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Avila-Lovera, E.

Publications and source records attributed to Avila-Lovera, E..

2 recordsLinked to original sources

The PSInet Plant Water Potential Database: advancing new perspectives on plant water status, traits, and hydraulic processes

Water potential gradients drive water flow within and between soils and plants, and the internal plant water potential controls a wide range of physiological processes including photosynthesis, growth, and mortality. Notwithstanding this clear relevance for many critical aspects of ecosystem function, water potential data have historically been relatively inaccessible and unnetworked. The absence of a centralized repository for plant water potential time series limits our ability to integrate a wealth of ecophysiological information from other networks and from remote sensing. Closing this gap is necessary to address unresolved questions about plant responses to drought and heat stress, and to make confident predictions about plant and ecosystem function in a warming world. Here, we introduce the PSInet database -- a global collection of plant water potential time series from 285 datasets representing 523 species. We present the workflow that guided database development and evaluate its key features. Through a series of preliminary analyses, we then highlight the potential of the PSInet database for applications including: a) advancing plant water use strategy frameworks; b) disentangling the impacts of soil versus atmospheric drought stress; c) assessing the long-held assumption of pre-dawn equilibration of ecosystem water potential; d) understanding the risk of drought-driven mortality; and e) benchmarking remote-sensing data products and land-surface models.

plant biology↗

Increased conductance associated with higher photosynthesis in leaves and green stems of avocado exposed to diffuse light

Research has demonstrated that diffuse light drives changes in leaf photosynthesis, with the direction and magnitude varying across species; however, our understanding of the relationship between diffuse light and plant gas exchange, as well as the mechanisms driving these relationships remain unresolved. We studied the effects of diffuse light on plant function in potted individuals of Persea americana (avocado). We first measured leaf gas exchange subject to varying proportions of direct and diffuse light, as well as photosynthetic response to varying CO2 (A-Ci curves) in predominantly direct and predominantly diffuse light. We find that leaf photosynthetic rates increase as the proportion of diffuse light increases and that those changes are associated with stomatal conductance, rather than photosynthetic biochemistry. Given that avocados have green stems, we then measured stem gas exchange in predominantly direct compared to predominantly diffuse light. While we also observed an increase in conductance in stems subject to diffuse light, there was not an increase in photosynthetic rate, effectively decoupling gas flux from carbon gain. Finally, by scaling measurements of gas exchange to the plant, we demonstrate that stem bark conductance contributes proportionally more to whole-plant conductance under diffuse light. Our results add to our understanding of the potential mechanisms that govern how plant function varies in response to changes in light quality, the first paper to demonstrate mechanisms to explain increases under diffuse light. As diffuse light increases globally, this variable needs to be integrated into our understanding of plant carbon-water tradeoffs in response to climate change.

physiology↗