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Sharwood, R.

Publications and source records attributed to Sharwood, R..

2 recordsLinked to original sources

Trade-offs between photosynthetic capacity, mesophyll conductance stability and leaf anatomy shape heat and water deficit resilience in Gossypium.

O_LIMesophyll conductance (gm) governs CO2 diffusion to Rubisco and is a key determinant of photosynthetic performance, yet the mechanisms underlying its sensitivity to heat and water stress remain unresolved. C_LIO_LIWe quantified gm temperature responses across diverse Gossypium species and examined anatomical drivers of gm plasticity in cultivated cotton (G. hirsutum) and the wild Australian species G. bickii under elevated temperature and soil water deficit. C_LIO_LISpecies exhibited contrasting gm strategies: G. hirsutum exhibited high gm and carbon assimilation near thermal optima but showed greater sensitivity under combined heat and water deficit, whereas G. bickii maintained comparatively stable gm and photosynthesis across stress conditions. C_LIO_LIUnder water deficit, structural adjustments in G. hirsutum (increased leaf porosity, cell wall thickness and mesophyll surface exposure to intercellular airspaces) were insufficient to sustain gm, suggesting that liquid-phase resistances impose dominant constraints on CO2 diffusion under extreme climatic stress. C_LIO_LIThese results identify gm as a dynamic, multi-component trait and a key physiological vulnerability in cotton, shaped by coordinated anatomical characteristics and potentially cell wall properties and membrane-associated processes, with major implications for mechanistic photosynthesis modelling and improving climate resilience in cotton and other C3 species. C_LI

plant biology↗

Amino acid biostimulant increases pine photosynthetic efficiency and growth through optimised mycobiome and nitrogen assimilation

BackgroundAmino-acid biostimulants have emerged as powerful alternatives to conventional inorganic nitrogen fertilisers, yet their potential in forestry species like radiata pine (Pinus radiata) remains largely unexplored. In this study, we reveal physiological mechanisms of enhanced growth of radiata pine seedlings that are achieved by substituting standard inorganic fertigation, either partially or entirely, with amino-acid-based biostimulants. ResultsAmino-acid fertigation notably increased shoot biomass, plant height, and collar diameter. Critically, this approach reshaped the root fungal community, selectively enriching fungi with diverse ecological roles, including several taxa known for auxin production. These microbial shifts correlated directly with elevated auxin concentrations observed in needle tissues, providing a plausible mechanism for the enhanced growth. Machine learning models further identified key fungal genera that strongly associated with plant biomass, reinforcing microbiome shifts as a contributing mechanism to enhanced growth. Additionally, amino-acid fertigation improved nitrogen assimilation, correlating positively with increased chlorophyll content and photosynthetic efficiency. ConclusionsOur findings highlight that the transition from inorganic source to amino-acid biostimulants not only enhances plant growth and nitrogen use but also promotes a beneficial root microbiome, thereby offering a sustainable pathway to nursery production of radiata pine.

plant biology↗