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Overview Of Cell Separation And Isolation01:20

Overview Of Cell Separation And Isolation

Cell separation was first achieved in 1964 by S. H. Seal, who separated large tumor cells from the smaller blood cells using filtration. Two years later, Pohl and Hawk performed experiments on how cells respond differently to a nonuniform electric field based on the cell type. Such observations were the inception of cell separation methods, which allow isolating a single cell type from a heterogeneous sample.
Racemic Mixtures and the Resolution of Enantiomers02:30

Racemic Mixtures and the Resolution of Enantiomers

A racemic mixture, or racemate, is an equimolar mixture of enantiomers of a molecule that can be separated using their unique interaction with chiral molecules or media. Racemic mixtures are denoted by the (±)- prefix. This ‘optical rotation descriptor’ applies to the whole solution of a racemic mixture rather than a specific stereoisomer. Enantiomers typically have the same physical and chemical properties. Hence, they are not easily separable. However, enantiomers can exhibit different...
Stereoisomers02:32

Stereoisomers

On the basis of mirror symmetry, stereoisomers of an organic molecule can be further classified into diastereomers and enantiomers. Diastereomers are stereoisomers that are not mirror images of each other. Substituted alkenes, such as the cis and trans isomers of 2-butene, are diastereomers, as these molecules exhibit different spatial orientations of their constituent atoms, are not mirror images of each other, and do not interconvert. Here, the interconversion is suppressed due to restricted...

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Related Experiment Video

Updated: Jun 8, 2026

Single Step Isolation of Extracellular Vesicles from Large-Volume Samples with a Bifurcated A4F Microfluidic Device
06:28

Single Step Isolation of Extracellular Vesicles from Large-Volume Samples with a Bifurcated A4F Microfluidic Device

Published on: February 2, 2024

Microfluidic sorting of stereoisomers.

Ralf Eichhorn1

  • 1NORDITA, Roslagstullsbacken 23, 106 91 Stockholm, Sweden. eichhorn@nordita.org

Physical Review Letters
|September 28, 2010
PubMed
Summary

Different stereoisomers move at distinct velocities in microfluidic channels due to structure-specific motion coupling. This finding offers a novel method for separating stereoisomers, crucial for biotechnology and pharmaceutical applications.

Area of Science:

  • Fluid dynamics
  • Molecular dynamics
  • Separation science

Background:

  • Stereoisomers are molecules with identical composition but different spatial arrangements.
  • Separating stereoisomers is critical in pharmaceutical development and biotechnology.
  • Current separation methods can be complex and costly.

Purpose of the Study:

  • To investigate the transport behavior of stereoisomers in microfluidic systems.
  • To identify the underlying physical mechanisms governing stereoisomer transport.
  • To explore a new method for stereoisomer separation.

Main Methods:

  • Simulating and analyzing the motion of stereoisomers in a fluid stream within a straight microchannel.
  • Investigating the coupling between translational and rotational motion.

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A Microfluidic Platform for Precision Small-volume Sample Processing and Its Use to Size Separate Biological Particles with an Acoustic Microdevice

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Last Updated: Jun 8, 2026

Single Step Isolation of Extracellular Vesicles from Large-Volume Samples with a Bifurcated A4F Microfluidic Device
06:28

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A Microfluidic Device for Studying Multiple Distinct Strains
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A Microfluidic Platform for Precision Small-volume Sample Processing and Its Use to Size Separate Biological Particles with an Acoustic Microdevice
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  • Characterizing the dependence of transport velocity on molecular structure.
  • Main Results:

    • Different stereoisomers exhibit distinct transport velocities in microchannels.
    • A molecule-specific translation-rotation coupling mechanism was identified as the cause.
    • The observed differences in velocity are directly related to the stereoisomer's structure.

    Conclusions:

    • The differential transport of stereoisomers in microchannels is a viable phenomenon.
    • Exploiting translation-rotation coupling offers a novel approach for stereoisomer separation.
    • This method has significant potential for applications in biotechnology and pharmaceutics.