Related Experiment Video
Updated: Aug 14, 2026

Development of Stem Cell-derived Antigen-specific Regulatory T Cells Against Autoimmunity
Published on: November 8, 2016
Gene therapy targeting the Tie2 function ameliorates collagen-induced arthritis and protects against bone destruction
Ying Chen1, Edwin Donnelly, Hanako Kobayashi
1Vanderbilt-Ingram Cancer Center, Vanderbilt University Medical Center, Nashville, Tennessee, USA.
Objective:
In a previous study, we demonstrated that Tie2 regulates angiogenesis in arthritis. The current study was performed to determine whether systemic delivery of a soluble Tie2 receptor (ExTek) using an adenoviral vector (AdExTek) as a Tie2 inhibitor affects arthritis development and progression in an animal model.
Methods:
We used a collagen-induced arthritis (CIA) mouse model to study the outcome of treatment with either AdExTek or a control vector. The onset, incidence, and severity of arthritis were quantified. Immunohistologic analysis of endothelium obtained from the paws was performed. Bone destruction in paws was analyzed using phase-contrast radiography.
Results:
The data showed that systemic delivery of ExTek before disease development significantly inhibited the onset, incidence, and severity of arthritis. When AdExTek was given after disease onset, the severity of disease in mice treated with AdExTek was significantly lower than that in the control group at 35 days postimmunization, which correlated with significantly diminished angiogenesis in mouse paws. Strikingly, AdExTek treatment protected bone from erosion in the CIA model and reduced levels of RANKL. No differences in collagen-specific antibodies were detected between these 2 groups.
Conclusion:
We demonstrated that blocking Tie2 receptor activation inhibits angiogenesis and arthritis development and protects against bone destruction in a CIA mouse model. These findings identify Tie2 as a therapeutic target for arthritis treatment and imply that interventions designed to target the Tie2 pathway could be clinically beneficial.
Insights
Blocking Tie2 receptor activation with ExTek (soluble Tie2 receptor) significantly inhibits arthritis development, progression, and bone destruction in a mouse model. This suggests Tie2 is a promising therapeutic target for treating arthritis.
Area of Science:
- Immunology
- Rheumatology
- Vascular Biology
Background:
- Tie2 signaling plays a crucial role in regulating angiogenesis.
- Angiogenesis is implicated in the pathogenesis of inflammatory arthritis.
Purpose of the Study:
- To investigate the therapeutic potential of inhibiting Tie2 signaling in a collagen-induced arthritis (CIA) mouse model.
- To evaluate the effect of systemic delivery of a soluble Tie2 receptor (ExTek) using an adenoviral vector (AdExTek) on arthritis development and progression.
Main Methods:
- A collagen-induced arthritis (CIA) mouse model was utilized.
- Mice were treated with AdExTek or a control vector before and after disease onset.
- Arthritis onset, incidence, and severity were quantified; angiogenesis and bone destruction were assessed via immunohistology and radiography, respectively.
Main Results:
- Systemic delivery of ExTek significantly inhibited arthritis onset, incidence, and severity.
- AdExTek treatment reduced disease severity and angiogenesis in the paws.
- Treatment protected against bone erosion and decreased RANKL levels, without affecting collagen-specific antibodies.
Conclusions:
- Blocking Tie2 receptor activation effectively inhibits angiogenesis and arthritis development.
- Tie2 inhibition protects against bone destruction in the CIA model.
- Targeting the Tie2 pathway represents a potential therapeutic strategy for arthritis.
Related Concept Videos
Targeted Cancer Therapies
There are several types of targeted therapies against specific...
Connective Tissue Cell Types
Fat cells (adipocytes), smooth muscle cells (myoblasts), and bone cells (osteoblasts) are some connective tissue cell types. Some immune system cells...
T Cell Types and Functions
Th1 cells stimulate dendritic cells to express necessary co-stimulatory molecules on their surfaces for...

