{"database":"biostudies-literature","file_versions":[],"scores":null,"additional":{"omics_type":["Unknown"],"volume":["14"],"submitter":["Tiemuerbieke B"],"pubmed_abstract":["Resources in water-limited ecosystems are highly variable and unpredictable, and the maintenance of functional diversity among coexisting species is a crucial ecological strategy through which plants mitigate environmental stress. The comparison of differential eco-physiological responses among co-occurring plants in harsh environments could help provide deep insights into the coexistence mechanisms of competing species. Two coexisting desert shrubs with different photosynthetic pathways (<i>Haloxylon ammodendron</i> and <i>Tamarix ramosissima</i>) were selected in the Gurbantunggut Desert located in northwest China. This study detected variations in the water sources, photosynthetic parameters, stem water status, and non-structural carbohydrates of the two shrubs at three sites with different groundwater table depths during the growing seasons of 2015 and 2016 to identify distinct eco-physiological performances in coexisting plants with different functional types under fluctuating water conditions. The water sources of <i>H. ammodendron</i> shifted from soil water to groundwater, while <i>T. ramosissima</i> extracted water mainly from deep soil layers at both sites. Significant reductions in carbon assimilation and stomatal conductance in <i>H. ammodendron</i> with deeper groundwater table depth were detected during most drought periods, but no significant decreases in transpiration rate were detected with declining groundwater table depth. For <i>T. ramosissima</i>, all of these gas exchange parameters decreased with the progression of summer drought, and their relative reduction rates were larger compared with those of <i>H. ammodendron</i>. The stem water status of <i>H. ammodendron</i> deteriorated, and the relative reduction rates of water potential increased with deeper groundwater, whereas those of <i>T. ramosissima</i> did not differ with greater groundwater depth. These findings indicated that prolonged drought would intensify the impact of declining groundwater depth on the eco-physiology of both shrubs, but the extent to which the shrubs would respond differed. The two shrubs were segregated along the water-carbon balance continuum: the C<sub>3</sub> shrub <i>T. ramosissima</i> maximized its carbon fixation at an enormous cost of water, while greater carbon fixation was achieved with far greater water economy for <i>H. ammodendron</i>. These results demonstrated that the two shrubs prioritized carbon gain and water loss differently when faced with limited water sources. These mechanisms might mitigate competitive stress and enable their coexistence."],"journal":["Frontiers in plant science"],"pagination":["1244555"],"full_dataset_link":["https://www.ebi.ac.uk/biostudies/studies/S-EPMC10835802"],"repository":["biostudies-literature"],"pubmed_title":["Differential eco-physiological performance to declining groundwater depth in Central Asian C<sub>3</sub> and C<sub>4</sub> shrubs in the Gurbantunggut Desert."],"pmcid":["PMC10835802"],"pubmed_authors":["Ma JY","Tiemuerbieke B","Sun W"],"additional_accession":[]},"is_claimable":false,"name":"Differential eco-physiological performance to declining groundwater depth in Central Asian C<sub>3</sub> and C<sub>4</sub> shrubs in the Gurbantunggut Desert.","description":"Resources in water-limited ecosystems are highly variable and unpredictable, and the maintenance of functional diversity among coexisting species is a crucial ecological strategy through which plants mitigate environmental stress. The comparison of differential eco-physiological responses among co-occurring plants in harsh environments could help provide deep insights into the coexistence mechanisms of competing species. Two coexisting desert shrubs with different photosynthetic pathways (<i>Haloxylon ammodendron</i> and <i>Tamarix ramosissima</i>) were selected in the Gurbantunggut Desert located in northwest China. This study detected variations in the water sources, photosynthetic parameters, stem water status, and non-structural carbohydrates of the two shrubs at three sites with different groundwater table depths during the growing seasons of 2015 and 2016 to identify distinct eco-physiological performances in coexisting plants with different functional types under fluctuating water conditions. The water sources of <i>H. ammodendron</i> shifted from soil water to groundwater, while <i>T. ramosissima</i> extracted water mainly from deep soil layers at both sites. Significant reductions in carbon assimilation and stomatal conductance in <i>H. ammodendron</i> with deeper groundwater table depth were detected during most drought periods, but no significant decreases in transpiration rate were detected with declining groundwater table depth. For <i>T. ramosissima</i>, all of these gas exchange parameters decreased with the progression of summer drought, and their relative reduction rates were larger compared with those of <i>H. ammodendron</i>. The stem water status of <i>H. ammodendron</i> deteriorated, and the relative reduction rates of water potential increased with deeper groundwater, whereas those of <i>T. ramosissima</i> did not differ with greater groundwater depth. These findings indicated that prolonged drought would intensify the impact of declining groundwater depth on the eco-physiology of both shrubs, but the extent to which the shrubs would respond differed. The two shrubs were segregated along the water-carbon balance continuum: the C<sub>3</sub> shrub <i>T. ramosissima</i> maximized its carbon fixation at an enormous cost of water, while greater carbon fixation was achieved with far greater water economy for <i>H. ammodendron</i>. These results demonstrated that the two shrubs prioritized carbon gain and water loss differently when faced with limited water sources. These mechanisms might mitigate competitive stress and enable their coexistence.","dates":{"release":"2023-01-01T00:00:00Z","publication":"2023","modification":"2026-07-14T19:00:27.378Z","creation":"2024-11-14T10:23:50.061Z"},"accession":"S-EPMC10835802","cross_references":{"pubmed":["38312360"],"doi":["10.3389/fpls.2023.1244555"]}}