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Cell Migration01:09

Cell Migration

Cell migration, the process by which cells move from one location to another, is essential for the proper development and viability of organisms throughout their life. When cells are not able to migrate properly to their ordained locations, various disorders may occur. For example, disruption in cell migration causes chronic inflammatory diseases such as arthritis.
Cell Migration01:19

Cell Migration

Cell migration is a process by which the cells move from one location to another, playing an essential role in embryological development, repair and regeneration, immune response, and metastasis. Cells migrate in response to chemical or mechanical signals generated by specific organs or tissues. The overall mechanism includes three steps - polarization, protrusion, and release. Polarization involves the formation of a distinct cell front and rear, which determines the direction of movement.
Mechanism of Lamellipodia Formation01:31

Mechanism of Lamellipodia Formation

Cells migrating in response to external stimuli form lamellipodia, which are thin membrane protrusions supported by a mesh of linked, branched, or unbranched actin filaments. These actin filaments interact with myosin motor proteins, creating the dynamic actomyosin complex within the cytoskeleton. Contractility, or the ability to generate contractile stress, is inherent to the actomyosin complex. It helps cells detect the stiffness of the surrounding ECM and exert contractile force for...
Cell Motility through Blebbing01:16

Cell Motility through Blebbing

Blebs are a type of membrane protrusion formed by the internal hydrostatic pressure of the cytoplasm. Blebs are observed in several cell types, including fibroblasts, immune cells, and single-celled organisms like the amoeba. The primary function of blebs is cell locomotion and apoptosis, but they are also found during necrosis and cell division. The life cycle of a bleb comprises an initiation phase followed by the expansion and retraction phases.
Blebbing Through the Matrix
In multicellular...
Cytoskeletal Coordination in Cell Migration01:32

Cytoskeletal Coordination in Cell Migration

A migrating cell changes its shape during the cyclic events of attachment and detachment from the substratum and repositions the cell organelles correspondingly. These complex events are orchestrated by the dynamic cytoskeletal network comprising actin filaments, intermediate filaments, and microtubules. Cytoskeletal crosstalk — the direct and indirect communication between the different components — is crucial for this coordination. Direct communication involves various linker proteins that...
Types of Membrane Protrusions01:28

Types of Membrane Protrusions

The protrusion of the cell surface is an initial step for several cellular processes, including cell migration, phagocytosis, and neurite outgrowth. These membrane protrusions are a result of cytoskeletal rearrangement. The most  widely observed cell protrusions include lamellipodia, pseudopodia, filopodia, microvilli, invadopodia, and podosomes. These protrusions can be of two types — static or dynamic.
The microvilli, an example of stable protrusions, are finger-like projections with a...

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Related Experiment Video

Updated: Jul 21, 2026

Monitoring Spatial Segregation in Surface Colonizing Microbial Populations
07:40

Monitoring Spatial Segregation in Surface Colonizing Microbial Populations

Published on: October 29, 2016

Surface self-organization caused by dislocation networks.

Konrad Thürmer1, Robert Q Hwang, Norman C Bartelt

  • 1Sandia National Laboratories, Livermore, CA 94550, USA. kthurme@sandia.gov

Science (New York, N.Y.)
|March 4, 2006
PubMed
Summary

Researchers discovered a new self-organization mechanism for robust surface ordering. The stability of hole arrays on silver-ruthenium surfaces depends on misfit dislocation structures, observed via scanning tunneling microscopy.

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Area of Science:

  • Materials Science
  • Surface Science
  • Nanotechnology

Background:

  • Surface ordering is crucial for advanced materials.
  • Understanding self-organization mechanisms is key to controlling surface structures.
  • Misfit dislocations can influence film properties.

Purpose of the Study:

  • To investigate a novel self-organization mechanism leading to robust surface ordering.
  • To quantitatively analyze the thermal motion of holes in a silver monolayer on a ruthenium surface.
  • To determine the factors controlling the stability of ordered hole arrays.

Main Methods:

  • Real-time observation using scanning tunneling microscopy (STM).
  • Quantitative analysis of thermal motion of defects (holes).
  • Investigation of silver monolayers on ruthenium (Ru) surfaces.

Main Results:

  • A new mechanism for robust surface ordering was identified.
  • The arrangement and structure of misfit dislocations were found to determine the stability of hole arrays.
  • Thermal motion of sulfur-atom-created holes was quantitatively analyzed.

Conclusions:

  • The study reveals a new pathway for achieving stable surface structures.
  • Misfit dislocations play a critical role in the self-organization of surface defects.
  • Scanning tunneling microscopy provides valuable insights into nanoscale surface dynamics.