The members of myeloblastosis transcription factor(MYB TF)family are involved in the regulation of biotic and abiotic stresses in plants.However,the role of MYB TF in phosphorus remobilization remains largely unexplor...The members of myeloblastosis transcription factor(MYB TF)family are involved in the regulation of biotic and abiotic stresses in plants.However,the role of MYB TF in phosphorus remobilization remains largely unexplored.In the present study,we show that an R2R3 type MYB transcription factor,MYB103,is involved in phosphorus(P)remobilization.MYB103 was remarkably induced by P deficiency in cabbage(Brassica oleracea var.capitata L.).As cabbage lacks the proper mutant for elucidating the mechanism of MYB103 in P deficiency,another member of the crucifer family,Arabidopsis thaliana was chosen for further study.The transcript of its homologue AtMYB103 was also elevated in response to P deficiency in A.thaliana,while disruption of AtMYB103(myb103)exhibited increased sensitivity to P deficiency,accompanied with decreased tissue biomass and soluble P concentration.Furthermore,AtMYB103 was involved in the P reutilization from cell wall,as less P was released from the cell wall in myb103 than in wildtype,coinciding with the reduction of ethylene production.Taken together,our results uncover an important role of MYB103 in the P remobilization,presumably through ethylene signaling.展开更多
基金This research was funded in part by the National Key Research and Development Program(2016YFD0101702)the Key Research and Development Program of Jiangsu Province(BE2017379)“333 project”of Jiangsu Province(BRA2018379).
文摘The members of myeloblastosis transcription factor(MYB TF)family are involved in the regulation of biotic and abiotic stresses in plants.However,the role of MYB TF in phosphorus remobilization remains largely unexplored.In the present study,we show that an R2R3 type MYB transcription factor,MYB103,is involved in phosphorus(P)remobilization.MYB103 was remarkably induced by P deficiency in cabbage(Brassica oleracea var.capitata L.).As cabbage lacks the proper mutant for elucidating the mechanism of MYB103 in P deficiency,another member of the crucifer family,Arabidopsis thaliana was chosen for further study.The transcript of its homologue AtMYB103 was also elevated in response to P deficiency in A.thaliana,while disruption of AtMYB103(myb103)exhibited increased sensitivity to P deficiency,accompanied with decreased tissue biomass and soluble P concentration.Furthermore,AtMYB103 was involved in the P reutilization from cell wall,as less P was released from the cell wall in myb103 than in wildtype,coinciding with the reduction of ethylene production.Taken together,our results uncover an important role of MYB103 in the P remobilization,presumably through ethylene signaling.