>
Fa   |   Ar   |   En
   The pea branching RMS2 gene encodes the PsAFB4/5 auxin receptor and is involved in an auxin-strigolactone regulation loop  
   
نویسنده ligerot y. ,de saint germain a. ,waldie t. ,troadec c. ,citerne s. ,kadakia n. ,pillot j.-p. ,prigge m. ,aubert g. ,bendahmane a. ,leyser o. ,estelle m. ,debellé f. ,rameau c.
منبع plos genetics - 2017 - دوره : 13 - شماره : 12
چکیده    Strigolactones (sls) are well known for their role in repressing shoot branching. in pea,increased transcript levels of sl biosynthesis genes are observed in stems of highly branched sl deficient (ramosus1 (rms1) and rms5) and sl response (rms3 and rms4) mutants indicative of negative feedback control. in contrast,the highly branched rms2 mutant has reduced transcript levels of sl biosynthesis genes. grafting studies and hormone quantification led to a model where rms2 mediates a shoot-to-root feedback signal that regulates both sl biosynthesis gene transcript levels and xylem sap levels of cytokinin exported from roots. here we cloned rms2 using synteny with medicago truncatula and demonstrated that it encodes a putative auxin receptor of the afb4/5 clade. phenotypes similar to rms2 were found in arabidopsis afb4/5 mutants,including increased shoot branching,low expression of sl biosynthesis genes and high auxin levels in stems. moreover,afb4/5 and rms2 display a specific resistance to the herbicide picloram. yeast-two-hybrid experiments supported the hypothesis that the rms2 protein functions as an auxin receptor. sl root feeding using hydroponics repressed auxin levels in stems and down-regulated transcript levels of auxin biosynthesis genes within one hour. this auxin down-regulation was also observed in plants treated with the polar auxin transport inhibitor npa. together these data suggest a homeostatic feedback loop in which auxin up-regulates sl synthesis in an rms2-dependent manner and sl down-regulates auxin synthesis in an rms3 and rms4-dependent manner. © 2017 ligerot et al.
آدرس institut jean-pierre bourgin,inra,agroparistech,cnrs,université paris-saclay,versailles,france,université paris-sud,université paris-saclay,orsay, France, institut jean-pierre bourgin,inra,agroparistech,cnrs,université paris-saclay,versailles, France, sainsbury laboratory cambridge university,bateman street,cambridge, United Kingdom, institute of plant sciences paris-saclay,inra,cnrs,université paris-sud,université d'evry,université paris-diderot,orsay, France, institut jean-pierre bourgin,inra,agroparistech,cnrs,université paris-saclay,versailles, France, howard hughes medical institute and section of cell and developmental biology,university of california san diego,la jolla,ca, United States, institut jean-pierre bourgin,inra,agroparistech,cnrs,université paris-saclay,versailles, France, howard hughes medical institute and section of cell and developmental biology,university of california san diego,la jolla,ca, United States, agroécologie,agrosup dijon,inra,université bourgogne franche-comté,dijon, France, institute of plant sciences paris-saclay,inra,cnrs,université paris-sud,université d'evry,université paris-diderot,orsay, France, sainsbury laboratory cambridge university,bateman street,cambridge, United Kingdom, howard hughes medical institute and section of cell and developmental biology,university of california san diego,la jolla,ca, United States, lipm,université de toulouse,inra,cnrs,castanet-tolosan, France, institut jean-pierre bourgin,inra,agroparistech,cnrs,université paris-saclay,versailles, France
 
     
   
Authors
  
 
 

Copyright 2023
Islamic World Science Citation Center
All Rights Reserved