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Biology subjects

Grubb, L. E.

Publications and source records attributed to Grubb, L. E..

5 recordsLinked to original sources

Phosphate resupply differentially impacts the shoot and root proteomes of Arabidopsis thaliana seedlings

Phosphate (Pi) is an essential macronutrient for plant development that is often limited in soil environments. Plants have evolved myriad dynamic biochemical, physiological, and morphological adaptations to cope with nutritional Pi deficiency, collectively known as the Pi starvation response (PSR). While many components of the PSR have been well-characterized, much less is known about how metabolic homeostasis is re-established upon Pi resupply, particularly with respect to tissue- and time-specific adaptations. Here, we applied label-free quantitative proteomics to quantify protein-level changes in Arabidopsis thaliana shoots and roots following Pi resupply after prolonged Pi deprivation, quantifying a total of [~]2,700 differentially abundant proteins (DAPs). Sampling at early (1 h) and late (48 h) time-points, we captured a combination of immediate signaling and metabolic responses, along with longer-term recovery processes. Early responses prioritized metabolic adjustments to restore Pi pools via enhanced glycolysis and energy production, followed by later shifts toward anabolism, including nucleotide production, membrane remodeling, and protein synthesis. Several key enzymes, including ALTERNATIVE OXIDASE 1A, FRUCTOSE- BISPHOSPHATE ALDOLASE 5, and subunits of PHOTOSYSTEM I exhibited unique tissue-specific and time-dependent regulation. Overall, our findings reveal dynamic temporal phases of metabolic reprogramming during recovery from Pi starvation, and identify candidate proteins involved in orchestrating this transition, ultimately identifying potential targets for enhancing Pi uptake- and use-efficiency in crops. While hydroponic liquid culture enabled precise control of Pi availability, soil responses may be further influenced by heterogeneity and other root interactions.

plant biology↗

Class IV plant U-box proteins function redundantly to optimize protein accumulation of receptor-like cytoplasmic kinase BIK1

In Arabidopsis thaliana, the receptor-like cytoplasmic kinase BOTRYTIS INDUCED KINASE 1 (BIK1) is a direct substrate of multiple transmembrane immune receptor kinases and plays a crucial role in immune signal transduction. Inactive BIK1 is poly-ubiquitinated and degraded by the 26S proteasome, which is thought to optimize BIK1 levels in naive cells and may protect against inappropriately high immune responses. Here, we provide biochemical and genetic evidence that supports redundant roles between related Plant U-Box (PUB) proteins PUB22, PUB23, PUB24, PUB25, and PUB26 in BIK1 turnover.

plant biology↗

Defining the molecular impacts of Humalite application on field-grown wheat (Triticum aestivum L.) using quantitative proteomics

Increasing global food production demands have resulted in increased fertilizer usage, causing detrimental environmental impacts. Biostimulants, such as humic substances, are currently being applied as a strategy to increase plant nutrient-use efficiency and minimize environmental impacts within cropping systems. Humalite is a unique, naturally occurring coal-like substance found in deposits across southern Alberta. These deposits contain exceptionally high ratios of humic acids (>70%) and micronutrients due to their unique freshwater depositional environment. Humalite has begun to be applied to fields based on scientific data suggesting positive impacts on crop growth, yield and nutrient usage; however, little is known about the underlying molecular mechanisms of Humalite. Here, we report a quantitative proteomics approach to identify systems-level molecular changes induced by the addition of different Humalite application rates in field-grown wheat (Triticum aestivum L.) under three urea fertilizer application rates. In particular, we see wide-ranging abundance changes in proteins associated with several metabolic pathways and growth-related biological processes that suggest how Humalite modulates the plant molecular landscape. Overall, our results provide new, functional information that will help better inform agricultural producers on optimal biostimulant and fertilizer usage.

plant biology↗

Shaping Kale Morphology and Physiology Using Different LED Light Recipes

Light serves as a fundamental factor in plant development, both as an energy source and as an environmental cue. With the advent of light-emitting diode (LED) technology, light can be precisely manipulated to influence key plant traits. Here, we assess effects of light intensity and spectral composition on the growth and physiology of Kale (Brassica oleracea). Kale is known for its phenotypic plasticity and nutritional composition, making it a crop well-suited for indoor cultivation either as microgreens or as large leafy plants. Here, we employ a combination of advanced phenotyping, computer vision, gas chromatography-mass spectrometry (GC-MS) metabolomics, and liquid chromatography-mass spectrometry (LC-MS)-based quantitative proteomics to characterize the molecular changes that underpin light-dictated differences in the growth and metabolism of two different commercially grown kale cultivars under different light intensities and spectral compositions. We identify time-of-day and cultivar-specific light intensity and spectral composition-induced changes related to growth, shade avoidance, photosynthesis and several aspects of nutritional composition, including amino acids, glucosinolates and carotenoids. Our results offer a key resource to the plant community and demonstrate the translational potential of light manipulation in tailoring kale growth and nutritional content for enhanced crop productivity and/or health benefits, while simultaneously offering a more cost-effective solution for contemporary agricultural challenges. Significance StatementThe effects of light intensity and spectral composition differentially affect the diel molecular responses of Kale (Brassica oleracea). Our results demonstrate the translational potential of light manipulation in tailoring plant growth and nutritional content for enhanced crop productivity.

plant biology↗

Quantitative proteomic analysis of soil-grown Brassica napus responses to nutrient deficiency

ABSTRACTMacronutrients such as nitrogen (N), phosphorus (P), potassium (K), and sulphur (S) are critical for plant growth and development. Field-grown canola (Brassica napus L.) is supplemented with fertilizers to maximize plant productivity, while deficiency in these nutrients can cause significant yield loss. A holistic understanding of the interplay between these nutrient deficiency responses in a single study and canola cultivar is thus far lacking, hindering efforts to increase the nutrient use efficiency of this important oil seed crop. To address this, we performed a comparative quantitative proteomic analysis of both shoot and root tissue harvested from soil-grown canola plants experiencing either nitrogen, phosphorus, potassium, or sulphur deficiency. Our data provide critically needed insights into the shared and distinct molecular responses to macronutrient deficiencies in canola. Importantly, we find more conserved responses to the four different nutrient deficiencies in canola roots, with more distinct proteome changes in aboveground tissue. Our results establish a foundation for a more comprehensive understanding of the shared and distinct nutrient deficiency response mechanisms of canola plants and pave the way for future breeding efforts.

plant biology↗