Sridharan1,Pratap Uday P1ORCID,Clarke Kyra1,Zou Yi4,Lv Yingli4,Weldon Korri4,Viswanadhapalli Suryavathi16,Lai Zhao47,Ye Zhenqing45,Chen Yidong1345,Gilbert Andrea R8,Suzuki Takayoshi9,Tekmal Rajeshwar R16,Zhao Weixing26,Zheng Siyuan456,Vadlamudi Ratna K1610,Brenner Andrew J611,Sareddy Gangadhara R16

Affiliation:

1. Department of Obstetrics and Gynecology, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

2. Department of Biochemistry and Structural Biology, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

3. Department of Neurosurgery, Xiangya Hospital, Central South University , Changsha, Hunan 410008 , P. R. China

4. Greehey Children’s Cancer Research Institute, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

5. Department of Population Health Sciences, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

6. Mays Cancer Center, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

7. Department of Molecular Medicine, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

8. Department of Pathology and Laboratory Medicine, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

9. The Institute of Scientific and Industrial Research, Osaka University , Osaka, Japan

10. Audie L. Murphy South Texas Veterans Health Care System , San Antonio, Texas, 78229 , USA

11. Department of Hematology & Oncology, University of Texas Health San Antonio , San Antonio, Texas, 78229 , USA

Abstract

Abstract Background Efficient DNA repair in response to standard chemo and radiation therapies often contributes to glioblastoma (GBM) therapy resistance. Understanding the mechanisms of therapy resistance and identifying the drugs that enhance the therapeutic efficacy of standard therapies may extend the survival of GBM patients. In this study, we investigated the role of KDM1A/LSD1 in DNA double-strand break (DSB) repair and a combination of KDM1A inhibitor and temozolomide (TMZ) in vitro and in vivo using patient-derived glioma stem cells (GSCs). Methods Brain bioavailability of the KDM1A inhibitor (NCD38) was established using LS-MS/MS. The effect of a combination of KDM1A knockdown or inhibition with TMZ was studied using cell viability and self-renewal assays. Mechanistic studies were conducted using CUT&Tag-seq, RNA-seq, RT-qPCR, western blot, homologous recombination (HR) and non-homologous end joining (NHEJ) reporter, immunofluorescence, and comet assays. Orthotopic murine models were used to study efficacy in vivo. Results TCGA analysis showed KDM1A is highly expressed in TMZ-treated GBM patients. Knockdown or knockout or inhibition of KDM1A enhanced TMZ efficacy in reducing the viability and self-renewal of GSCs. Pharmacokinetic studies established that NCD38 readily crosses the blood-brain barrier. CUT&Tag-seq studies showed that KDM1A is enriched at the promoters of DNA repair genes and RNA-seq studies confirmed that KDM1A inhibition reduced their expression. Knockdown or inhibition of KDM1A attenuated HR and NHEJ-mediated DNA repair capacity and enhanced TMZ-mediated DNA damage. A combination of KDM1A knockdown or inhibition and TMZ treatment significantly enhanced the survival of tumor-bearing mice. Conclusions Our results provide evidence that KDM1A inhibition sensitizes GBM to TMZ via attenuation of DNA DSB repair pathways.

Funder

National Institutes of Health

Max and Minnie Tomerlin Voelcker Fund

Cancer Prevention and Research Institute of Texas

Publisher

Oxford University Press (OUP)

Subject

Cancer Research,Neurology (clinical),Oncology

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