Numerical study on the adhesion of a circulating tumor cell in a curved microvessel
- PMID: 32809129
- DOI: 10.1007/s10237-020-01380-x
Numerical study on the adhesion of a circulating tumor cell in a curved microvessel
Abstract
The adhesion of a circulating tumor cell (CTC) in a three-dimensional curved microvessel was numerically investigated. Simulations were first performed to characterize the differences in the dynamics and adhesion of a CTC in the straight and curved vessels. After that, a parametric study was performed to investigate the effects of the applied driven force density f (or the flow Reynolds number Re) and the CTC membrane bending modulus Kb on the CTC adhesion. Our simulation results show that the CTC prefers to adhere to the curved vessel as more bonds are formed around the transition region of the curved part due to the increased cell-wall contact by the centrifugal force. The parametric study also indicates that when the flow driven force f (or Re) increases or when the CTC becomes softer (Kb decreases), the bond formation probability increases and the bonds will be formed at more sites of a curved vessel. The increased f (or Re) brings a larger centrifugal force, while the decreased Kb generates more contact areas at the cell-wall interface, both of which are beneficial to the bond formation. In the curved vessel, it is found that the site where bonds are formed the most (hotspot) varies with the applied f and the Kb. For our vessel geometry, when f is small, the hotspot tends to be within the first bend of the vessel, while as f increases or Kb decreases, the hotspot may shift to the second bend of the vessel.
Keywords: Cell adhesion; Circulating tumor cell; Curved microvessel; Dissipative particle dynamics.
Similar articles
-
Computational analysis of cancer cell adhesion in curved vessels affected by wall shear stress for prediction of metastatic spreading.Front Bioeng Biotechnol. 2024 May 27;12:1393413. doi: 10.3389/fbioe.2024.1393413. eCollection 2024. Front Bioeng Biotechnol. 2024. PMID: 38860135 Free PMC article.
-
Effects of flowing RBCs on adhesion of a circulating tumor cell in microvessels.Biomech Model Mechanobiol. 2017 Apr;16(2):597-610. doi: 10.1007/s10237-016-0839-5. Epub 2016 Oct 13. Biomech Model Mechanobiol. 2017. PMID: 27738841 Free PMC article.
-
Effects of wall shear stress and its gradient on tumor cell adhesion in curved microvessels.Biomech Model Mechanobiol. 2012 May;11(5):641-53. doi: 10.1007/s10237-011-0339-6. Epub 2011 Aug 5. Biomech Model Mechanobiol. 2012. PMID: 21818636 Free PMC article.
-
Modeling Cell Adhesion and Extravasation in Microvascular System.Adv Exp Med Biol. 2018;1097:219-234. doi: 10.1007/978-3-319-96445-4_12. Adv Exp Med Biol. 2018. PMID: 30315548 Review.
-
Challenges in circulating tumor cell detection by the CellSearch system.Mol Oncol. 2016 Mar;10(3):395-407. doi: 10.1016/j.molonc.2015.12.002. Epub 2015 Dec 25. Mol Oncol. 2016. PMID: 26795350 Free PMC article. Review.
Cited by
-
Computational analysis of cancer cell adhesion in curved vessels affected by wall shear stress for prediction of metastatic spreading.Front Bioeng Biotechnol. 2024 May 27;12:1393413. doi: 10.3389/fbioe.2024.1393413. eCollection 2024. Front Bioeng Biotechnol. 2024. PMID: 38860135 Free PMC article.
-
Role of Cell Adhesion in Cancer Metastasis Formation: A Review.ACS Omega. 2025 Feb 9;10(6):5193-5213. doi: 10.1021/acsomega.4c08140. eCollection 2025 Feb 18. ACS Omega. 2025. PMID: 39989825 Free PMC article. Review.
-
A method for real-time mechanical characterisation of microcapsules.Biomech Model Mechanobiol. 2023 Aug;22(4):1209-1220. doi: 10.1007/s10237-023-01712-7. Epub 2023 Mar 24. Biomech Model Mechanobiol. 2023. PMID: 36964429 Free PMC article.
-
Transient flow-induced deformation of cancer cells in microchannels: a general computational model and experiments.Biomech Model Mechanobiol. 2025 Apr;24(2):489-506. doi: 10.1007/s10237-024-01920-9. Epub 2025 Feb 2. Biomech Model Mechanobiol. 2025. PMID: 39893594 Free PMC article.
-
The role of adhesive receptor patterns on cell transport in complex microvessels.Biomech Model Mechanobiol. 2022 Aug;21(4):1079-1098. doi: 10.1007/s10237-022-01575-4. Epub 2022 May 4. Biomech Model Mechanobiol. 2022. PMID: 35507242 Free PMC article.
References
-
- Alon R (1997) The kinetics of L-selectin tethers and the mechanics of selectin-mediated rolling. J Cell Biol 138:1169–1180 - DOI
-
- Bao G, Kamm RD, Thomas W et al (2010) Molecular Biomechanics: the molecular basis of how forces regulate cellular function. Cell Mol Bioeng 3:91–105. https://doi.org/10.1007/s12195-010-0109-z - DOI
-
- Cai B, Fan J, Zeng M, Zhang L, Fu BM (2012) Adhesion of malignant mammary tumor cells MDA-MB-231 to microvessel wall increases microvascular permeability via degradation of endothelial surface glycocalyx. J Appl Physiol 113(7):1141–1153. https://doi.org/10.1152/japplphysiol.00479.2012 - DOI
-
- Chang K-C, Hammer D (1996) Influence of direction and type of applied force on the detachment of macromolecularly-bound particles from surfaces. Langmuir. https://doi.org/10.1021/la950690y - DOI
-
- Dembo M, Torney D, Saxman K, Da H (1988) The reaction-limited kinetics of membrane-to-surface adhesion and detachment. Proc R Soc Lond Ser B Biol Sci 234:55–83. https://doi.org/10.1098/rspb.1988.0038 - DOI
MeSH terms
Grants and funding
LinkOut - more resources
Full Text Sources