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Biology subjects

Tiedemann, S.

Publications and source records attributed to Tiedemann, S..

2 recordsLinked to original sources

The secreted redox sensor roGFP2-Orp1 reveals oxidative dynamics in the plant apoplast

- Specific generation of reactive oxygen species (ROS) is important for signalling and defence in many organisms. In plants, different types of ROS serve useful biological functions in the extracellular space (apoplast), influencing polymer structures as well as signaling during immune responses. The current knowledge of apoplastic ROS dynamics is limited, as dynamic monitoring of extracellular redox processes in vivo remains difficult. - We employed evolutionary distant land plant model species from bryophytes and flowering plants to test whether the genetically encoded redox biosensor roGFP2-Orp1 can be used to assess extracellular redox dynamics. - Secreted roGFP2-Orp1 can inform about local diffusion barriers and protein cysteinyl oxidation rate in the apoplast, after pre-reduction. Observed re-oxidation rates were slow, within the range of hours. Compared to Physcomitrium patens, re-oxidation in Arabidopsis thaliana was faster and increased after triggering an immune response. Comparing roGFP2-Orp1 signals in tip-growing P. patens protonema and Nicotiana tabacum pollen tubes, we consistently find no intracellular redox gradient, but partially reduced extracellular sensor in pollen tubes. - Our data indicate differences in extracellular oxidative processes between species and within a species, depending on cell type and immune signalling.

plant biology↗

The spliceosomal component GAMETOPHYTIC FACTOR 1 (GFA1) regulates a key photoperiodic switch

Plants have evolved sophisticated mechanisms to perceive and interpret daytime in order to flower at an optimal time point. Here we show that the spliceosomal component GAMETOPHYTIC FACTOR 1 (GFA1) constitutes a previously unrecognized key photoperiodic switch, that is essential for flowering in long days. We show that gfa1 hypomorphic (gfa1hyp) plants fail to initiate flowering in long-days (LD), which correlates with ectopic activation of the short-day (SD) flowering repressor ARABIDOPSIS THALIANA CENTRORADIALIS (ATC). Accordingly, flowering is restored upon inactivation of ATC in gfa1hyp mutants. A novel tissue-specific in-planta splice assay and comprehensive RNAseq profiling of gfa1hyp mutants indicate that GFA1 mediated pre-mRNA splicing is substrate specific, as previously suggested for GFA1 orthologs. Furthermore, we show that gfa1hyp mutants accumulate nonsense transcripts of the photoreceptor components PHYB and RRC1, suggesting inappropriate photoreceptor signaling as a potential cause for the ectopic activation of the SD characteristic profile in gfa1hyp. In fact, known downstream targets of the phytochrome system such as RS31, SR34a, SRp30 accumulate reduced amounts of light-dependent splice isoforms. Together, our data reveal a link between spliceosome composition and long-day flowering, based on complex transcriptional readouts in response to day length.

developmental biology↗