Vasohibin-1 is identified as a master-regulator of endothelial cell apoptosis using gene network analysis

Muna Affara1, Debbie Sanders, Hiromitsu Araki

  • 1Department of Obstetrics and Gynaecology, University of Cambridge, The Rosie Hospital, Robinson Way, Cambridge CB2 0SW, UK.

BMC Genomics
|January 18, 2013
PubMed
Abstract

Insights

Bayesian gene regulatory network (GRN) modeling identified Vasohibin-1 (VASH1) as a master regulator of endothelial cell (EC) apoptosis. Reducing VASH1 expression protected ECs from apoptosis, highlighting its critical role.

Area of Science:

  • Endothelial cell biology
  • Molecular pathology
  • Systems biology

Background:

  • Apoptosis is crucial in endothelial cell (EC) biology and pathology.
  • Previous studies focused on protein levels; gene expression data for EC apoptosis master regulators is limited.
  • Gene regulatory network (GRN) modeling can uncover underlying molecular relationships.

Purpose of the Study:

  • To identify master regulators of endothelial cell (EC) apoptosis using gene expression data.
  • To construct a Bayesian gene regulatory network (GRN) model for EC apoptosis.
  • To investigate the role of candidate regulators in EC apoptosis.

Main Methods:

  • Generated a Bayesian gene regulatory network (GRN) model.
  • Utilized time-course microarray data from serum withdrawal-induced EC apoptosis.
  • Integrated microarray data from ECs treated with siRNAs targeting over 350 signaling molecules.

Main Results:

  • The GRN model identified Vasohibin-1 (VASH1) as a candidate master regulator of EC apoptosis.
  • siRNA-mediated knockdown of VASH1 confirmed its role, with 7 out of 10 downstream mRNAs showing predicted regulation.
  • Reduced VASH1 mRNA levels conferred resistance to serum withdrawal-induced EC death.

Conclusions:

  • Bayesian GRN modeling successfully identified VASH1 as a novel master regulator of EC apoptosis.
  • This study demonstrates the utility of GRN technology in complementing traditional methods.
  • GRN modeling provides a powerful approach to hypothesize regulatory relationships in biological processes.

Related Concept Videos

Regulation of Angiogenesis and Blood Supply01:24

Regulation of Angiogenesis and Blood Supply

Rapidly dividing tumors, embryos, and wounded tissues require more oxygen than usual, lowering the oxygen concentration in the blood. At low oxygen or hypoxic conditions, an oxygen-sensitive transcription factor called the hypoxia-inducible factor 1 or HIF1 is activated. HIF1 is a dimeric protein of alpha (ɑ) and beta (β) subunits.  Under optimal oxygen conditions, HIF1β is present in the nucleus while HIF1ɑ remains in the cytosol. HIF1ɑ is hydroxylated by prolyl hydroxylase and factor...
Apoptosis01:30

Apoptosis

Apoptosis is a combination of two Greek words, 'apo' and 'ptosis,' meaning separation and falling off, respectively. Hippocrates used this word to describe gangrene, which was caused due to bandaging of fractured bones. Apoptosis was distinguished from necrosis in 1970 when John Kerr reported observations of morphological changes occurring during apoptosis. During one experiment, he observed that the disruption of blood supply to the liver tissue resulted in a size reduction of the tissue.
Regulation of Hematopoietic Stem Cells01:01

Regulation of Hematopoietic Stem Cells

All blood and immune cells are produced from the multipotent hematopoietic stem cells (HSCs) by the process of hematopoiesis. However, they all have a limited life span. In addition, many are depleted in immune surveillance or combatting an injury or infection. This makes blood one of the most regenerative tissues. Hematopoiesis helps replenish these blood and immune cells, restoring the body's normal functioning. However, overproduction of blood and immune cells can make them cancerous or...
The Extrinsic Apoptotic Pathway01:17

The Extrinsic Apoptotic Pathway

The extrinsic apoptotic pathway is initiated when extracellular death-inducing signals, such as specific cytokines, activate the death receptors expressed on the cell surface. The immune cells involved in this pathway are natural killer cells (NK cells) and cytotoxic T-lymphocytes. NK cells are critical in innate immune response, while cytotoxic T-lymphocytes are associated with adaptive immune response. These cells recognize specific receptors expressed on the altered cells and activate...
The Intrinsic Apoptotic Pathway01:31

The Intrinsic Apoptotic Pathway

Internal cellular stress, such as cellular injury or hypoxia, triggers intrinsic apoptosis. The B-cell lymphoma 2 (Bcl-2) family of proteins are the primary regulators of the intrinsic apoptotic pathway. For example, during DNA damage, checkpoint proteins, such as Ataxia Telangiectasia Mutated (ATM protein) and Checkpoints Factor-2 (Chk2) proteins, are activated. These proteins phosphorylate p53 which further activates pro-apoptotic proteins, such as Bax, Bak, PUMA, and Noxa, and inhibits...
Mechanism of Angiogenesis01:10

Mechanism of Angiogenesis

Blood vessel formation starts early during embryonic development, around day 7. In the extraembryonic yolk sac, mesodermal precursor cells called hemangioblast proliferate and differentiate into angioblast. Angioblasts express vascular endothelial growth factor receptor 2 or VEGFR2, which binds VEGF-A, a proangiogenic factor, guiding blood vessel formation. VEGF signaling promotes angioblasts to form a blood island in the developing embryo. Angioblasts further differentiate, giving rise to...