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The Dynamic Distribution of Fluorescent Analogues of Actin and Myosin in Protrusions at the Leading Edge of Migrating Swiss 3T3 Fibroblasts

Overview
Journal J Cell Biol
Specialty Cell Biology
Date 1988 Dec 1
PMID 3204122
Citations 36
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Abstract

The formation of protrusions at the leading edge of the cell is an essential step in fibroblast locomotion. Using fluorescent analogue cytochemistry, ratio imaging, multiple parameter analysis, and fluorescence photobleaching recovery, the distribution of actin and myosin was examined in the same protrusions at the leading edge of live, locomoting cells during wound-healing in vitro. We have previously defined two temporal stages of the formation of protrusions: (a) initial protrusion and (b) established protrusion (Fisher et al., 1988). Actin was slightly concentrated in initial protrusions, while myosin was either totally absent or present at extremely low levels at the base of the initial protrusions. In contrast, established protrusions contained diffuse actin and actin microspikes, as well as myosin in both diffuse and structured forms. Actin and myosin were also localized along concave transverse fibers near the base of initial and established protrusions. The dynamics of myosin penetration into a relatively stable, established protrusion was demonstrated by recording sequential images over time. Myosin was shown to be absent from an initial protrusion, but diffuse and punctate myosin was detected in the same protrusion within 1-2 min. Fluorescence photobleaching recovery indicated that myosin was 100% immobile in the region behind the leading edge containing transverse fibers, in comparison to the 21% immobile fraction detected in the perinuclear region. Possible explanations of the delayed penetration of myosin into established protrusions and the implications on the mechanism of protrusion are discussed.

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References
1.
Flicker P, Wallimann T, Vibert P . Electron microscopy of scallop myosin. Location of regulatory light chains. J Mol Biol. 1983; 169(3):723-41. DOI: 10.1016/s0022-2836(83)80167-3. View

2.
Heath J . Behaviour and structure of the leading lamella in moving fibroblasts. I. Occurrence and centripetal movement of arc-shaped microfilament bundles beneath the dorsal cell surface. J Cell Sci. 1983; 60:331-54. DOI: 10.1242/jcs.60.1.331. View

3.
Ngai P, Carruthers C, Walsh M . Isolation of the native form of chicken gizzard myosin light-chain kinase. Biochem J. 1984; 218(3):863-70. PMC: 1153416. DOI: 10.1042/bj2180863. View

4.
Sellers J, Pato M . The binding of smooth muscle myosin light chain kinase and phosphatases to actin and myosin. J Biol Chem. 1984; 259(12):7740-6. View

5.
Trybus K, LOWEY S . Conformational states of smooth muscle myosin. Effects of light chain phosphorylation and ionic strength. J Biol Chem. 1984; 259(13):8564-71. View