Impact of extracellular matrix stiffness on genomic heterogeneity in MYCN-amplified neuroblastoma cell line

J Exp Clin Cancer Res. 2020 Oct 28;39(1):226. doi: 10.1186/s13046-020-01729-1.

Abstract

Background: Increased tissue stiffness is a common feature of malignant solid tumors, often associated with metastasis and poor patient outcomes. Vitronectin, as an extracellular matrix anchorage glycoprotein related to a stiff matrix, is present in a particularly increased quantity and specific distribution in high-risk neuroblastoma. Furthermore, as cells can sense and transform the proprieties of the extracellular matrix into chemical signals through mechanotransduction, genotypic changes related to stiffness are possible.

Methods: We applied high density SNPa and NGS techniques to in vivo and in vitro models (orthotropic xenograft vitronectin knock-out mice and 3D bioprinted hydrogels with different stiffness) using two representative neuroblastoma cell lines (the MYCN-amplified SK-N-BE(2) and the ALK-mutated SH-SY5Y), to discern how tumor genomics patterns and clonal heterogeneity of the two cell lines are affected.

Results: We describe a remarkable subclonal selection of genomic aberrations in SK-N-BE(2) cells grown in knock-out vitronectin xenograft mice that also emerged when cultured for long times in stiff hydrogels. In particular, we detected an enlarged subclonal cell population with chromosome 9 aberrations in both models. Similar abnormalities were found in human high-risk neuroblastoma with MYCN amplification. The genomics of the SH-SY5Y cell line remained stable when cultured in both models.

Conclusions: Focus on heterogeneous intratumor segmental chromosome aberrations and mutations, as a mirror image of tumor microenvironment, is a vital area of future research.

Keywords: 3D-bioprinting; Biotensegrity; Clonal selection; Stiffness; Vitronectin; Xenograft.

MeSH terms

  • Animals
  • Extracellular Matrix / chemistry*
  • Female
  • Gene Amplification*
  • Gene Expression Regulation, Neoplastic*
  • Male
  • Mechanotransduction, Cellular*
  • Mice
  • Mice, Knockout
  • N-Myc Proto-Oncogene Protein / genetics*
  • Neuroblastoma / genetics
  • Neuroblastoma / pathology*
  • Polymorphism, Single Nucleotide
  • Tumor Cells, Cultured
  • Vitronectin / physiology*

Substances

  • MYCN protein, human
  • N-Myc Proto-Oncogene Protein
  • Vitronectin