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Locklear, R.

Publications and source records attributed to Locklear, R..

2 recordsLinked to original sources

The Sorghum Lipid Database (SoLD): population-scale lipidomics linking environmental and genetic variation in the Sorghum Association Panel

Sorghum (Sorghum bicolor) is a climate-resilient crop whose acclimation to nutrient limitation and low temperature likely involves extensive lipidome reconfiguration. Lipids are key membrane components, carbon and energy stores, and mediators of stress signaling, yet population-scale lipidomics data for sorghum are limited. We present the Sorghum Lipid Database (SoLD), a curated lipidomics resource from the Sorghum Association Panel grown under two field regimes: (i) a nutrient-sufficient with usual planting date environment (control) and (ii) a low-input treatment with reduced nitrogen and phosphorus, earlier planting, and no application of insecticides, herbicides, or pesticides (low-input). Using high-resolution LC-MS, we quantified 244 lipid species and detected broad, largely conserved compositional shifts across field trials. However, there were four major low-input-associated lipid signatures relative to control: (i) depletion of sulfoquinovosyldiacylglycerol, (ii) triacylglycerol enrichment, (iii) phospholipid redistribution centered on phosphatidylserine, and (iv) coordinated lysophospholipid remodeling, reflected in altered lysophosphatidylcholine-to-lysophosphatidylethanolamine ratios. Analyses of lipid chemical space and lipid ontology enrichment supported these compositional changes. GWAS of lipid species, class sums, and class ratios revealed recurrent, environment-specific loci. Control-associated loci were enriched for genes involved in lipid and isoprenoid metabolism, developmental regulation, and cell-wall biosynthesis and modification. Low-input-associated loci were enriched for genes involved in nutrient-stress signaling, cell-wall remodeling, defense, developmental control, and cold-related barrier formation and proteostasis. Thus, SoLD provides a framework connecting sorghum lipid diversity with environmental and genetic variation. All information regarding the database and the experiment is freely accessible through a Shiny application: https://nirwan.shinyapps.io/SAP-Lipidomics-Database/. The database enables users to move from lipid-class to individual molecular species and associated candidate loci, for hypothesis generation, comparative analyses, and prioritization of targets for functional validation.

plant biology↗

Uncoupling the Effects of Highland Maize Chromosomal Inversion Inv4m from Leaf Phosphorus Deficiency Responses

Local adaptation of a species involves the selection of adaptive alleles that confer a fitness advantage in their local environment. Inversions prevent recombination between the standard and inverted heterozygous hybrids. Inversions can play a crucial role in local adaptation by locking together a set of co-adapted alleles, acting as supergenes. Inv4m is a 13 Mb inversion in maize prevalent in highland maize and highland wild relatives from Mexico. Maize from the highlands of the Trans-Mexican volcanic belt has been shown to be well-adapted to volcanic, acidic soils with low phosphorus availability. Inv4m carries several genes involved in P acquisition and utilization. We therefore tested the hypothesis that Inv4m contributes to maize adaptation to these environments through enhanced phosphorus acquisition or utilization. Alternatively, Inv4m possible adaptive value may operate through constitutive developmental effects independent of nutrient stress responses. To test this hypothesis, we introgressed a highland maize variety from the highlands of Michoacan, Mexico, carrying Inv4m into the temperate line B73 and developed Near-Introgression Lines (NILs) carrying Inv4m. We then grew NILs carrying the inversion and controls without it in soils with different phosphorus levels and evaluated the fitness effects of the inversion, as well as changes in gene expression using RNA-Seq. Our results show that P starvation elicits highly conserved transcriptomic, lipidomic, and ionomic responses, independently of the Inv4m inversion genotype. Therefore, phosphorus deficiency does not seem to be driving the adaptive value of Inv4m. Additionally, we observed a phosphorus modulated transcriptional gradient from the collar leaf downward, characterized by a decrease in the expression of photosynthesis genes and an increase in the expression of senescence-associated genes, corresponding to the positional onset and initial stages of sequential leaf senescence. Although the magnitude of the phosphorus response increased with leaf age, we did not observe significant interactions with Inv4m. Our multi-omics analysis of the maize phosphorus starvation response identified and characterized two coordinately regulated molecular programs, light harvesting shutdown and accelerated senescence, whose deployment depends on leaf developmental stage, with older leaves below the collar integrating nutrient limitation into the natural progression toward senescence.

plant biology↗