Home Our TeamContact
Anne Bernheim-Groswasser
Anne Bernheim-Groswasser
Prof. ANNE BERNHEIM Department of Chemical Engineering, Ben-Gurion University of the Negev

Anne Bernheim

Senior Academic

Extracting the dynamic correlation length of actin networks from microrheology experiments

Adar Sonn-Segev, Anne Bernheim-Groswasser, Yael Roichman

The mechanical properties of polymer gels based on cytoskeleton proteins (e.g. actin) have been studied extensively due to their significant role in biological cell motility and in maintaining the cell's structural integrity. Microrheology is the natural method of choice for such studies due to its economy in sample volume, its wide frequency range, and its spatial sensitivity. In microrheology, the thermal motion of tracer particles embedded in a complex fluid is used to extract the fluid's viscoelastic properties. Comparing the motion of a single particle to the correlated motion of particle pairs, it is possible to extract viscoelastic properties at different length scales. In a recent study, a crossover between intermediate and bulk response of complex fluids was discovered in microrheology measurements of reconstituted actin networks. This crossover length was related to structural and mechanical properties of the networks, such as their mesh size and dynamic correlation length. Here we capitalize on this result giving a detailed description of our analysis scheme, and demonstrating how this relation can be used to extract the dynamic correlation length of a polymer network. We further study the relation between the dynamic correlation length and the structure of the network, by introducing a new length scale, the average filament length, without altering the network's mesh size. Contrary to the prevailing assumption, that the dynamic correlation length is equivalent to the mesh size of the network, we find that the dynamic correlation length increases once the filament length is reduced below the crossover distance.

Publication language English
Pages 8324-8329
Volume 10
Issue number 41
Publication status Published - 07.11.2014

ASJC Scopus subject areas

General Chemistry
Condensed Matter Physics
Access to Document
10.1039/c4sm01538j
Other files and links
Link to publication in Scopus