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Biology subjects

Durant, P. C.

Publications and source records attributed to Durant, P. C..

2 recordsLinked to original sources

Foliar salt spray exclusion and tissue tolerance underlie local adaptation to oceanic salt spray

PremiseSurviving under oceanic salt spray is critical for plants in coastal ecosystems, yet the mechanisms of coastal plant resilience to salt spray are not well understood. We investigated mechanisms of salt spray adaptation by comparing five latitudinal pairs of yellow monkeyflower accessions locally adapted to coastal and inland habitats. MethodsWe measured sodium levels in coastal and inland leaves exposed to experimental salt spray in the lab, and compared leaf surface traits that may contribute to differences in sodium uptake between ecotypes. We assayed tissue tolerance by allowing sodium to enter leaves through wounding and recording time to necrosis for coastal and inland accessions. Key ResultsCoastal monkeyflowers take up less sodium through the leaf surface under experimental salt spray, which may contribute to local adaptation under oceanic salt spray in coastal habitats. Higher water content per unit leaf area and less water loss under salt spray further reduce sodium concentrations in salt-sprayed coastal leaves compared to inland counterparts. The coastal ecotype also shows greater tissue tolerance to sodium than the inland ecotype. ConclusionsCoastal monkeyflowers employ salt spray exclusion and tissue tolerance mechanisms for salt spray resilience. Our results suggest that plant adaptation to coastal habitats may often involve the evolution of multiple mechanisms to survive stress imposed by oceanic salt spray.

evolutionary biology↗

The shared genetic basis of leaf morphology and tensile resistance underlies the effect of growing season length in a widespread perennial grass

PremiseLeaf tensile resistance, a leafs ability to withstand pulling forces, is an important determinant of plant ecological strategies. One potential driver of leaf tensile resistance is growing season length. When growing seasons are long, strong leaves--which often require more time and resources to construct than weak leaves--may be more advantageous than when growing seasons are short. Growing season length and other ecological conditions may also impact the morphological traits that underlie leaf tensile resistance. MethodsTo understand variation in leaf tensile resistance, we measured size-dependent leaf strength and size-independent leaf toughness in diverse genotypes of the widespread perennial grass Panicum virgatum (switchgrass) in a common garden. We then used quantitative genetic approaches to estimate the heritability of leaf tensile resistance and whether there were genetic correlations between leaf tensile resistance and other morphological traits. Key ResultsLeaf tensile resistance was positively associated with aboveground biomass (a proxy for fitness). Moreover, both measures of leaf tensile resistance exhibited high heritability and were positively genetically correlated with leaf lamina thickness and leaf mass per area (LMA). Leaf tensile resistance also increased with habitat-of-origin growing season length and this effect was mediated by both LMA and leaf thickness. ConclusionsDifferences in growing season length may promote selection for different leaf lifespans and may explain existing variation in leaf tensile resistance in P. virgatum. In addition, the high heritability of leaf tensile resistance suggests that P. virgatum will be able to respond to climate change as growing seasons lengthen.

plant biology↗