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Phosphorus (P) and potassium (K) affect seedling growth, root configuration, and nutrient uptake in hydroponic rice, but there are few studies on all growth stages of rice. The purpose of this experiment was to determine the response characteristics of root morphology, plant physiology, and P and K uptake and utilization efficiency to different supplies of P and K. Two local conventional rice varieties (Shennong 265 and Liaojing 294) were used as experimental materials across four treatments, including HPHK (sufficient P and K supply), HPLK (sufficient P supply under low K levels), LPHK (sufficient K supply under low P levels) and LPLK (low P and K levels) in a hydroponic setting. The results showed that HPHK and HPLK significantly decreased the acid phosphatase activity of leaves and roots from full heading to filling stages when compared to LPHK and LPLK. Sufficient supply of P or K significantly increased the accumulation of P and K (aboveground, leaves, stem sheath, and whole plant) and root morphological parameters (root length, root surface area, total root volume, and tips) during major growth stages when compared to LP or LK levels. HPHK was significantly higher than other treatments in terms of dry weight and the root activity at the main growth stage, P and K uptake rates in nutrient solutions at various stages, related P and K efficiency at the maturity stage, yield, effective panicle number, and grain number per panicle. In addition, the effect of HPHK on the above indexes were significantly greater than those of single sufficient supply of P or K. In conclusion, HPHK can improve plant configuration, increase plant P and K absorption and root activity, and increase rice yield and related P and K utilization efficiency.
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http://dx.doi.org/10.1038/s41598-024-72287-1 | DOI Listing |
Reprod Health
September 2025
Department of Sexual and Reproductive Health including UNDP/UNFPA/UNICEF/WHO/World Bank Special Programme of Research, Development and Research Training in Human Reproduction, World Health Organization, Avenue Appia 20, 1211, Geneva, Switzerland.
Background: The COVID-19 pandemic disrupted the provision of sexual and reproductive health services, including contraceptive and family planning (FP) services. The World Health Organization conducted a multi-country study in India, Nigeria and Tanzania to assess the impact of the pandemic on the health system's capacity to provide contraceptive and FP services. In this paper, we share the results of a qualitative study aimed at understanding clients' perspectives at the primary healthcare level on accessing contraceptive services in COVID-19-affected areas in the three aforementioned countries.
View Article and Find Full Text PDFNihon Hoshasen Gijutsu Gakkai Zasshi
September 2025
Division of Neonatology, Maternal and Perinatal Center, Toyama University Hospital.
Purpose: This study aimed to evaluate whether low-dose CT imaging using an Sn filter can provide image quality sufficient for the differential diagnosis of cranial deformities in infants while maintaining an effective dose comparable to that of conventional radiography.
Methods: We calculated the effective dose for both head X-ray imaging and low-dose CT with an Sn filter. Phantom images acquired using a CT scanner equipped with an Sn filter were evaluated for bone suture visibility at various conditions (from 10 mAs to 50 mAs, every 10 mAs) using a 4-point visual grading scale.
AACN Adv Crit Care
September 2025
Nathaniel M. Sims is Research Faculty, Department of Anesthesia, Mass General Brigham (MGB). Associate Professor, Harvard Medical School. Newbower/Eitan MGH Endowed Chair in Biomedical Technology Innovation. Physician Advisor, MGB Biomedical Engineering, Boston, Massachusetts.
Secondary medication delivery using large-volume smart pumps offers important workflow and safety benefits. However, the widely used linear peristaltic large-volume smart pumps rely on sufficient head-height differential for accurate secondary infusion, leading to underdelivery risks. This article outlines common clinician workarounds used to mitigate these risks, including delivering secondary medications via primary mode, programming excess volume to be infused, clamping primary lines, and using short-set primary delivery.
View Article and Find Full Text PDFJ Mol Cell Biol
September 2025
Lingang Laboratory, Shanghai 200031, China.
The activation of hepatic stellate cells (HSCs), characterized by transdifferentiation from a quiescent state to a fibrogenic phenotype, is a core process of liver fibrosis. The metabolic reprogramming of HSCs plays a major role in this process to meet the high energy demands of myofibroblastic HSCs with multiple functions, such as extracellular matrix synthesis, migration, and proliferation. AMP-activated protein kinase (AMPK) is a gatekeeper of intracellular energy homeostasis, but its role in the activation of HSCs and the progression of liver fibrosis remains unclear.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
International Joint Research Center for Photoresponsive Molecules and Materials, School of Chemical and Material Engineering, Jiangnan University, Lihu Street 1800, Wuxi, 214122, P.R. China.
Electrocatalytic coupling of nitrate reduction (NORR) to ammonia with 5-hydroxymethylfurfural (HMF) oxidation to 2,5-furandicarboxylic acid (FDCA) enables simultaneous wastewater remediation and biomass valorization. However, developing efficient bifunctional electrocatalysts for these multiproton-coupled electron transfer reactions remains challenging as conventional single-active-site catalysts inherently suffer from linear scaling relationships between intermediates and adsorption energies, particularly sluggish proton transfer. To address this, we engineered a triphasic N-doped CuO@CoO@Ni(OH) heterostructure with a gradient built-in electric field (BIEF), which synergistically enhances interfacial charge polarization and accelerates proton transport through dynamic coupling effects in both reactions: sufficient *H supply for NORR and fast Ni(OH)/NiOOH redox cycling during HMF oxidation (HMFOR), thus achieving unprecedented bifunctional performance: at - 0.
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