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Updated: Aug 16, 2026

Assay of Adhesion Under Shear Stress for the Study of T Lymphocyte-Adhesion Molecule Interactions
Published on: June 29, 2016
Shear stress and shear rate differentially affect the multi-step process of leukocyte-facilitated melanoma adhesion
Shile Liang1, Margaret J Slattery, Cheng Dong
1The Huck Institutes of the Life Sciences, The Pennsylvania State University, University Park, PA 16802-6804, USA.
Abstract:
Previous studies have shown that neutrophils (PMNs) facilitate melanoma cell extravasation [M.J. Slattery, C. Dong, Neutrophils influence melanoma adhesion and migration under flow conditions, Intl. J. Cancer 106 (2003) 713-722] Little is known, however, about the specific interactions between PMNs, melanoma and the endothelium (EC) or the molecular mechanism involved under flow conditions. The aim of this study is to investigate a "two-step adhesion" hypothesis that involves initial PMN tethering on the EC and subsequent melanoma cells being captured by tethered PMNs. Different effects of hydrodynamic shear stress and shear rate were analyzed using a parallel-plate flow chamber. Results indicate a novel finding that PMN-facilitated melanoma cell arrest on the EC is modulated by shear rate, which is inversely-proportional to cell-cell contact time, rather than by the shear stress, which is proportional to the force exerted on formed bonds. Beta2 integrins/ICAM-1 adhesion mechanisms were examined and the results indicate LFA-1 and Mac-1 cooperate to mediate the PMN-EC-melanoma interactions under shear conditions. In addition, endogenously produced IL-8 contributes to PMN-facilitated melanoma arrest on the EC through the CXC chemokine receptors 1 and 2 (CXCR1 and CXCR2) on PMN. These results provide new evidence for the complex role of hemodynamic forces, secreted chemokines and PMN-melanoma adhesion in the recruitment of metastatic cancer cells to the EC.
Insights
Neutrophils help melanoma cells adhere to blood vessel walls. This process is controlled by shear rate, not shear stress, involving specific cell adhesion molecules and IL-8 signaling.
Area of Science:
- Oncology
- Immunology
- Biophysics
Background:
- Neutrophils (PMNs) are known to aid melanoma cell extravasation.
- Specific interactions between PMNs, melanoma cells, and endothelium (EC) under flow remain unclear.
Purpose of the Study:
- To investigate the "two-step adhesion" hypothesis of PMN-melanoma-EC interactions.
- To elucidate the molecular mechanisms governing these interactions under hydrodynamic conditions.
Main Methods:
- Utilized a parallel-plate flow chamber to analyze hydrodynamic shear stress and shear rate effects.
- Examined beta2 integrins/ICAM-1 adhesion mechanisms, including LFA-1 and Mac-1.
- Investigated the role of endogenously produced IL-8 and its receptors (CXCR1, CXCR2).
Main Results:
- PMN-facilitated melanoma cell arrest on EC is modulated by shear rate, not shear stress.
- Cell-cell contact time, inversely proportional to shear rate, is a key factor.
- LFA-1 and Mac-1 cooperate in mediating PMN-EC-melanoma interactions.
- IL-8 signaling via CXCR1/CXCR2 on PMNs contributes to melanoma cell arrest.
Conclusions:
- Melanoma cell arrest on endothelium is a complex process involving hemodynamic forces, chemokines, and PMN adhesion.
- Shear rate, influencing contact time, is a critical determinant in PMN-mediated melanoma cell recruitment.
- Beta2 integrins and IL-8 signaling pathways are crucial for this metastatic process.
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