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抑制植物减数分裂重组的分子机理
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  • 英文篇名:Molecular mechanisms of meiotic recombination suppression in plants
  • 作者:李帆 ; 余蓉培 ; 孙丹 ; 王继华 ; 李绅崇 ; 阮继伟 ; 单芹丽 ; 陆平利 ; 汪国鲜
  • 英文作者:Fan Li;Rongpei Yu;Dan Sun;Jihua Wang;Shenchong Li;Jiwei Ruan;Qinli Shan;Pingli Lu;Guoxian Wang;Flower Research Institute,Yunnan Academy of Agricultural Sciences,National Engineering Research Center for Ornamental Horticulture,Yunnan Key Laboratory for Flower Breeding;Institute of Plant Biology,School of Life Sciences,Fudan University;
  • 关键词:减数分裂 ; 同源重组 ; 抑制基因 ; 调控网络
  • 英文关键词:meiosis;;homologous recombination;;suppressors;;regulation networks
  • 中文刊名:YCZZ
  • 英文刊名:Hereditas
  • 机构:云南省农业科学院花卉研究所国家观赏园艺工程技术研究中心云南省花卉育种重点实验室;复旦大学生命科学学院植物科学研究所;
  • 出版日期:2018-11-21 14:00
  • 出版单位:遗传
  • 年:2019
  • 期:v.41
  • 基金:云南省农业联合青年项目,云南省科技计划重点研収(农业领域)项目(编号:2018BB010);; 云南省科技计划项目(编号:2016IA001)资助~~
  • 语种:中文;
  • 页:YCZZ201901006
  • 页数:14
  • CN:01
  • ISSN:11-1913/R
  • 分类号:56-69
摘要
减数分裂重组不仅保证了真核生物有性生殖过程中染色体数量的稳定,还通过父母亲本间遗传物质的互换在后代中产生遗传变异。因此,减数分裂重组是遗传多样性形成的重要途径,也是生物多样性和物种进化的主要动力。在绝大多数真核生物中,不管染色体数目的多少或基因组的大小,减数分裂重组的形成都受到严格的调控,但抑制减数分裂重组的分子机理目前仍不清楚。近年来,通过正向遗传学筛选鉴定出多个减数分裂重组抑制基因,揭示了抑制基因的功能和调控途径。本文基于拟南芥中减数分裂重组抑制基因的研究现状,综述了植物减数分裂重组抑制基因研究取得的突破性进展,并结合基因功能与其调控网络阐述了抑制植物减数分裂重组的分子机理。
        Meiotic recombination not only ensures the stability of chromosome numbers during the sexual reproduction in eukaryotes,but also shuffles the maternal and paternal genetic materials to generate genetic diversity in the gametes.Therefore,meiotic recombination is an important pathway for genetic diversity,which has been considered as a major driving force for species evolution and biodiversity in nature.In most eukaryotes,meiotic recombination is strictly limited,despite the large variation of physical genome size and chrom osome numbers among species,but the mechanisms suppressing meiotic recombination remain elusive.Recently,several suppressors have been identified through the forward genetics screen,and revealed the functions and regulation pathways of these suppressors.In this review,we summarize the breakthrough discovery of meiotic recombination suppressors in plants based on research in Arabidopsis,with particular focus on the gene function and its regulation network to elucidate the molecular mechanisms of meiotic recombination suppression in plants.
引文
[1]Lu P,Wijeratne AJ,Wang Z,Copenhaver GP,Ma H.Arabidopsis PTD is required for type I crossover formation and affects recombination frequency in two different chromosomal regions.J Genet Genomics,2014,41(3):165-175.
    [2]Li YF,Cheng ZK.Molecular mechanism of meiotic recombination in plants.Sci Sin Vit,2015,45(6):537-543.
    [3]Nambiar M,Smith GR.Repression of harmful meiotic recombination in centromeric regions.Semin Cell Dev Biol,2016,54(2):188-197.
    [4]Kohl KP,Sekelsky J.Meiotic and mitotic recombination in meiosis.Genetics,2013,194(2):327-334.
    [5]Mercier R,Mézard C,Jenczewski E,Macaisne N,Grelon M.The molecular biology of meiosis in plants.Annu Rev Plant Biol,2015,66(1):297-327.
    [6]Keeney S.Mechanism and control of meiotic recombination initiation.Curr Top Dev Biol,2001,52(4):1-53.
    [7]Zamariola L,Tiang CL,De Storme N,Pawlowski W,Geelen D.Chromosome segregation in plant meiosis.Front Plant Sci,2014,5:279.
    [8]Li F,De Storme N,Geelen D.Dynamics of male meiotic recombination frequency during plant development using Fluorescent Tagged Lines in Arabidopsis thaliana.Sci Rep,2017,7:42535.
    [9]Hunter N.Meiotic recombination:The essence of heredity.CSH Perspect Biol,2015,7(12):381-442.
    [10]Hadany L,Comeron JM.Why are sex and recombination so common?Ann N Y Acad Sci,2008,1133(1):26-43.
    [11]Barton NH,Charlesworth B.Why sex and recombination?Science,1998,281(5385):1986-1990.
    [12]Youds JL,Boulton SJ.The choice in meiosis-defining the factors that influence crossover or non-crossover formation.J Cell Sci,2011,124(4):501-513.
    [13]Cnudde F,Gerats T.Meiosis:inducing variation by reduction.Plant Biol,2005,7(4):321-341.
    [14]Baudat F,Imai Y,De Massy B.Meiotic recombination in mammals:localization and regulation.Nat Rev Genet,2013,14(11):794-806.
    [15]Yelina N,Diaz P,Lambing C,Henderson IR.Epigenetic control of meiotic recombination in plants.Sci China Life Sci,2015,58(3):223-231.
    [16]Modliszewski JL,Copenhaver GP.Meiotic recombination gets stressed out:CO frequency is plastic under pressure.Curr Opin Plant Biol,2017,36:95-102.
    [17]Robert T,Nore A,Brun C,Maffre C,Crimi B,Guichard V,Bourbon HM,de Massy B.The TopoVIB-Like protein family is required for meiotic DNA doublestrand break formation.Science,2016,351(6276):943-949.
    [18]Vrielynck N,Chambon A,Vezon D,Pereira L,Chelysheva L,De Muyt A,Mézard C,Mayer C,Grelon M.A DNA topoisomerase VI-like complex initiates meiotic recombination.Science,2016,351(6276):939-943.
    [19]Fu M,Wang C,Xue F,Higgins J,Chen M,Zhang D,Liang W.The DNA topoisomerase VI-B subunit OsMTOPVIB is essential for meiotic recombination initiation in rice.Mol Plant,2016,9(11):1539-1541.
    [20]Stacey NJ,Kuromori T,Azumi Y,Roberts G,Breuer C,Wada T,Maxwell A,Roberts K,Sugimoto-Shirasu K.Arabidopsis SPO11-2 functions with SPO11-1 in meiotic recombination.Plant J,2006,48(2):206-216.
    [21]Hartung F,Wurz-Wildersinn R,Fuchs J,Schubert I,Suer S,Puchta H.The catalytically active tyrosine residues of both SPO11-1 and SPO11-2 are required for meiotic double-strand break induction in Arabidopsis.Plant Cell,2007,19(10):3090-3099.
    [22]Miao C,Tang D,Zhang H,Wang M,Li Y,Tang S,Yu H,Gu M,Cheng Z.Central region component1,a novel synaptonemal complex component,is essential for meiotic recombination initiation in rice.Plant Cell,2013,25(8):2998-3009.
    [23]De Muyt A,Vezon D,Gendrot G,Gallois J L,Stevens R,Grelon M.AtPRD1 is required for meiotic double strand break formation in Arabidopsis thaliana.EMBO J,2007,26(18):4126-4137.
    [24]De Muyt A,Pereira L,Vezon D,Chelysheva L,Gendrot G,Chambon A,Lainé-Choinard S,Pelletier G,Mercier R,NoguéF.A high throughput genetic screen identifies new early meiotic recombination functions in Arabidopsis thaliana.PLoS Genet,2009,5(9):e1000654.
    [25]Zhang C,Song Y,Cheng ZH,Wang YX,Zhu J,Ma H,Xu L,Yang ZN.The Arabidopsis thaliana DSBformation(AtDFO)gene is required for meiotic double-strand break formation.Plant,2012,72(2):271-281.
    [26]Kumar R,Bourbon HM,De Massy B.Functional conservation of Mei4 for meiotic DNA double-strand break formation from yeasts to mice.Genes Dev,2010,24(12):1266-1280.
    [27]Keeney S.Spo11 and the formation of DNA doublestrand breaks in meiosis.In:Recombination and meiosis.Springer,2007,81-123.
    [28]Lam I,Keeney S.Mechanism and regulation of meiotic recombination initiation.Cold Spring Harb Perspect Biol,2015,7(1):a016634.
    [29]Edlinger B,Schl?gelhofer P.Have a break:determinants of meiotic DNA double strand break(DSB)formation and processing in plants.J Exp Bot,2011,62(5):1545-1563.
    [30]?amani?I,Simuni?J,Riha K,Puizina J.Evidence for distinct functions of MRE11 in Arabidopsis meiosis.PLoS One,2013,8(10):e78760.
    [31]Jolivet S,Vezon D,Froger N,Mercier R.Non conservation of the meiotic function of the Ski8/Rec103homolog in Arabidopsis.Genes Cells,2006,11(6):615-622.
    [32]Lee JH,Paull TT.ATM activation by DNA doublestrand breaks through the Mre11-Rad50-Nbs1 complex.Science,2005,308(5721):551-554.
    [33]Paull TT,Deshpande RA.The Mre11/Rad50/Nbs1complex:recent insights into catalytic activities and ATP-driven conformational changes.Exp Cell Res,2014,329(1):139-147.
    [34]Da Ines O,Degroote F,Goubely C,Amiard S,Gallego ME,White CI.Meiotic recombination in Arabidopsis is catalysed by DMC1,with RAD51 playing a supporting role.PLoS Genet,2013,9(9):e1003787.
    [35]Macqueen AJ.Catching a(double-strand)break:the Rad51 and Dmc1 strand exchange proteins can co-occupy both ends of a meiotic DNA double-strand break.PLoSGenet,2015,11(12):e1005741.
    [36]Kurzbauer MT,Uanschou C,Chen D,Schl?gelhofer P.The recombinases DMC1 and RAD51 are functionally and spatially separated during meiosis in Arabidopsis.Plant Cell,2012,24(5):2058-2070.
    [37]Wright WD,Heyer WD.Rad54 functions as a heteroduplex DNA pump modulated by its DNAsubstrates and Rad51 during D loop formation.Mol Cell,2014,53(3):420-432.
    [38]Heyer WD,Ehmsen KT,Liu J.Regulation of homologous recombination in eukaryotes.Annu Rev Genet,2010,44:113-139.
    [39]Cromie GA,Hyppa RW,Taylor AF,Zakharyevich K,Hunter N,Smith GR.Single Holliday junctions are intermediates of meiotic recombination.Cell,2006,127(6):1167-1178.
    [40]Lambing C,Franklin FC,Wang CR.Understanding and manipulating meiotic recombination in plants.Plant Physiol,2017,173(3):1530-1542.
    [41]Hastings PJ.Holliday junction.Encycl Genet,2001:954-955.
    [42]Chen XB,Melchionna R,Denis CM,Gaillard PHL,Blasina A,Van De Weyer I,Boddy MN,Russell P,Vialard J,Mcgowan CH.Human Mus81-associated endonuclease cleaves Holliday junctions in vitro.Mol Cell,2001,8(5):1117-1127.
    [43]Ip SC,Rass U,Blanco MG,Flynn HR,Skehel JM,West SC.Identification of Holliday junction resolvases from humans and yeast.Nature,2008,456(7220):357-361.
    [44]Giraut L,Falque M,Drouaud J,Pereira L,Martin OC,Mézard C.Genome-wide crossover distribution in Arabidopsis thaliana meiosis reveals sex-specific patterns along chromosomes.PLoS Genet,2011,7(11):e1002354.
    [45]Ferdous M,Higgins JD,Osman K,Lambing C,Roitinger E,Mechtler K,Armstrong SJ,Perry R,Pradillo M,Cu?ado N.Inter-homolog crossing-over and synapsis in Arabidopsis meiosis are dependent on the chromosome axis protein AtASY3.PLoS Genet,2012,8(2):e1002507.
    [46]Lu P,Han X,Qi J,Yang J,Wijeratne AJ,Li T,Ma H.Analysis of Arabidopsis genome-wide variations before and after meiosis and meiotic recombination by resequencing Landsberg erecta and all four products of a single meiosis.Genome Res,2012,22(3):508-518.
    [47]Sun Y,Ambrose JH,Haughey BS,Webster TD,Pierrie SN,Munoz DF,Wellman EC,Cherian S,Lewis SM,Berchowitz LE,Copenhaver GP.Deep genome-wide measurement of meiotic gene conversion using tetrad analysis in Arabidopsis thaliana.PLoS Genet,2012,8(10):e1002968.
    [48]Qi J,Chen Y,Copenhaver GP,Ma H.Detection of genomic variations and DNA polymorphisms and impact on analysis of meiotic recombination and genetic mapping.Proc Natl Acad Sci USA,2014,111(27):10007-10012.
    [49]Jones GH,Franklin FC.Meiotic crossing-over:obligation and interference.Cell,2006,126(2):246-248.
    [50]Copenhaver GP,Housworth EA,Stahl FW.Crossover interference in Arabidopsis.Genetics,2002,160(4):1631-1639.
    [51]Berchowitz LE,Copenhaver GP.Genetic interference:don't stand so close to me.Curr Genomics,2010,11(2):91-102.
    [52]Sidhu GK,Fang C,Olson MA,Falque M,Martin OC,Pawlowski WP.Recombination patterns in maize reveal limits to crossover homeostasis.Proc Natl Acad Sci USA,2015,112(52):15982-15987.
    [53]Wang S,Zickler D,Kleckner N,Zhang L.Meiotic crossover patterns:obligatory crossover,interference and homeostasis in a single process.Cell Cycle,2015,14(3):305-314.
    [54]Crismani W,Girard C,Froger N,Pradillo M,Santos J L,Chelysheva L,Copenhaver G P,Horlow C,Mercier R.FANCM limits meiotic crossovers.Science,2012,336(6088):1588-1590.
    [55]Girard C,Crismani W,Froger N,Mazel J,Lemhemdi A,Horlow C,Mercier R.FANCM-associated proteins MHF1 and MHF2,but not the other Fanconi anemia factors,limit meiotic crossovers.Nucleic Acids Res,2014,42(14):9087-9095.
    [56]Séguéla-Arnaud M,Crismani W,Larchevêque C,Mazel J,Froger N,Choinard S,Lemhemdi A,Macaisne N,Van Leene J,Gevaert K,de Jaeger G,Chelysheva L,Mercier R.Multiple mechanisms limit meiotic crossovers:TOP3αand two BLM homologs antagonize crossovers in parallel to FANCM.Proc Natl Acad Sci USA,2015,112(15):4713-4718.
    [57]Girard C,Chelysheva L,Choinard S,Froger N,Macaisne N,Lemhemdi A,Mazel J,Crismani W,Mercier R.AAA-ATPase FIDGETIN-LIKE 1 and helicase FANCMantagonize meiotic crossovers by distinct mechanisms.PLoS Genet,2015,11(7):e1005369.
    [58]Séguéla-Arnaud M,Choinard S,Larchevêque C,Girard C,Froger N,Crismani W,Mercier R.RMI1 and TOP3αlimit meiotic CO formation through their C-terminal domains.Nucleic Acids Res,2017,45(4):1860-1871.
    [59]Fernandes JB,Duhamel M,Seguéla-Arnaud M,Froger N,Girard C,Choinard S,Solier V,De Winne N,De Jaeger G,Gevaert K,Andrey P,Grelon M,Guerois R,Kumar R,Mercier R.FIGL1 and its novel partner FLIPform a conserved complex that regulates homologous recombination.PLoS Genet,2017,14(4):e1007317.
    [60]Zickler D,Kleckner N.A few of our favorite things:Pairing,the bouquet,crossover interference and evolution of meiosis.Semin Cell Dev Biol,2016,54:135-148.
    [61]Bomblies K,Jones G,Franklin C,Zickler D,Kleckner N.The challenge of evolving stable polyploidy:could an increase in“crossover interference distance”play a central role?Chromosoma,2016,125:287-300.
    [62]Hatkevich T,Kohl KP,Mcmahan S,Hartmann MA,Williams AM,Sekelsky J.Bloom syndrome helicase promotes meiotic crossover patterning and homolog disjunction.Curr Biol,2017,27(1):96-102.
    [63]Higgins JD,Armstrong SJ,Franklin FCH,Jones GH.The Arabidopsis MutS homolog AtMSH4 functions at an early step in recombination:evidence for two classes of recombination in Arabidopsis.Gene Dev,2004,18(20):2557-2570.
    [64]Higgins JD,Vignard J,Mercier R,Pugh AG,Franklin FCH,Jones GH.AtMSH5 partners AtMSH4 in the class I meiotic crossover pathway in Arabidopsis thaliana,but is not required for synapsis.Plant J,2008,55(1):28-39.
    [65]Chen C,Zhang W,Timofejeva L,Gerardin Y,Ma H.The Arabidopsis ROCK-N-ROLLERS gene encodes a homolog of the yeast ATP-dependent DNA helicase MER3 and is required for normal meiotic crossover formation.Plant J,2005,43(3):321-334.
    [66]Mercier R,Jolivet S,Vezon D,Huppe E,Chelysheva L,Giovanni M,Nogue F,Doutriaux M P,Horlow C,Grelon M,Mézard C.Two meiotic crossover classes cohabit in Arabidopsis:one is dependent on MER3,whereas the other one is not.Curr Biol,2005,15(8):692-701.
    [67]Chelysheva L,Gendrot G,Vezon D,Doutriaux M-P,Mercier R,Grelon M.Zip4/Spo22 is required for class ICO formation but not for synapsis completion in Arabidopsis thaliana.PLoS Genet,2007,3(5):e83.
    [68]Macaisne N,Novatchkova M,Peirera L,Vezon D,Jolivet S,Froger N,Chelysheva L,Grelon M,Mercier R.SHOC1,an XPF endonuclease-related protein,is essential for the formation of class I meiotic crossovers.Curr Biol,2008,18(18):1432-1437.
    [69]Chelysheva L,Vezon D,Chambon A,Gendrot G,Pereira L,Lemhemdi A,Vrielynck N,Le Guin S,Novatchkova M,Grelon M.The Arabidopsis HEI10 is a new ZMM protein related to Zip3.PLoS Genet,2012,8(7):e1002799.
    [70]Wang Y,Cheng Z,Huang J,Shi Q,Hong Y,Copenhaver GP,Gong Z,Ma H.The DNA replication factor RFC1 is required for interference-sensitive meiotic crossovers in Arabidopsis thaliana.PLoS Genet,2012,8(11):e1003039.
    [71]Macaisne N,Vignard J,Mercier R.SHOC1 and PTDform an XPF-ERCC1-like complex that is required for formation of class I crossovers.J Cell Sci,2011,124(16):2687-2691.
    [72]Huang J,Cheng Z,Wang C,Hong Y,Su H,Wang J,Copenhaver G P,Ma H,Wang Y.Formation of interference-sensitive meiotic cross-overs requires sufficient DNA leading-strand elongation.Proc Natl Acad Sci USA,2015,112(40):12534-12539.
    [73]Berchowitz LE,Francis KE,Bey AL,Copenhaver GP.The role of AtMUS81 in interference-insensitive crossovers in Arabidopsis thaliana.PLoS Genet,2007,3(8):e132.
    [74]Higgins JD,Buckling EF,Franklin FC,Jones GH.Expression and functional analysis of AtMUS81 in Arabidopsis meiosis reveals a role in the second pathway of crossing-over.Plant J,2008,54(1):152-162.
    [75]Kurzbauer MT,Pradillo M,Kerzendorfer C,Sims J,Ladurner R,Oliver C,Janisiw MP,Mosiolek M,Schweizer D,Copenhaver GP,Schl?gelhofer P.Arabidopsis thaliana FANCD2 promotes meiotic crossover formation.Plant Cell,2018,30(2):415-428..
    [76]Pradillo M,Varas J,Oliver C,Santos JL.On the role of AtDMC1,AtRAD51 and its paralogs during Arabidopsis meiosis.Front Plant Sci,2014,5:23.
    [77]Hillers KJ,Villeneuve AM.Chromosome-wide control of meiotic crossing over in C.elegans.Curr Biol,2003,13(18):1641-1647.
    [78]Yildiz?,Majumder S,Kramer B,Sekelsky JJ.Drosophila MUS312 interacts with the nucleotide excision repair endonuclease MEI-9 to generate meiotic crossovers.Mol Cell,2002,10(6):1503-1509.
    [79]Argueso JL,Wanat J,Gemici Z,Alani E.Competing crossover pathways act during meiosis in Saccharomyces cerevisiae.Genetics,2004,168(4):1805-1816.
    [80]Crismani W,Mercier R.What limits meiotic crossovers?Cell Cycle,2012,11(19):3527-3528.
    [81]Mets DG,Meyer BJ.Condensins regulate meiotic DNAbreak distribution,thus crossover frequency,by controlling chromosome structure.Cell,2009,139(1):73-86.
    [82]Henderson IR.Control of meiotic recombination frequency in plant genomes.Curr Opin Plant Biol,2012,15(5):556-561.
    [83]Gari K,Décaillet C,Stasiak AZ,Stasiak A,Constantinou A.The Fanconi anemia protein FANCMcan promote branch migration of Holliday junctions and replication forks.Mol Cell,2008,29(1):141-148.
    [84]Lorenz A,Osman F,Sun W,Nandi S,Steinacher R,Whitby MC.The fission yeast FANCM ortholog directs non-crossover recombination during meiosis.Science,2012,336(6088):1585-1588.
    [85]Prakash R,Satory DE,Papusha A,Scheller J,Kramer W,Krejci L,Klein H,Haber J,Sung P,Ira G.Yeast Mph1helicase dissociates Rad51-made D-loops:implications for crossover control in mitotic recombination.Gene Dev,2009,23(1):67-79.
    [86]Yan Z,Delannoy M,Ling C,Daee D,Osman F,Muniandy PA,Shen X,Oostra AB,Du H,Steltenpool J,Lin T,Schuster B,Décaillet C,Stasiak A,Stasiak AZ,Stone S,Hoatlin ME,Schindler D,Woodcock CL,Joenje H,Sen R,de Winter JP,Li L,Seidman MM,Whitby MC,Myung K,Constantinou A,Wang W.Ahistone-fold complex and FANCM form a conserved DNA-remodeling complex to maintain genome stability.Mol Cell,2010,37(6):865-878.
    [87]Singh T R,Saro D,Ali A M,Zheng XF,Du CH,Killen MW,Sachpatzidis A,Wahengbam K,Pierce AJ,Xiong Y,Sung P,Meetei AR.MHF1-MHF2,a histone-foldcontaining protein complex,participates in the Fanconi anemia pathway via FANCM.Mol Cell,2010,37(6):879-886.
    [88]Yang H,Zhang T,Tao Y,Wu L,Li HT,Zhou JQ,Zhong C,Ding J.Saccharomyces cerevisiae MHF complex structurally resembles the histones(H3-H4)?heterotetramer and functions as a heterotetramer.Structure,2012,20(2):364-370.
    [89]Tao Y,Jin C,Xu L,Qi S,Chu L,Niu L,Yao X,Teng M.The structure of the FANCM-MHF complex reveals physical features for functional assembly.Nat Commun,2013,3:782.
    [90]Zakharyevich K,Tang S,Ma Y,Hunter N.Delineation of joint molecule resolution pathways in meiosis identifies a crossover-specific resolvase.Cell,2012,149(2):334-347.
    [91]Muyt AD,Jessop L,Kolar E,Sourirajan A,Chen J,Dayani Y,Lichten M.BLM helicase ortholog Sgs1 is a central regulator of meiotic recombination intermediate metabolism.Mol Cell,2012,46(1):43-53.
    [92]Kaur H,De Muyt A,Lichten M.Top3-Rmi1 DNAsingle-strand decatenase is integral to the formation and resolution of meiotic recombination intermediates.Mol Cell,2015,57(4):583-594.
    [93]Tang S,Wu MK,Zhang R,Hunter N.Pervasive and essential roles of the Top3-Rmi1 decatenase orchestrate recombination and facilitate chromosome segregation in meiosis.Mol Cell,2015,57(4):607-621.
    [94]Fasching CL,Cejka P,Kowalczykowski SC,Heyer WD.Top3-Rmi1 dissolve Rad51-mediated D loops by a topoisomerase-based mechanism.Mol Cell,2015,57(4):595-606.
    [95]Hartung F,Puchta H.The RecQ gene family in plants.JPlant Physiol,2006,163(3):287-296.
    [96]Hartung F,Suer S,Puchta H.Two closely related RecQhelicases have antagonistic roles in homologous recombination and DNA repair in Arabidopsis thaliana.Proc Natl Acad Sci USA,2007,104(47):18836-18841.
    [97]Schvarzstein M,Pattabiraman D,Libuda DE,Ramadugu A,Tam A,Martinezperez E,Roelens B,Zawadzki KA,Yokoo R,Rosu S,Severson AF,Meyer BJ,Nabeshima K,Villeneuve AM.DNA helicase HIM-6/BLM both promotes MutSγ-dependent crossovers and antagonizes MutSγ-independent interhomolog associations during Caenorhabditis elegans meiosis.Genetics,2014,198(1):193-207.
    [98]Jagut M,Hamminger P,Woglar A,Millonigg S,Paulin L,Mikl M,Stritto MRD,Tang L,Habacher C,Tam A,Gallach M,von Haeseler A,Villeneuve AM,Jantsch V.Separable roles for a Caenorhabditis elegans RMI1homolog in promoting and antagonizing meiotic crossovers ensure faithful chromosome inheritance.PLoS Biol,2016,14(3):e1002412.
    [99]Hu Q,Li Y,Wang H,Shen Y,Zhang C,Du G,Tang D,Cheng Z.Meiotic chromosome association 1 interacts with TOP3αand regulates meiotic recombination in rice.Plant Cell,2017,29(7):1697-1708.
    [100]Ziolkowski PA,Berchowitz LE,Lambing C,Yelina NE,Zhao X,Kelly KA,Choi K,Ziolkowska L,June V,Sanchez-Moran E,Franklin C,Copenhaver GP,Henderson IR.Juxtaposition of heterozygous and homozygous regions causes reciprocal crossover remodelling via interference during Arabidopsis meiosis.eLife,2015,4:e03708.
    [101]Yelina NE,Lambing C,Hardcastle TJ,Zhao X,Santos B,Henderson IR.DNA methylation epigenetically silences crossover hot spots and controls chromosomal domains of meiotic recombination in Arabidopsis.Gene Dev,2015,29(20):2183-2202.
    [102]Libuda DE,Uzawa S,Meyer BJ,Villeneuve AM.Meiotic chromosome structures constrain and respond to designation of crossover sites.Nature,2013,502(7473):703-706.
    [103]Wang K,Wang C,Liu Q,Liu W,Fu Y.Increasing the genetic recombination frequency by partial loss of function of the synaptonemal complex in rice.Mol Plant,2015,8(8):1295-1298.
    [104]Ziolkowski PA,Underwood CJ,Lambing C,MartinezGarcia M,Lawrence EJ,Ziolkowska L,Griffin C,Choi K,Franklin FCH,Martienssen RA,Henderson IR.Natural variation and dosage of the HEI10 meiotic E3ligase control Arabidopsis crossover recombination.Genes Dev,2017,31(3):306-317.
    [105]Serra H,Lambing C,Griffin CH,Topp SD,Nageswaran DC,Underwood CJ,Ziolkowski PA,Séguéla-Arnaud M,Fernandes JB,Mercier R,Henderson IR.Massive crossover elevation via combination of HEI10 and recq4a recq4b during Arabidopsis meiosis.Proc Natl Acad Sci USA,2018,115(10):2437-2442.
    [106]Francis KE,Lam SY,Harrison BD,Bey AL,Berchowitz LE,Copenhaver GP.Pollen tetrad-based visual assay for meiotic recombination in Arabidopsis.Proc Natl Acad Sci USA,2007,104(10):3913-3918.
    [107]Higgins JD,Perry RM,Barakate A,Ramsay L,Waugh R,Halpin C,Armstrong SJ,Franklin FC.Spatiotemporal asymmetry of the meiotic program underlies the predominantly distal distribution of meiotic crossovers in barley.Plant Cell,2012,24(10):4096-4109.
    [108]Phillips D,Jenkins G,Macaulay M,Nibau C,Wnetrzak J,Fallding D,Colas I,Oakey H,Waugh R,Ramsay L.The effect of temperature on the male and female recombination landscape of barley.New Phytol,2015,208(2):421-429.
    [109]Si W,Yuan Y,Huang J,Zhang X,Zhang Y,Zhang Y,Tian D,Wang C,Yang Y,Yang S.Widely distributed hot and cold spots in meiotic recombination as shown by the sequencing of rice F2 plants.New Phytol,2015,206(4):1491-1502.
    [110]Fernandes JB,Séguéla-Arnaud M,Larchevêque C,Lloyd AH,Mercier R.Unleashing meiotic crossovers in hybrid plants.Proc Natl Acad Sci USA,2018,115(10):2431-2436.
    [111]Blary A,Gonzalo A,Eber F,Bérard A,Bergès H,Bessoltane N,Charif D,Charpentier C,Cromer L,Fourment J,Genevriez C,Le Paslier MC,LodéM,Lucas MO,Nesi N,Lloyd A,Chèvre AM,Jenczewski E.FANCM limits meiotic crossovers in Brassica crops.Front Plant Sci,2018,9:368.
    [112]Berchowitz LE,Copenhaver GP.Fluorescent Arabidopsis tetrads:a visual assay for quickly developing large crossover and crossover interference data sets.Nat Protoc,2008,3(1):41-50.
    [113]Yelina NE,Ziolkowski PA,Miller N,Zhao X,Kelly KA,Mu?oz DF,Mann DJ,Copenhaver GP,Henderson IR.High-throughput analysis of meiotic crossover frequency and interference via flow cytometry of fluorescent pollen in Arabidopsis thaliana.Nat Protoc,2013,8(11):2119-2134.
    [114]Li F.Meiotic recombination suppressors of Arabidopsis thaliana[Dissertation].UGent University,2018.

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