PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
November 26, 2009Journal of Biological Chemistry122 citationsOpen Access

Myosin Motors Drive Long Range Alignment of Actin Filaments

TBTariq M. ButtTMTabish MuftiAHAhmad Humayun

Key Result

In an in vitro motility assay, actin filaments self-align into oriented domains over length scales of 10-100 μm when present at high densities, driven by myosin motors.

Structured PICO

P
Population
In vitro motility assay using rhodamine-phalloidin-labeled F-actin filaments and heavy meromyosin (HMM) from rabbit back and leg fast skeletal muscles
I
Intervention
Addition of varying concentrations of plain F-actin (up to 1 mg/ml) to increase filament surface density
C
Comparator
Standard in vitro motility assay conditions with no added plain F-actin
O
Outcome
Actin filament sliding orientation and alignment (quantified by Kuiper statistic)surrogate

Actin filament crowding and near-neighbor mechanical interactions drive long-range self-alignment of actin filaments, providing a potential mechanism for cell polarity and migration.

Abstract

The bulk alignment of actin filament sliding movement, powered by randomly oriented myosin molecules, has been observed and studied using an in vitro motility assay. The well established, actin filament gliding assay is a minimal experimental system for studying actomyosin motility. Here, we show that when the assay is performed at densities of actin filaments approaching those found in living cells, filament gliding takes up a preferred orientation. The oriented patterns of movement that we have observed extend over a length scale of 10-100 microm, similar to the size of a mammalian cell. We studied the process of filament alignment and found that it depends critically upon filament length and density. We developed a simple quantitative measure of filament sliding orientation and this enabled us to follow the time course of alignment and the formation and disappearance of oriented domains. Domains of oriented filaments formed spontaneously and were separated by distinct boundaries. The pattern of the domain structures changed on the time scale of several seconds and the collision of neighboring domains led to emergence of new patterns. Our results indicate that actin filament crowding may play an important role in structuring the leading edge of migrating cells. Filament alignment due to near-neighbor mechanical interactions can propagate over a length scale of several microns; much greater than the size of individual filaments and analogous to a log drive. Self-alignment of actin filaments may make an important contribution to cell polarity and provide a mechanism by which cell migration direction responds to chemical cues.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Butt et al. (2009) studied this question. Myosin motors (in vitro motility assay) was evaluated on Actin filament alignment (Kuiper statistic). In an in vitro motility assay, actin filaments self-align into oriented domains over length scales of 10-100 μm when present at high densities, driven by myosin motors.

synapsesocial.com/papers/6a15531e79ff98d0de4e721chttps://doi.org/10.1074/jbc.m109.044792
Ask AI
Helpful
Bookmark
Share
View Full Paper