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Alpine wet meadows are known as NO sinks due to nitrogen (N) limitation. However, phosphate addition and N deposition can modulate this limitation, and little is known about their combinative effects on NO emission from the Qinghai-Tibet Plateau in wet meadows. This study used natural wet meadow as the control treatment (CK) and conducted experiments with N (CONH addition, N15), P (NaHPO addition, P15), and their combinations (CONH and NaHPO addition, N15P15) to investigate how N and P supplementation affected soil NO emissions in wet meadow of QTP. Contrary to previous studies on grasslands, the effect of phosphate addition treatment on soil NO flux was not detectable during the growing seasons of 2019 and 2020. Over a span of two years, the N addition treatment significantly increased the NO flux by 3.45 μg⋅m⋅h due to increased soil N availability. Noticeably, phosphate addition intensified the effect of N deposition treatment on soil NO flux with high significance in the early growth season of 2020. This augmentation can be attributed to the alleviation of limiting factors imposed by plants and microorganisms on soil N and P, fostering the mineralization and decomposition of litter and soil nutrients by microorganisms. Consequently, the results showed that total nitrogen and nitrate nitrogen were the main controls on soil NO emission under N and P addition. In addition, redundancy analysis showed that the relative abundance of genes in soil microorganisms (, , , , ) is the main factor affecting NO flux and available nitrogen. We project that if nutrient input continues to increase, the main limiting factor of soil will change from N restriction to P restriction due to the unique microbial nitrogen conversion process in the alpine meadow, significantly increasing NO emissions. Consequently, the heightened contribution of alpine wet meadows to global warming and ozone depletion hinges on the dynamics of nutrient input regimes, spotlighting the urgent need for informed environmental management strategies.
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http://dx.doi.org/10.3389/fmicb.2024.1472792 | DOI Listing |
Am J Orthod Dentofacial Orthop
September 2025
Department of Orthodontics, Faculty of Dentistry, Phenikaa University, Duong Noi, Hanoi, Vietnam.
Introduction: This study investigated the effect of sandblasting time and primer type on the shear bond strength of composite attachments to full-contour zirconia crowns.
Methods: A total of 108 zirconia specimens were fabricated and divided into 9 groups (n = 12) according to sandblasting time (10, 30, and 60 seconds) and primer type (silane, 10-methacryloyloxydecyl dihydrogen phosphate [MDP], universal). After sandblasting with 110-μm alumina particles, specimens were primed, and attachments were bonded using a packable composite.
Small
September 2025
National Laboratory of Solid State Microstructures, Collaborative Innovation Center of Advanced Microstructures, Jiangsu Key Laboratory of Artificial Functional Materials, College of Engineering and Applied Sciences, Nanjing University, Nanjing, 210093, P. R. China.
Artificial porous polymer coatings are promising for alleviating the side reactions and dendrite growth on Zn anodes. Nevertheless, the low ion transport ability constrains their application under harsh conditions such as thin Zn foil, high current density, and high depth of discharge (DOD). Herein, a 2D active filler is introduced to optimize the Zn migration in porous polymer coating.
View Article and Find Full Text PDFOrg Biomol Chem
September 2025
Department of Chemistry, University of Manchester, Oxford Road, Manchester M13 9PL, UK.
Zinc(II) bis(triazolyl)(pyridyl)amine (Zn(BTPA)) complexes on the end of α-amino-iso-butyric acid (Aib) foldamers are able to transfer chirality from bound anions to the helical foldamer body. Zn(BTPA) could be obtained by simple synthetic methodology that allowed a range of functional groups to be installed around the binding site, exemplified with a fluorophore, a macrocyclic bridge and Aib itself. Changing functional group did not prevent chiral ligands from controlling foldamer conformation, although differences in complexation kinetics and equilibria were observed.
View Article and Find Full Text PDFCommun Chem
September 2025
Department of Chemistry-Ångström Laboratory, Uppsala University, Uppsala, Sweden.
Eur J Pharm Biopharm
September 2025
Department of Chemistry, School of Natural Sciences, Faculty of Science and Engineering, The University of Manchester, Manchester M13 9PL, United Kingdom. Electronic address:
To ensure safety, pharmaceuticals are rigorously tested for lipopolysaccharide (LPS) contamination, as this can trigger severe immune reactions in patients. Low Endotoxin Recovery (LER), describing the masking of spiked LPS controls in Limulus Amebocyte Lysate (LAL) assays, has been associated with the presence of chelating agents and surfactants in pharmaceutical formulations. The addition of excipients, such as Mg2, have shown the ability to mitigate the effects of LER, however, inconsistencies in various studies regarding the influence of the excipients on LPS aggregate characteristics and LER occurrence hinder a clear understanding of the mechanisms underlying LER.
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