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April 3, 2026Current Biology0 citationsOpen Access

Antagonism between blue- and red-light signaling controls thallus flatness in Marchantia polymorpha

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JRJohannes RoetzerBABeate AsperZMZohar Meir

Key Points

  • This research aims to investigate how blue and red light signaling interact to influence the growth orientation of the thallus in Marchantia polymorpha.
  • Examined growth responses to red and blue light in Marchantia polymorpha
  • Conducted mutations analysis on blue-light receptor MpPHOT and red-light receptor MpPHY
  • Utilized time-resolved transcriptomics to identify gene expression changes
  • Generated and analyzed loss-of-function mutants for Mpbbx1 and Mpbbx5 transcription factors
  • Red-light signaling promotes epinasty (downward growth) while blue-light signaling promotes hyponasty (upward growth)
  • Loss-of-function in MpPHOT leads to epinastic growth; loss-of-function in MpPHY leads to hyponastic growth
  • Mutants with disrupted BBX transcription factors exhibit altered growth orientations
  • Double mutants of Mpbbx1 and Mpbbx5 displayed flat thalli, supporting the antagonistic role of these factors.

Abstract

The growth orientation of the Marchantia polymorpha thallus-a system of dorsiventralized, indeterminate axes-is modulated by light. We show that red and blue light act antagonistically to control thallus growth orientation, with red-light signaling promoting epinasty and blue-light signaling promoting hyponasty. We found that loss-of-function mutations in the blue-light receptor MpPHOT led to epinasty, while loss-of-function mutations in the red-light receptor MpPHY resulted in hyponasty. We hypothesize that these antagonistic activities of blue- and red-light signaling are balanced in white light, resulting in the development of flat thalli. Using time-resolved transcriptomics, we identified genes that were rapidly induced upon light exposure. Among these genes were all six members of the M. polymorpha BBX gene family. Mutants harboring loss-of-function mutations in two of the six MpBBX transcription factors developed defective thallus growth orientation. Mpbbx1 loss-of-function mutants formed hyponastic thalli, while Mpbbx5 loss-of-function mutants developed epinastic thalli. Double mutants Mpbbx1 and Mpbbx5 grew flat, supporting the hypothesis that they function antagonistically. Together, these data indicate that phototropin-mediated blue-light and phytochrome-mediated red-light signaling antagonistically modulate thallus growth orientation and that BBX transcription factors also act antagonistically to regulate thallus flatness.

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Cite This Study

Roetzer et al. (2026) studied this question.

synapsesocial.com/papers/69cf588f5a333a82146097bchttps://doi.org/10.1016/j.cub.2026.03.008
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