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Institute
Temperature elevations constitute a major threat to plant performance. In recent years, much was learned about the general molecular mode of heat stress reaction of plants. The current research focuses on the integration of the knowledge into more global networks, including the reactions of cellular compartments. For instance, chloroplast function is central for plant growth and survival, and the performance of chloroplasts is tightly linked to the general status of the cell and vice versa. We examined the changes in photosynthesis, chloroplast morphology and proteomic composition posed in Arabidopsis thaliana chloroplasts after a single or repetitive heat stress treatment over a period of two weeks. We observed that the acclimation is potent in the case of repetitive application of heat stress, while a single stress results in lasting alterations. Moreover, the physiological capacity and its adjustment are dependent on the efficiency of the protein translocation process as judged from the analysis of mutants of the two receptor units of the chloroplast translocon, TOC64, and TOC33. In response to repetitive heat stress, plants without TOC33 accumulate Hsp70 proteins and plants without TOC64 have a higher content of proteins involved in thylakoid structure determination when compared to wild-type plants.
Summary
Wild relatives of crops thrive in habitats where environmental conditions can be restrictive for productivity and survival of cultivated species. The genetic basis of this variability, particularly for tolerance to high temperatures, is not well understood. We examined the capacity of wild and cultivated accessions to acclimate to rapid temperature elevations that cause heat stress (HS).
We investigated genotypic variation in thermotolerance of seedlings of wild and cultivated accessions. The contribution of polymorphisms associated with thermotolerance variation was examined regarding alterations in function of the identified gene.
We show that tomato germplasm underwent a progressive loss of acclimation to strong temperature elevations. Sensitivity is associated with intronic polymorphisms in the HS transcription factor HsfA2 which affect the splicing efficiency of its pre‐mRNA. Intron splicing in wild species results in increased synthesis of isoform HsfA2‐II, implicated in the early stress response, at the expense of HsfA2‐I which is involved in establishing short‐term acclimation and thermotolerance.
We propose that the selection for modern HsfA2 haplotypes reduced the ability of cultivated tomatoes to rapidly acclimate to temperature elevations, but enhanced their short‐term acclimation capacity. Hence, we provide evidence that alternative splicing has a central role in the definition of plant fitness plasticity to stressful conditions.
Heat stress transcription factors (Hsfs) are required for transcriptional changes during heat stress (HS) thereby playing a crucial role in the heat stress response (HSR). The target genes of Hsfs include heat shock proteins (Hsps), other Hsfs and genes involved in protection of the cell from irreversible damages due to exposure to elevated temperatures. Among 27 Hsfs in Solanum lycopersicum, HsfA1a, HsfA2 and HsfB1 constitute a functional triad which regulates important aspects of the HSR. HsfA1a is constitutively expressed and described as the master regulator of stress response and thermotolerance. Activation of HsfA1a under elevated temperatures leads to the induction of HsfA2 and HsfB1 which further stimulate the transcription of HS-responsive genes by forming highly active complexes with HsfA1a. Despite the well-established role of these three Hsfs in tomato HSR, information about functional relevance of other Hsfs is currently missing.
The heat stress inducible HsfA7 belongs alongside with HsfA2 to a phylogenetically distinct clade. Thereby the two proteins share high homology and a functional redundancy has been assumed. However, HsfA7 function and contribution to stress responses have not been investigated into detail in any plant species.
Tomato HsfA7 protein accumulates already at moderately elevated temperatures (~35°C) while HsfA2 becomes dominant at higher temperatures (>40°C). HsfA7 pre-mRNA undergoes complex and temperature-dependent alternative splicing resulting in several transcripts that encode for three protein isoforms. HsfA7-I contains a functional nuclear export signal (NES) and shows nucleocytoplasmic shuttling while HsfA7-II and HsfA7-III have a truncated NES which leads to the strong nuclear retention of the protein. Differences in the nucleocytoplasmic equilibrium have a major impact on the stability of protein isoforms, as nuclear retention is associated with increased protein turnover. Consequently, HsfA7-I shows a higher stability and can be detected even after 24 hours of stress attenuation, while HsfA7-II is rapidly degraded. The degradation of these factors is mediated by the ubiquitin-proteasome pathway.
HsfA7 can physically interact with HsfA1a and HsfA3 and form co-activator (“superactivator”) complexes with a very high transcriptional activity as shown on different HS-inducible promoters. In order for the complex to be successfully transferred to the nucleus and confer its activity it needs a functional nuclear localization signal (NLS) of HsfA7. In contrast, the activator (AHA) motif of HsfA7 is not essential for its co-activator function. Interestingly, while interaction of HsfA7 with either HsfA3 or HsfA1a stabilizes HsfA7 isoforms, concomitantly this leads to an increased turnover of HsfA1a and HsfA3. In contrast, HsfA2 has a stabilizing effect on the master regulator HsfA1a.
Thus, HsfA7 knockout mutants generated by CRISPR/Cas9 gene editing, show increased HsfA1a levels and a stronger induction of HS-related genes at 35°C compared to wild-type plants and HsfA2 knockout mutants. Consequently, HsfA7 knockout seedlings exhibit increased thermotolerance as shown by the enhanced hypocotyl elongation under a prolonged mild stress treatment at 35°C. In summary, these results highlight the importance of HsfA7 in regulation of cellular responses at elevated temperatures. Under moderately elevated temperatures, the accumulation of HsfA7 and its subsequent interaction with HsfA1a, leads to increased turnover of the latter, thereby ensuring a milder transcriptional activation of temperature-responsive genes like Hsps. In turn, in response to further elevated temperatures, HsfA2 becomes the dominant stress-induced Hsf. HsfA2 forms co-activator complexes with HsfA1a which in contrast to HsfA7, allows the stabilization of the master regulator, leading to the stronger expression of HS-responsive genes required for survival. Thereby, this study uncovers a new regulatory mechanism, where the temperature-dependent competitive interaction of HsfA2 and HsfA7 with HsfA1a control the fate of the master regulator and consequently the activity of temperature-responsive networks.