Epigenetic reprogramming modulates malignant properties of human liver cancer

Chiara Raggi1, Valentina M Factor, Daekwan Seo

  • 1Laboratory of Experimental Carcinogenesis, Center for Cancer Research, National Cancer Institute, NIH, Bethesda, MD.

Abstract

Insights

DNA hypermethylation reversal is a cancer therapy. Targeting DNA methyltransferase 1 (DNMT1) in liver cancer cells altered self-renewal and tumorigenicity, revealing DNA methylation

Area of Science:

  • Epigenetics
  • Cancer Biology
  • Hepatocellular Carcinoma Research

Background:

  • DNA hypermethylation and gene silencing are emerging cancer therapy targets.
  • Understanding epigenetic alterations and cellular context is crucial for reprogramming cancer cells.

Purpose of the Study:

  • To investigate the impact of epigenetic alterations and cellular context on hepatocellular carcinoma (HCC) cell reprogramming.
  • To identify cells with self-renewal potential after DNA methyltransferase 1 (DNMT1) inhibition.

Main Methods:

  • Treatment of HCC cell lines with the DNMT1 inhibitor zebularine (ZEB) in monolayer culture.
  • 3D culture to identify self-renewal potential.
  • Analysis of self-renewal, gene expression, and tumorigenicity across generations.
  • DNMT1 silencing using short hairpin RNA (shRNA).

Main Results:

  • Low-density ZEB treatment increased HCC self-renewal and tumorigenicity, with lasting gene expression changes.
  • High-density ZEB treatment decreased self-renewal and promoted apoptosis and differentiation.
  • Permanent DNMT1 reduction via shRNA made HCC cells insensitive to cell density and ZEB effects.
  • Low basal DNMT1 levels in hepatoblastoma cells correlated with high self-renewal.

Conclusions:

  • DNA methylation is a critical epigenetic regulator of cancer stem cell populations in liver cancer.
  • DNMT1 depletion is essential for enhancing cancer stem cell properties.
  • These findings may extend to other solid tumors.

Related Concept Videos

Epigenetic Regulation01:37

Epigenetic Regulation

Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
3.5K
Epigenetic Regulation01:46

Epigenetic Regulation

Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
28.7K
Methods of Nuclear Reprogramming01:24

Methods of Nuclear Reprogramming

Nuclear reprogramming is a process of transforming one cell type into an unrelated cell type by epigenetic changes that alter the cell’s original gene expression pattern. Such epigenetic changes force cells to express a different set of genes, which play a significant role in inducing transformation into other cell types. Nuclear reprogramming offers applications in reproductive cloning for livestock propagation and regenerative medicine — developing patient-specific cells for...
1.4K
Somatic to iPS Cell Reprogramming01:29

Somatic to iPS Cell Reprogramming

Reprogramming alters the gene expression in somatic cells, transforming them into induced pluripotent stem (iPS) cells over several generations. Scientists can reprogram cells by introducing genes for four transcription factors—Oct4, Sox2, Klf4, and c-Myc (OSKM) by viral or non-viral methods. These factors are also known as Yamanaka factors after Shinya Yamanaka, who first generated iPS cells using mouse skin cells. Yamanaka was awarded the Nobel Prize in Physiology or Medicine in 2012...
2.1K
Induced Pluripotent Stem Cells01:06

Induced Pluripotent Stem Cells

Stem cells are undifferentiated cells that divide and produce different cell types. Ordinarily, cells that have differentiated into a specific cell type are terminally differentiated; however, scientists have found a way to reprogram these mature cells so that they dedifferentiate and return to an unspecialized, proliferative state. These cells are pluripotent like embryonic stem cells—able to produce all cell types—and are called induced pluripotent stem cells (iPSCs).
Somatic...
4.8K
Introduction to Nuclear Reprogramming01:14

Introduction to Nuclear Reprogramming

Nuclear reprogramming is the process of switching gene expression of one cell type to that of another cell type, usually from a differentiated cell state to an undifferentiated cell state. Differentiation occurs during processes such as development and morphogenesis, tissue regeneration, and malignancy. Cells can also be artificially induced to reprogram their gene expression by techniques such as nuclear transfer, induced pluripotency, and cell fusion. Such techniques have many applications in...
1.3K