Thallium-mediated NO signaling induced lipid accumulation in microalgae and its role in heavy metal bioremediation.
暂无分享,去创建一个
[1] Bing-feng Liu,et al. Lipid production characteristics of a newly isolated microalga Asterarcys quadricellulare R-56 as biodiesel feedstock , 2023, Environmental Science and Pollution Research.
[2] Liandong Zhu,et al. Pollutant removal and toxic response mechanisms of freshwater microalgae Chlorella sorokiniana under exposure of tetrabromobisphenol A and cadmium , 2023, Chemical Engineering Journal.
[3] Bing-feng Liu,et al. Insights into the Effect of Rhamnolipids on the Anaerobic Fermentation and Microalgae Lipid Production of Waste Activated Sludge: Performance and Mechanisms , 2023, ACS ES&T Engineering.
[4] M. Liu,et al. From lab to application: Cultivating limnetic microalgae in seawater coupled with wastewater for biodiesel production on a pilot scale. , 2022, Water research.
[5] Bing-feng Liu,et al. Lipid accumulation by a novel microalga Parachlorella kessleri R-3 with wide pH tolerance for promising biodiesel production , 2022, Algal Research.
[6] Bing-feng Liu,et al. Simultaneous chromium removal and lipid accumulation by microalgae under acidic and low temperature conditions for promising biodiesel production. , 2022, Bioresource technology.
[7] P. Show,et al. Nanovesicle and extracellular polymeric substance synthesis from the remediation of heavy metal ions from soil. , 2022, Environmental research.
[8] Zhong-Guang Li,et al. Key role of reactive oxygen species-scavenging system in nitric oxide and hydrogen sulfide crosstalk-evoked thermotolerance in maize seedlings , 2022, Frontiers in Plant Science.
[9] Bin Ji,et al. Auto-floating oxygenic microalgal-bacterial granular sludge. , 2022, The Science of the total environment.
[10] In-Jung Lee,et al. Melatonin and nitric oxide: Dual players inhibiting hazardous metal toxicity in soybean plants via molecular and antioxidant signaling cascades. , 2022, Chemosphere.
[11] Yongteng Zhao,et al. The synergistic effects of gamma-aminobutyric acid and salinity during the enhancement of microalgal lipid production in photobioreactors , 2022, Energy Conversion and Management.
[12] H. Ngo,et al. Phytohormone-like small biomolecules for microalgal biotechnology. , 2022, Trends in biotechnology.
[13] Yangwu Chen,et al. Enhancement of black and odorous water treatment coupled with accelerated lipid production by microalgae exposed to 12C6+ heavy-ion beam irradiation. , 2022, Chemosphere.
[14] Xiaofang Zhu,et al. The Role of Nitric Oxide Signaling in Plant Responses to Cadmium Stress , 2022, International journal of molecular sciences.
[15] P. Show,et al. A critical and recent developments on adsorption technique for removal of heavy metals from wastewater-A review. , 2022, Chemosphere.
[16] Q. Fu,et al. Improved decolorization and mineralization of azo dye in an integrated system of anaerobic bioelectrochemical modules and aerobic moving bed biofilm reactor. , 2022, Bioresource technology.
[17] Liandong Zhu,et al. Response of fungi-microalgae pellets to copper regulation in the removal of sulfonamides and release of dissolved organic matters. , 2022, Journal of hazardous materials.
[18] V. Mishra,et al. Evaluation of the effects of input variables on the growth of two microalgae classes during wastewater treatment. , 2022, Water research.
[19] F. Berninger,et al. Utilization of the microalga Scenedesmus quadricauda for hexavalent chromium bioremediation and biodiesel production. , 2022, Bioresource technology.
[20] A. Fernie,et al. Nitric oxide regulation of plant metabolism. , 2021, Molecular plant.
[21] Gui‐Peng Yang,et al. Effects of nitric oxide on the growth of marine microalgae and carbonate chemistry parameters , 2021, Marine Biology.
[22] Wei-dong Yang,et al. Effective bioremediation of tobacco wastewater by microalgae at acidic pH for synergistic biomass and lipid accumulation. , 2021, Journal of hazardous materials.
[23] Yongteng Zhao,et al. Stimulating biolipid production from the novel alga Ankistrodesmus sp. by coupling salt stress and chemical induction , 2021, Renewable Energy.
[24] Yongteng Zhao,et al. Coupling of myo-inositol with salinity regulates ethylene-induced microalgal lipid hyperproduction in molasses wastewater. , 2021, The Science of the total environment.
[25] M. Nanda,et al. Micro-pollutant Pb(II) mitigation and lipid induction in oleaginous microalgae Chlorella sorokiniana UUIND6 , 2021 .
[26] Bing-Lan Liu,et al. Removal of protein wastes by cylinder-shaped NaY zeolite adsorbents decorated with heavy metal wastes. , 2021, International journal of biological macromolecules.
[27] K. Poluri,et al. Heavy metal detoxification mechanisms by microalgae: Insights from transcriptomics analysis. , 2021, Environmental pollution.
[28] Y. Maltsev,et al. Fatty acids of microalgae: diversity and applications , 2021, Reviews in Environmental Science and Bio/Technology.
[29] P. Show,et al. A review on conventional and novel materials towards heavy metal adsorption in wastewater treatment application , 2021 .
[30] M. Abdullah,et al. Two-stage cultivation of Chlorella vulgaris using light and salt stress conditions for simultaneous production of lipid, carotenoids, and antioxidants , 2020 .
[31] R. Tewari,et al. Evidences for a role of nitric oxide in iron homeostasis in plants. , 2020, Journal of experimental botany.
[32] E. Reguera,et al. Magnetic Prussian Blue derivative like absorbent cages for an efficient thallium removal , 2020 .
[33] Zhenghui Liu,et al. Melatonin improves K+ and Na+ homeostasis in rice under salt stress by mediated nitric oxide. , 2020, Ecotoxicology and environmental safety.
[34] Yongteng Zhao,et al. Hydrogen peroxide and salinity stress act synergistically to enhance lipids production in microalga by regulating reactive oxygen species and calcium , 2020 .
[35] L. Romero,et al. Effect of cadmium in the microalga Chlorella sorokiniana: A proteomic study. , 2020, Ecotoxicology and environmental safety.
[36] Jo-Shu Chang,et al. Microalgal biosorption of heavy metals: A comprehensive bibliometric review. , 2020, Journal of hazardous materials.
[37] Jin Wang,et al. Highly efficient removal of thallium in wastewater by MnFe2O4-biochar composite. , 2020, Journal of hazardous materials.
[38] Guangyi Wang,et al. Reactive oxygen species and their applications toward enhanced lipid accumulation in oleaginous microorganisms. , 2020, Bioresource technology.
[39] Benyong Han,et al. Strigolactone mediates jasmonic acid-induced lipid production in microalga Monoraphidium sp. QLY-1 under nitrogen deficiency conditions. , 2020, Bioresource technology.
[40] Weifeng Song,et al. Response of Bacillus vallismortis sp. EPS to exogenous sulfur stress/ induction and its adsorption performance on Cu(II). , 2020, Chemosphere.
[41] T. Xiao,et al. Zero-valent manganese nanoparticles coupled with different strong oxidants for thallium removal from wastewater , 2020, Frontiers of Environmental Science & Engineering.
[42] Yuting Li,et al. Highly efficient removal of thallium(I) from wastewater via hypochlorite catalytic oxidation coupled with adsorption by hydrochar coated nickel ferrite composite. , 2020, Journal of hazardous materials.
[43] Zhao-hui Yang,et al. Removal of thallium in water/wastewater: A review. , 2019, Water research.
[44] Matias D. Zurbriggen,et al. Apocarotenoids Involved in Plant Development and Stress Response , 2019, Front. Plant Sci..
[45] Benyong Han,et al. Enhancement of lipid accumulation in Monoraphidium sp. QLY-1 by induction of strigolactone. , 2019, Bioresource technology.
[46] Hyung-Gwan Lee,et al. Maximizing biomass and lipid production in Ettlia sp. by ultraviolet stress in a continuous culture. , 2019, Bioresource technology.
[47] M. Megharaj,et al. Acid-tolerant microalgae can withstand higher concentrations of invasive cadmium and produce sustainable biomass and biodiesel at pH 3.5. , 2019, Bioresource technology.
[48] Benyong Han,et al. Influence of cadmium stress on the lipid production and cadmium bioresorption by Monoraphidium sp. QLY-1 , 2019, Energy Conversion and Management.
[49] S. Signorelli,et al. Linking Autophagy to Abiotic and Biotic Stress Responses. , 2019, Trends in plant science.
[50] L. B. Sukla,et al. Biosorption for removal of hexavalent chromium using microalgae Scenedesmus sp. , 2019, Journal of Cleaner Production.
[51] Benyong Han,et al. Coupling of abiotic stresses and phytohormones for the production of lipids and high-value by-products by microalgae: A review. , 2019, Bioresource technology.
[52] J. M. Palma,et al. NADPH Oxidase (Rboh) Activity is Up Regulated during Sweet Pepper (Capsicum annuum L.) Fruit Ripening , 2019, Antioxidants.
[53] John P. Kerekes,et al. Potential of Red Edge Spectral Bands in Future Landsat Satellites on Agroecosystem Canopy Green Leaf Area Index Retrieval , 2018, Remote. Sens..
[54] Xiu-juan Zhao,et al. The effect of NaCl stress on photosynthetic efficiency and lipid production in freshwater microalga-Scenedesmus obliquus XJ002. , 2018, The Science of the total environment.
[55] R. Reiter,et al. Melatonin: A Multifunctional Molecule That Triggers Defense Responses against High Light and Nitrogen Starvation Stress in Haematococcus pluvialis. , 2018, Journal of agricultural and food chemistry.
[56] A. Faraz,et al. Nitric oxide-mediated integrative alterations in plant metabolism to confer abiotic stress tolerance, NO crosstalk with phytohormones and NO-mediated post translational modifications in modulating diverse plant stress. , 2018, Nitric oxide : biology and chemistry.
[57] Fuxing Kang,et al. Nature and Value of Freely Dissolved EPS Ecosystem Services: Insight into Molecular Coupling Mechanisms for Regulating Metal Toxicity. , 2018, Environmental science & technology.
[58] Y. Chang,et al. Isolation, phenotypic characterization and genome wide analysis of a Chlamydomonas reinhardtii strain naturally modified under laboratory conditions: towards enhanced microalgal biomass and lipid production for biofuels , 2017, Biotechnology for Biofuels.
[59] Jingjing Zhan,et al. Effects of metal ions on the cultivation of an oleaginous microalga Chlorella sp. , 2017, Environmental Science and Pollution Research.
[60] Di-yun Chen,et al. Bioremoval of Tl (I) by PVA-ImmobilizedSulfate-Reducing Bacteria , 2017 .
[61] Yongteng Zhao,et al. A strategy for promoting lipid production in green microalgae Monoraphidium sp. QLY-1 by combined melatonin and photoinduction. , 2017, Bioresource technology.
[62] E. Chirwa,et al. Bioreduction of Thallium and Cadmium Toxicity from Industrial Wastewater Using Microalgae , 2017 .
[63] Stephen P. Long,et al. Improving photosynthesis and crop productivity by accelerating recovery from photoprotection , 2016, Science.
[64] Y. Zhuang,et al. Salt stress induced lipid accumulation in heterotrophic culture cells of Chlorella protothecoides: Mechanisms based on the multi-level analysis of oxidative response, key enzyme activity and biochemical alteration. , 2016, Journal of biotechnology.
[65] H. Pereira,et al. Assessment and comparison of the properties of biodiesel synthesized from three different types of wet microalgal biomass , 2016, Journal of Applied Phycology.
[66] Lei Zhao,et al. Hydrogen and lipid production from starch wastewater by co-culture of anaerobic sludge and oleaginous microalgae with simultaneous COD, nitrogen and phosphorus removal. , 2015, Water research.
[67] Qingsu Cheng,et al. Nitric oxide contributes to minerals absorption, proton pumps and hormone equilibrium under cadmium excess in Trifolium repens L. plants. , 2015, Ecotoxicology and environmental safety.
[68] J. Feijó,et al. Nitric oxide: a multitasked signaling gas in plants. , 2015, Molecular plant.
[69] M. Delledonne,et al. Glutathione synthesis is regulated by nitric oxide in Medicago truncatula roots , 2007, Planta.
[70] A. Bokhari,et al. Production of lipids biosynthesis from Tetradesmus nygaardii microalgae as a feedstock for biodiesel production , 2022, Fuel.
[71] D. Xing,et al. Enhanced semi-continuous hydrogen production by addition of microplastics under mesophilic and thermophilic fermentation , 2022, Fuel.
[72] Bing-feng Liu,et al. Overview on stress-induced strategies for enhanced microalgae lipid production: Application, mechanisms and challenges , 2022, Resources, Conservation and Recycling.
[73] Yanfeng Gu,et al. Ultrasound echocardiography despeckling with non-local means time series filter , 2014, Neurocomputing.
[74] Wenying Wang,et al. Exogenous nitric oxide improves antioxidative capacity and reduces auxin degradation in roots of Medicago truncatula seedlings under cadmium stress , 2009, Plant and Soil.