| Literature DB >> 31747120 |
Zhengjie Lin1, Guanyi Luo2, Weixiang Du2, Tiantian Kong2, Changkun Liu1, Zhou Liu1.
Abstract
Cancer remains the leading cause of death worldwide despite the enormous efforts that are made in the development of cancer biology and anticancer therapeutic treatment. Furthermore, recent studies in oncology have focused on the complex cancer metastatic process as metastatic disease contributes to more than 90% of tumor-related death. In the metastatic process, isolation and analysis of circulating tumor cells (CTCs) play a vital role in diagnosis and prognosis of cancer patients at an early stage. To obtain relevant information on cancer metastasis and progression from CTCs, reliable approaches are required for CTC detection and isolation. Additionally, experimental platforms mimicking the tumor microenvironment in vitro give a better understanding of the metastatic microenvironment and antimetastatic drugs' screening. With the advancement of microfabrication and rapid prototyping, microfluidic techniques are now increasingly being exploited to study cancer metastasis as they allow precise control of fluids in small volume and rapid sample processing at relatively low cost and with high sensitivity. Recent advancements in microfluidic platforms utilized in various methods for CTCs' isolation and tumor models recapitulating the metastatic microenvironment (tumor-on-a-chip) are comprehensively reviewed. Future perspectives on microfluidics for cancer metastasis are proposed.Entities:
Keywords: cancer metastasis; circulating tumor cells' (CTCs) isolation; microfluidic platforms; tumor microenvironment; tumor-on-a-chip
Mesh:
Year: 2019 PMID: 31747120 DOI: 10.1002/smll.201903899
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281