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Increasing cassava production could mitigate one of the global food insecurity challenges by providing a sustainable food source. To improve the yield potential, physiological strategies (i.e., the photosynthetic efficiency, source-to-sink carbon partitioning, and intracellular carbon metabolism) can be applied in breeding to screen for superior genotypes. However, the influences of source-to-sink carbon partitioning and carbon metabolism on the storage root development of cassava are relatively little understood. We hypothesized that carbon partitioning and utilization vary modulating the distinctive storage root yields of high and low-yielding cassava varieties, represented in this study by varieties Kasetsart 50 (KU50) and Hanatee (HN), respectively. Plant growth, photosynthesis measurements, soluble sugars, and starch contents of individual tissues were analyzed at different developmental stages. Also, the diurnal patterns of starch accumulation and degradation in leaves were investigated through iodine staining. Despite a comparable photosynthetic rate, KU50 grew better and yielded greater storage roots than HN. Interestingly, both varieties differed in their carbon partitioning strategies. KU50 had a high photosynthetic capacity and was better efficient in converting photoassimilates to carbon substrates and allocating them to sink organs for their growth. In contrast, HN utilized the photoassimilates at a high metabolic cost, in terms of respiration, and inefficiently allocated carbon to stems rather than storage roots. These results highlighted that carbon assimilation and allocation are genetic potential characteristics of individual varieties, which in effect determine plant growth and storage root yield of cassava. The knowledge gained from this study sheds light on potential strategies for developing new high-yielding genotypes in cassava breeding programs.
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http://dx.doi.org/10.3389/fpls.2022.832304 | DOI Listing |
Glob Chang Biol
September 2025
State Key Laboratory of Vegetation Structure, Function and Construction (VegLab), Ministry of Education Key Laboratory of Earth Surface Processes, and College of Urban and Environmental Sciences, Peking University, Beijing, China.
Microbial nitrogen use efficiency (NUE) describes the partitioning of organic N between microbial growth and N mineralization, which is crucial for assessing soil N retention. However, how warming affects NUE along soil depth remains unclear. Based on a whole-soil-profile warming experiment (0 to 100 cm, +4°C) on the Qinghai-Tibetan Plateau, combined with O and N isotope labeling techniques, we determined soil carbon (C) composition, edaphic properties, and microbial parameters.
View Article and Find Full Text PDFMar Life Sci Technol
August 2025
State Key Laboratory of Marine Environmental Science, Fujian Key Laboratory of Marine Carbon Sequestration, College of Ocean and Earth Sciences, Xiamen University, Xiamen, 361005 China.
Unlabelled: Marine heterotrophic prokaryotes initially release extracellular enzymes to cleave large organic molecules and then take up ambient substrates via transporters. Given the direct influence of extracellular enzymes on nutrient availability, understanding their diversity and dynamics is crucial in comprehending microbial interactions and organic matter cycling in aquatic ecosystems. In this study, metagenomics was employed to investigate the functional diversity and dynamics of extracellular enzymes and transporters in coastal waters over a 22-day period.
View Article and Find Full Text PDFPlant Physiol Biochem
September 2025
Institute of Crop Science, Zhejiang Key Laboratory of Crop Germplasm, Zhejiang University, Hangzhou, 310058, China. Electronic address:
Magnesium (Mg) is an essential macronutrient in plants, vital for photosynthesis, enzyme activation, protein synthesis, and carbon metabolism. This study evaluated the effects of magnesium oxide nanoparticles (MgO NPs) on growth, physiological performance, and rhizosphere microbial composition in soybean (Glycine max L.).
View Article and Find Full Text PDFNew Phytol
September 2025
Swiss Federal Research Institute WSL, Zürcherstrasse 111, 8903, Birmensdorf, Switzerland.
The relationship between tree carbon (C) assimilation and growth is central to understanding tree functioning and forecasting forest C sequestration, yet remains unresolved. The long-standing debate over C source vs sink limits to growth has yielded invaluable insight, but rests on a false dichotomy. Reframing this issue in terms of distal-to-proximal processes driving sink activity and placing it within a broader understanding of C partitioning offers new insights.
View Article and Find Full Text PDFEnviron Manage
September 2025
Public Works Engineering Department, Faculty of Engineering, Mansoura University, Mansoura, Egypt.
Forest landscapes play a significant role in both global and local carbon cycles, mitigating climate change by sequestering atmospheric carbon. To maintain carbon stock and enhance sequestration from the atmosphere, it is important to quantify the effects of driving factors on carbon stock. Therefore, this study was designed to evaluate the effects of storing factors, maintaining factors, and disturbing factors on carbon stock, and to analyze the individual and combined effects of multiple factors.
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