Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.

Cytokinesis in animal cells requires the assembly of an actomyosin contractile ring to cleave the cell. The ring is highly dynamic; it assembles and disassembles during each cell cleavage, resulting in the recurrent redistribution of actin. To investigate this process in grasshopper spermatocytes, w...

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Main Authors: G Bradley Alsop, Wei Chen, Margit Foss, Kuo-Fu Tseng, Dahong Zhang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2009-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC2654139?pdf=render
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author G Bradley Alsop
Wei Chen
Margit Foss
Kuo-Fu Tseng
Dahong Zhang
author_facet G Bradley Alsop
Wei Chen
Margit Foss
Kuo-Fu Tseng
Dahong Zhang
author_sort G Bradley Alsop
collection DOAJ
description Cytokinesis in animal cells requires the assembly of an actomyosin contractile ring to cleave the cell. The ring is highly dynamic; it assembles and disassembles during each cell cleavage, resulting in the recurrent redistribution of actin. To investigate this process in grasshopper spermatocytes, we mechanically manipulated the spindle to induce actin redistribution into ectopic contractile rings, around reassembled lateral spindles. To enhance visualization of actin, we folded the spindle at its equator to convert the remnants of the partially assembled ring into a concentrated source of actin. Filaments from the disintegrating ring aligned along reorganizing spindle microtubules, suggesting that their incorporation into the new ring was mediated by microtubules. We tracked incorporation by speckling actin filaments with Qdots and/or labeling them with Alexa 488-phalloidin. The pattern of movement implied that actin was transported along spindle microtubules, before entering the ring. By double-labeling dividing cells, we imaged actin filaments moving along microtubules near the contractile ring. Together, our findings indicate that in one mechanism of actin redistribution, actin filaments are transported along spindle microtubule tracks in a plus-end-directed fashion. After reaching the spindle midzone, the filaments could be transported laterally to the ring. Notably, actin filaments undergo a dramatic trajectory change as they enter the ring, implying the existence of a pulling force. Two other mechanisms of actin redistribution, cortical flow and de novo assembly, are also present in grasshopper, suggesting that actin converges at the nascent contractile ring from diffuse sources within the cytoplasm and cortex, mediated by spindle microtubules.
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spelling doaj.art-a1d922af4fa146e2a4d9a183d019485b2022-12-22T03:44:30ZengPublic Library of Science (PLoS)PLoS ONE1932-62032009-01-0143e489210.1371/journal.pone.0004892Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.G Bradley AlsopWei ChenMargit FossKuo-Fu TsengDahong ZhangCytokinesis in animal cells requires the assembly of an actomyosin contractile ring to cleave the cell. The ring is highly dynamic; it assembles and disassembles during each cell cleavage, resulting in the recurrent redistribution of actin. To investigate this process in grasshopper spermatocytes, we mechanically manipulated the spindle to induce actin redistribution into ectopic contractile rings, around reassembled lateral spindles. To enhance visualization of actin, we folded the spindle at its equator to convert the remnants of the partially assembled ring into a concentrated source of actin. Filaments from the disintegrating ring aligned along reorganizing spindle microtubules, suggesting that their incorporation into the new ring was mediated by microtubules. We tracked incorporation by speckling actin filaments with Qdots and/or labeling them with Alexa 488-phalloidin. The pattern of movement implied that actin was transported along spindle microtubules, before entering the ring. By double-labeling dividing cells, we imaged actin filaments moving along microtubules near the contractile ring. Together, our findings indicate that in one mechanism of actin redistribution, actin filaments are transported along spindle microtubule tracks in a plus-end-directed fashion. After reaching the spindle midzone, the filaments could be transported laterally to the ring. Notably, actin filaments undergo a dramatic trajectory change as they enter the ring, implying the existence of a pulling force. Two other mechanisms of actin redistribution, cortical flow and de novo assembly, are also present in grasshopper, suggesting that actin converges at the nascent contractile ring from diffuse sources within the cytoplasm and cortex, mediated by spindle microtubules.http://europepmc.org/articles/PMC2654139?pdf=render
spellingShingle G Bradley Alsop
Wei Chen
Margit Foss
Kuo-Fu Tseng
Dahong Zhang
Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
PLoS ONE
title Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
title_full Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
title_fullStr Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
title_full_unstemmed Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
title_short Redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes.
title_sort redistribution of actin during assembly and reassembly of the contractile ring in grasshopper spermatocytes
url http://europepmc.org/articles/PMC2654139?pdf=render
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AT kuofutseng redistributionofactinduringassemblyandreassemblyofthecontractileringingrasshopperspermatocytes
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