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Bezodis, W.

Publications and source records attributed to Bezodis, W..

2 recordsLinked to original sources

Trans-generational adaptation to maternal climate through hormone transport in plants

Whether organisms can inherit parental adaptations to the environment is a major question in evolutionary biology. Plant development is highly plastic and dependent on the seasonal cues which are used to control growth and reproduction. Seed dormancy and germination are key traits which respond strongly to temperature during seed development and here we show that progeny adaptation to seasonal climate is inherited from the mother plant. Loss of maternal LIKE HETEROCHROMATIN PROTEIN 1 (LHP1) causes an inability of progeny seeds to sense temperature and this is linked mechanistically to reduced ABA levels in seeds and activation of the primary nitrate response. At the single cell level, small changes in temperature activate nitrate signalling specifically in the mother, and ABA biosensor imaging reveals temperature-dependent fluxes of ABA into seeds necessary for dormancy induction. Thus, we reveal that progeny seeds inherit the climate adaptation of mother plants via active hormone transport during seed set.

plant biology↗

Misexpression of the Homologues of Bryophyte Gametophyte-to-Sporophyte Control Genes in Arabidopsis Results in Germline Reprogramming and Phenotypes that Mirror Apomictic Development

Evidence from the model bryophytes Physcomitrium and Marchantia suggests that a BELL-KNOX genetic module acts as a master regulator controlling sporophyte identity. Investigating any conservation of this system in flowering plants has proved challenging, but studies of the Arabidopsis eostre mutant and naturally apomictic angiosperms point to ectopic activation of KNOX and BELL transcription factors mediating the switch from sexual to apomictic development. We show here that in Arabidopsis, ectopic expression, under a germline-specific promoter, of KNOX and BELL genes not normally expressed in the gametophytes both disrupts germ cell specification and causes defects in cell identity throughout gametophyte development - some mirroring events seen in naturally apomictic plants. A better understanding of this TALE-HD genetic module in flowering plants may thus help to unravel the molecular control of higher plant life cycles, while providing a route to engineering synthetic apomixis in crops. This study also highlights the utility of applying data from bryophytes, where the ontogeny transitions are spatio-temporally distinct, to apomixis research in angiosperms.

plant biology↗