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Rashotte, A. M.

Publications and source records attributed to Rashotte, A. M..

3 recordsLinked to original sources

Cytokinin N-conjugate Form Activity, Metabolism, and Signaling During Leaf Senescence

Cytokinin (CK) N-glucosides are the most abundant CK metabolites in Arabidopsis and most angiosperms, yet their role in cytokinin activity and response is unclear. Here, we examined metabolomic, transcriptomic, and proteomic profiles of seven CK N-glucoside conjugates in detached Arabidopsis leaves across a 144-hour dark-induced senescence (DIS) timecourse. All tested N-glucosides were found to undergo a slow conversion to their corresponding base forms at position-dependent rates, with N9-glucosides releasing base faster than their corresponding N7-glucosides. Conversion during DIS was strictly isoform-specific and not accompanied by coordinated induction of CK biosynthesis genes, arguing against de novo synthesis as the source of accumulated base. Despite progressive base accumulation, N-glucoside-treated leaves produced substantially fewer Differentially Expressed Genes than direct base application at comparable base concentrations, revealing a disconnect between hormone presence and transcriptional output. Unbiased model comparison identified the base:glucoside ratio as a stronger predictor of CK-Two Component Signaling (TCS) gene expression than absolute base concentration, though modulated by base-type-specific receptor affinities. Early proteomic profiling further revealed a coordinated response shared across N-glucosides but largely absent from base treatments. Together, these findings support that CK N-glucosides as kinetically slow, position-dependent reservoirs whose presence in abundance modulate activation of CK-TCS elicited by bioactive forms. HighlightsPhysiology, metabolomic, transcriptomic, and proteomic findings here support CK N-glucosides as kinetically slow, position-dependent reservoirs whose presence in abundance modulate activation of CK-TCS elicited by bioactive forms.

plant biology↗

Cytokinin Senescence Delay Is Shaped by Receptor Specificity and Metabolic Stability

Each of the four different cytokinin (CK) base forms, trans Zeatin (tZ), isopentenyladenine (iP), dihydrozeatin (DHZ), and cis Zeatin (cZ) have distinct chemical metabolism and affinity to the CK Histidine Kinase (CHK) receptors. However, it remains unclear how specific biochemical features of each form such receptor specificity or metabolic differences drives distinct tissue-specific physiological hormone output in response to application of these CK bases. Here, we show that CK receptor preference and metabolic persistence together shape isoform-specific CK signaling strength, including tissue-dependent hormone responses in Arabidopsis leaf versus root assays. Physiological, genetic, and multi-omics integration was used to show that tZ and iP anti senescence activity is matched by DHZ through a distinct receptor metabolic mechanism. DHZ requires Arabidopsis Histidine Kinase 3 (AHK3) signaling to be fully effective in a leaf Dark Induced Senescence (DIS) assay and where it overcomes its lower receptor affinity through higher metabolic persistence, accumulating at levels [~]2.5-fold above tZ and iP early in a senescence time course. Together, these findings provide a framework for integration of receptor preference and metabolic stability to determine CK isoform activity.

plant biology↗

Physiological and Molecular Responses of Projected Future Temperatures on Potato Tuberization

Potato (Solanum tuberosum L.) is one of the most important food crops globally and is especially vulnerable to heat stress. Significant knowledge gaps remain however, in our understanding of the developmental mechanisms associated with tuber responses to heat stress. This study uses whole-plant physiology, transcriptomics, and hormone profiling to gain insights into the mechanisms associated with heat stress impacts on potato tuber development. When plants were grown in projected future temperature conditions, levels of abscisic acid (ABA) were significantly decreased in leaf and tuber tissues while rates of leaf carbon assimilation and stomatal conductance were not significantly affected. While plants grown in elevated temperature conditions initiated more tubers on average per plant, there was a significant decrease (66%) in mature tubers at final harvest. We hypothesize that reduced tuber yields at elevated temperatures are not due to reductions in tuber initiation, but due to impaired tuber filling. Transcriptomic analysis found significant changes in transcript expression for genes related to response to ABA, heat and auxin biosynthetic process. The known tuberization repressor genes SELF PRUNING 5G (StSP5G) and CONSTANS-LIKE1 (StCOL1) were found to be differentially expressed in tubers grown in elevated temperatures. IDENTITY OF TUBER 1 (StIT1) and TIMING OF CAB EXPRESSION 1 (StTOC1) are other known tuberization genes that displayed distinct expression patterns in elevated versus ambient temperatures but were not differentially expressed. This work highlights potential gene targets and key developmental stages associated with tuberization to development more heat tolerant potatoes.

plant biology↗