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1.
PeerJ ; 12: e17814, 2024.
Article in English | MEDLINE | ID: mdl-39157764

ABSTRACT

The aim of this study was to evaluate the effect of starvation and refeeding on the growth and food intake of gilthead seabream (Sparus aurata) and seabass (Dicentrarchus labrax) and on the growth and nitrogen uptake of glasswort (Salicornia europaea) in a polyculture aquaponic system under 12 ppt salinity for 75 days. Nine small-scale autonomous aquaponic systems were used, each containing 10 gilthead seabreams (average weight of 6.33 ± 0.73 g and average length of 5.73 ± 0.72 cm) and 10 seabasses (5.82 ± 0.77 g and 6.35 ± 0.45 cm), as well as five glasswort plants. Three fish feeding treatments were performed, a control (A), in which fish were fed daily until satiation, and two fasting treatments for 4 (B) and 7 days (C). Fish growth performance was significantly lower (p < 0.05) in the C treatment for both species compared to treatments A and B. Food consumption (FC) and feed conversion ratio (FCR) were significantly higher (p < 0.05) in treatment C. Glasswort growth performance was significantly higher in treatment C (p < 0.05). The results showed that the 4-day food-deprived fish were similar to the control fish by achieving partial compensatory growth. The more extended fasting period (7 days) resulted in significantly lower growth performance. The lipid and nitrogen retention levels in both species were significantly lower in food-deprived fish than in the control fish both before and during compensatory growth. The results suggest that a feeding schedule involving starvation-refeeding cycles is a promising feed management option for these species in polyculture aquaponic systems. The effect of food deprivation was also significantly beneficial (p < 0.05) for the growth performance of glasswort compared to the control treatment.


Subject(s)
Bass , Sea Bream , Animals , Sea Bream/growth & development , Sea Bream/physiology , Bass/growth & development , Bass/physiology , Starvation , Chenopodiaceae/metabolism , Chenopodiaceae/growth & development , Aquaculture/methods , Animal Feed/analysis , Nitrogen/metabolism , Coculture Techniques
2.
Altern Ther Health Med ; 30(8): 6-14, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39110054

ABSTRACT

Background: The use of plant medications in Unani medicine has been suggested to alleviate pain and related symptoms associated with primary dysmenorrhea, thus enhancing the overall quality of life. The purpose of the current study was to evaluate and compare the efficacy of Zarawand Mudaharaj (Aristolochia rotunda L.) and Qust (Saussurea lappa C.B. Clarke) in treating primary dysmenorrhea. Methods: This single-blind, randomized comparative study was conducted on patients with primary dysmenorrhea aged 18-35 years. The study participants were randomly allocated into Group A and Group B. Group A received Zarawand Mudaharaj 2 g twice daily with 5 mL honey while Group B received Qust 1.5 g twice daily with 5 mL honey from the 1st to the 5th day of their menstrual cycles for three consecutive cycles. The primary outcome measures were changes in pain severity measured on a 10 cm Visual Analog Scale (VAS) and changes in Verbal Multidimensional Scoring System (VMSS) grades. The secondary outcome measures included changes in Health-Related Quality of Life (HRQoL) measured on short form health survey-12 (SF-12) and changes in the symptoms such as pain during menstruation, low-backache, nausea, vomiting, diarrhoea, giddiness, and headache. Results: Both groups showed a significant improvement in VMSS grade at all follow-ups compared to baseline (P < .0001). Group B showed better performance than Group A in changing the VMSS grade at the third cycle (P = .02) and the final follow-up (P = .002). Group B also had a more significant reduction in mean ± SD VAS score from baseline (6.43 ± 1.57) to the final follow-up (2.67 ± 1.69) (P < .0001) compared to Group A. Conclusion: The preliminary findings of the study support the use of Zarawand Mudaharaj and Qust in the treatment of primary dysmenorrhea, which is consistent with the traditional knowledge of Unani scholars.


Subject(s)
Dysmenorrhea , Humans , Female , Dysmenorrhea/drug therapy , Adult , Young Adult , Single-Blind Method , Adolescent , Saussurea , Quality of Life , Plant Extracts/therapeutic use , Phytotherapy/methods , Treatment Outcome , Chenopodiaceae , Pain Measurement
3.
Curr Microbiol ; 81(10): 310, 2024 Aug 17.
Article in English | MEDLINE | ID: mdl-39152363

ABSTRACT

A Gram-stain-negative, strictly aerobic, non-motile, rod-shaped, designated strain CAU 1642 T, was isolated from a Salicornia herbacea collected from a tidal flat in the Yellow Sea. Strain CAU 1642 T grew optimally at pH 8.0 and 30 °C. The highest 16S rRNA gene sequence similarity was 97.25%, with Pseudomarinomonas arenosa CAU 1598 T, and phylogenetic analysis indicated that strain CAU 1642 T belongs to the genus Pseudomarinomonas. The major cellular fatty acids were iso-C15:0, iso-C16:0, and summed feature 9 (iso-C17:1ω9c and/or 10-methyl C16:0). Ubiquinone-8 was the major respiratory quinone. The draft genome of strain CAU 1642 T was 4.5 Mb, with 68.7 mol% of G + C content. The phylogenetic, phenotypic, and chemotaxonomic analysis data reveal strain CAU 1642 T to be of a novel genus in the family Lysobacteraceae, with the proposed name Pseudomarinomonas salicorniae sp. nov. with type strain CAU 1642 T (= KCTC 92084 T = MCCC 1K07085T).


Subject(s)
Base Composition , Chenopodiaceae , DNA, Bacterial , Fatty Acids , Phylogeny , RNA, Ribosomal, 16S , Chenopodiaceae/microbiology , RNA, Ribosomal, 16S/genetics , Fatty Acids/analysis , Fatty Acids/chemistry , DNA, Bacterial/genetics , Seawater/microbiology , Bacterial Typing Techniques , Sequence Analysis, DNA , Quinones/analysis , Ubiquinone/chemistry , Ubiquinone/analogs & derivatives , Genome, Bacterial
4.
Mar Pollut Bull ; 207: 116824, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39128233

ABSTRACT

The microorganism in rhizosphere systems has the potential to regulate the migration of arsenic (As) in coastal tidal flat wetlands. This study investigates the microbial community in the iron plaque and rhizosphere soils of Spartina alterniflora (S. alterniflora) and Suaeda salsa (S. salsa), as two common coastal tidal flat wetland plants in China, and determines the impact of the As and Fe redox bacteria on As mobility using field sampling and 16S rDNA high-throughput sequencing. The results indicated that As bound to crystalline Fe in the Fe plaque of S. salsa in high tidal flat. In the Fe plaque, there was a decrease in the presence of Fe redox bacteria, while the presence of As redox bacteria increased. Thus, the formation of Fe plaque proved advantageous in promoting the growth of As redox bacteria, thereby aiding in the mobility of As from rhizosphere soils to the Fe plaque. As content in the Fe plaque and rhizosphere soils of S. alterniflora was found to be higher than that of S. salsa. In the Fe plaque, As/Fe-reducing bacteria in S. alterniflora, and As/Fe-oxidizing bacteria in S. salsa significantly affected the distribution of As in rhizosphere systems. S. alterniflora has the potential to be utilized for wetland remediation purposes.


Subject(s)
Arsenic , Chenopodiaceae , Iron , Poaceae , Rhizosphere , Soil Microbiology , Wetlands , Arsenic/analysis , China , Chenopodiaceae/microbiology , Poaceae/microbiology , Bacteria , Soil/chemistry , Water Pollutants, Chemical/analysis
5.
BMC Plant Biol ; 24(1): 816, 2024 Aug 30.
Article in English | MEDLINE | ID: mdl-39210264

ABSTRACT

BACKGROUND: Suaeda australis is one of typical halophyte owing to high levels of salt tolerance. In addition, the bZIP gene family assumes pivotal functions in response to salt stress. However, there are little reports available regarding the bZIP gene family in S. australis. RESULTS: In this study, we successfully screened 44 bZIP genes within S. australis genome. Subsequently, we conducted an extensive analysis, encompassing investigations into chromosome location, gene structure, phylogenetic relationship, promoter region, conserved motif, and gene expression profile. The 44 bZIP genes were categorized into 12 distinct groups, exhibiting an uneven distribution among the 9 chromosomes of S. australis chromosomes, but one member (Sau23745) was mapped on unanchored scaffolds. Examination of cis-regulatory elements revealed that bZIP promoters were closely related to anaerobic induction, transcription start, and light responsiveness. Comparative transcriptome analysis between ST1 and ST2 samples identified 2,434 DEGs, which were significantly enriched in some primary biological pathways related to salt response-regulating signaling based on GO and KEGG enrichment analysis. Expression patterns analyses clearly discovered the role of several differently expressed SabZIPs, including Sau08107, Sau08911, Sau11415, Sau16575, and Sau19276, which showed higher expression levels in higher salt concentration than low concentration and a response to salt stress. These expression patterns were corroborated through RT-qPCR analysis. The six differentially expressed SabZIP genes, all localized in the nucleus, exhibited positive regulation involved in the salt stress response. SabZIP14, SabZIP26, and SabZIP36 proteins could bind to the promoter region of downstream salt stress-related genes and activate their expressions. CONCLUSIONS: Our findings offer valuable insights into the evolutionary trajectory of the bZIP gene family in S. australis and shed light on their roles in responding to salt stress. In addition to fundamental genomic information, these results would serve as a foundational framework for future investigations into the regulation of salt stress responses in S. australis.


Subject(s)
Chenopodiaceae , Multigene Family , Phylogeny , Plant Proteins , Salt Stress , Chenopodiaceae/genetics , Chenopodiaceae/physiology , Salt Stress/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Salt-Tolerant Plants/genetics , Salt-Tolerant Plants/physiology , Basic-Leucine Zipper Transcription Factors/genetics , Basic-Leucine Zipper Transcription Factors/metabolism , Gene Expression Regulation, Plant , Gene Expression Profiling , Salt Tolerance/genetics , Promoter Regions, Genetic , Genes, Plant
6.
Sci Rep ; 14(1): 18806, 2024 08 13.
Article in English | MEDLINE | ID: mdl-39138231

ABSTRACT

Manipulating the rhizosphere microbiome to enhance plant stress tolerance is an environmentally friendly technology and a renewable resource to restore degraded environments. Here we suggest a sustainable bioremediation strategy on the example of Stebnyk mine tailings storage. We consider Salicornia europaea rhizosphere community, and the ability of the phytoremediation plant Salix viminalis to recruit its beneficial microbiome to mediate the pollution stress at the Stebnyk mine tailings storage. The tailings contain large amounts of brine salts and heavy metals that contaminate the ground water and surrounding areas, changing soil biogeochemistry and causing increased erosion. The species richness of the endophytic bacterial community of S. viminalis roots was assessed based on observed OTUs, Shannon-InvSimpson, and evenness index. Our results obtained using the plant-based enrichment strategy show that biodiversity was decreased across the contamination zones and that S. europaea supplementation significantly increased the species richness. Our results also indicate that the number of dominating bacteria was not changed across zones in both S. europaea-treated and untreated bacterial populations, and that the decrease in richness was mainly caused by the low abundant bacterial OTUs. The importance of selecting the bioremediation strains that are likely to harbor a reservoir of genetic traits that aid in bioremediation function from the target environment is discussed.


Subject(s)
Biodegradation, Environmental , Biodiversity , Chenopodiaceae , Microbiota , Rhizosphere , Soil Microbiology , Chenopodiaceae/microbiology , Salix/microbiology , Soil Pollutants/metabolism , Plant Roots/microbiology , Bacteria/genetics , Bacteria/classification , Bacteria/metabolism , Mining
7.
Biomolecules ; 14(8)2024 Jul 24.
Article in English | MEDLINE | ID: mdl-39199278

ABSTRACT

The taxonomic classification of the genera Salsola L., Pyankovia Akhani and Roalson, and Xylosalsola Tzvelev within Chenopodiaceae Vent. (Amaranthaceae s.l.) remains controversial, with the precise number of species within these genera still unresolved. This study presents a comparative analysis of the complete plastid genomes of S. foliosa, S. tragus, P. affinis, and X. richteri species collected in Kazakhstan. The assembled plastid genomes varied in length, ranging from 151,177 bp to 152,969 bp for X. richteri and S. tragus. These genomes contained 133 genes, of which 114 were unique, including 80 protein-coding, 30 tRNA, and 4 rRNA genes. Thirteen regions, including ndhC-ndhD, rps16-psbK, petD, rpoC2, ndhA, petB, clpP, atpF, ycf3, accD, ndhF-ndhG, matK, and rpl20-rpl22, exhibited relatively high levels of nucleotide variation. A total of 987 SSRs were detected across the four analyzed plastid genomes, primarily located in the intergenic spacer regions. Additionally, 254 repeats were identified, including 92 tandem repeats, 88 forward repeats, 100 palindromic repeats, and only one reverse repeat. A phylogenetic analysis revealed clear clustering into four clusters corresponding to the Salsoleae and Caroxyloneae tribe clades. These nucleotide sequences obtained in this study represent a valuable resource for future phylogenetic analyses within the Salsoleae s.l. tribe.


Subject(s)
Genome, Plastid , Phylogeny , Genome, Plastid/genetics , Chenopodiaceae/genetics , Chenopodiaceae/classification , Microsatellite Repeats/genetics
8.
Chemosphere ; 363: 142795, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38986781

ABSTRACT

Constructed wetlands use vegetation and microorganisms to remove contaminants like nitrogen and phosphorus from water. For mariculture, the impact of salinity on the efficiency of wastewater treatment of wetlands is unneglectable. However, little is known about their impact on the microbiome in constructed wetlands. Here, we set four salinity levels (15, 22, 29, and 36) in Salicornia constructed wetlands, and the experiment was conducted for a period of 72 days. The 15 group exhibited the highest removal rates of nitrogen compounds and phosphate, compared to the other salinity groups, the nosZ gene exhibited significantly higher expression in the 22 group (p < 0.05), indicated that microorganisms in 22 salinity have higher denitrification abilities. The three dominant phyla identified within the microbiomes were Proteobacteria, known for their diverse metabolic capabilities; Cyanobacteria, important for photosynthesis and nitrogen fixation; and Firmicutes, which include many fermenters. The ecological network analysis revealed a 'small world' model, characterized by high interconnectivity and short path lengths between microbial species, and had higher co-occurrence (45.13%) observed in this study comparing to the Erdös-Réyni random one (32.35%). The genus Microbulbifer emerged as the sole connector taxon, pivotal for integrating different microbial communities involved in nitrogen removal. A negative correlation was observed between salinity levels and network complexity, as assessed by the number of connections and diversity of interactions within the microbial community. Collectively, these findings underscore the critical role of microbial community interactions in optimizing nitrogen removal in constructed wetlands, with potential applications in the design and management of such systems for improved wastewater treatment in mariculture.


Subject(s)
Chenopodiaceae , Microbiota , Nitrogen , Salinity , Wastewater , Wetlands , Chenopodiaceae/metabolism , Nitrogen/metabolism , Wastewater/chemistry , Wastewater/microbiology , Bacteria/metabolism , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Phosphorus/metabolism , Waste Disposal, Fluid/methods , Biodegradation, Environmental , Denitrification , Proteobacteria/genetics , Proteobacteria/isolation & purification
9.
Sci Rep ; 14(1): 16737, 2024 07 20.
Article in English | MEDLINE | ID: mdl-39033227

ABSTRACT

In this comprehensive investigation, we successfully isolated and characterized 40 distinct plant-associated halotolerant bacteria strains obtained from three halophytic plant species: Tamarix nilotica, Suaeda pruinosa, and Arthrocnemum macrostachyum. From this diverse pool of isolates, we meticulously selected five exceptional plant-associated halotolerant bacteria strains through a judiciously designed seed biopriming experiment and then identified molecularly. Bacillus amyloliquefaciens DW6 was isolated from A. macrostachyum. Three bacteria (Providencia rettgeri DW3, Bacillus licheniformis DW4, and Salinicoccus sesuvii DW5) were isolated for the first time from T. nilotica, S. pruinosa and S. pruinosa, respectively. Paenalcaligenes suwonensis DW7 was isolated for the first time from A. macrostachyum. These plant-associated halotolerant bacteria exhibited growth-promoting activities, including phosphate solubilization, nitrogen fixation, and production of bioactive compounds, i.e., ammonia, phytohormones, hydrogen cyanide, siderophores, and exopolysaccharides. A controlled laboratory experiment was conducted to reduce the detrimental impact of soil salinity. Vicia faba seedlings were inoculated individually or in mixtures by the five most effective plant-associated halotolerant bacteria to reduce the impact of salt stress and improve growth parameters. The growth parameters were significantly reduced due to the salinity stress in the control samples, compared to the experimental ones. The unprecedented novelty of our findings is underscored by the demonstrable efficacy of co-inoculation with these five distinct bacterial types as a pioneering bio-approach for countering the deleterious effects of soil salinity on plant growth. This study thus presents a remarkable contribution to the field of plant science and offers a promising avenue for sustainable agriculture in saline environments.


Subject(s)
Salinity , Vicia faba , Vicia faba/growth & development , Vicia faba/microbiology , Salt-Tolerant Plants/microbiology , Salt-Tolerant Plants/growth & development , Nitrogen Fixation , Bacteria/growth & development , Bacteria/metabolism , Bacteria/classification , Tamaricaceae/microbiology , Tamaricaceae/growth & development , Chenopodiaceae/microbiology , Chenopodiaceae/growth & development , Soil Microbiology , Salt Tolerance , Phosphates/metabolism
10.
Mar Pollut Bull ; 206: 116754, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39053262

ABSTRACT

Soil salinity in the root rhizosphere is highly heterogeneous in natural environments. Suaeda salsa L. is a highly salt-adapted halophyte, but it is unclear how S. salsa responds to non-uniform salinity conditions. The results of the root-splitting experiment showed that the increase in root dry weight in the low salt side (50/350-50) root of S. salsa may be associated with relative increases in root morphology. The concentration of Na+, Cl-, K+, the Na+ efflux and the expression of SsSOS1 in the low salt side root were higher than that of uniform low salt treatment. The expression of SsPIP1-4, SsPIP2-1, SsNRT1.1 and SsNRT2.1 were upregulated, which increased water and NO3- uptake in the low salt side root compared to uniform low salt treatment. In conclusion, under non-uniform salt treatment, the increased Na+ efflux, water and NO3- uptake from the low salt side root can alleviate salt stress in S. salsa.


Subject(s)
Chenopodiaceae , Plant Roots , Salinity , Salt-Tolerant Plants , Chenopodiaceae/metabolism , Plant Roots/metabolism , Sodium/metabolism , Ions , Soil/chemistry
11.
Plant Physiol Biochem ; 214: 108921, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38991594

ABSTRACT

The use of halophytes in conjunction with arbuscular mycorrhizal (AM) fungi has been found to enhance the removal efficacy of heavy metals and salts in heavy metals contaminated saline soil. The mechanisms of AM fungi on promoting halophyte growth and regulating metabolism remain unclear. In this study, combinations of 0 g kg-1 NaCl and 3 mg kg-1 Cd (S0Cd3), 6 g kg-1 NaCl and 3 mg kg-1 Cd (S6Cd3), and 12 g kg-1 NaCl and 3 mg kg-1 Cd (S12Cd3) were employed to explore the impact of Funneliformis mosseae on the growth and metabolism of Suaeda salsa. The results showed that AM fungi increased the biomass and the P, K+, Ca2+, and Mg2+ accumulations, reduced the Cd and Na+ concentrations in S0Cd3 and S6Cd3, and increased the Cd concentrations in S12Cd3. AM fungi inoculation reduced the Cd and Na+ transfer factors and increased the Cd and Na+ accumulations in S6Cd3. The metabolomics of S6Cd3 showed that AM fungi upregulated the expression of 5-hydroxy-L-tryptophan and 3-indoleacid acid in tryptophan metabolism, potentially acting as crucial antioxidants enabling plants to actively cope with abiotic stresses. AM fungi upregulated the expression of arbutin in glycolysis process, enhancing the plants' osmoregulation capacity. AM fungi upregulated the expression of 2-hydroxycinnamic acid in phenylalanine metabolism and dopaquinone in tyrosine metabolism. These two metabolites help effectively remove reactive oxygen species. Correspondingly, AM fungi decreased MDA content and increased soluble sugar content. These results indicate that AM fungi improve the stress resistance of S. salsa by increasing nutrient uptake and regulating physiological and metabolic changes.


Subject(s)
Amino Acids , Cadmium , Chenopodiaceae , Glycolysis , Mycorrhizae , Plant Growth Regulators , Mycorrhizae/physiology , Mycorrhizae/metabolism , Cadmium/metabolism , Cadmium/toxicity , Chenopodiaceae/metabolism , Chenopodiaceae/microbiology , Chenopodiaceae/drug effects , Plant Growth Regulators/metabolism , Amino Acids/metabolism , Salt Stress , Salt-Tolerant Plants/metabolism , Salt-Tolerant Plants/microbiology , Fungi
12.
Chemosphere ; 362: 142918, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39043273

ABSTRACT

Coastal wetlands possess significant carbon storage capabilities. However, in coastal soil-plant systems augmented with biochar and microorganisms, the mechanisms of these amendments and carbon participation remain unclear. This study utilized pot experiments to explore how Enteromorpha prolifera biochar and Arbuscular mycorrhizal fungi (AMF) affect soil organic carbon (SOC), carbon-related microbes, photosynthetic and osmotic system of Suaeda salsa. The results showed biochar reduced exchangeable sodium percentage by 6.9% through adsorption and ion exchange, and increased SOC content by 34.4%. The abundance of carbon-related microorganisms (Bacteroidota and Chloroflexi) was increased and carbon metabolizing enzyme (cellulase and sucrase) activity in the soil was enhanced. AMF significantly improved plant growth compared with CK, as evidenced by the enhanced dry weight by 2.34 times. A partial least squares pathway model (PLS-PM) and correlation analysis suggested that the combined effect of biochar and AMF could be outlined as two pathways: soil and plant. Biochar increased SOC, improved the growth of soil carbon metabolizing microorganisms, and further promoted the activity of carbon-related enzymes. Additionally, AMF facilitated nutrient absorption by plants through root symbiosis, with biochar further enhancing this process by acting as a nutrient adsorber. These combined effects of biochar and AMF at soil and plant level enhanced the photosynthetic process of Suaeda salsa. The transport of photosynthetic products to the roots can increase the carbon storage in the soil. This study provides quantitative evidence supporting the increase of carbon storage in coastal wetland soil-plant systems through a combined application of biochar and AMF.


Subject(s)
Carbon , Charcoal , Mycorrhizae , Soil Microbiology , Soil , Wetlands , Charcoal/chemistry , Carbon/metabolism , Soil/chemistry , Mycorrhizae/physiology , Chenopodiaceae/metabolism , Chenopodiaceae/microbiology , Photosynthesis , Plant Roots/metabolism , Plant Roots/microbiology
13.
Huan Jing Ke Xue ; 45(7): 4177-4186, 2024 Jul 08.
Article in Chinese | MEDLINE | ID: mdl-39022964

ABSTRACT

Changes in soil organic carbon (SOC) are of great importance to the evolution of soil quality. The distribution characteristics of soil organic carbon (SOC), easily oxidizable organic carbon (EOC), dissolved organic carbon (DOC), and particulate organic carbon (POC) were investigated in the 0-50 cm soil layer of the Phragmites australis, Suaeda salsa, and Tamarix chinensis communities of the supratidal zone in the Yellow River Delta as the research subjects. Then, the composition and sources of soil dissolved organic matter (DOM) were analyzed based on the UV-vis spectroscopy, three-dimensional excitation emission matrix spectroscopy, and parallel factor analysis (PARAFAC). Finally, the key factors affecting the characteristics of soil organic carbon and DOM fractions of different plant communities were finally revealed in combination with the physicochemical properties of the soil. The results showed that: ① Comparing different communities, the S. salsa community had the highest ω(SOC) at 7.53 g·kg-1, the T. chinensis community had the highest ω(DOC) at 0.98 g·kg-1, and the P. australis community had significantly higher ω(EOC) and ω(POC) than those of the S. salsa and T. chinensis communities at 1.47 g·kg-1 and 0.65 g·kg-1, respectively. The vertical distribution showed a tendency to decrease with deeper soil layers, except for POC concentration. ② The main components of soil DOM of the P. australis, S. salsa, and T. chinensis communities were humus, protein-like substances, and fulvic acid-like substances, of which exogenous components accounted for 55.80%, 56.41%, and 52.81% in the above communities, respectively. ③ Comparing different communities, the humification degree of the P. australis community was significantly higher than that of the S. salsa and T. chinensi communities, but its aromaticity and proportion of biological sources were significantly lower than those of the T. chinensi community. On the vertical profile of the soil, DOM aromaticity and humification degree gradually increased with the deepening of the soil layer, and the deeper soils were mainly dominated by small molecular weight DOM with a lower proportion of hydrophobic fraction. ④ Redundant analysis showed that N (P<0.01), NO2--N (P<0.01), and NH4+-N (P<0.05) were the key factors affecting the changes in soil organic carbon and DOM fractions.


Subject(s)
Carbon , Chenopodiaceae , Organic Chemicals , Rivers , Soil , Soil/chemistry , Carbon/analysis , China , Organic Chemicals/analysis , Rivers/chemistry , Chenopodiaceae/growth & development , Poaceae/growth & development , Tamaricaceae/growth & development , Ecosystem , Environmental Monitoring
14.
Plant Physiol Biochem ; 212: 108770, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38823092

ABSTRACT

Cadmium (Cd) and lead (Pb) are among the most toxic heavy metals affecting human health and crop yield. Suaeda maritima (L.) Dumort is an obligate halophyte that is well adapted to saline soil. The inbuilt salinity tolerance mechanisms of halophytes help them to survive in heavy metal-contaminated rhizospheric soil. In the present study, growth and ionomic responses, reactive oxygen species (ROS) accumulation, modulations of phytochelatins, antioxidative defense, and metabolomic responses were studied in S. maritima imposed to Cd and Pb stresses with an aim to elucidate Cd and Pb tolerance mechanisms and phytoremediation potential of this halophyte. Our results showed a reduction of biomass in S. maritima, which may serve as an energy conservation strategy for survival under heavy metal stress. The increased accumulation of ROS with concomitant higher expression of various antioxidative enzymes suggests the efficient scavenging of ROS. The metabolite profiling revealed significant up-regulation of sugars, sugar alcohols, amino acids, polyphenols, and organic acids under Cd and Pb stresses suggesting their possible role in osmotic balance, ionic homeostasis, ROS scavenging, and signal transduction for stress tolerance. In S. maritima, the translocation factors (Tf) are <1 in both Cd and Pb treatments, which indicates that this halophyte has high phytostabilization potential for Cd and Pb in roots and through restricted translocation of heavy metal ions to the aboveground part. The findings of this study offer comprehensive information on Cd and Pb tolerance mechanisms in S. maritima and suggest that this halophyte can detoxify the HMs through physiological, ionic, antioxidative, and metabolic regulations.


Subject(s)
Biodegradation, Environmental , Cadmium , Chenopodiaceae , Lead , Reactive Oxygen Species , Salt-Tolerant Plants , Cadmium/metabolism , Cadmium/toxicity , Chenopodiaceae/metabolism , Chenopodiaceae/drug effects , Salt-Tolerant Plants/metabolism , Lead/metabolism , Reactive Oxygen Species/metabolism , Metabolomics , Antioxidants/metabolism , Metabolome/drug effects , Soil Pollutants/metabolism , Plant Roots/metabolism , Plant Roots/drug effects , Phytochelatins/metabolism
15.
Int J Mol Sci ; 25(11)2024 May 22.
Article in English | MEDLINE | ID: mdl-38891835

ABSTRACT

Two genes of nitrate transporters SaNRT2.1 and SaNRT2.5, putative orthologs of high-affinity nitrate transporter genes AtNRT2.1 and AtNRT2.5 from Arabidopsis thaliana, were cloned from the euhalophyte Suaeda altissima. Phylogenetic bioinformatic analysis demonstrated that the proteins SaNRT2.1 and SaNRT2.5 exhibited higher levels of homology to the corresponding proteins from the plants of family Amaranthaceae; the similarity of amino acid sequences between proteins SaNRT2.1 and SaNRT2.5 was lower (54%). Both SaNRT2.1 and SaNRT2.5 are integral membrane proteins forming 12 transmembrane helices as predicted by topological modeling. An attempt to demonstrate nitrate transporting activity of SaNRT2.1 or SaNRT2.5 by heterologous expression of the genes in the yeast Hansenula (Ogataea) polymorpha mutant strain Δynt1 lacking the only yeast nitrate transporter was not successful. The expression patterns of SaNRT2.1 and SaNRT2.5 were studied in S. altissima plants that were grown in hydroponics under either low (0.5 mM) or high (15 mM) nitrate and salinity from 0 to 750 mM NaCl. The growth of the plants was strongly inhibited by low nitrogen supply while stimulated by NaCl; it peaked at 250 mM NaCl for high nitrate and at 500 mM NaCl for low nitrate. Under low nitrate supply, nitrate contents in S. altissima roots, leaves and stems were reduced but increased in leaves and stems as salinity in the medium increased. Potassium contents remained stable under salinity treatment from 250 to 750 mM NaCl. Quantitative real-time PCR demonstrated that without salinity, SaNRT2.1 was expressed in all organs, its expression was not influenced by nitrate supply, while SaNRT2.5 was expressed exclusively in roots-its expression rose about 10-fold under low nitrate. Salinity increased expression of both SaNRT2.1 and SaNRT2.5 under low nitrate. SaNRT2.1 peaked in roots at 500 mM NaCl with 15-fold increase; SaNRT2.5 peaked in roots at 500 mM NaCl with 150-fold increase. It is suggested that SaNRT2.5 ensures effective nitrate uptake by roots and functions as an essential high-affinity nitrate transporter to support growth of adult S. altissima plants under nitrogen deficiency.


Subject(s)
Anion Transport Proteins , Cloning, Molecular , Gene Expression Regulation, Plant , Nitrate Transporters , Nitrates , Phylogeny , Plant Proteins , Plant Proteins/genetics , Plant Proteins/metabolism , Anion Transport Proteins/genetics , Anion Transport Proteins/metabolism , Nitrates/metabolism , Chenopodiaceae/genetics , Chenopodiaceae/metabolism , Amino Acid Sequence , Plant Roots/metabolism , Plant Roots/genetics
16.
Int Immunopharmacol ; 137: 112482, 2024 Aug 20.
Article in English | MEDLINE | ID: mdl-38878490

ABSTRACT

Our research focused on extracting polysaccharides from Suaeda maritima (SMP) to obtain crude polysaccharides (SMP-C), which were subsequently purified into SMP-F1 and SMP-F2. SMPs were evaluated for anti-inflammatory effects and SMP-F1 showed the highest inhibitory effects on nitric oxide (NO) production. The monosaccharide composition analysis of SMP-F1 (molecular weight of 112.2 × 103 g/mol) revealed predominant levels of glucose (45.4 %), arabinose (20.5 %), mannose (14.2 %), and galactose (12.7 %). The primary backbone of SMP-F1 consisted of (1 â†’ 4)-D-glucopyranoside, (1 â†’ 4,6)-D-glucopyranoside, (1 â†’ 3)-D-mannopyranoside, (1 â†’ 3,6)-D-mannopyranoside, and (1 â†’ 5)-L-arabifuranoside. In addition, we hydrolysed SMP-F1 to SMP-H1, SMP-H2, and SMP-H3 and investigated their anti-inflammatory effects on RAW264.7 macrophages. Following SMP-F1 hydrolysis, SMP-H3 (molecular weight of 25.8 × 103 g/mol) exhibited superior anti-inflammatory properties compared to SMP-H1 and SMP-H2, demonstrating a significant decrease in NO production. SMP-H3 also demonstrated a remarkable reduction in the secretion of inflammatory mediators including NO, inducible nitric oxide synthase (iNOS), and cyclooxygenase-2 (COX-2), and pro-inflammatory cytokines including tumour necrosis factor-alpha (TNF-α), interleukin (IL-1ß and IL-6), while increasing IL-10 expression. Furthermore, SMP-H3 significantly inhibited LPS-stimulated cluster of differentiation (CD) 11b and CD40 expression. Our subsequent investigation unveiled the involvement of SMP-H3-activated macrophages in the nuclear factor kappa B (NF-κB) and mitogen-activated protein kinase (MAPK) pathways. Additionally, SMP-H3 exhibited antioxidant activity by scavenging 2,2-diphenyl-1-picrylhydrazyl (DPPH), superoxide, and 2,2'-azino-bis (3-ethylbenzthiazoline-6-sulphonic acid) (ABTS) free radicals. These findings suggest the potential of SMP-H3 as an ingredient in the development of alternative drugs or functional foods.


Subject(s)
Anti-Inflammatory Agents , Antioxidants , Lipopolysaccharides , Macrophages , Nitric Oxide , Animals , Mice , RAW 264.7 Cells , Anti-Inflammatory Agents/pharmacology , Macrophages/drug effects , Macrophages/immunology , Macrophages/metabolism , Nitric Oxide/metabolism , Antioxidants/pharmacology , Inflammation/drug therapy , Inflammation/chemically induced , Chenopodiaceae/chemistry , Nitric Oxide Synthase Type II/metabolism , NF-kappa B/metabolism , Polysaccharides/pharmacology , Polysaccharides, Bacterial/pharmacology , Cyclooxygenase 2/metabolism
17.
Sci Total Environ ; 942: 173775, 2024 Sep 10.
Article in English | MEDLINE | ID: mdl-38844238

ABSTRACT

The rhizosphere environment of plants, which harbors halophilic bacterial communities, faces significant challenges in coping with environmental stressors, particularly saline soil properties. This study utilizes a high-throughput 16S rRNA gene-based amplicon sequencing to investigate the variations in bacterial community dynamics in rhizosphere soil (RH), root surface soil (RS), root endophytic bacteria (PE) compartments of Suaeda salsa roots, and adjoining soils (CK) across six locations along the eastern coast of China: Nantong (NT), Yancheng (YC), Dalian (DL), Tianjin (TJ), Dongying (DY), and Qingdao (QD), all characterized by chloride-type saline soil. Variations in the physicochemical properties of the RH compartment were also evaluated. The results revealed significant changes in pH, electrical conductivity, total salt content, and ion concentrations in RH samples from different locations. Notably, the NT location exhibited the highest alkalinity and nitrogen availability. The pH variations were linked to HCO3- accumulation in S. salsa roots, while salinity stress influenced soil pH through H+ discharge. Despite salinity stress, enzymatic activities such as catalase and urease were higher in soils from various locations. The diversity and richness of bacterial communities were higher in specific locations, with Proteobacteria dominating PE samples from the DL location. Additionally, Vibrio and Marinobacter were prevalent in RH samples. Significant correlations were found between soil pH, salinity, nutrient content, and the abundance and diversity of bacterial taxa in RH samples. Bioinformatics analysis revealed the prevalence of halophilic bacteria, such as Bacillus, Halomonas, and Streptomyces, with diverse metabolic functions, including amino acid and carbohydrate metabolisms. Essential genes, such as auxin response factor (ARF) and GTPase-encoding genes, were abundant in RH samples, suggesting adaptive strategies for harsh environments. Likewise, proline/betaine transport protein genes were enriched, indicating potential bioremediation mechanisms against high salt stress. These findings provide insight into the metabolic adaptations facilitating resilience in saline ecosystems and contribute to understanding the complex interplay between soil conditions, bacterial communities, and plant adaptation.


Subject(s)
Bacteria , Chenopodiaceae , Plant Roots , RNA, Ribosomal, 16S , Soil Microbiology , China , Chenopodiaceae/microbiology , Plant Roots/microbiology , Bacteria/classification , Bacteria/genetics , Rhizosphere , Soil/chemistry , Salinity , Microbiota , High-Throughput Nucleotide Sequencing
18.
Physiol Plant ; 176(3): e14384, 2024.
Article in English | MEDLINE | ID: mdl-38859697

ABSTRACT

The present study aims to explore the potential of a plasma-membrane localized PIP2-type aquaporin protein sourced from the halophyte Salicornia brachiata to alleviate salinity and water deficit stress tolerance in a model plant through transgenic intervention. Transgenic plants overexpressing SbPIP2 gene showed improved physio-biochemical parameters like increased osmolytes (proline, total sugar, and amino acids), antioxidants (polyphenols), pigments and membrane stability under salinity and drought stresses compared to control plants [wild type (WT) and vector control (VC) plants]. Multivariate statistical analysis showed that, under water and salinity stresses, osmolytes, antioxidants and pigments were correlated with SbPIP2-overexpressing (SbPIP2-OE) plants treated with salinity and water deficit stress, suggesting their involvement in stress tolerance. As aquaporins are also involved in CO2 transport, SbPIP2-OE plants showed enhanced photosynthesis performance than wild type upon salinity and drought stresses. Photosynthetic gas exchange (net CO2 assimilation rate, PSII efficiency, ETR, and non-photochemical quenching) were significantly higher in SbPIP2-OE plants compared to control plants (wild type and vector control plants) under both unstressed and stressed conditions. The higher quantum yield for reduction of end electron acceptors at the PSI acceptor side [Φ( R0 )] in SbPIP2-OE plants compared to control plants under abiotic stresses indicates a continued PSI functioning, leading to retained electron transport rate, higher carbon assimilation, and less ROS-mediated injuries. In conclusion, the SbPIP2 gene functionally validated in the present study could be a potential candidate for engineering abiotic stress resilience in important crops.


Subject(s)
Nicotiana , Photosynthesis , Plant Proteins , Plants, Genetically Modified , Stress, Physiological , Antioxidants/metabolism , Aquaporins/genetics , Aquaporins/metabolism , Chenopodiaceae/genetics , Droughts , Gene Expression Regulation, Plant , Nicotiana/genetics , Nicotiana/metabolism , Photosynthesis/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Salinity , Stress, Physiological/genetics
19.
Nat Commun ; 15(1): 4279, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38769297

ABSTRACT

The identification of genes involved in salinity tolerance has primarily focused on model plants and crops. However, plants naturally adapted to highly saline environments offer valuable insights into tolerance to extreme salinity. Salicornia plants grow in coastal salt marshes, stimulated by NaCl. To understand this tolerance, we generated genome sequences of two Salicornia species and analyzed the transcriptomic and proteomic responses of Salicornia bigelovii to NaCl. Subcellular membrane proteomes reveal that SbiSOS1, a homolog of the well-known SALT-OVERLY-SENSITIVE 1 (SOS1) protein, appears to localize to the tonoplast, consistent with subcellular localization assays in tobacco. This neo-localized protein can pump Na+ into the vacuole, preventing toxicity in the cytosol. We further identify 11 proteins of interest, of which SbiSALTY, substantially improves yeast growth on saline media. Structural characterization using NMR identified it as an intrinsically disordered protein, localizing to the endoplasmic reticulum in planta, where it can interact with ribosomes and RNA, stabilizing or protecting them during salt stress.


Subject(s)
Chenopodiaceae , Plant Proteins , Salt Tolerance , Chenopodiaceae/metabolism , Chenopodiaceae/genetics , Chenopodiaceae/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics , Salt Tolerance/genetics , Gene Expression Regulation, Plant/drug effects , Vacuoles/metabolism , Salinity , Sodium Chloride/pharmacology , Sodium Chloride/metabolism , Endoplasmic Reticulum/metabolism , Salt Stress , Proteomics , Nicotiana/metabolism , Nicotiana/genetics , Nicotiana/drug effects , Transcriptome
20.
Microb Pathog ; 191: 106677, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38705217

ABSTRACT

A novel endophytic Streptomyces griseorubens CIBA-NS1 was isolated from a salt marsh plant Salicornia sp. The antagonistic effect of S. griseorubens against Vibrio campbellii, was studied both in vitro and in vivo. The strain was validated for its endophytic nature and characterized through scanning electron microscopy, morphological and biochemical studies and 16SrDNA sequencing. The salinity tolerance experiment has shown that highest antibacterial activity was at 40‰ (16 ± 1.4 mm) and lowest was at 10 ‰ salinity (6.94 ± 0.51 mm). In vivo exclusion of Vibrio by S. griseorubens CIBA-NS1 was studied in Penaeus indicus post larvae and evaluated for its ability to improve growth and survival of P. indicus. After 20 days administration of S. griseorubens CIBA-NS1, shrimps were challenged with V. campbellii. The S. griseorubens CIBA-NS1 reduced Vibrio population in test group when compared to control, improved survival (60.5 ± 6.4%) and growth, as indicated by weight gain (1.8 ± 0.05g). In control group survival and growth were 48.4 ± 3.5% and 1.4 ± 0.03 g respectively. On challenge with V. campbellii, the S. griseorubens CIBA-NS1 administered group showed better survival (85.6 ± 10%) than positive control (64.3 ± 10%). The results suggested that S. griseorubens CIBA-NS1 is antagonistic to V. campbellii, reduce Vibrio population in the culture system and improve growth and survival. This is the first report on antagonistic activity of S. griseorubens isolated from salt marsh plant Salicornia sp, as a probiotic candidate to prevent V. campbellii infection in shrimps.


Subject(s)
Chenopodiaceae , Endophytes , Probiotics , Streptomyces , Vibrio , Animals , Vibrio/drug effects , Vibrio/physiology , Chenopodiaceae/microbiology , Probiotics/pharmacology , Endophytes/isolation & purification , Endophytes/physiology , Streptomyces/physiology , Streptomyces/isolation & purification , Streptomyces/genetics , Penaeidae/microbiology , RNA, Ribosomal, 16S/genetics , Antibiosis , Vibrio Infections/microbiology , Vibrio Infections/veterinary , Vibrio Infections/prevention & control , Salinity , Larva/microbiology , DNA, Bacterial/genetics , Phylogeny
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