Published November 11, 2016 | Version v1
Journal article Open

Evidence for L1-associated DNA rearrangements and negligible L1 retrotransposition in glioblastoma multiforme

  • 1. Mater Research Institute - University of Queensland, TRI Building, Woolloongabba, QLD, 4102, Australia
  • 2. BGI-Shenzhen, Shenzhen, 518083, China
  • 3. Edinburgh Cancer Research Centre, IGMM, University of Edinburgh, Edinburgh, EH42XR, UK

Description

Background: LINE-1 (L1) retrotransposons are a notable endogenous source of mutagenesis in mammals. Notably, cancer cells can support unusual L1 retrotransposition and L1-associated sequence rearrangement mechanisms following DNA damage. Recent reports suggest that L1 is mobile in epithelial tumours and neural cells but, paradoxically, not in brain cancers.

Results: Here, using retrotransposon capture sequencing (RC-seq), we surveyed L1 mutations in 14 tumours classified as glioblastoma multiforme (GBM) or as a lower grade glioma. In four GBM tumours, we characterised one probable endonuclease-independent L1 insertion, two L1-associated rearrangements and one likely Alu-Alu recombination event adjacent to an L1. These mutations included PCR validated intronic events in MeCP2 and EGFR. Despite sequencing L1 integration sites at up to 250× depth by RC-seq, we found no tumour-specific, endonuclease-dependent L1 insertions. Whole genome sequencing analysis of the tumours carrying the MeCP2 and EGFR L1 mutations also revealed no endonuclease-dependent L1 insertions. In a complementary in vitro assay, wild-type and endonuclease mutant L1 reporter constructs each mobilised very inefficiently in four cultured GBM cell lines.

Conclusions: These experiments altogether highlight the consistent absence of canonical L1 retrotransposition in GBM tumours and cultured cell lines, as well as atypical L1-associated sequence rearrangements following DNA damage in vivo.

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Additional details

Funding

MODHEP – Systems biology of liver cancer: an integrative genomic-epigenomic approach 259743
European Commission