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Biology subjects

Ostrowsky, L.

Publications and source records attributed to Ostrowsky, L..

2 recordsLinked to original sources

Genetically based variation in fitness and carbon assimilation among bur oak populations

Ongoing climate change will negatively impact tree populations unless they are able to acclimate to the changes in their local environment. Effective planning for climate adaptation management requires an understanding of the current state of local adaptation and physiological performance to assess whether populations are at risk of local extinction, to determine if seed movement is appropriate, and to select appropriate seed sources if intervention is needed. We established a new reciprocal transplant experiment (ACE, Adaptation to Climate and Environment) across a latitudinal gradient in North America to examine the impacts of warming on three bur oak (Quercus macrocarpa) populations across much of the species range. We established common gardens in Minnesota, Illinois, and Oklahoma with seedlings grown from seeds collected within 50 km of each of those locations from a total of sixty maternal families. We aimed to 1) assess local adaptation in each of the populations using survival and size as fitness metrics, and 2) evaluate physiological responses to different environments along the latitudinal gradient. We found that northern populations are maladapted to hotter climates as evidenced by their low survival, growth, and photosynthetic rates in the warmest common garden. The southernmost population had the highest survival rate, growth rate, and fitness of the three populations in the southernmost garden, providing evidence for local adaptation to the warmest site. However, conditions in the middle garden resulted in the highest fitness and best physiological performance for all populations. Growth and survival were correlated in the middle garden but were decoupled in the northern and southern gardens. This decoupling is likely due to stress associated with more extreme climates at the ends of the gradient that led to greater resource allocation to survival than to growth. Our results suggest that southern seed sources may perform well in warmer conditions in the north brought on by climate change, which has important implications for managers assisting broadly ranged tree species in adapting to climate change.

ecology↗

The Root of the Red Maple Paradox: Two distinct regeneration mechanisms determine leaf morphology, physiology, and competitive success in Acer rubrum.

Red maple is one of the most abundant and wide-ranging tree species in eastern North America and has rapidly increased in abundance over the past century following forest disturbances. This species is both a site- and light-generalist and has the unique ability to regenerate in forms that represent multiple stages of forest succession. However, red maple has modest physiological traits compared to its competitors, including low maximum photosynthetic rate, low photosynthetic nitrogen-use efficiency, and low foliar nutrient content. Red maples unremarkable physiology contradicts its competitive success. To untangle this paradox, we examine red maples two distinct regeneration mechanisms: seedlings and vegetative sprouts. Red maple can regenerate from seed, but can also sprout clonally from a stump following forest disturbance. We compare the morphology, physiology, and plasticity of these two regeneration mechanisms over 24 years of forest succession using a chronosequence of regenerating forest stands. We found that sprout-origin maples grow on average 6.5x taller and 5.5x faster than seed-origin maples. Sprout-origin trees display greater leaf spectral reflectance in the near-infrared range and greater stomatal density than seed-origin trees, demonstrating vegetative sprouts low water-use efficiency. Sprout-origin trees have more robust light-capture traits, including thicker palisade mesophyll than seed-origin trees. Sprouts also have a high plasticity between upper and lower leaves in many morphological and physiological traits, while seed-origin trees exhibited much less plasticity. The two distinct regeneration mechanisms of seed-origin and sprout-origin give rise to red maple trees with dramatically different leaf traits, allowing red maples to regenerate and thrive in a range of ecological conditions. Seed-origin maples are slow-growing, late successional, and shade-tolerant. Sprout-origin maples are fast-growing, early successional, and shade intolerant. This unique bimodal regeneration strategy may explain the red maple paradox and help predict forest composition and structure following disturbance.

plant biology↗