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CONSTANS and the evolutionary origin of photoperiodic timing of flowering

Valverde Albacete, Federico

Abstract

A network of promoting and inhibiting pathways that respond to environmental and internal signals controls the flowering transition. The outcome of this regulatory network establishes, for any particular plant, the correct time of the year to flower. The photoperiod pathway channels inputs from light, day length, and the circadian clock to promote the floral transition. CONSTANS (CO) is a central regulator of this pathway, triggering the production of the mobile florigen hormone FT (FLOWERING LOCUS T) that induces flower differentiation. Because plant reproductive fitness is directly related to its capacity to flower at a precise time, the photoperiod pathway is present in all known plant species. Recent findings have stretched the evolutionary span of this photophase signal to unicellular algae, which show unexpected conserved characteristics with modern plant photoperiodic responses. In this review, a comparative description of the photoperiodic systems in algae and plants will be presented and a general role for the CO family of transcriptional activators proposed.

Full text

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 CONSTANSandtheEvolutionaryOriginofPhotoperiodicTimingofFlowering  edericoValverde1,2F  1MolecularPlantDevelopmentandMetabolismGroup.InstitutodeBioquímicaVegetaly Fotosíntesis. Consejo Superior de Investigaciones Científicas yUniversidaddeSevilla. 9th,AmericoVespucioAvenue.41092‐Sevilla.Spain.4     2Towhomcorrespondenceshouldbeaddressed: FedericoValverde talyFotosíntesis,CSIC‐USE.InstitutodeBioquímicaVege ioAv.49th,AmericoVespuc 41092‐Sevilla,Spain. c.es17 18 19 E‐mail:[email protected]  Phone:++34954489525 Fax:++34954460065 ttp://www.ibvf.csic.es/Grupo_FValverde/bases%20moleculares%20floracion.htm20 21 22 23 24 h    1 Runningtitle:CONSTANSfromplantsandalgae 35 pages, 8996 words. Paper includes 3 figures. Submitted November 12th 2010. 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 Abstract  A network of promoting and inhibiting pathways that respond to environmental and internalsignalscontrolstheflowering transition. The outcomeofthisregulatory networkestablishes,foranyparticularplant,thecorrecttimeoftheyeartoflower.The photoperiod pathway channels inputs from light, day length and circadian clock to promote the floral transition. CONSTANS(CO)isacentralregulatorofthispathway, triggering the production of the mobile florigen hormone FT that induces flower differentiation.Becauseplantreproductivefitnessis directlyrelatedtoitscapacityto flowerataprecisetime,thephotoperiodpathwayispresentinallknownplantspecies. Recentfindingshavestretchedtheevolutionaryspanofthisphotophase signal to unicellularalgae,whichshowunexpectedconservedcharacteristicswithmodernplant photoperiodicresponses.Inthisreview,acomparativedescriptionofthephotoperiodic systems in algae and plants will bepresentedandageneralrole fortheCO familyof ranscriptionalactivatorsproposed.t         2 Keywords:Photoperiod,floraltransition,CONSTANS,florigen,evolution,Arabidopsis, Chlamydomonas,CrCO. 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72  Introduction Plants possess an extraordinarily well‐adapted system to respond to external cues, mainly to temperature and light. Light is particularly important for a photosynthetic organismasitisthemainsourceofenergytokeeptherestofthephysiologicalfunctions workingandconsequentlyhasanenormousinfluenceinplantdevelopment(Thomas, 2006).Asaresult,higherplantsandalgaehaveadoptedseveralsophisticatedmethods torespondtolightinaconcertedwaytogainanevolutionaryadvantage over other organisms that have not developed these traits. Light regulationisdrivenbymany differentmechanismsinplantsbutsomeareparticularlyimportantsuchastheredox (BuchananandBalmer,2005),photoreceptor‐dependent(Quail,2006),circadianclock (Dodd et al., 2005) and photoperiodic (Thomas and Vince‐Pruce, 1997) regulatory systems.Thesemechanismsarenotnecessarilyindependentandoftenshowagradeof interconnection between them that, arising from the conservationofthedifferent components across phylogenetically diverseplants, is likely tohavemoreimportance thanpr  3 eviouslythought. Lightdrivenredoxsignallingisextremelyimportantforplantsasitcoordinates, among other functions, whole metabolic rearrangements from starch‐consuming catabolicreactionsofthenightphasetothelight‐drivenanabolicsynthesisoftheday (Dietz,2003).Thisregulatorylevelseemstohaveemergedveryearlyintheevolutionof photosyntheticorganismsbecauseacomplexredoxcontrolsystemisalreadypresentin cyanobacteria(LiandSherman,2000).Inplants,aroleinfloweringtimeformolecules involvedinredoxcontrolsuchasglutathione,salicylicacidandascorbicacidhasbeen proposedbefore(Ogawaetal.,2001;Martínezetal.,2004;Barthetal.,2006).Therole, 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 extentandassociationbetweenancientredoxandphotoperiodcontrol of gene and protein expressionisextremelyinterestingbutbeyondthescopeofthisreview. Another layer of control assures that transcription factors that activate photosynthetic genes are degraded during the night. This signalinvolvesactive proteasome‐dependentproteindegradationthroughadirectphotoreceptorcontroland has been extensively reviewed elsewhere (Boccalandro et al., 2006,Stricklandetal., 2006).ThedirectroleofCONSTITUTIVEPHOTOMORPHOGENIC1geneproductCOP1,an E3 ring‐finger type ubiquitin ligase, in the control of floweringthroughthedirect regulationofCOstabilityhasbeenrecentlydescribed(Janget al., 2008). In this signalling, CRYPTOCHROME 2 through COP1 (Liu et al., 2008) andPHYTOCHROME B throughanother unknown ubiquitinligase(Valverdeetal.,2004)areinvolvedinthis process. A more detailed description of the control of CO proteinstabilitybythe proteasome will be provided below. Interestingly, the genomes of green eukaryotic algae possess homologues of cryptochromes, phytochromes and ring finger ubiquitin ligases similar to COP1 (Mittag et al., 2005; Riaño‐Pachón et al., 2008) whose role in ancientcontroloflightsignallingiscertainlyworthinvestigating.Similarly,ithasbeen recentlyreportedthatcellelongationoccursataparticulartimeofthenightduetothe gibberellin(GA)‐dependent effect of DELLA proteins on bHLH transcription factors of the PHYTOCHROME INTERACTION (PIF) protein family (de Lucas et al., 2008). An interestinglinkbetweenfloweringandDELLAproteins,connectedtobothethyleneand gibberellin(GA)signalling,hasbeenrecentlyproposed(Achardetal.,2007)butthese proteinsappearinvascularplantsandareabsentinalgae,sothismechanismisnotas evolutionarilyconservedasthephotoperiodicsignalling.  4 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 Thecircadianclocktimekeeperisamajorregulatorofplantgeneexpression.The rotationalmovementoftheeartharounditsaxisdeterminesa24hrepetitivesignalthat is exploited by all photosynthetic organisms, as well as some fungiandanimals,to precedeexternalsignalsandprovideaphysiologicaladvance(Doddetal.,2005).The system is so critical and robust that in cyanobacteria three proteins, two modulators (KaiA,B)andthekinase/phosphataseKaiC,inthepresenceofATP,canmaintainaself‐ perpetuatingclockwithcirca24h of autophosphorylation /dephosphoryation cycles whenisolatedinvitro,thus,inorganismsthatevolvedveryearly,assomeblue‐green algae, the capacity was present to set time independently of transcriptional inputs (Ishiura et al., 1998; Nakajima et al., 2005). The influence of posttranslational modificationsinclockproteinsisacharacteristicthatisgaining more and more importance in the concept of circadian clocks (Mizoguchi et al., 2006; Mehra et al., 2009). The influence of the clock in the photoperiod response and other crucial developmentalprocessesofplants(MasandYanovsky,2009;Imaizumi,2010)andalgae (Schulzeetal.,2010)hasbeenrecentlyreviewed.Inthisreviewsomeoftheaspectsthat connect photoperiod and circadian regulation, common features that seem to have arisenveryearlyinthelineageofthephotosyntheticeukaryotes(Matsuoetal.,2008),  5 willbebrieflydiscussed.  ThephotoperiodpathwayinArabidopsisinvolvesanumberofgenesthatform itscore,aswellasseveralinputandoutputgenes(ReevesandCoupland,2000).Inthis pathwayCONSTANS(CO)iscentralinallplantsanalysedbecauseitcoordinateslightand clock inputs in leaves to trigger the expression of FLOWERINGLOCUST(FT) whose protein,andpossiblyalsoitsmRNA,canmovefromthephloemto the meristem (Corbesieretal.,2007;Tamakietal.,2007).TheCO‐FTmoduleisconservedinallknown 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 plantsbutthefinaloutputsofthesignaldiverge:whereasinArabidopsisthaliana, a facultativelong‐day(LD)plant,COpromotestheexpressionofFTunderinducinglong days(Suárez‐Lópezetal.,2001),inrice,ashort‐day(SD)plant,thesignalsaredifferent andCOisarepressorinnon‐inductivelongdays(Hayamaetal.,2003).Theseaspects havebeenreviewedveryrecently(HayamaandCoupland,2004;Songetal.,2010). Another important aspect of CO regulation involvesthe spatial coordination of thephotoperiodicfloweringsignalsduetothefactthatlightandphotoperiodsensing occurs in leaves and probably in other actively photosynthetic tissues, whereas the developmental switch takes place in the non‐photosynthetic meristem (Knott 1934; Zeevart 2008). The movement of a developmental signal from the leaves to the meristemwasproposedearlylastcentury(Chailakhyan,1936),butwasonlyrecently attributedtothemovementofFTfromthecompanioncellsofthephloemtotheapical meristem;thisisprobablyoneofthemostimportantdiscoveriesinrecentplantbiology (Türcketal.,2008;Zeevart,2008).GreenmicroalgaesuchasChlamydomonasreinhardtii exhibitastrongphotoperiodresponsethatcontrolsseveralimportant physiological functions (Suzuki and Johnson, 2002). The presence of a gene in the Chlamydomonas genomeencodingaCOhomologueanditsconnectionwithphotoperiodic control of growthandmetabolismhasbeenrecentlydescribed(Serranoetal.,2009;Romeroand Valverde,2009).Theimportanceofthisdiscoveryanditsconfluencesanddivergences ithhigherplantphotoperiodismwillbedescribedherein.w   6 CONSTANSandthefamilyofCOlikeproteins Several mutagenesis experimentsinArabidopsisestablishedanumber of genes that were affected in their capacity to flower in response to photoperiod (Rédei, 1962). 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 Among these the mutation called constans was particularly interesting because the mutantwaslatefloweringinlongdaysbutwasnotaffectedinshortdays,soitseemed tohavelostthecapacitytodiscernthephotophase(thusthename “constans” for flowering in a “constant” manner regardless of photoperiod). CONSTANSencodes an atypicaltranscriptionfactorwiththreecharacteristicdomains(Figure1)whichmakesit auniquekindoftranscriptionalregulatorpresentonlyintheplantkingdom(Putterillet al.,1995).ItwassoonfoundthatafamilyofproteinscloselysimilartoCOwaspresent in the Arabidopsis (Robson et al., 2001) and rice genomes (Sin et al. 2004) and that representativesofthisfamilycouldbeidentifiedinseveralESTdatabasesfrommany phylogenetically diverse plants (Griffiths et al., 2003). TheseCO‐likeorCOLproteins includehomologuescloselyrelatedtoCOsuchasCOL1,whichisencodedinagenenext toCOinthegenomeandseemstobetheresultofrecenttandemduplication(Putterillet al., 1995) and with which it shares an amino acid identity higher than 80%. Nevertheless,overexpressionofCOL1underthe35SpromoterinArabidopsisdoesnot affectfloweringsoitsfunctionisnotredundantwiththatofCO(Ledgeretal.,2001). OtherCOLsshowarangeofsequenceidentitywithCOasillustratedinthetreeinFigure 2,whichincludesproteinsthatlackcompleteproteinregions,butkeepahighgradeof identityinthesedomains, reflectingtheir importance for COfunction.Thesedomains willbe f  7 brie lydescribed. TheaminoterminalpartofCOconsistsoftwoconsecutivezincfingerdomains whicharecalledb‐boxes.Theseb‐boxesarerelatedtodomainspresentintranscription factorsfromanimalsandotherorganismsandareproposedtobeinvolvedinprotein‐ proteininteractionratherthaninDNA‐bindingfunctions(Khannaetal.,2009).IntheZn fingerdomain,thecysteineandhistidineresiduesthatcoordinatethebindingoftheZn 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 atomsarestrictlyconserved.Mutantswithaminoacidalterationsinconservedresidues oftheb‐boxeswerelateflowering(Robsonetal.,2001).Employing tomatoTCOL1b‐ boxes as baits in yeast two‐hybrid assays, immunophilins and other b‐box containing proteinswereidentified(Ben‐Naimetal.,2006).Thisstronglysupportstheideathatb‐ boxes are involved in protein‐protein interactions. Nevertheless, an interesting suggestion involving a direct interaction of b‐box proteins (BBXs)inaregulatory complexwithCOP1orotherRINGfingerandcoil‐coildomain‐containingproteinssuch asinanimalTripartiteMotifProteins(TRIMs)hasbeenproposed,wideningthepossible functio  8 nsofCOLproteins(Dattaetal.,2008). ThecarboxyterminalpartofCOconsistsofaspanof70‐80aminoacidsinwhich a core of 40 amino acids is strictly conserved in a family of very distinct proteins (Robsonetal.,2001;Griffithetal.,2003).ItwasfirstdescribedinCO,buthasbeenfound since then in some other proteins which are central to the circadian clock such as TIMINGOFCABEXPRESSION1(TOC1)andpseudoresponseregulators(PRRs).This CCTdomainofCOincludesanuclearimportsignal(Robsonetal., 2001) and is the domainofinteractionwiththeubiquitinligaseCOP1(Jangetal.,2008).Becauseitwas extremelydifficulttodemonstratetheDNA‐bindingfunctionofCO,itwasproposedthat COwas driven totheDNAbyformingcomplexes through the CCTdomain. Yeasttwo hybridanalysesemployingdifferentCCTdomainsrecoveredastronginteractionwith severalmembersofthefamilyofHEMEACTIVATORPROTEIN(HAP)oftranscriptional activators,specificallywithHAP3andHAP5isoforms,butnotwithHAP2,bothintomato andArabidopsis(Ben‐Naimetal.,2006,Wenkeletal.,2006).Overexpressionofsome HAP2 or HAP3 isoforms from Arabidopsis strongly delayed flowering(Wenkeletal., 2006) while in yeast TCOL1 was recruited to CCAAT motifs together with a 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 HAP2/HAP3/HAP5recombinantlyexpressedcomplex(Ben‐Naimetal., 2006). These datastronglysuggestedthatCOsubstitutedtheHAP2isoforminacomplexwithHAP3 and HAP5 subunits and was thus recruited to the already describedmotifforHAP complex,theCCAATbox,inArabidopsispromoters.Veryrecently,COwasreportedto transientlyaccessDNAdirectlythroughthisCCTdomaininDNAsequences different from those reported for the HAP complex (Tiwari et al., 2010). This interaction was reportedtobeexceptionallytransientsoitstillremainsaquestion whether it is significantinvivoordependsonotherproteinfactors. Thedomainthatshowsalowerdegreeofconservationinaminoacidsequenceof theCOLsisthemiddledomain(Figure1).Thisdomainisenrichedinacidicaminoacids andisreportedtoactivatetranscriptioninyeast‐twohybridassays(Ben‐naim,2006). Therehas been no report inthe literatureof any amino acid change inthis part that affectsfloweringtime,but there arefixedresiduesthatshowsignificant conservation (Griffithsetal.,2003).ThesizesoftheclosesthomologuesandorthologuesofCOprotein aresimilar(around350‐400aminoacids),andtheseproteinsalwaysincludeamiddle domainwithsimilarcharacteristics,furthersupportingtheideaoftheimportanceofthe middledomaininCOfunction.TherealroleofthisdomaininCO and COL activity remain  9 stobediscovered. COLproteinsor,inawidersense,b‐boxcontainingproteins(BBXs)constitutea familyofproteinsinArabidopsiswith32members(Khannaetal.,2009)which,witha variednumberofcomponents,ispresentinallhigherplantssequencedtodate.Manyof themhavebeenreportedtofollowacircadianrhythmofexpression(Ledgeretal.,2001; Shinetal.,2004;Kumagaietal.,2008)andtheyhavebeenimplicatedinseveraldifferent regulatorypathwaysotherthanfloweringtime,suchastuberization in potato 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 conditions(LienandKnutsen,1976).Nevertheless,thereisnomodeldescribedhowthe hotoperiodresponsemayworkinalgae.p  .COLgenesinalgae. Searchingformutantsaffectedinthecircadiancontrolofagenecodingforachloroplast protein, Matsuo et al. 2008, found a mutant called ROC66thathadanalteredclock rhythmand,asaresult,adefectingrowth.Thegenemutatedencodedaproteinwith similaritiestoCOLs,including anuncommoninternalCTTandtwoamino terminal b‐ boxes,onlythefirstoneshowingtheconservedfeaturesofaCOLZn‐fingerdomain.The gene showed a distinct circadian expression pattern. The genomeofC.reinhardtii containsgenescodingforsomeotherproteinswithCCTdomains,includingarecently identifiedmemberofthePRRsfamily(Holmetal.,2010)andotherb‐boxesdomainsin uncharacterisedproteins(Merchantetal.,2007).Strikingly,anannotatedsequence(JGI proteinID:159133)showedseveralcharacteristicsofatypicalCOLgene,includingsize (around 1.2 kb) and a conserved domain structure (Figure 1). The coded protein presented two typical amino terminal b‐boxes and a conserved CCT domain at the carboxyterminalpartandevensomeconservedaminoacidpatchesinthemiddleacidic domain 16 (Serranoetal.,2009). In a phylogenetic analysis similar to the one in Figure 2, constructed with all proximalArabidopsisandriceCOLproteins(Griffithsetal.,2003),andrepresentatives fromotheralgaeandlowerplants,C.reinhardtiiCO(CrCO)appearedatthebaseofthe treeindicatingthatitisintheoriginoftheseparationofbothmaingroupsofsequences (groupIandgroupII)(Serranoetal.,2009).SurprisinglyCrCOandVolvoxhomologues, but not homologues from other green algae (Ostreococcus, Chorella) and red algae 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 (Galdieria)occurredinthetreeclosetoCOandHD1(Figure2).Thus,itseemsthatthe algallineagethatgaverisetoCOproteinsisintheVolvocalesorder,curiouslyagroup including one of the first genera (Volvox) to show cellular differentiation in sexual reproduction(Michodetal.,2007).Otherdistantlyrelatedalgae like diatoms, euglenoids,haptophytesordinophytesdonotshowsequencessimilartoCOLgenesin theirgenomedraftsorextensivecollectionofESTs.Thefactthatgreenmicroalgae,but not earlier photosynthetic microorganisms, include COLgenesintheirgenomesis consistent with the idea that these genes appeared during, or just after, the endosymbioticevent inthephotosynthetic lineage. COLshavenotbeenfoundoutside theplantevolutionarylineage. InChlamydomonas,thepeakofCrCOmRNAabundancetookplaceduringtheday and was reduced during the night independently of the photoperiodthealgaewere grownin.Nevertheless,theexpressionofCrCOshowedastrongphotoperiodicinfluence inthesensethatabsolutelevelsofitsmRNAwereaugmentedasthedaylengthofthe cyclewasreduced.Thus,absolutelevelsofCrCOmRNAweremuchhigherinSDthanin LD.TheexpressionofCrCOwasalsocircadianlyregulated,maintainingafairlystable expression pattern after several days in LL or DD condition, although mRNA levels suffered a drastic decrease (Serrano et al. 2009). The other B‐box gene described in Chlamydomonas,ROC66,alsofollowedacircadianrhythmofmRNAexpression,peaking during 17 thedaytime(Matsuoetal.,2008). ThepatternofproductionofCrCOproteinfollowedcloselythatofthemRNAin all photoperiods, so at first sight it seemed that the complex posttranscriptional regulationofCOstabilityobservedinArabidopsiswasmissinginthealga.Nevertheless, confirmation of this point needs further experimental data since,forexample, 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 experiments employing different light qualities, which are crucial to identify posttranslationalmodificationsofCO,werenotreportedinthesestudies(Serranoetal., 2009). On the other hand, the GI and FKF proteins that are involved in the first regulatorymodulethatdefinestheexpressionofCOinArabidopsis,havenodetectable homolo 18 guesinChlamydomonasorotheralgae(Corellouetal.,2009). WhenCrCOorROC66weremissexpressedinChlamydomonas,therecombinant algae presented defects in growth. In the case of ROC66, the circadian rhythm of a chloroplastmarker,aswellasthegrowthratesofthealga,were accelerated in the mutant compared to wild type. For CrCO it was demonstrated that the expression of genesknowntoberegulatedbytheclocklikeGBSSI,involvedinstarchsynthesis,and genesinvolvedincellcycleregulationlikecyclins(CYCA1)orcyclin‐dependentkinases (CDKB1) were affected when CrCO levels were reduced (Serrano et al., 2009). Overexpression of CrCOaugmentedGBBS1, CYCA1andCDKB1 mRNA levels, affecting boththecapacityofthealgalcellstoaccumulatestarchandto divide properly. Synchronous growth of Chlamydomonas, which reflects the capacity of some algae to coordinategrowthandcellcycleunderspecificphotoperiods,wascompletelydisrupted inover‐andmiss‐expressingCrCO recombinant lines. Thus, both augmenting and decreasingCrCOmRNAlevels,severelyaffectedgrowth,starchsynthesisandalgalcell cycle,oftencausinglethality.Animmediatequestionthenarises,astothedegreethat thesebasicphysiologicalfunctions are alsoconservedinCOorothermembersofthe COL family in higher plants. This question is extremely importantbecauseifso,the contributionofthephotoperiodresponsetobasicmetabolismandgrowthwouldhavea strongerinfluencethanreportedtodateandinthiscrucialphysiologicalaspecttherole ofCOLproteinswouldbecentral. 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455  NewrolesforCOLproteins Withtheinformationwehavetoday,themostplausiblescenarioisthatCOLproteins first appeared associated with the primary endosymbiotic event and their structure evolvedfromasingleproteinwithoneb‐boxandCCTdomainwith no defined size (Figure2,groupII)tothedoubleb‐box,middleandCCTdomainofCOandHD1witha strict protein size(Figure 2, group I).Other b‐box proteins(BBXs)even lacktheCCT domainandcouldnotbeconsidered‘bonafide’COLs,because,althoughnobiochemical studyonitsfunctionhasbeenperformedtodate,theirlackofaCCTdomainwillprevent manyofthefunctionsattributedtoCOLs,suchasnuclearlocalization,interactionwith ubiquitinligases,DNAbindingorinteractionwiththeHEMEACTIVATOR PROTEIN (HAP)complex.Still,aphotoperiodicrolethroughtheinteraction with other COLs employingtheirb‐boxesasdimerizationdomainscannotbeignored,asthedatafrom tomato 19 ATCOL1suggest(Ben‐Naimetal.,2006). Itseemsthatfromasinglelocusgeneinalgae,plantshavedevelopedacomplex family of COLs (Zobell et al., 2005; Chia et al., 2008) that haveadopteddifferent functions throughout evolution but have kept some common characteristics: many of them are regulated in a circadian manner and many are involved in light‐dependent processes.Furthermore,whenCOLproteinsotherthanCO,areexpressedinArabidopsis theyhaveeitherverylittleornoroleonfloweringtime.AparadoxicalcaseisCOL1that cannot complement the comutation,inspiteofitsextremelycloseevolutionary relationship to CO, whereas overexpression of the more divergent CrCOundera35S promoterinducedextremelyearlyflowering,phenocopyingCOfunction and even complementing the co mutation (Serrano et al., 2009). Expression of CrCOundera 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 specific phloem promoter also induced early flowering but not if the expression was underameristemspecificpromoter.Whatdoesthistellus?First,andinanextremely surprising way, that CrCO function in algae and plants must be very similar at the biochemical level. Second, that it is the unique three‐dimensional structures of every specific COL protein that determines its function and that CrCOandCOmustbe extremelycloseinthisstructure.BecauseithasbeenshownthatCOissubjectedtoa complex posttranslational regulation involving phytochromes, cryptochromes, E3 ubiquitin ligases and HAP proteins it is probable that CrCO was also able to form complexeswiththeseproteinsintheCrCOoverexpressingplantstoperformCO function.Thishappenedatanotoriouslysimilartimeandspaceframe. CrCOfunctionisessentialinalgaeandseverelyreducedlevelsofCrCOdecreased Chlamydomonasgrowthcausingcellularinstabilityandlethality(Serranoetal.,2009). The question then remains why, considering the degree of functional conservation betweenCOandCrCO,theseextremephenotypeshavenotbeendescribed for col mutantsinArabidopsisorotherplants.Againwehavetocallon complexity and an evoluti 20 onarypointofviewtoanswerthisquestion(RomeroandValverde,2009). AscanbeseeninFigure3A,thecurrentmodelforCOfunctionand the photoperiodpathwayismainlycentredonthefloweringresponse.Inourmodel,COL functionsaremorenumerousbutoperatethroughthesameorsimilarbasicmechanistic processes(Figure3B).IfCOfunctionisactivatedbylightquality,daylength,clockand probablyotherexternalsignals,itseemspossiblethatotherCOLproteinsareregulated inasimilarway.Bythesamereasoning,iftheCCTdomainandb‐boxesofCONSTANS homologuesfromArabidopsisandotherplantspeciesareabletointeractwithsimilar proteinpartners,itishighlylikelythatotherCOLproteins,particularlythosecloserto 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 CO,wouldalsobeabletointeractwithsomeofthesepartners.Itisalsoplausiblethat throughb‐boxesdifferentCOLscouldinteractandmodifyeachothersfunctionashas been demonstrated in other transcription factors, particularly intheMADsgroup (Daviesetal.,1996).Inthisrationalthinking,thecomplexityoftheredundancyintheir biologicalfunctionandpossible interactionandhetero‐dimerizationcouldexplain the lackofparticularinformationabouttheroleofCOLs.Thereis simply not enough informationaccumulatedtoanswerthesequestions.  Conclusion Inthelastfifteenyearsanextremelycomplexmodelofthephotoperiodresponsehas emerged(Amasino,2010).InthismodelthefloweringresponseinArabidopsishasbeen crucial to describe how the signal is created in the photosynthetictissuesandhowa mobilemolecule(florigen)istransportedtotheapicalmeristem to change the tissue fate. This CO‐FT module is now at the root of every photoperiod response in higher plantsandhasalreadybeenshowntobeinvolvedindifferentdevelopmentalprocesses suchastuberizationinpotato(Martínez‐Garcíaetal.,2002;González‐SchainandSuárez‐ López,2008),buddormancy(Bohleniusetal.,2006)orjuveniletoadultphasechangein Populu 21 s(Zhangetal.,2010). Theproductionoftheflorigenatthecorrectseasonandinaprecisetimewindow ofthedayiswhatensuresthatfloweringwillhappeninatimely fashion for every particular plant adapted to a particular environment. The mechanismhastobe extremely precise but at the same time has to allow for certain plasticity because fluctuations in the seasonal temperature have to be counteracted with strong and reliablephotoperiodandcircadianinputstoassurethecorrectfloraltransition.Inthis 22 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 scenario, data coming from simple systems like unicellular algae could be extremely usefultounderstandwhatthemolecularmechanismsthatactivateCONSTANSareand uponwhatparticularilluminationthisactivationtakesplace.Itcouldalsobeextremely usefultodefinemolecularcomplexpartnersandfindoutinwhatpossiblemetabolicand cellcycleregulatoryeventsarethedifferentCOLproteinsinvolved. Recentworksinthephotoperiodresponseemployingdiverseplantspeciesare illuminatingawiderphotoperiodicresponsethantheonedescribedinArabidopsis.In somespeciestheCO‐FTmodulecouldworkasaninhibitorysignal in non‐inductive conditions,suchasrice,orcouldhavealessimportantrolethanoriginallyassumed,like in Solanum species (Martínez‐García et al., 2002). It is still unclear how the florigen signalistransported,howitisproducedinspecifictissuesandwhetheritisjustFTora 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Figures      Figure1.GraphicdomainstructureofCO.ForeachimportantdomainofCONSTANS protein,whichhasbeenusedasamodel,asmallrepresentativepictureisshown:In differentshadesofblue,thetwoaminoterminalb‐boxes;inmagenta,theacidicmiddle domainandinredtheCCTdomain.Asmalllegendwithtipsformolecularfunctionand mutanteffectisgiveninthesquareboxbelow.Thepictureisnotdrawntoscale.HAPS: emeActivatedProteins;COP1:COnstitutivePhotomorphogenic1.H 33     34 Figure2. PhylogenetictreesofCOLproteinsfromplantsandalgae.The phylogenetictreerepresentstheevolutionaryrelationshipbetweenproteinsequences ofdifferentCOLsfromArabidopsis(AtCOL1‐16);rice(OsCOL1‐9); the moss Physcomitrella(PpCOL1‐3);thespikemossSelaginellaandthemicroalgae Volvox, Galdieria, Chlorella, Ostreococcus and Chlamydomonas (CrCO). The tree is drawn to scalewithbranchesrepresentingmorethan95%bootstrapmarked with an asterisk. ThetreedefinesroughlytwogroupsofCOLproteins:GroupIcomprisesproteinwith domainstructureasinFigure1andgroupIIcomprisesCOLproteinslackingoneofthe b‐boxes. (Modified from Serrano et al., 2009). In group I, the genes demonstrated to affectfloweringhavebeenhighlighted(FLOWERING);aswellasthe ones with a probablefunctioninotherlight‐dependentprocesses(LIGHT).   Figure3.Newmodelforthephotoperiodresponseinplants.A.Thepictureonthe leftrepresentsthecurrentlyacceptedmodelfromArabidopsis,inwhichlight‐activated COovercomesthetemperature‐dependent inhibition from FLC and induces the expressionofFTinthephloemcompanioncells.FTismovedtothe phloem and channelledtotheapicalmeristemwhereitbindstoFDandthecomplexisrecruitedinto the nucleus. FT‐FD binds to the promoter of SOC1 and other meristematic floral integrators changing the vegetative developmental program to the ABC program, eventuallyproducingflowers.B.ThemodelproposedhereincludesthatdepictedinA, but also recruits similar photoperiodic mechanisms to regulate other developmental programsandbasicphysiologicalprocesses.Yellowarrowsrepresentexternalsignals: day/nighttransition;circadianclock;lightquality;andametabolicsignalrepresented byafertilizerbottle.Blackarrowsindicatesomeoftheoutputs of the photoperiodic response. 35