Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Immune-integrated cardiac fibrosis-on-a-chip: a 3D microfluidic device for region-specific immune-cardiac crosstalk in the fibrotic heart.

Lab on a chip·2025
Same author

A Slanted-Finger Interdigitated Transducer Microfluidic Device for Particles Sorting.

Micromachines·2025
Same author

Towards real-time myocardial infarction diagnosis: a convergence of machine learning and ion-exchange membrane technologies leveraging miRNA signatures.

Lab on a chip·2024
Same author

Glioma Single-Cell Biomechanical Analysis by Cyclic Conical Constricted Microfluidics.

Analytical chemistry·2023
Same author

An impedance flow cytometry with integrated dual microneedle for electrical properties characterization of single cell.

Artificial cells, nanomedicine, and biotechnology·2023
Same author

Cardiac Cell Patterning on Customized Microelectrode Arrays for Electrophysiological Recordings.

Micromachines·2021

Related Experiment Video

Updated: May 24, 2025

Clinical Microfluidic Chip Platform for the Isolation of Versatile Circulating Tumor Cells
05:58

Clinical Microfluidic Chip Platform for the Isolation of Versatile Circulating Tumor Cells

Published on: October 13, 2023

1.1K

Label-Free and Rapid Microfluidic Design Rules for Circulating Tumor Cell Enrichment and Isolation: A Review and

Muhammad Asraf Mansor1, Chun Yang2, Kar Lok Chong1

  • 1Department of Control and Mechatronics Engineering, Faculty of Electrical Engineering, Universiti Teknologi Malaysia, 81310 Skudai, Johor, Malaysia.

ACS Omega
|March 3, 2025
PubMed
Summary

This review highlights microfluidic devices for isolating circulating tumor cells (CTCs), crucial for early cancer diagnosis and metastasis monitoring. It offers design rules for label-free microfluidics like spiral, DLD, and DEP, aiding researchers in device development.

More Related Videos

Rapid Isolation of Viable Circulating Tumor Cells from Patient Blood Samples
07:32

Rapid Isolation of Viable Circulating Tumor Cells from Patient Blood Samples

Published on: June 15, 2012

26.6K
A Method of Targeted Cell Isolation via Glass Surface Functionalization
10:40

A Method of Targeted Cell Isolation via Glass Surface Functionalization

Published on: September 20, 2016

9.3K

Related Experiment Videos

Last Updated: May 24, 2025

Clinical Microfluidic Chip Platform for the Isolation of Versatile Circulating Tumor Cells
05:58

Clinical Microfluidic Chip Platform for the Isolation of Versatile Circulating Tumor Cells

Published on: October 13, 2023

1.1K
Rapid Isolation of Viable Circulating Tumor Cells from Patient Blood Samples
07:32

Rapid Isolation of Viable Circulating Tumor Cells from Patient Blood Samples

Published on: June 15, 2012

26.6K
A Method of Targeted Cell Isolation via Glass Surface Functionalization
10:40

A Method of Targeted Cell Isolation via Glass Surface Functionalization

Published on: September 20, 2016

9.3K

Area of Science:

  • Biomedical Engineering
  • Oncology
  • Nanotechnology

Background:

  • Circulating tumor cells (CTCs) are vital biomarkers for cancer diagnosis, prognosis, and monitoring metastasis.
  • Minimally invasive detection of CTCs offers significant clinical advantages over traditional methods.

Purpose of the Study:

  • To comprehensively review recent advancements in microfluidic devices for CTC enrichment and isolation.
  • To discuss the advantages and limitations of various microfluidic approaches for CTC analysis.
  • To provide design methodologies and rules for label-free microfluidic devices.

Main Methods:

  • Review of current literature on microfluidic technologies for CTC isolation.
  • Analysis of design specifications and performance of different microfluidic devices.
  • Development of systematic design rules for label-free microfluidics.

Main Results:

  • Summary of key microfluidic device types, including spiral, deterministic lateral displacement (DLD), and dielectrophoresis (DEP).
  • Evaluation of the strengths and weaknesses of existing microfluidic CTC enrichment strategies.
  • Establishment of design principles to guide the development of novel microfluidic platforms.

Conclusions:

  • Microfluidic devices offer promising solutions for efficient and accurate CTC isolation.
  • Label-free microfluidic design rules facilitate systematic development and rapid research progress.
  • Advancements in microfluidics are critical for improving cancer diagnostics and understanding metastasis.