Notch pathway inhibition depletes stem-like cells and blocks engraftment in embryonal brain tumors

Xing Fan1, William Matsui, Leila Khaki

  • 1Department of Pathology, Johns Hopkins University School of Medicine, 720 Rutland Avenue, Baltimore, MD 21205, USA.

Cancer Research
|August 4, 2006
PubMed

Insights

Inhibiting the Notch signaling pathway in medulloblastoma depletes essential stem-like cells, reducing tumor growth and propagation. This targeted approach shows promise for treating brain tumors by selectively eliminating cancer stem cells.

Area of Science:

  • Neuro-oncology
  • Cancer Stem Cell Biology
  • Molecular Signaling Pathways

Background:

  • The Notch signaling pathway is crucial for neural stem cells and brain tumors like medulloblastoma.
  • Medulloblastoma growth is dependent on stem-like cells within the tumor.

Purpose of the Study:

  • To investigate the impact of Notch pathway inhibition on medulloblastoma growth.
  • To determine if Notch inhibition selectively targets medulloblastoma stem cells.

Main Methods:

  • Utilized gamma-secretase inhibitors to block Notch signaling in medulloblastoma cell lines.
  • Assessed changes in Hes1 expression, cell cycle, apoptosis, and differentiation.
  • Quantified CD133-positive cells and side population (Hoechst dye exclusion) to identify stem-like cells.
  • Measured apoptosis rates in nestin-positive versus nestin-negative cells.

Main Results:

  • Notch blockade suppressed Hes1, induced cell cycle exit, apoptosis, and differentiation.
  • Inhibition reduced the CD133-positive fraction and abolished the side population.
  • Viable cells showed reduced tumor-forming capacity (soft-agar, xenografts).
  • Stem-like cells exhibited higher Notch signaling and increased apoptosis upon blockade.

Conclusions:

  • Notch pathway inhibition effectively targets and depletes medulloblastoma stem-like cells.
  • This depletion leads to a loss of tumor propagation capacity.
  • Stem-like cells are selectively vulnerable to Notch pathway inhibitors, offering a therapeutic strategy.

Related Concept Videos

Notch Signaling Pathway03:14

Notch Signaling Pathway

The Notch signaling pathway is a major intracellular signaling pathway that is highly conserved over a broad spectrum of metazoan species. It stands unique from other intracellular signaling mechanisms in animals because notch protein itself acts as the receptor as well as the primary signaling molecule.
The Notch gene came into the limelight in 1914 after the discovery that its mutation in Drosophila melanogaster leads to a serrated (or "notched") wing margin phenotype. It was not until 1985...
Notch Signaling Pathway03:14

Notch Signaling Pathway

The Notch signaling pathway is a major intracellular signaling pathway that is highly conserved over a broad spectrum of metazoan species. It stands unique from other intracellular signaling mechanisms in animals because notch protein itself acts as the receptor as well as the primary signaling molecule.
The Notch gene came into the limelight in 1914 after the discovery that its mutation in Drosophila melanogaster leads to a serrated (or "notched") wing margin phenotype. It was not until 1985...
Role Of Notch Signalling In Intestinal Stem Cell Renewal01:12

Role Of Notch Signalling In Intestinal Stem Cell Renewal

Notch signaling was first discovered in Drosophila melanogaster, where it is involved in cell lineage differentiation. Notch signaling regulates the maintenance and differentiation of intestinal stem cells or ISCs by controlling the expression of atonal homolog 1 or Atoh1. Atoh1 directs cells to differentiate into secretory cells.
Direct cell-to-cell contact is needed for the activation of Notch signaling. The signal is initiated when a notch ligand binds to a receptor on an adjacent cell, also...
Stem Cell Niche01:26

Stem Cell Niche

The stem cell niche is the dynamic microenvironment where stem cells reside. Inside these niches, the cells may remain undifferentiated, undergo high self-renewal, or become lineage-specific progenitors. Stem cells coexist with other niche cells, such as stromal cells. They also interact closely with the ECM. Cell-cell and cell-matrix communication occur via adhesion molecules or soluble factors that signal the stem cells and determine their fate. Stromal cells also provide survival signals to...
Embryonic Stem Cells00:57

Embryonic Stem Cells

Embryonic stem (ES) cells were first discovered in mice in 1981 by Martin Evans. In 1998, James Thomson identified a method to isolate embryonic stem cells from humans. Human embryonic stem cells (hESCs) are obtained from 3-5 day old embryos that remain unused after an in vitro fertilization procedure.
ES cells are grown in a culture medium where they can divide indefinitely, creating ES cell lines. Under certain conditions, ES cells can differentiate, either spontaneously into a variety of...
Embryonic Stem Cells00:58

Embryonic Stem Cells

Embryonic stem (ES) cells are undifferentiated pluripotent cells, meaning they can produce any cell type in the body. This gives them tremendous potential in science and medicine since they can generate specific cell types for use in research or to replace body cells lost due to damage or disease.