Targeting EGFL7 expression through RNA interference suppresses renal cell carcinoma growth by inhibiting angiogenesis

Han-Feng Xu1, Lei Chen, Xian-Dong Liu

  • 1Department of Urology, Shengjing Hospital of China Medical University, Shenyang, China

Insights

Epidermal growth factor-like domain multiple 7 (EGFL7) promotes renal cell carcinoma (RCC) growth by enhancing tumor angiogenesis. Inhibiting EGFL7 reduced tumor size and vascular density in vivo, suggesting EGFL7 as a potential therapeutic target for RCC.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Renal cell carcinoma (RCC) is a lethal urological cancer where tumor angiogenesis drives growth and metastasis.
  • Epidermal growth factor-like domain multiple 7 (EGFL7) is implicated in various cancers, but its role in RCC remains unclear.

Purpose of the Study:

  • To investigate the role of EGFL7 in renal cell carcinoma (RCC) growth and angiogenesis.
  • To elucidate the molecular mechanisms by which EGFL7 influences RCC progression.

Main Methods:

  • In vitro co-culture systems using RCC cells and human microvascular endothelial cells (HMEC-1).
  • In vivo xenograft models to assess tumor growth and vascularization.
  • Analysis of focal adhesion kinase (FAK) phosphorylation and epidermal growth factor receptor (EGFR) signaling.

Main Results:

  • Downregulated EGFL7 in RCC cells impaired HMEC-1 cell migration and tubule formation.
  • EGFL7-mediated FAK phosphorylation in HMEC-1 cells was dependent on EGFR signaling.
  • EGFL7 inhibition in vivo led to smaller RCC tumors with reduced vascular density.

Conclusions:

  • EGFL7 plays a significant role in promoting RCC growth by facilitating tumor angiogenesis.
  • EGFL7 signaling, potentially via EGFR-FAK pathway, is crucial for endothelial cell function in RCC.
  • EGFL7 represents a potential therapeutic target for managing renal cell carcinoma.

Related Concept Videos

Experimental RNAi02:15

Experimental RNAi

RNA interference (RNAi) is a cellular mechanism that inhibits gene expression by suppressing its transcription or activating the RNA degradation process. The mechanism was discovered by Andrew Fire and Craig Mello in 1998 in plants. Today, it is observed in almost all eukaryotes, including protozoa, flies, nematodes, insects, parasites, and mammals. This precise cellular mechanism of gene silencing has been developed into a technique that provides an efficient way to identify and determine the...
6.5K
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...
2.9K
Mitogens and the Cell Cycle02:38

Mitogens and the Cell Cycle

Mitogens and their receptors play a crucial role in controlling the progression of the cell cycle. However, the loss of mitogenic control over cell division leads to tumor formation. Therefore, mitogens and mitogen receptors play an important role in cancer research. For instance, the epidermal growth factor (EGF) - a type of mitogen and its transmembrane receptor (EGFR), decides the fate of the cell's proliferation. When EGF binds to EGFR, a member of the ErbB family of tyrosine kinase...
6.3K
RNA Interference01:23

RNA Interference

RNA interference (RNAi) is a process in which a small non-coding RNA molecule blocks the post-transcriptional expression of a gene by binding to its messenger RNA (mRNA) and preventing the protein from being translated.
This process occurs naturally in cells, often through the activity of genomically-encoded microRNAs. Researchers can take advantage of this mechanism by introducing synthetic RNAs to deactivate specific genes for research or therapeutic purposes. For example, RNAi could be used...
24.3K
Targeted Cancer Therapies02:57

Targeted Cancer Therapies

The targeted cancer therapies, also known as “molecular targeted therapies,” take advantage of the molecular and genetic differences between the cancer cells and the normal cells. It needs a thorough understanding of the cancer cells to develop drugs that can target specific molecular aspects that drive the growth, progression, and spread of cancer cells without affecting the growth and survival of other normal cells in the body.
There are several types of targeted therapies against...
7.0K