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Petrik, P.

Publications and source records attributed to Petrik, P..

2 recordsLinked to original sources

Comparison of morphological and physiological response to drought stress among temperate forest understory forbs and graminoids

O_LIDrought stress can profoundly affect plant growth and physiological vitality, yet there is a notable scarcity of controlled drought experiments focused on herbaceous species of the forest understory. C_LIO_LIIn this study, we collected seeds from five forb and four graminoid species growing in the temperate forest understory of the Czech Republic. These seeds were germinated under controlled glasshouse conditions and subjected to moderate drought stress for five weeks. We assessed biomass partitioning, stomatal and leaf morphology, leaf gas exchange, minimum leaf conductance (gmin), and chlorophyll fluorescence parameters. C_LIO_LIThe comparison of two ecological guilds revealed that graminoids exhibited a higher root-to-shoot ratio, improved water-use efficiency, greater carboxylation efficiency, and enhanced non-photochemical quenching under drought conditions compared to forbs. In contrast, forbs had significantly lower gmin, along with higher total biomass and total leaf area. Despite these differences in morpho-physiological functional traits, both groups experienced a similar relative reduction in biomass during drought stress. Key predictors of biomass accumulation under drought included photochemical quenching, stomatal traits, total leaf area and gmin. A negative correlation between biomass and gmin suggests that plants with lower residual water losses after stomatal closure can accumulate more biomass under drought stress. Additionally, gmin was positively correlated with guard cell length, suggesting that larger stomata contribute to higher residual water loss. C_LIO_LIGraminoids exhibited morpho-physiological modifications that enhanced drought resistance, indicating a greater emphasis on stress tolerance as a survival strategy. In contrast, forbs maintained higher biomass and total leaf area, reflecting a competitive strategy for maximizing resource acquisition. C_LI

plant biology↗

Linking stomatal size and density to water use efficiency and leaf carbon isotope ratio in juvenile and mature trees

Water-use efficiency (WUE) is affected by multiple leaf traits, including stomatal morphology. However, the impact of stomatal morphology on WUE across different ontogenetic stages of tree species is not well-documented. Here, we investigated the relationship between stomatal morphology intrinsic water-use efficiency (iWUE=A/gs) and leaf carbon isotope ratio ({delta}13C). We sampled 190 individuals including juvenile and mature trees belonging to 18 temperate broadleaved tree species and 9 genera. We measured guard cell length (GCL), stomatal density (SD), specific leaf area (SLA), gas-exchange, iWUE and leaf {delta}13C as a proxy for long-term WUE. Leaf {delta}13C correlated positively with iWUE for both juvenile and mature trees. Across species, GCL showed a negative and SD a positive effect on iWUE and leaf {delta}13C of both juvenile and mature trees. Within species, however, only GCL was significantly associated with iWUE and leaf {delta}13C. Pioneer species (Populus, Prunus, Betula) showed a significantly lower leaf {delta}13C than climax forest species (Fagus, Quercus, Tilia), but the differentiation was not clear for iWUE. We conclude that GCL and SD can be considered as functional morphological traits impacting the iWUE and leaf {delta}13C of trees, highlighting their potential for rapid phenotyping approaches in ecological studies.

plant biology↗