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时间:2019-05-27
《Optimization of de novo transcriptome assembly from next-generation sequencing data》由会员上传分享,免费在线阅读,更多相关内容在行业资料-天天文库。
1、Downloadedfromgenome.cshlp.orgonNovember17,2012-PublishedbyColdSpringHarborLaboratoryPressOptimizationofdenovotranscriptomeassemblyfromnext-generationsequencingdataYannSurget-GrobaandJuanI.Montoya-BurgosGenomeRes.201020:1432-1440originallypublishedonlineAugust6,2010Acces
2、sthemostrecentversionatdoi:10.1101/gr.103846.109Supplementalhttp://genome.cshlp.org/content/suppl/2010/08/06/gr.103846.109.DC1.htmlMaterialReferencesThisarticlecites48articles,20ofwhichcanbeaccessedfreeat:http://genome.cshlp.org/content/20/10/1432.full.html#ref-list-1Art
3、iclecitedin:http://genome.cshlp.org/content/20/10/1432.full.html#related-urlsCreativeThisarticleisdistributedexclusivelybyColdSpringHarborLaboratoryPressCommonsforthefirstsixmonthsafterthefull-issuepublicationdate(seeLicensehttp://genome.cshlp.org/site/misc/terms.xhtml).
4、Aftersixmonths,itisavailableunderaCreativeCommonsLicense(Attribution-NonCommercial3.0UnportedLicense),asdescribedathttp://creativecommons.org/licenses/by-nc/3.0/.EmailalertingReceivefreeemailalertswhennewarticlescitethisarticle-signupintheboxattheservicetoprightcorneroft
5、hearticleorclickhereTosubscribetoGenomeResearchgoto:http://genome.cshlp.org/subscriptions©2010,PublishedbyColdSpringHarborLaboratoryPressDownloadedfromgenome.cshlp.orgonNovember17,2012-PublishedbyColdSpringHarborLaboratoryPressMethodOptimizationofdenovotranscriptomeassem
6、blyfromnext-generationsequencingdata1YannSurget-GrobaandJuanI.Montoya-BurgosDepartmentofZoologyandAnimalBiology,UniversityofGeneva,1211Geneva4,SwitzerlandTranscriptomeanalysishasimportantapplicationsinmanybiologicalfields.However,assemblingatranscriptomewithoutaknownrefe
7、renceremainsachallengingtaskrequiringalgorithmicimprovements.Wepresenttwomethodsforsubstantiallyimprovingtranscriptomedenovoassembly.Thefirstmethodreliesontheobservationthattheuseofasinglek-merlengthbycurrentdenovoassemblersissuboptimaltoassembletranscriptomeswheretheseq
8、uencecoverageoftranscriptsishighlyheterogeneous.WepresenttheMultiple-kmethodinwhichvariousk-merlengthsa
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