Related Experiment Video
Updated: Dec 21, 2025

Perturbing Endothelial Biomechanics via Connexin 43 Structural Disruption
Published on: October 4, 2019
CX3CL1 Induces Vertebral Microvascular Barrier Dysfunction via the Src/P115-RhoGEF/ROCK Signaling Pathway
Lei Yi1,2, Yun Liang2, Quanming Zhao3
1Department of Burn and Plastic Surgery, School of Medicine, Ruijin Hospital, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
Trans-endothelial migration (TEM) of cancer cells is a critical step in metastasis. Micro-vascular barrier disruptions of distant organs play important roles in tumor cells TEM. The spine is a preferred site for multiple cancer cell metastases. Our previous study found that vertebral spongy bone was rich in CX3CL1 and that CX3CL1 can attract fractalkine receptor-expressing tumor cells to the spine. In the present study, we determined whether CX3CL1 was involved in vertebral micro-vascular barrier disruption and promoted tumor cell TEM after circulating tumor cells were arrested in the vertebral micro-vasculature. We examined the role of CX3CL1 in the barrier function of vertebral micro-vascular endothelial cells (VMECs) and explored the molecular mechanisms of CX3CL1-induced VMEC barrier disruption. Our results demonstrated that CX3CL1 led to F-actin formation and ZO-1 disruption in VMECs and induced the vertebral micro-vascular barrier disruption. Importantly, we found that the activation of the Src/P115-RhoGEF/ROCK signaling pathway plays an important role in CX3CL1-induced VMEC stress fiber formation, ZO-1 disruption and then vertebral micro-vascular barrier hyper-permeability. Inhibiting Src/P115-RhoGEF/ROCK signaling in VMECs effectively blocked CX3CL1-induced vertebral vascular endothelial dysfunction and subsequent tumor cell TEM. The results of this study and our previous study indicate that in addition to its chemotaxis, CX3CL1 plays a critical role in regulating vertebral micro-vascular barrier function and tumor cell TEM. CX3CL1 induced VMECs stress fiber formation, ZO-1 disruption and then vascular endothelial hyperpermeability via activation of the Src/P115-RhoGEF/ROCK signaling pathway. The inhibition of the Src/P115-RhoGEF/ROCK signaling pathway in VMECs effectively blocked tumor cells TEMs in vertebral spongy bone and maybe a potential therapeutic strategy for spine metastases in the future.
Insights
CX3CL1 disrupts the vertebral micro-vascular barrier by activating the Src/P115-RhoGEF/ROCK pathway, promoting cancer cell metastasis to the spine. Inhibiting this pathway blocks tumor cell migration and offers a potential therapeutic strategy.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Trans-endothelial migration (TEM) is crucial for cancer metastasis.
- The spine is a common site for cancer spread, with CX3CL1 identified in vertebral bone.
- CX3CL1 attracts tumor cells expressing its receptor to the spine.
Purpose of the Study:
- To investigate CX3CL1's role in vertebral micro-vascular barrier disruption.
- To explore the molecular mechanisms underlying CX3CL1-induced barrier dysfunction.
- To assess the therapeutic potential of targeting CX3CL1 signaling in spine metastasis.
Main Methods:
- Examined CX3CL1's effect on vertebral micro-vascular endothelial cell (VMEC) barrier function.
- Investigated molecular pathways, including F-actin formation and ZO-1 disruption.
- Assessed the impact of inhibiting the Src/P115-RhoGEF/ROCK signaling pathway on VMEC dysfunction and tumor cell TEM.
Main Results:
- CX3CL1 induced F-actin formation and ZO-1 disruption in VMECs, leading to barrier disruption.
- Activation of the Src/P115-RhoGEF/ROCK pathway was identified as key to CX3CL1-induced VMEC barrier hyper-permeability.
- Inhibition of this pathway effectively blocked CX3CL1-induced endothelial dysfunction and subsequent tumor cell TEM.
Conclusions:
- CX3CL1 critically regulates vertebral micro-vascular barrier function and tumor cell TEM beyond its chemotactic role.
- The Src/P115-RhoGEF/ROCK pathway mediates CX3CL1's effects on VMEC barrier integrity.
- Targeting this pathway presents a potential therapeutic strategy for preventing or treating spine metastases.
More Related Videos
Related Concept Videos
Regulation of Angiogenesis and Blood Supply
TGF - β Signaling Pathway
Hedgehog Signaling Pathway
Intracellular Signaling Affects Focal Adhesions
Some...

