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36 pages, 1302 KB  
Review
Solvent Interaction Analysis: A New Lens for Protein Structure and Diagnostics
by Boris Y. Zaslavsky, Mark Stovsky and Vladimir N. Uversky
Int. J. Mol. Sci. 2026, 27(15), 6645; https://doi.org/10.3390/ijms27156645 (registering DOI) - 25 Jul 2026
Abstract
Aqueous two-phase systems (ATPSs) provide a versatile, fully aqueous platform for probing solute–water interactions and protein structure. This review first surveys the diversity and phase behavior of biphasic aqueous systems formed by polymers and salts. We describe how phase diagrams characterize ATPS formation [...] Read more.
Aqueous two-phase systems (ATPSs) provide a versatile, fully aqueous platform for probing solute–water interactions and protein structure. This review first surveys the diversity and phase behavior of biphasic aqueous systems formed by polymers and salts. We describe how phase diagrams characterize ATPS formation and composition and how both polymer chemistry and salt identity, rather than molecular size alone, govern phase separation by modulating the solvent properties of water. Building on a modified binodal model, we show that phase separation and solute partitioning can be understood in terms of changes in aqueous solvent dipolarity/polarizability, hydrogen-bond donor/acceptor properties, hydrophobicity, and electrostatics, quantified via solvatochromic probes and homologous solute series. These measurements underpin solvent interaction analysis (SIA), in which the partition coefficients of small molecules and proteins across panels of ATPSs are used to generate “structural signatures” that sensitively report on amino acid substitutions, conformational changes, aggregation, ligand binding, osmolyte effects, and post-translational modifications, independent of protein size. We discuss how SIA can be implemented in vial-, plate-, and microfluidic formats and combined with diverse analytical readouts (HPLC, MS, colorimetric assays, and immunoassays), and we contrast this structure-focused approach with conventional concentration-only proteomic and biomarker strategies. Particular emphasis is placed on structure-based biomarker discovery, where disease-relevant shifts in proteoform distributions—especially glycosylation changes—are often more informative than bulk protein levels and where SIA can complement or simplify complex glycomics and top-down proteomics workflows. As a case study, we describe the recently FDA-approved IsoPSA assay, which applies SIA principles to prostate-specific antigen by measuring cancer-associated structural alterations in circulating PSA via its partition behavior in a proprietary ATPS. IsoPSA generates a single index that discriminates between high-grade prostate cancer and benign and low-grade conditions. Prospective, longitudinal, and MRI-integrated clinical studies demonstrate that IsoPSA improves pre-biopsy risk stratification, reduces unnecessary biopsies, and provides robust negative and positive predictive values within the PSA “gray zone.” Collectively, the data support aqueous solvent interaction analysis as a broadly applicable, mechanistically grounded technology for protein characterization, drug–protein interaction studies, and structure-centric biomarker development, exemplified by the clinical translation of IsoPSA. Full article
28 pages, 10784 KB  
Article
Major-Ion Hydrochemistry and Controlling Factors of Surface Waters in the Cele River Basin, Southern Tarim Basin, China: Implications for Sustainable Water–Salt Management
by Xiaolong Zhang, Donglei Mao, Mao Ye and Lina Cai
Sustainability 2026, 18(15), 7543; https://doi.org/10.3390/su18157543 - 24 Jul 2026
Abstract
Runoff recharge increases during the wet season in arid inland river basins; however, solute inputs along river courses, evaporite salt dissolution, and leaching from saline sediments may still substantially modify the chemical composition of surface waters. To identify the sources of major ions, [...] Read more.
Runoff recharge increases during the wet season in arid inland river basins; however, solute inputs along river courses, evaporite salt dissolution, and leaching from saline sediments may still substantially modify the chemical composition of surface waters. To identify the sources of major ions, hydrochemical controlling processes, and salt-enriched river reaches during the wet season in the Cele River Basin, 107 surface water samples were collected from the mainstream of the Cele River and five major tributaries in August 2025. Field and laboratory analyses were conducted for pH, total dissolved solids (TDS), electrical conductivity (EC), dissolved oxygen (DO), and major ions, including Na+, K+, Ca2+, Mg2+, Cl, SO42−, and HCO3. Piper diagrams, Gibbs diagrams, ionic ratios, Spearman correlation analysis, and principal component analysis (PCA) were used to characterize the major-ion composition, hydrochemical facies, and controlling factors. The results show that the surface waters were generally weakly alkaline, with pH values ranging from 7.42 to 8.46. TDS and EC exhibited pronounced spatial heterogeneity, with higher salinity levels in the Buzang River, the Cele River mainstream, and the Uluk Say River, and relatively lower mineralization in the Bostan River and Nur River. SO42− and Cl dominated the anionic composition, together accounting for 80.3% of total anions, whereas Ca2+ + Mg2+ and Na+ + K+ jointly controlled the cationic composition, accounting for 57.3% and 42.7% of total cations, respectively. The Piper diagram indicated that the Cl·SO4–Na·Ca type was the dominant hydrochemical facies, accounting for 67.3%, suggesting a pronounced sulfate–chloride salt-enrichment signature during the wet season. Evidence from Gibbs diagrams, ionic end-member ratios, and PCA further indicates that the hydrochemical composition is primarily constrained by rock weathering and jointly influenced by sulfate and chloride salt dissolution, evaporation–concentration processes, and leaching from saline sediments. These processes reflect the coexistence of runoff dilution and salt reloading during the wet season. The Buzang River, Cele River mainstream, and Uluk Say River should be prioritized for continuous water-quality monitoring and salinity-risk early warning, while TDS, EC, Na+, Cl, and SO42− can serve as core indicators for diagnosing wet-season water–salt processes and tracking water-quality baselines. This study identifies the key salt-enriched reaches, major ion sources, and hydrochemical control mechanisms of surface waters in the Cele River Basin during the wet season, providing a scientific basis for water-quality protection, oasis agricultural water regulation, and sustainable water–salt management in arid inland river basins. Full article
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21 pages, 14086 KB  
Article
Cytological and Gene Expression Analysis Reveal Salt Resistance in Common Wild Rice (Oryza rufipogon Griff.): A Case for Root Tissue Resistance
by Yutong Zheng, Wenjia Huang, Xinghui Xie, Shihui Chen, Zhiyan Liu, Zhongxi Wu, Xinyi Zeng, Xiangdong Liu and Jinwen Wu
Plants 2026, 15(15), 2247; https://doi.org/10.3390/plants15152247 - 23 Jul 2026
Viewed by 157
Abstract
Common wild rice (Oryza rufipogon Griff.) is an important germplasm resource harboring valuable genes. Our previous analysis identified a core collection of wild rice primarily originating from the common wild rice of Guangdong Province. However, there was no information on its salt-stress [...] Read more.
Common wild rice (Oryza rufipogon Griff.) is an important germplasm resource harboring valuable genes. Our previous analysis identified a core collection of wild rice primarily originating from the common wild rice of Guangdong Province. However, there was no information on its salt-stress tolerance. In this study, we assessed 13 accessions of common wild rice collected in Gaozhou, Guangdong, China. Salt-stress treatments applied at the tillering and seedling stages revealed that CRW3 exhibited stronger salt tolerance than CRW13 under NaCl treatment. Cytological observations indicated that root tip elongation in CRW3 was less inhibited by NaCl treatment, accompanied by a lower percentage of abnormalities in cortical cells and layers, as well as reduced shrinkage of epidermal cells. Resequencing analysis identified 2390 genes with genetic variations between CRW3 and CRW13. Furthermore, RT-qPCR was conducted to examine the expression levels of salt-stress-related genes in these two accessions. Overall, our study demonstrates the strong salt tolerance of CRW3, providing a theoretical foundation for the selection of salt-tolerant germplasm in rice. Full article
(This article belongs to the Special Issue Abiotic Stress Responses in Plants—Second Edition)
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17 pages, 6834 KB  
Article
Anti-Freezing Eutectogel-Based TENG for Ocean Wave Sensing at Low Temperature
by Siyao Luan, Guoqing Ren, Jinghao Liu, Jiru Xian, Xin Ma and Xiaoyi Li
Micromachines 2026, 17(7), 873; https://doi.org/10.3390/mi17070873 - 22 Jul 2026
Viewed by 154
Abstract
Accurate ocean wave sensing in polar and other low-temperature marine environments is of great significance for marine environmental observation, climate research, and navigation safety. However, conventional wave sensors rely on external power supplies and suffer from poor stability under low-temperature and high-salinity conditions, [...] Read more.
Accurate ocean wave sensing in polar and other low-temperature marine environments is of great significance for marine environmental observation, climate research, and navigation safety. However, conventional wave sensors rely on external power supplies and suffer from poor stability under low-temperature and high-salinity conditions, making long-term self-powered waves sensing a significant challenge. Herein, a highly stable composite eutectogel electrode is developed by integrating sodium lignosulfonate, Fe3+ crosslinking, Zn2+-carboxylate coordination interactions, and a choline chloride/urea deep eutectic solvent (DES). The DES effectively suppresses solvent crystallization and endows the gel with excellent low-temperature tolerance, while the synergistic effect of metal coordination and multiple non-covalent interactions constructs a robust ion-conducting network with enhanced structural stability. Furthermore, eutectogel-based composite electrode architecture is designed to improve electrical conductivity and charge collection efficiency, thereby enabling stable electrical output under harsh marine conditions. Based on the as-prepared eutectogel electrode, a self-powered solid–liquid triboelectric nanogenerator is fabricated for ocean wave-motion sensing. The device can detect the wave amplitude, with an accuracy of 0.2 cm, and sense the frequency of waves ranging from 0.2 Hz to 1.6 Hz. More importantly, the SL-TENG exhibits excellent environmental adaptability, operating reliably in 3.5 wt% simulated seawater and at 0 °C. The current retention ratio reaches approximately 91% at 0 °C, which is significantly higher than that of the hydrogel-based device (≈6%). The remarkably low-temperature and salt-tolerant performance originates from the stable ion-transport network and anti-freezing characteristics of the eutectogel electrode. This work provides an effective strategy for constructing environmentally resilient eutectogel-based triboelectric devices and offers a promising route toward self-powered wave sensing systems for long-term deployment in harsh marine environments. Full article
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28 pages, 12735 KB  
Article
Transcriptomic and Physiological Profiling Elucidates Differential Salt Stress Responses in Tolerant ‘SO4’ and Sensitive ‘Beida’ Grapevine Rootstocks
by Abdul Hakeem, Essam Elatafi, Wen Liu, Basma Elhendawy, Abdullah Alebidi, Rashid S. Al-Obeed, Mostafa Saeed, Jinggui Fang and Mahmoud Abdel-Sattar
Int. J. Mol. Sci. 2026, 27(14), 6479; https://doi.org/10.3390/ijms27146479 - 21 Jul 2026
Viewed by 249
Abstract
Soil salinity severely limits grapevine (Vitis spp.) growth and productivity, yet the mechanisms distinguishing tolerant and sensitive rootstocks remain incompletely understood. We compared the salt-tolerant rootstock ‘SO4’ with the salt-sensitive ‘Beida’ under 100 mmol L−1 NaCl for 0, 6, and 12 [...] Read more.
Soil salinity severely limits grapevine (Vitis spp.) growth and productivity, yet the mechanisms distinguishing tolerant and sensitive rootstocks remain incompletely understood. We compared the salt-tolerant rootstock ‘SO4’ with the salt-sensitive ‘Beida’ under 100 mmol L−1 NaCl for 0, 6, and 12 days. Salinity progressively reduced photosynthetic pigments in both genotypes, although ‘SO4’ retained higher levels. Salt treatment also increased hydrogen peroxide, malondialdehyde, soluble sugars, soluble proteins, proline, and antioxidant enzyme activities. Compared with ‘Beida’, ‘SO4’ showed stronger osmotic adjustment and greater activation of superoxide dismutase, peroxidase, catalase, and ascorbate peroxidase. RNA-seq analysis revealed extensive genotype- and time-dependent transcriptional reprogramming, with differentially expressed genes mainly associated with hormone signalling, secondary metabolism, carbon fixation, protein processing, and lipid metabolism. Weighted gene co-expression network analysis identified the MEblack module as positively associated with salt tolerance in ‘SO4’ but negatively associated with ‘Beida’. Within this module, Vitvi01g00735/VvBCA2 and Vitvi07g02043/VvLCB1 were prioritized as candidate hubs based on high module membership, gene significance, and intramodular connectivity. Hub-centred networks linked VvBCA2 to redox regulation, protein homeostasis, defense, and osmotic signalling, whereas VvLCB1 was associated with cell-wall remodelling, methyl metabolism, membrane signalling, and lipid turnover. Transcription-factor families, including MYB, WRKY, AP2/ERF, bHLH, and HSF, were more strongly represented in ‘SO4’. Collectively, these findings identify coordinated physiological and transcriptional mechanisms underlying salt tolerance and provide candidate genes for grapevine improvement. Full article
(This article belongs to the Special Issue Advance in Plant Abiotic Stress: 4th Edition)
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20 pages, 33978 KB  
Article
Germination Differences Between Clodinafop-Propargyl-Resistant and -Susceptible Alopecurus japonicus Steud. Populations Under Multiple Abiotic Stresses
by Rui Cheng, Xiaoshen Song, Lilei Zhang, Weitang Liu, Zhiwen Wu and Yaling Bi
Agronomy 2026, 16(14), 1381; https://doi.org/10.3390/agronomy16141381 - 21 Jul 2026
Viewed by 291
Abstract
Clodinafop-propargyl-resistant Alopecurus japonicus Steud. has severely threatened wheat production, while its fitness and stress adaptability have not been systematically clarified. This study compared seed germination and seedling emergence of resistant AHHN-6 and susceptible HNLH-1 under multiple abiotic stress treatments including temperature, pH, water [...] Read more.
Clodinafop-propargyl-resistant Alopecurus japonicus Steud. has severely threatened wheat production, while its fitness and stress adaptability have not been systematically clarified. This study compared seed germination and seedling emergence of resistant AHHN-6 and susceptible HNLH-1 under multiple abiotic stress treatments including temperature, pH, water potential, soil moisture, salt and burial depth. Both biotypes exhibited >95% germination under optimal temperature and moisture conditions, indicating the highly resistant biotype AHHN-6 bears no germination-related fitness cost; however, fitness costs were detected in several other resistant populations across the sampling regions. The resistant population displayed markedly higher tolerance to adverse conditions: its 50% inhibitory water potential and salt concentration were −0.43 MPa and 124.22 mmol·L−1 versus −0.35 MPa and 56.25 mmol·L−1 for the susceptible population, and it could emerge normally from deeper soil layers. Collectively, resistance to clodinafop-propargyl does not reduce performance under benign environments but confers enhanced abiotic stress resistance, promoting the long-term survival and spread of resistant A. japonicus in farmlands. Full article
(This article belongs to the Section Weed Science and Weed Management)
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19 pages, 313 KB  
Article
Determinants of High Salt Intake in Croatian Adults: Evidence from 24-Hour Urinary Sodium Excretion in the EH-UH 2 Study
by Bojan Jelaković, Mihaela Marinović Glavić, Ana Stupin, Marija Domislović, Ana Jelaković, Lovorka Bilajac, Andrej Belančić, Matea Bilobrk, Marta Bolješić Dumančić, Mirjana Fuček, Lana Gellineo, Andrea Gross Bošković, Josipa Josipović, Verica Kralj, Sanja Kolarić Kravar, Ivan Pećin, Vladimir Prelević, Danilo Radunović, Petar Šušnjara, Vanja Vasiljev, Marijana Živko, Donatella Verbanac and Željko Reineradd Show full author list remove Hide full author list
Life 2026, 16(7), 1201; https://doi.org/10.3390/life16071201 - 20 Jul 2026
Viewed by 206
Abstract
Although significant progress has been made in reducing salt consumption over the past decade, most Croatian adults still exceed the recommended intake. This study aimed to identify demographic, socioeconomic, lifestyle, and clinical factors associated with high salt intake in the general adult population [...] Read more.
Although significant progress has been made in reducing salt consumption over the past decade, most Croatian adults still exceed the recommended intake. This study aimed to identify demographic, socioeconomic, lifestyle, and clinical factors associated with high salt intake in the general adult population of Croatia. We included a random sample of 1067 adults with reliable 24-h urine samples. A structured questionnaire was used to collect sociodemographic, lifestyle, and clinical data. Anthropometric and blood pressure (BP) measurements were performed. Laboratory analyses included the measurement of sodium, potassium, and creatinine in adequate 24-h urine samples, as well as relevant cardiometabolic and kidney-related biomarkers. Participants consuming > 10 g/day of salt were older and had higher systolic blood pressure, fasting glucose, serum uric acid, and triglyceride levels, lower HDL cholesterol levels, and greater BMI. High salt intake was more common among men, ex-smokers, participants with diabetes, and those with lower socioeconomic status (SES). In multinomial logistic regression analysis, male sex, diabetes, higher systolic BP, more frequent processed meat consumption, lower fish consumption, residence outside the Adriatic region, and higher ePWV were associated with high salt intake. High salt intake was associated with lower socioeconomic status, residence in rural and continental areas, obesity, former smoking, and less favorable dietary patterns. Conversely, lower salt intake was associated with residence in the Adriatic region and dietary patterns characterized by more frequent consumption of fish and olive oil. Full article
(This article belongs to the Section Epidemiology)
15 pages, 3409 KB  
Article
Salt–Alkali Gradient Correlates with Distinct Bacterial Communities of Salicornia europaea L. Across Soil–Root–Leaf Compartments in Guhya Salt Lake
by Chaobing Luo, Xiu Zhang, Chenbo Tan, Yueting Lang, Hongyan Ma and Zhaojun Liu
Microorganisms 2026, 14(7), 1577; https://doi.org/10.3390/microorganisms14071577 - 20 Jul 2026
Viewed by 278
Abstract
Bacteria play a vital role in enhancing host resistance to salt–alkali stress. However, the composition and structure of bacterial communities associated with halophytes under natural high salt–alkali conditions remain poorly understood. Here, a transect comprising six sampling points (0, 9, 18, 27, 36, [...] Read more.
Bacteria play a vital role in enhancing host resistance to salt–alkali stress. However, the composition and structure of bacterial communities associated with halophytes under natural high salt–alkali conditions remain poorly understood. Here, a transect comprising six sampling points (0, 9, 18, 27, 36, and 45 m) was established across a natural population of Salicornia europaea L. in Guhya Salt Lake salt–alkali soils. At each sampling site, bulk soil, rhizosphere soil, root, and leaf samples were collected for 16S rRNA gene amplicon sequencing. The pH and soil electrical conductivity (EC) significantly increased along the sampling sites establishing a distinct salt–alkali gradient. This gradient provides an ideal model for studying the ecological adaptation mechanisms of halophytes and their related microorganisms. The results showed that alpha diversity (Shannon index) of bacterial communities significantly decreased across sampling sites in bulk soil, rhizosphere soil and root, but not in leaf. Beta diversity varied significantly across sampling points in all sample types examined. Linear Discriminant Analysis Effect Size (LEfSe) identified specific microbial biomarkers (such as Halomonas spp.) for each sampling point and sample type, many of which are known salt–alkali-tolerant lineages. Random forest and correlation analysis indicated that soil chemical properties had a clear impact on these identified biomarkers. Overall, salt–alkali gradient was associated with habitat-specific microbial communities across plant compartments and certain bacterial taxa were found to be enriched in specific niches. These taxa include known salt–alkali-tolerant lineages, and may putatively contribute to host adaptation to extreme environments, which provides deeper insights into plant–microbe interactions in natural ecosystems and offers potential microbial resources for improving crop salt–alkali tolerance. Full article
(This article belongs to the Section Microbiomes)
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13 pages, 664 KB  
Article
Predicting Freezing Point of Ice Cream Mix with Infrared Spectroscopy and Chemometrics
by Duy Thinh Trinh, David Mcintosh, Elizabeth Eckelkamp, Jiajia Chen, Alejandro Molina-Moctezuma and Tong Wang
Foods 2026, 15(14), 2549; https://doi.org/10.3390/foods15142549 - 19 Jul 2026
Viewed by 258
Abstract
Fourier transform infrared spectroscopy (FTIR) has become an increasingly valuable analytical tool in the dairy industry due to its rapid, non-destructive nature and ability to capture complex chemical information. This study evaluated the feasibility of using FTIR in combination with chemometric modeling to [...] Read more.
Fourier transform infrared spectroscopy (FTIR) has become an increasingly valuable analytical tool in the dairy industry due to its rapid, non-destructive nature and ability to capture complex chemical information. This study evaluated the feasibility of using FTIR in combination with chemometric modeling to predict the freezing point (FP) of ice cream mix (ICM), an important quality attribute that influences product texture, freezing behavior, and manufacturing efficiency. Traditional methods for FP determination are often labor-intensive and can present challenges when analyzing high-solids dairy systems. In this study, FP values were obtained through a cryoscopic method. FTIR spectra were collected for all samples, and partial least squares (PLS) regression models were developed to relate spectral information to FP values. Model performance metrics indicated that FTIR spectra contained information associated with FP variation; however, overall predictive performance was limited. The relatively weak model accuracy was attributed to the complex nature of FP as a colligative property influenced by multiple compositional factors, including sugars, salts, proteins, and stabilizers, as well as the narrow compositional range and limited sample size of the dataset. Despite these limitations, the results demonstrated the potential of FTIR as a rapid screening tool for FP estimation and provided a foundation for future model development using larger and more compositionally diverse datasets and improved reference methodologies. Full article
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21 pages, 5301 KB  
Article
The Co-Expression of GmCML27 and GmU2AFb Enhances Tolerance to Alkaline Stress in Lupinus angustifolius
by Mengyu Zhou, Yijia Ruan, Hongli Wang, Xiaoyu Wang, Yujing Liu, Xinlei Du, Yishan Fu, Teng Zhang, Jintong Wang, Jie Zhang, Junfeng Zhang and Lei Cao
Plants 2026, 15(14), 2196; https://doi.org/10.3390/plants15142196 - 17 Jul 2026
Viewed by 155
Abstract
Soil salinization severely constrains plant growth and agricultural productivity. Identifying key genes conferring alkali tolerance and elucidating their regulatory mechanisms is of great significance for breeding salt–alkali-tolerant leguminous crops. In this study, we investigated the soybean genes GmCML27 and its potential interacting partner [...] Read more.
Soil salinization severely constrains plant growth and agricultural productivity. Identifying key genes conferring alkali tolerance and elucidating their regulatory mechanisms is of great significance for breeding salt–alkali-tolerant leguminous crops. In this study, we investigated the soybean genes GmCML27 and its potential interacting partner GmU2AFb, and explored their functions in response to alkali stress in narrow-leaf lupine (Lupinus angustifolius) through bioinformatics analyses. Protein interaction prediction and experimental validation further supported a potential association between GmCML27 and GmU2AFb. Using an Agrobacterium rhizogenes (A. rhizogenes)-mediated hairy root transformation system, composite plants carrying empty vector (CK), GmCML27-overexpression construct (GC), GmU2AFb-overexpression construct (GU), or both GmCML27 and GmU2AFb overexpression constructs (GCU) were generated and evaluated under NaHCO3-induced alkali stress. The results showed that all transformed composite plants exhibited enhanced alkali tolerance, with the GCU plants displaying the strongest phenotype. Compared with CK plants, transformed composite plants maintained higher catalase (CAT) activity, proline (Pro) content, and root vitality, while accumulating lower levels of reactive oxygen species (ROS) and malondialdehyde (MDA), and retaining more intact root architecture. Furthermore, the expression levels of alkali tolerance-related genes, including LaMYB39, LaSOS1, LaNHX6, LaKIN, LaDnaJ1, and LaP5CS, were significantly upregulated in transgenic lines. Collectively, our findings demonstrate that both GmCML27 and GmU2AFb positively regulate alkali tolerance in lupine, and their co-expression confers enhanced alkali tolerance compared with single-gene overexpression. These two genes may jointly contribute to alkali stress adaptation through regulation of antioxidant capacity and stress-responsive pathways. This study highlights the potential roles of GmCML27 and GmU2AFb in lupine responses to alkali stress and provides candidate gene resources for future improvement of lupine alkali tolerance. Full article
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18 pages, 1190 KB  
Article
Sodium Content of Street and Restaurant Foods in Nigeria: A Multilevel Analysis of Food System Determinants
by Adedayo E. Ojo, Katrina R. Kissock, Gabriel L. Shedul, Ikechukwu A. Orji, Guhan Iyer, Vanessa O. Alfa, Valerie M. Graham, Clementina E. Okoro, Mercy Ikechukwu-Orji, Henry U. EkeChi, Chisom Obiezu-Umeh, Erica L. Jamro, Sanne A. E. Peters, Diederick E. Grobbee, Kylie Howes, Alexandra Jones, Fraser Taylor, Linda Van Horn, Lisa R. Hirschhorn, Bruce Neal, Dike B. Ojji and Mark D. Huffmanadd Show full author list remove Hide full author list
Nutrients 2026, 18(14), 2348; https://doi.org/10.3390/nu18142348 - 17 Jul 2026
Viewed by 244
Abstract
Background/Objectives: Street and restaurant foods constitute a major component of daily diets in low-resource settings due to their affordability, accessibility, and convenience. However, they are frequently characterised by high sodium content, posing significant public health risks, particularly for hypertension and cardiovascular diseases. [...] Read more.
Background/Objectives: Street and restaurant foods constitute a major component of daily diets in low-resource settings due to their affordability, accessibility, and convenience. However, they are frequently characterised by high sodium content, posing significant public health risks, particularly for hypertension and cardiovascular diseases. Empirical data on sodium levels in Nigerian street and restaurant foods remain limited. This study assessed the sodium content of commonly consumed street and restaurant foods in Kano and Ogun States and the Federal Capital Territory in Nigeria using a multilevel analytical framework. Methods: A total of 2583 food samples were collected from street vendors and three categories of restaurants (self-service, quick-service, and hotel restaurants) between August and October 2024. Sodium concentration was measured using a validated digital salt meter. In all three states, rice-based dishes were the most commonly available street and restaurant foods. Results: More than half (55.4%) were classified as high-sodium (>600 mg/100 g), while only 4.1% were classified as low-sodium (<120 mg/100 g). Median sodium content was highest in the FCT (720 mg/100 g), followed by Kano (650 mg/100 g) and Ogun (600 mg/100 g). Soups and stews had the highest median sodium levels (1360 mg/100 g), with several traditional dishes exceeding 1000 mg/100 g. Multilevel mixed-effects modelling demonstrated that sodium exposure was driven primarily by food type (p < 0.001) and vendor environment (p = 0.009), rather than geographic location (state effect: p = 0.217), indicating structurally embedded issues with sodium content throughout the Nigerian food system. Conclusions: These findings support multilevel sodium reduction interventions targeting high-sodium food categories, vendor preparation practices, and strengthened surveillance to monitor progress toward World Health Organization population sodium reduction targets. Full article
(This article belongs to the Special Issue The Impact of the Food Environment on Diet and Health)
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18 pages, 10776 KB  
Article
Genome-Wide DNA Methylation and Transcriptomic Analysis Under Salt Stress in ‘Shine Muscat’ Grapevine
by Ao Li, Ke Li, Fengxia Wang, Qian Mu, Qingtian Zhang, Pengfei Wang and Huiping Liu
Agronomy 2026, 16(14), 1355; https://doi.org/10.3390/agronomy16141355 - 16 Jul 2026
Viewed by 285
Abstract
Soil salinity severely restricts grapevine growth and development. Here, we integrated whole-genome bisulfite sequencing (WGBS) and RNA sequencing (RNA-seq) to investigate DNA methylation changes and their relationship with gene expression under salt stress in Vitis vinifera L. ‘Shine Muscat’ grapevine. Salt stress altered [...] Read more.
Soil salinity severely restricts grapevine growth and development. Here, we integrated whole-genome bisulfite sequencing (WGBS) and RNA sequencing (RNA-seq) to investigate DNA methylation changes and their relationship with gene expression under salt stress in Vitis vinifera L. ‘Shine Muscat’ grapevine. Salt stress altered genome-wide DNA methylation patterns, reducing methylation levels in CG, CHG, and CHH contexts following NaCl treatment. We identified 8606 differentially methylated regions (DMRs) and 3106 DMR-associated genes (DMGs) under salt stress. RNA-seq analysis revealed 2691 differentially expressed genes (DEGs), including multiple stress-related transcription factors (e.g., MYB, NAC, WRKY) and hormone-related genes strongly induced by salinity. Integrative analysis identified 171 genes that were both differentially methylated and differentially expressed, primarily enriched in metabolic pathways, fructose and mannose metabolism, and fatty acid biosynthesis. Notably, several key stress-responsive genes (e.g., VvNAC72, VvBAK1, VvMYBS3) showed coordinated changes between methylation status and transcript abundance. Collectively, this study provides a comprehensive integrative analysis of DNA methylation and transcriptome reprogramming in ‘Shine Muscat’ grapevine under salt stress, revealing potential epigenetic mechanisms involved in transcriptional regulation and salt adaptation. The identified candidate genes provide valuable targets for further functional validation and genetic improvement of grapevine salt tolerance. Full article
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6 pages, 185 KB  
Editorial
Membrane Distillation: Module Design and Application Performance
by Lebea N. Nthunya and Bhekie B. Mamba
Membranes 2026, 16(7), 240; https://doi.org/10.3390/membranes16070240 - 16 Jul 2026
Viewed by 264
Abstract
Membrane distillation (MD) has emerged as a thermal process used in desalination, wastewater treatment, and resource recovery. It has demonstrated high salt rejection, but process scale-up is affected by unstable process performance caused by membrane fouling and scaling, limitations of heat and mass [...] Read more.
Membrane distillation (MD) has emerged as a thermal process used in desalination, wastewater treatment, and resource recovery. It has demonstrated high salt rejection, but process scale-up is affected by unstable process performance caused by membrane fouling and scaling, limitations of heat and mass transfer, and module design challenges. The research outputs presented here assess membrane module design and configurations, hydrodynamic optimization, understanding of membrane fouling, and its control in long-term and intermittent process operation. Furthermore, the integration of crystallization, resource recovery from wastewater, and techno-economic feasibility are also elucidated. The collective findings showed that optimization of the modules, process operating conditions, and the integration of crystallization could improve MD performance stability and resource recovery. Beyond crystallization, MD has demonstrated the ability to recover nutrients from anaerobic digestate, suggesting process expansion directions. These findings provide insights into the key requirements for MD implementation at an industrial scale. Full article
(This article belongs to the Special Issue Membrane Distillation: Module Design and Application Performance)
15 pages, 633 KB  
Article
Effectiveness of an mHealth-Based School Sodium Reduction Scaling-Up Program in Three Chinese Cities: A Real-World Pre–Post Study Among Adults and Children
by Yang Zhang, Yan Liu, Yinghua Li, Yuan Li, Li Li, Kaige Sun, Tao Mao, Naibo Wang, Gaoqiang Xie, Liuruyu Yu, Feng J. He and Puhong Zhang
Nutrients 2026, 18(14), 2314; https://doi.org/10.3390/nu18142314 - 15 Jul 2026
Viewed by 319
Abstract
Objective: To systematically evaluate the impact of a school-based sodium reduction education program using mobile health (mHealth), known as EduSaltS, on salt-related knowledge, attitudes, practices (KAP) and sodium intake among adults and children during its real-world scaling-up and to examine geographic and population [...] Read more.
Objective: To systematically evaluate the impact of a school-based sodium reduction education program using mobile health (mHealth), known as EduSaltS, on salt-related knowledge, attitudes, practices (KAP) and sodium intake among adults and children during its real-world scaling-up and to examine geographic and population heterogeneity in its effects. Methods: A multi-center pragmatic pre–post study design was used. The EduSaltS program was implemented in three cities (Ganzhou in southern China, Zhenjiang in eastern China, and Qinhuangdao in northern China) between April 2022 and July 2024. Ten primary schools were selected from each city. Baseline and follow-up surveys were conducted approximately 12 months apart, aligned with the school calendar. Electronic questionnaires were used to collect baseline and post-intervention data on the primary outcome—salt-related KAP—from adults and children. In Ganzhou and Zhenjiang, 24 h urine collections were conducted to measure urinary sodium excretion. Results: A total of 721 adults and 770 children were included in the final analysis. After the intervention, the total KAP scores significantly increased in both adults and children across the three sites: by 8.7–10.0 points in adults and by 11.4–16.7 points in children (all p < 0.001). The changes in sodium intake showed significant heterogeneity. A significant decrease in urinary sodium was observed among adults in Ganzhou (−14.0 mmol/24 h, 95% CI: −26.1, −2.0, p = 0.022), corresponding to a reduction of 0.82 g in daily salt intake. No significant change was found among adults in Zhenjiang (adjusted difference: −0.7 mmol/24 h, 95% CI: −13.4 to 12.0, p = 0.912). In children, after the one-year intervention, urinary sodium excretion showed a significant increase from baseline to follow-up in both cities (Ganzhou: +12.9 mmol/24 h, p = 0.018; Zhenjiang: +14.0 mmol/24 h, p = 0.0002). Conclusions: The pre–post evaluation showed that the EduSaltS program was associated with significant improvements in salt-related knowledge across regions. Its effectiveness in reducing sodium intake, however, varied substantially by population and geographic location. The observed increase in children’s urinary sodium excretion may partly reflect normal childhood growth and the limitations of a pre–post design without a control group. Pragmatic randomized controlled trials are warranted to verify the effectiveness of such interventions in reducing sodium intake and blood pressure across diverse populations and settings. Full article
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Article
Genome-Wide Identification of the TCP Gene Family in Astragalus mongholicus and Analysis of Its Response Patterns to Abiotic Stress
by Panpan Wang, Xinxin Wang, Meitong Pan, Zhenzhen Li, Lingyang Kong, Wei Ma and Xiubo Liu
Biology 2026, 15(14), 1134; https://doi.org/10.3390/biology15141134 - 12 Jul 2026
Viewed by 283
Abstract
Astragalus mongholicus is one of the original plant species of the medicinal herb Astragali Radix as recorded in the Chinese Pharmacopoeia, possessing significant medicinal value and being widely utilized worldwide. TCP transcription factors constitute a plant-specific transcription factor superfamily that plays essential regulatory [...] Read more.
Astragalus mongholicus is one of the original plant species of the medicinal herb Astragali Radix as recorded in the Chinese Pharmacopoeia, possessing significant medicinal value and being widely utilized worldwide. TCP transcription factors constitute a plant-specific transcription factor superfamily that plays essential regulatory roles in vegetative growth, organ development, and abiotic stress responses. However, the TCP gene family in A. mongholicus has not yet been systematically investigated, and its functional characteristics remain largely unknown. In this study, based on genome-wide data, a total of 25 AmTCP genes containing complete TCP domains were identified in A. mongholicus, and their protein properties, sequence alignment, gene structures, and phylogenetic relationships were systematically characterized using comprehensive bioinformatics tools. Promoter cis-element analysis revealed that the AmTCP promoter regions are enriched in cis-elements associated with hormones, light, and abiotic stresses (drought and salinity), suggesting their potential involvement in multiple signaling cascades. Furthermore, transcriptomic profiling combined with qRT-PCR validation demonstrated that AmTCP genes exhibit tissue-specific expression patterns and differential responses to salt stress and polyethylene glycol (PEG)-simulated drought stress. Notably, AmTCP3, AmTCP8, AmTCP11, AmTCP17, and AmTCP19 displayed tissue- and time-dependent alterations in expression under stress conditions, with AmTCP17 and AmTCP19 showing the most pronounced responsiveness. Collectively, our findings systematically elucidate the fundamental molecular characteristics of TCP transcription factors in A. mongholicus, providing a valuable reference for future investigations into the biological functions of this gene family during growth, development, and abiotic stress responses in this medicinal plant. Full article
(This article belongs to the Special Issue Advances in Plant Genomics and Genome Editing)
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