Literature DB >> 19955439

Calcium participates in feedback regulation of the oscillating ROP1 Rho GTPase in pollen tubes.

An Yan1, Guanshui Xu, Zhen-Biao Yang.   

Abstract

Biological oscillation occurs at various levels, from cellular signaling to organismal behaviors. Mathematical modeling has allowed a quantitative understanding of slow oscillators requiring changes in gene expression (e.g., circadian rhythms), but few theoretical studies have focused on the rapid oscillation of cellular signaling. The tobacco pollen tube, which exhibits growth bursts every 80 s or so, is an excellent system for investigating signaling oscillation. Pollen tube growth is controlled by a tip-localized ROP1 GTPase, whose activity oscillates in a phase about 90 degrees ahead of growth. We constructed a mathematical model of ROP1 activity oscillation consisting of interlinking positive and negative feedback loops involving F-actin and calcium, ROP1-signaling targets that oscillate in a phase about 20 degrees and 110 degrees behind ROP1 activity, respectively. The model simulates the observed changes in ROP1 activity caused by F-actin disruption and predicts a role for calcium in the negative feedback regulation of the ROP1 activity. Our experimental data strongly support this role of calcium in tip growth. Thus, our findings provide insight into the mechanism of pollen tube growth and the oscillation of cellular signaling.

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Year:  2009        PMID: 19955439      PMCID: PMC2799871          DOI: 10.1073/pnas.0910811106

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  34 in total

1.  A genome-wide analysis of Arabidopsis Rop-interactive CRIB motif-containing proteins that act as Rop GTPase targets.

Authors:  G Wu; Y Gu; S Li; Z Yang
Journal:  Plant Cell       Date:  2001-12       Impact factor: 11.277

2.  Actin polymerization is essential for pollen tube growth.

Authors:  L Vidali; S T McKenna; P K Hepler
Journal:  Mol Biol Cell       Date:  2001-08       Impact factor: 4.138

3.  Calcium-calmodulin suppresses the filamentous actin-binding activity of a 135-kilodalton actin-bundling protein isolated from lily pollen tubes.

Authors:  E Yokota; S Muto; T Shimmen
Journal:  Plant Physiol       Date:  2000-06       Impact factor: 8.340

4.  Tip-localized calcium entry fluctuates during pollen tube growth.

Authors:  E S Pierson; D D Miller; D A Callaham; J van Aken; G Hackett; P K Hepler
Journal:  Dev Biol       Date:  1996-02-25       Impact factor: 3.582

Review 5.  Oscillatory metabolism of Saccharomyces cerevisiae: an overview of mechanisms and models.

Authors:  Pratap R Patnaik
Journal:  Biotechnol Adv       Date:  2003-05       Impact factor: 14.227

6.  Phosphoinositides and Rho proteins spatially regulate actin polymerization to initiate and maintain directed movement in a one-dimensional model of a motile cell.

Authors:  Adriana T Dawes; Leah Edelstein-Keshet
Journal:  Biophys J       Date:  2006-11-10       Impact factor: 4.033

Review 7.  The Neurospora crassa circadian clock.

Authors:  Christian Heintzen; Yi Liu
Journal:  Adv Genet       Date:  2007       Impact factor: 1.944

8.  Periodic lamellipodial contractions correlate with rearward actin waves.

Authors:  Grégory Giannone; Benjamin J Dubin-Thaler; Hans-Günther Döbereiner; Nelly Kieffer; Anne R Bresnick; Michael P Sheetz
Journal:  Cell       Date:  2004-02-06       Impact factor: 41.582

9.  Oscillations and variability in the p53 system.

Authors:  Naama Geva-Zatorsky; Nitzan Rosenfeld; Shalev Itzkovitz; Ron Milo; Alex Sigal; Erez Dekel; Talia Yarnitzky; Yuvalal Liron; Paz Polak; Galit Lahav; Uri Alon
Journal:  Mol Syst Biol       Date:  2006-06-13       Impact factor: 11.429

10.  Rho-GTPase-dependent filamentous actin dynamics coordinate vesicle targeting and exocytosis during tip growth.

Authors:  Yong Jik Lee; Amy Szumlanski; Erik Nielsen; Zhenbiao Yang
Journal:  J Cell Biol       Date:  2008-06-30       Impact factor: 10.539

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  35 in total

1.  Modeling pollen tube growth: feeling the pressure to deliver testifiable predictions.

Authors:  Jens Kroeger; Anja Geitmann
Journal:  Plant Signal Behav       Date:  2011-11-01

2.  Chemically mediated mechanical expansion of the pollen tube cell wall.

Authors:  Enrique R Rojas; Scott Hotton; Jacques Dumais
Journal:  Biophys J       Date:  2011-10-19       Impact factor: 4.033

Review 3.  Control of cell wall extensibility during pollen tube growth.

Authors:  Peter K Hepler; Caleb M Rounds; Lawrence J Winship
Journal:  Mol Plant       Date:  2013-06-14       Impact factor: 13.164

4.  RHO GTPase in plants: Conservation and invention of regulators and effectors.

Authors:  Shingo Nagawa; Tongda Xu; Zhenbiao Yang
Journal:  Small GTPases       Date:  2010-09

5.  Towards the creation of a systems tip growth model for a pollen tube.

Authors:  Junli Liu; Patrick Hussey
Journal:  Plant Signal Behav       Date:  2011-04-01

6.  Spatiotemporal dynamics of a reaction-diffusion model of pollen tube tip growth.

Authors:  Chenwei Tian; Qingyan Shi; Xinping Cui; Jingzhe Guo; Zhenbiao Yang; Junping Shi
Journal:  J Math Biol       Date:  2019-07-06       Impact factor: 2.259

Review 7.  Rapid tip growth: insights from pollen tubes.

Authors:  Yuan Qin; Zhenbiao Yang
Journal:  Semin Cell Dev Biol       Date:  2011-06-25       Impact factor: 7.727

8.  Exocytosis and endocytosis: coordinating and fine-tuning the polar tip growth domain in pollen tubes.

Authors:  Jingzhe Guo; Zhenbiao Yang
Journal:  J Exp Bot       Date:  2020-04-23       Impact factor: 6.992

9.  Microfluidic oscillators with widely tunable periods.

Authors:  Sung-Jin Kim; Ryuji Yokokawa; Shuichi Takayama
Journal:  Lab Chip       Date:  2013-04-21       Impact factor: 6.799

10.  Arabidopsis JINGUBANG Is a Negative Regulator of Pollen Germination That Prevents Pollination in Moist Environments.

Authors:  Yan Ju; Liang Guo; Qiang Cai; Fei Ma; Qiao-Yun Zhu; Quan Zhang
Journal:  Plant Cell       Date:  2016-07-28       Impact factor: 11.277

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