The roles of bacteria in resource recovery, wastewater treatment and carbon fixation by microalgae-bacteria consortia: A critical review
暂无分享,去创建一个
Meng-Ting Chang | Chun-hua Zhang | Y. Ge | Sadiq Naveed | Siting Wang | Xinyu Pei | Q. Yu | Yanping Wei
[1] Q. Hu,et al. Enhanced brewery wastewater purification and microalgal production through algal-bacterial synergy , 2022, Journal of Cleaner Production.
[2] Yuwen Yang,et al. Growth promotion of Chlorella by symbiotic bacteria under adverse environments , 2022, Algal Research.
[3] Xinyu Zhu,et al. The interactions between microalgae and wastewater indigenous bacteria for treatment and valorization of brewery wastewater , 2022, Resources, Conservation and Recycling.
[4] Yu Hong,et al. Performance and mechanism of Chlorella in swine wastewater treatment: roles of nitrogen-phosphorus ratio adjustment and indigenous bacteria. , 2022, Bioresource technology.
[5] Y. Liu,et al. Deciphering the effect of algae sources on the formation of algal-bacterial granular sludge: Endogenous versus exogenous algae , 2022, Journal of Cleaner Production.
[6] P. S. Chandrashekharaiah,et al. Algae-bacterial aquaculture can enhance heavy metals (Pb2+ and Cd2+) remediation and water re-use efficiency of synthetic streams , 2022, Resources, Conservation and Recycling.
[7] V. Gadhamshetty,et al. A comprehensive review on the use of algal-bacterial systems for wastewater treatment with emphasis on nutrient and micropollutant removal , 2022, Bioengineered.
[8] A. M. Zafar,et al. Regulate oxygen concentration using a co-culture of activated sludge bacteria and Chlorella vulgaris to maximize biophotolytic hydrogen production , 2022, Algal Research.
[9] F. Choix,et al. Chemical and Physical Affinity of Microalga–Azospirillum Consortium Co-cultured in Suspension During CO2 Fixation from Biogas , 2022, BioEnergy Research.
[10] Shih‐Hsin Ho,et al. Emerging biological wastewater treatment using microalgal-bacterial granules: A review. , 2022, Bioresource technology.
[11] Yung-Hun Yang,et al. An overview on microalgal-bacterial granular consortia for resource recovery and wastewater treatment. , 2022, Bioresource technology.
[12] N. Mallick,et al. Trends and advances in sustainable bioethanol production by marine microalgae: A critical review , 2022, Journal of Cleaner Production.
[13] Lu Wang,et al. Symbiotic treatment of ammonia-nitrogen wastewater by algae and activated sludge: effects of algae and sludge inoculation rates , 2022, Environmental technology.
[14] A. Zhang,et al. Utilization of N-Acyl Homoserine Lactone-Secreting Bacteria in Algal Environment to Increase Biomass Accumulation of Chlorella , 2022, BioEnergy Research.
[15] Chiu‐Wen Chen,et al. Algae as an emerging source of bioactive pigments. , 2022, Bioresource technology.
[16] Xiaogang You,et al. Sustainability and carbon neutrality trends for microalgae-based wastewater treatment: A review. , 2022, Environmental research.
[17] L. de-Bashan,et al. Microalga Growth-Promoting Bacteria (MGPB): A formal term proposed for beneficial bacteria involved in microalgal–bacterial interactions , 2022, Algal Research.
[18] J. Maroušek,et al. Revisiting competitiveness of hydrogen and algae biodiesel , 2022, Fuel.
[19] Muhammad Abdul Qyyum,et al. Valorization of algal cells for biomass and bioenergy production from wastewater: Sustainable strategies, challenges, and techno-economic limitations , 2022, Renewable and Sustainable Energy Reviews.
[20] Jiale Wang,et al. Using algae bacteria consortia to effectively treat coking wastewater: Performance, microbial community, and mechanism , 2021, Journal of Cleaner Production.
[21] Asad A. Zaidi,et al. The role of oxygen regulation and algal growth parameters in hydrogen production via biophotolysis , 2021, Journal of Environmental Chemical Engineering.
[22] P. Show,et al. CO2 mitigation and phycoremediation of industrial flue gas and wastewater via microalgae-bacteria consortium: Possibilities and challenges , 2021 .
[23] Cheng-Hua Liu,et al. CO2 improves the microalgal-bacterial granular sludge towards carbon-negative wastewater treatment. , 2021, Water Research.
[24] Pau Loke Show,et al. Recent advances biodegradation and biosorption of organic compounds from wastewater: microalgae-bacteria consortium - A Review. , 2021, Bioresource technology.
[25] J. Crittenden,et al. Technology status and trends of industrial wastewater treatment: A patent analysis. , 2021, Chemosphere.
[26] Wei Han,et al. A bacterial strain Citrobacter W4 facilitates the bio-flocculation of wastewater cultured microalgae Chlorella pyrenoidosa. , 2021, The Science of the total environment.
[27] Liqun Jiang,et al. Algal–bacterial consortia for bioproduct generation and wastewater treatment , 2021 .
[28] Shih‐Hsin Ho,et al. Converting nitrogen and phosphorus wastewater into bioenergy using microalgae-bacteria consortia: a critical review. , 2021, Bioresource technology.
[29] Chun-hua Zhang,et al. Effects of algal–bacterial ratio on the growth and cadmium accumulation of Chlorella salina–Bacillus subtilis consortia , 2021, Journal of basic microbiology.
[30] L. Deng,et al. Constructed microalgal-bacterial symbiotic (MBS) system: Classification, performance, partnerships and perspectives. , 2021, The Science of the total environment.
[31] R. Gautam,et al. A comparative study of the growth of microalgae-bacteria symbiotic consortium with the axenic culture of microalgae in dairy wastewater through extraction and quantification of chlorophyll , 2021, Materials Today: Proceedings.
[32] Brendan T. Higgins,et al. Interactions of microalgae-bacteria consortia for nutrient removal from wastewater: A review. , 2021, Chemosphere.
[33] Meilin He,et al. Co-culture of bacteria and microalgae for treatment of high concentration biogas slurry , 2021 .
[34] K. Poluri,et al. Heavy metal detoxification mechanisms by microalgae: Insights from transcriptomics analysis. , 2021, Environmental pollution.
[35] Kaiwei Xu,et al. The impact of seasonal variations about temperature and photoperiod on the treatment of municipal wastewater by algae-bacteria system in lab-scale , 2021 .
[36] Haixin Peng,et al. Comparison of algae growth and symbiotic mechanisms in the presence of plant growth promoting bacteria and non-plant growth promoting bacteria , 2021 .
[37] J. Clardy,et al. Bacterial diketopiperazines stimulate diatom growth and lipid accumulation. , 2021, Plant physiology.
[38] Weiling Sun,et al. Pollutants affect algae-bacteria interactions: A critical review. , 2021, Environmental pollution.
[39] R. Naidu,et al. Microalgal-bacterial consortia unveil distinct physiological changes to facilitate growth of microalgae. , 2021, FEMS microbiology ecology.
[40] J. Pandhal,et al. Adapting the algal microbiome for growth on domestic landfill leachate. , 2021, Bioresource technology.
[41] Jo‐Shu Chang,et al. Prospects and development of algal-bacterial biotechnology in environmental management and protection. , 2020, Biotechnology advances.
[42] R. Mu,et al. Advances in the use of microalgal–bacterial consortia for wastewater treatment: Community structures, interactions, economic resource reclamation, and study techniques , 2020, Water environment research : a research publication of the Water Environment Federation.
[43] Jibiao Zhang,et al. Effects of exogenous vitamin B12 on nutrient removal and protein expression of algal-bacterial consortium , 2020, Environmental Science and Pollution Research.
[44] Yuting Shi,et al. Microalgal-bacterial granular sludge process outperformed aerobic granular sludge process in municipal wastewater treatment with less carbon dioxide emissions , 2020, Environmental Science and Pollution Research.
[45] W. Kiatkittipong,et al. Comparative Performances of Microalgal-Bacterial Co-Cultivation to Bioremediate Synthetic and Municipal Wastewaters Whilst Producing Biodiesel Sustainably , 2020 .
[46] A. Sial,et al. Microalgal–Bacterial Synergistic Interactions and Their Potential Influence in Wastewater Treatment: a Review , 2020, BioEnergy Research.
[47] R. Guo,et al. Utilization of chemical wastewater for CO2 emission reduction: Purified terephthalic acid (PTA) wastewater-mediated culture of microalgae for CO2 bio-capture , 2020 .
[48] A. Bhatnagar,et al. Application of Nordic microalgal-bacterial consortia for nutrient removal from wastewater , 2020 .
[49] Brendan T. Higgins,et al. Algae support populations of heterotrophic, nitrifying, and phosphate-accumulating bacteria in the treatment of poultry litter anaerobic digestate , 2020 .
[50] Chun-hua Zhang,et al. [Differences in the tolerance and accumulation of arsenate in the consortia with various proportions of Chlorella salina and Bacillus subtilis]. , 2020, Ying yong sheng tai xue bao = The journal of applied ecology.
[51] N. Cui,et al. Isolation and identification of a novel strain of Heveochlorella sp. and presentation of its capacity as biodiesel feedstock , 2020 .
[52] E. Grima,et al. Year-long assessment of a pilot-scale thin-layer reactor for microalgae wastewater treatment. Variation in the microalgae-bacteria consortium and the impact of environmental conditions , 2020 .
[53] Dabin Guo,et al. Comparative and comprehensive analysis on bacterial communities of two full-scale wastewater treatment plants by second and third-generation sequencing , 2020 .
[54] S. Sayadi,et al. Efficiency of benthic diatom-associated bacteria in the removal of benzo(a)pyrene and fluoranthene. , 2020, The Science of the total environment.
[55] P. Schenk,et al. Growth-promoting bacteria double eicosapentaenoic acid yield in microalgae. , 2020, Bioresource technology.
[56] Yongjun Zhao,et al. Co-culturing microalgae with endophytic bacteria increases nutrient removal efficiency for biogas purification. , 2020, Bioresource technology.
[57] H. Ngo,et al. Co-culture of microalgae-activated sludge for wastewater treatment and biomass production: Exploring their role under different inoculation ratios. , 2020, Bioresource technology.
[58] K. Vandepoele,et al. Distinctive Growth and Transcriptional Changes of the Diatom Seminavis robusta in Response to Quorum Sensing Related Compounds , 2020, Frontiers in Microbiology.
[59] Swati,et al. Development of artificial consortia of microalgae and bacteria for efficient biodegradation and detoxification of lindane , 2020 .
[60] Noor Irma Nazashida Mohd Hakimi,et al. Microalgae-bacteria interaction in palm oil mill effluent treatment , 2020 .
[61] Yeyuan Xiao,et al. Resuscitation, isolation and immobilization of bacterial species for efficient textile wastewater treatment: A critical review and update. , 2020, The Science of the total environment.
[62] Yuanyuan Wang,et al. Screening of a Chlorella-bacteria consortium and research on piggery wastewater purification , 2020 .
[63] Y. Bashan,et al. Indole-3-acetic acid from Azosprillum brasilense promotes growth in green algae at the expense of energy storage products , 2020 .
[64] Yingqun Ma,et al. A self-sustaining synergetic microalgal-bacterial granular sludge process towards energy-efficient and environmentally sustainable municipal wastewater treatment. , 2020, Water research.
[65] G. Tian,et al. Characteristics and performances of microalgal-bacterial consortia in a mixture of raw piggery digestate and anoxic aerated effluent. , 2020, Bioresource technology.
[66] Tian Ding,et al. Quorum-Sensing Regulation of Antimicrobial Resistance in Bacteria , 2020, Microorganisms.
[67] Ruirun Chen,et al. Aeration-induced CO2 stripping, instead of high dissolved oxygen, have a negative impact on algae–bacteria symbiosis (ABS) system stability and wastewater treatment efficiency , 2020 .
[68] Tian C. Zhang,et al. Performance of Chlorella sorokiniana-activated sludge consortium treating wastewater under light-limited heterotrophic condition , 2020 .
[69] Haotian Ma,et al. [Symbiotic bacteria facilitate algal growth and oil biosynthesis in Scenedesmus obliquus]. , 2020, Ying yong sheng tai xue bao = The journal of applied ecology.
[70] J. Tay,et al. Microalgal-bacterial consortia: From interspecies interactions to biotechnological applications , 2020 .
[71] H. Cui,et al. Unsterilized sewage treatment and carbohydrate accumulation in Tetradesmus obliquus PF3 with CO2 supplementation , 2020 .
[72] Paul Chen,et al. Co-culture of Chlorella and wastewater-borne bacteria in vinegar production wastewater: Enhancement of nutrients removal and influence of algal biomass generation , 2020 .
[73] S. Bhat,et al. Effect of heavy metals on the performance and bacterial profiles of activated sludge in a semi-continuous reactor. , 2020, Chemosphere.
[74] L. Pagnussat,et al. Auxin-dependent alleviation of oxidative stress and growth promotion of Scenedesmus obliquus C1S by Azospirillum brasilense , 2019, bioRxiv.
[75] John L. Zhou,et al. Comprehensive review of polycyclic aromatic hydrocarbons in water sources, their effects and treatments. , 2019, The Science of the total environment.
[76] Y. Bashan,et al. Riboflavin and lumichrome exuded by the bacterium Azospirillum brasilense promote growth and changes in metabolites in Chlorella sorokiniana under autotrophic conditions , 2019 .
[77] Z. Lei,et al. Microalgal-bacterial aggregates for wastewater treatment: A mini-review , 2019 .
[78] Wenshan Guo,et al. New perspectives on microbial communities and biological nitrogen removal processes in wastewater treatment systems. , 2019, Bioresource technology.
[79] Sang Min Kim,et al. Interaction between marine bacterium Stappia sp. K01 and diatom Phaeodactylum tricornutum through extracellular fatty acids , 2019, Journal of Applied Phycology.
[80] Guanyi Chen,et al. The interactions of algae-activated sludge symbiotic system and its effects on wastewater treatment and lipid accumulation. , 2019, Bioresource technology.
[81] Tiangang Luan,et al. Pyrene metabolites by bacterium enhancing cell division of green alga Selenastrum capricornutum. , 2019, The Science of the total environment.
[82] Koji Yamada,et al. Enhanced production of biomass and lipids by Euglena gracilis via co-culturing with a microalga growth-promoting bacterium, Emticicia sp. EG3 , 2019, Biotechnology for Biofuels.
[83] R. Roy,et al. The response of Prorocentrum sigmoides and its associated culturable bacteria to metals and organic pollutants , 2019, Journal of basic microbiology.
[84] Zhenhong Yuan,et al. Cultivation of Chlorella vulgaris on unsterilized dairy-derived liquid digestate for simultaneous biofuels feedstock production and pollutant removal. , 2019, Bioresource technology.
[85] Deshuang Yu,et al. Evaluating the potential for sustaining mainstream anammox by endogenous partial denitrification and phosphorus removal for energy-efficient wastewater treatment. , 2019, Bioresource technology.
[86] G. Pohnert,et al. Algae-bacteria interactions that balance the planktonic microbiome. , 2019, The New phytologist.
[87] H. Oh,et al. Bacterial community enhances flocculation efficiency of Ettlia sp. by altering extracellular polymeric substances profile. , 2019, Bioresource technology.
[88] F. Meng,et al. Roles of quorum sensing in biological wastewater treatment: A critical review. , 2019, Chemosphere.
[89] L. Chai,et al. Multi-omics response of Pannonibacter phragmitetus BB to hexavalent chromium. , 2019, Environmental pollution.
[90] Chaofeng Lin,et al. Algal-Bacterial Symbiosis System Treating High-Load Printing and Dyeing Wastewater in Continuous-Flow Reactors under Natural Light , 2019, Water.
[91] H. Saiyin,et al. The collaborative effect of Chlorella vulgaris-Bacillus licheniformis consortia on the treatment of municipal water. , 2019, Journal of hazardous materials.
[92] Hailei Wang,et al. The effect of recycling culture medium after harvesting of Chlorella vulgaris biomass by flocculating bacteria on microalgal growth and the functionary mechanism. , 2019, Bioresource technology.
[93] P. Show,et al. Bioflocculation formation of microalgae-bacteria in enhancing microalgae harvesting and nutrient removal from wastewater effluent. , 2019, Bioresource technology.
[94] A. Schramm,et al. Microalgae–bacteria symbiosis in microalgal growth and biofuel production: a review , 2018, Journal of applied microbiology.
[95] Yingxin Zhao,et al. Application of aerobic granules-continuous flow reactor for saline wastewater treatment: Granular stability, lipid production and symbiotic relationship between bacteria and algae. , 2019, Bioresource technology.
[96] C. Leboulanger,et al. Influence of bacteria on the response of microalgae to contaminant mixtures. , 2018, Chemosphere.
[97] S. Sørensen,et al. How Microbial Aggregates Protect against Nanoparticle Toxicity. , 2018, Trends in biotechnology.
[98] Heng Liang,et al. Biodiesel production with the simultaneous removal of nitrogen, phosphorus and COD in microalgal-bacterial communities for the treatment of anaerobic digestion effluent in photobioreactors , 2018, Chemical Engineering Journal.
[99] Kisay Lee,et al. Exploring the potential of microalgae for new biotechnology applications and beyond: A review , 2018, Renewable and Sustainable Energy Reviews.
[100] Sandhya Mishra,et al. Co-cultivation of siderophore-producing bacteria Idiomarina loihiensis RS14 with Chlorella variabilis ATCC 12198, evaluation of micro-algal growth, lipid, and protein content under iron starvation , 2018, Journal of Applied Phycology.
[101] R. Naidu,et al. Consortia of cyanobacteria/microalgae and bacteria in desert soils: an underexplored microbiota , 2018, Applied Microbiology and Biotechnology.
[102] Guangxue Wu,et al. Enhanced microalgae growth through stimulated secretion of indole acetic acid by symbiotic bacteria , 2018, Algal Research.
[103] Lili Xu,et al. Enhanced Lipid Production in Chlamydomonas reinhardtii by Co-culturing With Azotobacter chroococcum , 2018, Front. Plant Sci..
[104] K. Sei,et al. Growth promotion of three microalgae, Chlamydomonas reinhardtii, Chlorella vulgaris and Euglena gracilis, by in situ indigenous bacteria in wastewater effluent , 2018, Biotechnology for Biofuels.
[105] O. Fiehn,et al. Algal–bacterial synergy in treatment of winery wastewater , 2018, npj Clean Water.
[106] Lili Wei,et al. Characteristics and performance of aerobic algae-bacteria granular consortia in a photo-sequencing batch reactor. , 2018, Journal of hazardous materials.
[107] Fangyan Wu,et al. Algal-bacterial cooperation improves algal photolysis-mediated hydrogen production. , 2018, Bioresource technology.
[108] S. Parkkila,et al. An Update on the Metabolic Roles of Carbonic Anhydrases in the Model Alga Chlamydomonas reinhardtii , 2018, Metabolites.
[109] B. Adormaa,et al. Greenhouse Effect: Greenhouse Gases and Their Impact on Global Warming , 2018 .
[110] Pengfei Sun,et al. Microorganisms-based methods for harmful algal blooms control: A review. , 2018, Bioresource technology.
[111] Xuyao Jiang,et al. The interactions of algae-bacteria symbiotic system and its effects on nutrients removal from synthetic wastewater. , 2018, Bioresource technology.
[112] M. Megharaj,et al. Microalgae–bacteria biofilms: a sustainable synergistic approach in remediation of acid mine drainage , 2017, Applied Microbiology and Biotechnology.
[113] P. Tandon,et al. A promising approach to enhance microalgae productivity by exogenous supply of vitamins , 2017, Microbial Cell Factories.
[114] Lili Xu,et al. Effect of co-cultivation of Chlamydomonas reinhardtii with Azotobacter chroococcum on hydrogen production , 2017 .
[115] J. Pires,et al. A review on the use of microalgal consortia for wastewater treatment , 2017 .
[116] M. Hamdi,et al. Feasibility of carbon dioxide sequestration by Spongiochloris sp microalgae during petroleum wastewater treatment in airlift bioreactor. , 2017, Bioresource technology.
[117] R. Stocker,et al. Zooming in on the phycosphere: the ecological interface for phytoplankton–bacteria relationships , 2017, Nature Microbiology.
[118] Muhammad Rizwan,et al. Removal of nutrients and COD from wastewater using symbiotic co-culture of bacterium Pseudomonas putida and immobilized microalga Chlorella vulgaris , 2017 .
[119] Lili Xu,et al. Co-cultivation of Chlamydomonas reinhardtii with Azotobacter chroococcum improved H2 production , 2017, Biotechnology Letters.
[120] M. Farag,et al. Enhanced performance of the microalga Chlorella sorokiniana remotely induced by the plant growth-promoting bacteria Azospirillum brasilense and Bacillus pumilus , 2017, Scientific Reports.
[121] A. Kaushik,et al. Exploiting Biohydrogen Pathways of Cyanobacteria and Green Algae: An Industrial Production Approach , 2017 .
[122] Ya Wang,et al. A symbiotic bacterium differentially influences arsenate absorption and transformation in Dunaliella salina under different phosphate regimes. , 2016, Journal of hazardous materials.
[123] Raphaël Lami,et al. Quorum Sensing and Quorum Quenching in the Phycosphere of Phytoplankton: a Case of Chemical Interactions in Ecology , 2016, Journal of Chemical Ecology.
[124] Xianglong Liu,et al. The algicidal activity of Aeromonas sp. strain GLY-2107 against bloom-forming Microcystis aeruginosa is regulated by N-acyl homoserine lactone-mediated quorum sensing. , 2016, Environmental microbiology.
[125] Marcel Suleiman,et al. Interkingdom Cross-Feeding of Ammonium from Marine Methylamine-Degrading Bacteria to the Diatom Phaeodactylum tricornutum , 2016, Applied and Environmental Microbiology.
[126] Lili Xu,et al. Improved hydrogen production and biomass through the co-cultivation of Chlamydomonas reinhardtii and Bradyrhizobium japonicum , 2016 .
[127] Y. Bashan,et al. Tryptophan, thiamine and indole-3-acetic acid exchange between Chlorella sorokiniana and the plant growth-promoting bacterium Azospirillum brasilense. , 2016, FEMS microbiology ecology.
[128] F. Choix,et al. Influence of tryptophan and indole-3-acetic acid on starch accumulation in the synthetic mutualistic Chlorella sorokiniana-Azospirillum brasilense system under heterotrophic conditions. , 2016, Research in microbiology.
[129] J. Todd,et al. Enzymatic breakage of dimethylsulfoniopropionate-a signature molecule for life at sea. , 2016, Current opinion in chemical biology.
[130] D. Anderson,et al. Quorum Sensing Is a Language of Chemical Signals and Plays an Ecological Role in Algal-Bacterial Interactions , 2016, Critical reviews in plant sciences.
[131] Dezhi Sun,et al. Assessment of greenhouse gas emission from A/O and SBR wastewater treatment plants in Beijing, China , 2016 .
[132] Iulian Zoltan Boboescu,et al. Surpassing the current limitations of biohydrogen production systems: The case for a novel hybrid approach. , 2016, Bioresource technology.
[133] Zhou Jin,et al. Quorum sensing modulating algae-bacteria interactions , 2016 .
[134] M. Allen,et al. Characterisation of algicidal bacterial exometabolites against the lipid-accumulating diatom Skeletonema sp. , 2016 .
[135] H. Oh,et al. Algae-bacteria interactions: Evolution, ecology and emerging applications. , 2016, Biotechnology advances.
[136] Y. Bashan,et al. Enhancement of thiamine release during synthetic mutualism between Chlorella sorokiniana and Azospirillum brasilense growing under stress conditions , 2016, Journal of Applied Phycology.
[137] I. Caçador,et al. Growth, chlorophyll fluorescence and mineral nutrition in the halophyte Tamarix gallica cultivated in combined stress conditions: Arsenic and NaCl. , 2015, Journal of photochemistry and photobiology. B, Biology.
[138] Jignasa Patel,et al. Enhancement of pyrene degradation efficacy of Synechocystis sp., by construction of an artificial microalgal-bacterial consortium , 2015 .
[139] M. A. Moran,et al. Interaction and signalling between a cosmopolitan phytoplankton and associated bacteria , 2015, Nature.
[140] Kamalesh Kumar,et al. Microalgae - A promising tool for heavy metal remediation. , 2015, Ecotoxicology and environmental safety.
[141] F. Azam,et al. Vitamin B1 ecophysiology of marine picoeukaryotic algae: Strain‐specific differences and a new role for bacteria in vitamin cycling , 2015 .
[142] T. Wood,et al. Quorum sensing enhancement of the stress response promotes resistance to quorum quenching and prevents social cheating , 2014, The ISME Journal.
[143] N. Tam,et al. Pyrene degradation accelerated by constructed consortium of bacterium and microalga: effects of degradation products on the microalgal growth. , 2014, Environmental science & technology.
[144] H. Oh,et al. Role of Rhizobium, a plant growth promoting bacterium, in enhancing algal biomass through mutualistic interaction , 2014 .
[145] M. Fenice,et al. Biotreatment of olive washing wastewater by a selected microalgal-bacterial consortium , 2014 .
[146] Xiaoli Chai,et al. Characterization of microalgae-bacteria consortium cultured in landfill leachate for carbon fixation and lipid production. , 2014, Bioresource technology.
[147] P. Yin,et al. Algicidal metabolites produced by Bacillus sp. strain B1 against Phaeocystis globosa , 2014, Journal of Industrial Microbiology & Biotechnology.
[148] S. Sasso,et al. Mutualistic interactions between vitamin B12 -dependent algae and heterotrophic bacteria exhibit regulation. , 2012, Environmental microbiology.
[149] Yanyan Su,et al. Synergistic cooperation between wastewater-born algae and activated sludge for wastewater treatment: influence of algae and sludge inoculation ratios. , 2012, Bioresource technology.
[150] N. Boon,et al. Bioflocculation of microalgae and bacteria combined with flue gas to improve sewage treatment. , 2011, New biotechnology.
[151] Ravi Naidu,et al. Consortia of cyanobacteria/microalgae and bacteria: biotechnological potential. , 2011, Biotechnology advances.
[152] G. Pohnert,et al. Interactions of the Algicidal Bacterium Kordia algicida with Diatoms: Regulated Protease Excretion for Specific Algal Lysis , 2011, PloS one.
[153] M. Zapalski. Is absence of proof a proof of absence? Comments on commensalism , 2011 .
[154] James T Hodgkinson,et al. Quorum sensing in Gram-negative bacteria: small-molecule modulation of AHL and AI-2 quorum sensing pathways. , 2011, Chemical reviews.
[155] Richard T. Sayre,et al. Microalgae: The Potential for Carbon Capture , 2010 .
[156] B. Bassler,et al. Bacterial quorum-sensing network architectures. , 2009, Annual review of genetics.
[157] S. Wakelin,et al. The effect of bacteria on the sensitivity of microalgae to copper in laboratory bioassays. , 2009, Chemosphere.
[158] M. Shapira,et al. A Proposed Mechanism for the Inhibitory Effects of Oxidative Stress on Rubisco Assembly and Its Subunit Expression1 , 2005, Plant Physiology.
[159] Huang Qiaoyun,et al. Bacterial bioremediation and bio--detection of heavy metal--contaminated environments , 2004 .
[160] J. Rooney-Varga,et al. Stimulation of Alexandrium fundyense growth by bacterial assemblages from the Bay of Fundy , 2002, Journal of applied microbiology.