The N-Myc-responsive lncRNA MILIP promotes DNA double-strand break repair through non-homologous end joining

Author:

Wang Pei Lin1,Teng Liu1,Feng Yu Chen2ORCID,Yue Yi Meng1,Han Man Man1,Yan Qianqian1,Ye Kaihong1,Tang Cai Xia1,Zhang Sheng Nan1,Fei Qi Teng1,Zhao Xiao Hong3,La Ting3ORCID,Zhang Yuan Yuan3,Li Jin Ming1ORCID,Hu Bin4,Xu Dengfei4,Cang Shundong4,Wang Li15,Jin Lei12ORCID,Thorne Rick F.13,Zhang Yuwei6,Liu Tao17,Zhang Xu Dong13ORCID

Affiliation:

1. Translational Research Institute, Henan Provincial and Zhengzhou City Key laboratory of Non-coding RNA and Cancer Metabolism, Henan International Join Laboratory of Non-coding RNA and Metabolism in Cancer, Henan Provincial People’s Hospital, Academy of Medical Sciences, Zhengzhou University, Zhengzhou, Henan 450053, China

2. School of Medicine and Public Health, The University of Newcastle, Newcastle, NSW 2308, Australia

3. School of Biomedical Sciences and Pharmacy, The University of Newcastle, Newcastle, NSW 2308, Australia

4. Department of Oncology and Oncology Radiotherapy, Henan Provincial People's Hospital, Henan 450003, Zhengzhou, China

5. School of Basic Medical Sciences, Zhengzhou University, Zhengzhou, Henan 450003, China

6. Henan Key Laboratory of Stem Cell Differentiation and Modification, Henan Provincial People's Hospital, Henan University, Zhengzhou, Henan 450003, China

7. Children's Cancer Institute Australia for Medical Research, University of New South Wales, Sydney, NSW 2750, Australia

Abstract

The protooncoprotein N-Myc, which is overexpressed in approximately 25% of neuroblastomas as the consequence of MYCN gene amplification, has long been postulated to regulate DNA double-strand break (DSB) repair in neuroblastoma cells, but experimental evidence of this function is presently scant. Here, we show that N-Myc transcriptionally activates the long noncoding RNA MILIP to promote nonhomologous end-joining (NHEJ) DNA repair through facilitating Ku70–Ku80 heterodimerization in neuroblastoma cells. High MILIP expression was associated with poor outcome and appeared as an independent prognostic factor in neuroblastoma patients. Knockdown of MILIP reduced neuroblastoma cell viability through the induction of apoptosis and inhibition of proliferation, retarded neuroblastoma xenograft growth, and sensitized neuroblastoma cells to DNA-damaging therapeutics. The effect of MILIP knockdown was associated with the accumulation of DNA DSBs in neuroblastoma cells largely due to decreased activity of the NHEJ DNA repair pathway. Mechanistical investigations revealed that binding of MILIP to Ku70 and Ku80 increased their heterodimerization, and this was required for MILIP-mediated promotion of NHEJ DNA repair. Disrupting the interaction between MILIP and Ku70 or Ku80 increased DNA DSBs and reduced cell viability with therapeutic potential revealed where targeting MILIP using Gapmers cooperated with the DNA-damaging drug cisplatin to inhibit neuroblastoma growth in vivo. Collectively, our findings identify MILIP as an N-Myc downstream effector critical for activation of the NHEJ DNA repair pathway in neuroblastoma cells, with practical implications of MILIP targeting, alone and in combination with DNA-damaging therapeutics, for neuroblastoma treatment.

Funder

The Cancer Council NSW, Australia

The National Health and Medical Research Council, Australia

Henan Provincial Department of Science and Technology, China

Henan Provincial Health Commission, China

the National Natural Science Foundation, China

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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