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Nogueira, A.

Publications and source records attributed to Nogueira, A..

2 recordsLinked to original sources

Carbon limitation decouples roots but not leaves from nitrogen-fixing mutualists

While mutualistic symbioses with nitrogen-fixing bacteria enable plants to access fixed nitrogen, they also require substantial carbon investment. Under carbon limitation, such as shading, shifts in biomass allocation can decouple symbiotic investment from leaf and root growth, potentially compromising plant nitrogen status. Because shading shifts biomass allocation toward light acquisition, it could influence nitrogen fixing symbiosis in two opposing ways. If nodulation remains coupled to leaves rather than roots, nitrogen status should be maintained despite reduced root growth. Alternatively, if root growth constrains nodulation, nitrogen status should decline. We tested these hypotheses by manipulating light availability (full sunlight vs. 50% shade) and quantifying biomass allocation and symbiotic nodulation. Under shading, plants allocated proportionally more biomass to shoots than to roots and invested less biomass in root nodules. Relationships between nodulation and leaf or root biomass differed between treatments but converged with increasing plant size, although shaded plants never attained the root biomass observed in full sunlight. Leaf nitrogen concentration was maintained under shading because nodulation remained coupled to leaf investment despite reduced root allocation. These findings highlight that, under carbon limitation, maintaining leaf and nodule coupling enables plants to reduce nodule investment without compromising the nitrogen benefits of symbiosis. HighlightUnder carbon limitation, maintaining leaf-nodule coupling despite reduced root investment enables plants to reduce nodule investment without compromising leaf nitrogen status.

ecology↗

Lianas in tropical dry forests have higher embolism resistance but similar hydraulic efficiency than lianas in rainforests

Lianas are increasing in relative abundance and biomass, mainly in seasonally dry forests, but it is unclear if this is associated with their hydraulic strategy. Here, we ask whether liana of seasonally dry forests are safer and more efficient in water transport than those of rainforest, which could explain liana distribution patterns and their recent increases. We measured hydraulic traits on five pairs of congeneric liana species (tribe Bignonieae) on one seasonal dry Atlantic forest and one Amazon rainforest. The predawn and minimum water potential, and the water potential at which 50% of the maximum gas amount was discharged were, on average, more negative in the liana species of the seasonal forest. However, these patterns were not constant at the genus level. The positive hydraulic safety margins and hydraulic efficiency were similar among species congeners across sites. The Bignonieae lianas studied likely experience equally low levels of embolism during drought, and maintain a high conductive capacity with efficient use of xylem space, which may favor survival and growth across tropical forests. The likely evolutionary convergence of high hydraulic safety associated with the opportunistic strategy of rapid growth, especially in disturbed areas can favor the abundant liana species in seasonal forests. HighlightTropical forest liana species have high hydraulic efficiency and high interspecific variability in hydraulic safety. Despite this variability, some seasonal forest liana species have greater hydraulic safety than rainforest lianas, indicating an evolutionary convergence across lineages.

plant biology↗