» Articles » PMID: 33381591

An Overview of , , and Computational Techniques for Cancer-Associated Angiogenesis Studies

Overview
Journal Biomed Res Int
Publisher Wiley
Date 2020 Dec 31
PMID 33381591
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Angiogenesis is a crucial area in scientific research because it involves many important physiological and pathological processes. Indeed, angiogenesis is critical for normal physiological processes, including wound healing and embryonic development, as well as being a component of many disorders, such as rheumatoid arthritis, obesity, and diabetic retinopathies. Investigations of angiogenic mechanisms require assays that can activate the critical steps of angiogenesis as well as provide a tool for assessing the efficacy of therapeutic agents. Thus, angiogenesis assays are key tools for studying the mechanisms of angiogenesis and identifying the potential therapeutic strategies to modulate neovascularization. However, the regulation of angiogenesis is highly complex and not fully understood. Difficulties in assessing the regulators of angiogenic response have necessitated the development of an alternative approach. In this paper, we review the standard models for the study of tumor angiogenesis on the macroscopic scale that include , , and computational models. We also highlight the differences in several modeling approaches and describe key advances in understanding the computational models that contributed to the knowledge base of the field.

Citing Articles

Advancement in Cancer Vasculogenesis Modeling through 3D Bioprinting Technology.

Shukla A, Yoon S, Oh S, Lee D, Ahn M, Kim B Biomimetics (Basel). 2024; 9(5).

PMID: 38786516 PMC: 11118135. DOI: 10.3390/biomimetics9050306.


A Comprehensive Look at In Vitro Angiogenesis Image Analysis Software.

Pereira M, Pinto J, Arteaga B, Guerra A, Jorge R, Monteiro F Int J Mol Sci. 2023; 24(24).

PMID: 38139453 PMC: 10743557. DOI: 10.3390/ijms242417625.


Involvement of Resveratrol against Brain Cancer: A Combination Strategy with a Pharmaceutical Approach.

Karthika C, Najda A, Klepacka J, Zehravi M, Akter R, Akhtar M Molecules. 2022; 27(14).

PMID: 35889532 PMC: 9320031. DOI: 10.3390/molecules27144663.


CRISPR-mediated knockout of VEGFR2/KDR inhibits cell growth in a squamous thyroid cancer cell line.

Tsai M, Lee C, Huang L, Chen Y, Liu W, Lin C FEBS Open Bio. 2022; 12(5):993-1005.

PMID: 35313079 PMC: 9063427. DOI: 10.1002/2211-5463.13399.


Involvement of parathyroid hormone-related peptide in the aggressive phenotype of colorectal cancer cells.

Novoa Diaz M, Carriere P, Martin M, Calvo N, Gentili C World J Gastroenterol. 2021; 27(41):7025-7040.

PMID: 34887626 PMC: 8613645. DOI: 10.3748/wjg.v27.i41.7025.

References
1.
Yoon D, Kim H, Lee E, Park M, Chung S, Jeon H . Study on chemotaxis and chemokinesis of bone marrow-derived mesenchymal stem cells in hydrogel-based 3D microfluidic devices. Biomater Res. 2016; 20:25. PMC: 4971648. DOI: 10.1186/s40824-016-0070-6. View

2.
Lignet F, Benzekry S, Wilson S, Billy F, Saut O, Tod M . Theoretical investigation of the efficacy of antiangiogenic drugs combined to chemotherapy in xenografted mice. J Theor Biol. 2012; 320:86-99. DOI: 10.1016/j.jtbi.2012.12.013. View

3.
Rogers M, Birsner A, DAmato R . The mouse cornea micropocket angiogenesis assay. Nat Protoc. 2007; 2(10):2545-50. DOI: 10.1038/nprot.2007.368. View

4.
Sun C, Li J, Wang B, Shangguan J, Figini M, Shang N . Tumor angiogenesis and bone metastasis - Correlation in invasive breast carcinoma. J Immunol Methods. 2017; 452:46-52. DOI: 10.1016/j.jim.2017.10.006. View

5.
Kim C, Kasuya J, Jeon J, Chung S, Kamm R . A quantitative microfluidic angiogenesis screen for studying anti-angiogenic therapeutic drugs. Lab Chip. 2014; 15(1):301-10. PMC: 4311754. DOI: 10.1039/c4lc00866a. View