Literature DB >> 31266799

A Multiprotein Complex Regulates Interference-Sensitive Crossover Formation in Rice.

Jie Zhang1, Chong Wang1, James D Higgins2, Yu-Jin Kim3, Sunok Moon3, Ki-Hong Jung3, Shuying Qu1, Wanqi Liang4.   

Abstract

In most eukaryotes, a set of conserved proteins that are collectively termed ZMM proteins (named for molecular zipper 1 [ZIP1], ZIP2, ZIP3, and ZIP4, MutS homologue 4 [MSH4] and MSH5, meiotic recombination 3, and sporulation 16 [SPO16] in yeast [Saccharomyces cerevisiae]) are essential for the formation of the majority of meiotic crossovers (COs). Recent reports indicated that ZIP2 acts together with SPO16 and ZIP4 to control CO formation through recognizing and stabilizing early recombination intermediates in budding yeast. However, whether this mechanism is conserved in plants is not clear. Here, we characterized the functions of SHORTAGE OF CHIASMATA 1 (OsSHOC1; ZIP2 ortholog) and PARTING DANCERS (OsPTD; SPO16 ortholog) and their interactions with other ZMM proteins in rice (Oryza sativa). We demonstrated that disruption of OsSHOC1 caused a reduction of CO numbers to ∼83% of wild-type CO numbers, whereas synapsis and early meiotic recombination steps were not affected. Furthermore, OsSHOC1 interacts with OsPTD, which is responsible for the same set of CO formations as OsSHOC1. In addition, OsSHOC1 and OsPTD are required for the normal loading of other ZMM proteins, and conversely, the localizations of OsSHOC1 and OsPTD were also affected by the absence of OsZIP4 and human enhancer of invasion 10 in rice (OsHEI10). OsSHOC1 interacts with OsZIP4 and OsMSH5, and OsPTD interacts with OsHEI10. Furthermore, bimolecular fluorescence complementation and yeast-three hybrid assays demonstrated that OsSHOC1, OsPTD, OsHEI10, and OsZIP4 were able to form various combinations of heterotrimers. Moreover, statistical and genetic analysis indicated that OsSHOC1 and OsPTD are epistatic to OsHEI10 and OsZIP4 in meiotic CO formation. Taken together, we propose that OsSHOC1, OsPTD, OsHEI10, and OsZIP4 form multiple protein complexes that have conserved functions in promoting class I CO formation.
© 2019 American Society of Plant Biologists. All Rights Reserved.

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Year:  2019        PMID: 31266799      PMCID: PMC6716249          DOI: 10.1104/pp.19.00082

Source DB:  PubMed          Journal:  Plant Physiol        ISSN: 0032-0889            Impact factor:   8.340


  67 in total

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Journal:  PLoS Genet       Date:  2012-07-26       Impact factor: 5.917

9.  The role of rice HEI10 in the formation of meiotic crossovers.

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Journal:  PLoS Genet       Date:  2012-07-05       Impact factor: 5.917

10.  SHOC1 is a ERCC4-(HhH)2-like protein, integral to the formation of crossover recombination intermediates during mammalian meiosis.

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  8 in total

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2.  Arabidopsis HEAT SHOCK FACTOR BINDING PROTEIN is required to limit meiotic crossovers and HEI10 transcription.

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3.  HIGH CROSSOVER RATE1 encodes PROTEIN PHOSPHATASE X1 and restricts meiotic crossovers in Arabidopsis.

Authors:  Divyashree C Nageswaran; Jaeil Kim; Christophe Lambing; Juhyun Kim; Jihye Park; Eun-Jung Kim; Hyun Seob Cho; Heejin Kim; Dohwan Byun; Yeong Mi Park; Pallas Kuo; Seungchul Lee; Andrew J Tock; Xiaohui Zhao; Ildoo Hwang; Kyuha Choi; Ian R Henderson
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Review 4.  Hybrid Incompatibility of the Plant Immune System: An Opposite Force to Heterosis Equilibrating Hybrid Performances.

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5.  Bi-allelic SHOC1 loss-of-function mutations cause meiotic arrest and non-obstructive azoospermia.

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6.  Downregulation of Barley Regulator of Telomere Elongation Helicase 1 Alters the Distribution of Meiotic Crossovers.

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7.  FIGNL1 Inhibits Non-homologous Chromosome Association and Crossover Formation.

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Review 8.  Unravelling mechanisms that govern meiotic crossover formation in wheat.

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  8 in total

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