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Muthusamy, Sarala DeviORCID iD iconorcid.org/0000-0002-6550-1565
Alternative names
Publications (10 of 10) Show all publications
Muthusamy, S. D., Vetukuri, R. R., Lundgren, A., Kim, S., Kalyandurg, P. B., Strid, Å., . . . Brodelius, P. E. (2026). Heterologous Production of Cyprosin B in Nicotiana benthamiana: Unveiling the Role of the Plant-Specific Insert Domain in Protein Function and Subcellular Localisation. Plant Biotechnology Journal, 24(1), 256-272
Open this publication in new window or tab >>Heterologous Production of Cyprosin B in Nicotiana benthamiana: Unveiling the Role of the Plant-Specific Insert Domain in Protein Function and Subcellular Localisation
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2026 (English)In: Plant Biotechnology Journal, ISSN 1467-7644, E-ISSN 1467-7652, Vol. 24, no 1, p. 256-272Article in journal (Refereed) Published
Abstract [en]

Plant systems have gained increased attention as an alternative platform for producing heterologous proteins, particularly for industrially relevant proteins. The Cynara cardunculus L. flower extract is traditionally used in cheese production across Mediterranean countries due to its milk-clotting properties. To address the growing demand for plant-based milk-clotting enzymes, we investigated the heterologous production of cyprosin B (CYPB), a key milk-clotting enzyme, in Nicotiana benthamiana. We also examined the role of its plant-specific insert (PSI) domain in enzymatic activity, protein yield and subcellular localisation. Full-length CYPB and a PSI domain-deleted variant (CYPB Delta PSI) were transiently expressed in N. benthamiana leaves using agroinfiltration. Proteins were purified 9 days post-infiltration, yielding similar to 81 mg/kg (CYPB) and similar to 60 mg/kg (CYPB Delta PSI) fresh weight. CYPB Delta PSI showed higher proteolytic activity (similar to 168 IU/mg) than CYPB (similar to 57 IU/mg) and exhibited faster milk-clotting times, suggesting that PSI removal may contribute to enhanced enzymatic efficiency. However, additional factors such as altered glycosylation or localisation may also play a role. Subcellular localisation indicated that CYPB and its PSI domain targeted the vacuole and endocytic vesicles, while CYPB Delta PSI predominantly localised to the endoplasmic reticulum and tonoplast. This suggests that the PSI domain's vital role in vacuolar targeting and membrane permeabilisation ultimately influences protein yield. Our study shows N. benthamiana as a scalable platform for producing recombinant CYPB variants with improved enzymatic activity. It highlights the PSI domain's role in vacuolar sorting without impairing function. These findings contribute to the development of plant-based systems for milk-clotting enzymes for cheese-making.

Place, publisher, year, edition, pages
John Wiley & Sons, 2026
Keywords
aspartic protease, cynara cardunculus, cyprosin b, nicotiana benthamiana, plant-specific insert, subcellular localisation, transient expression
National Category
Molecular Biology
Research subject
Natural Science
Identifiers
urn:nbn:se:lnu:diva-141554 (URN)10.1111/pbi.70339 (DOI)001561862000001 ()40891438 (PubMedID)2-s2.0-105015181437 (Scopus ID)
Available from: 2025-09-15 Created: 2025-09-15 Last updated: 2026-03-12Bibliographically approved
Muthusamy, S. D., Vetukuri, R. R., Lundgren, A., Ganji, S., Zhu, L.-H., Brodelius, P. E. & Kanagarajan, S. (2020). Transient expression and purification of β-caryophyllene synthase in Nicotiana benthamiana to produce β-caryophyllene in vitro. PeerJ, 8, 1-21, Article ID e8904.
Open this publication in new window or tab >>Transient expression and purification of β-caryophyllene synthase in Nicotiana benthamiana to produce β-caryophyllene in vitro
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2020 (English)In: PeerJ, E-ISSN 2167-8359, Vol. 8, p. 1-21, article id e8904Article in journal (Refereed) Published
Abstract [en]

The sesquiterpene beta-caryophyllene is an ubiquitous component in many plants that has commercially been used as an aroma in cosmetics and perfumes. Recent studies have shown its potential use as a therapeutic agent and biofuel. Currently, beta-caryophyllene is isolated from large amounts of plant material. Molecular farming based on the Nicotiana benthamiana transient expression system may be used for a more sustainable production of beta-caryophyllene. In this study, a full-length cDNA of a new duplicated beta-caryophyllene synthase from Artemisia annua (AaCPS1) was isolated and functionally characterized. In order to produce beta-caryophyllene in vitro, the AaCPS1 was cloned into a plant viral-based vector pEAQ-HT. Subsequently, the plasmid was transferred into the Agrobacterium and agroinfiltrated into N. benthamiana leaves. The AaCPS1 expression was analyzed by quantitative PCR at different time points after agroinfiltration. The highest level of transcripts was observed at 9 days post infiltration (dpi). The AaCPS1 protein was extracted from the leaves at 9 dpi and purified by cobalt-nitrilotriacetate (Co-NTA) affinity chromatography using histidine tag with a yield of 89 mg kg(-1). fresh weight of leaves. The protein expression of AaCPS1 was also confirmed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis (SDS-PAGE) and western blot analyses. AaCPS1 protein uses farnesyl diphosphate (FPP) as a substrate to produce p-caryophyllene. Product identification and determination of the activity of purified AaCPS1 were done by gas chromatography-mass spectrometry (GC-MS). GC-MS results revealed that the AaCPS1 produced maximum 26.5 +/- 1 mg of P-caryophyllene per kilogram fresh weight of leaves after assaying with FPP for 6 h. Using AaCPS1 as a proof of concept, we demonstrate that N. benthamiana can be considered as an expression system for production of plant proteins that catalyze the formation of valuable chemicals for industrial applications.

Place, publisher, year, edition, pages
PeerJ, 2020
Keywords
Artemisia annua, Sesquiterpene synthase, AaCPS1, Phylogenetics, Terpenoids, Nicotiana benthamiana, Transient expression, beta-caryophyllene synthase
National Category
Biochemistry Molecular Biology
Research subject
Chemistry, Biochemistry
Identifiers
urn:nbn:se:lnu:diva-94816 (URN)10.7717/peerj.8904 (DOI)000529067400002 ()32377446 (PubMedID)2-s2.0-85085929840 (Scopus ID)
Available from: 2020-05-18 Created: 2020-05-18 Last updated: 2025-05-06Bibliographically approved
Muthusamy, S. D., Lundin, D., Branca, R. M., Baltar, F., Gonzalez, J. M., Lehtio, J. & Pinhassi, J. (2017). Comparative proteomics reveals signature metabolisms of exponentially growing and stationary phase marine bacteria. Environmental Microbiology, 19(6), 2301-2319
Open this publication in new window or tab >>Comparative proteomics reveals signature metabolisms of exponentially growing and stationary phase marine bacteria
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2017 (English)In: Environmental Microbiology, ISSN 1462-2912, E-ISSN 1462-2920, Vol. 19, no 6, p. 2301-2319Article, review/survey (Refereed) Published
Abstract [en]

Much of the phenotype of a microorganism consists of its repertoire of metabolisms and how and when its proteins are deployed under different growth conditions. Hence, analyses of protein expression could provide important understanding of how bacteria adapt to different environmental settings. To characterize the flexibility of proteomes of marine bacteria, we investigated protein profiles of three important marine bacterial lineages - Oceanospirillaceae (Neptuniibacter caesariensis strain MED92), Roseobacter (Phaeobacter sp. MED193) and Flavobacteria (Dokdonia sp. MED134) - during transition from exponential to stationary phase. As much as 59-80% of each species' total proteome was expressed. Moreover, all three bacteria profoundly altered their expressed proteomes during growth phase transition, from a dominance of proteins involved in translation to more diverse proteomes, with a striking appearance of enzymes involved in different nutrient-scavenging metabolisms. Whereas the three bacteria shared several overarching metabolic strategies, they differed in important details, including distinct expression patterns of membrane transporters and proteins in carbon and phosphorous metabolism and storage compounds. These differences can be seen as signature metabolisms - metabolisms specific for lineages. These findings suggest that quantitative proteomics can inform about the divergent ecological strategies of marine bacteria in adapting to changes in environmental conditions.

Place, publisher, year, edition, pages
Wiley-Blackwell, 2017
National Category
Microbiology
Research subject
Ecology, Microbiology
Identifiers
urn:nbn:se:lnu:diva-66909 (URN)10.1111/1462-2920.13725 (DOI)000404007700018 ()2-s2.0-85017121020 (Scopus ID)
Available from: 2017-07-13 Created: 2017-07-13 Last updated: 2025-09-23Bibliographically approved
Vaquer-Sunyer, R., Reader, H. E., Muthusamy, S. D., Lindh, M. V., Pinhassi, J., Conley, D. J. & Kritzberg, E. S. (2016). Effects of wastewater treatment plant effluent inputs on planktonic metabolic rates and microbial community composition in the Baltic Sea. Biogeosciences, 13(16), 4751-4765
Open this publication in new window or tab >>Effects of wastewater treatment plant effluent inputs on planktonic metabolic rates and microbial community composition in the Baltic Sea
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2016 (English)In: Biogeosciences, ISSN 1726-4170, E-ISSN 1726-4189, Vol. 13, no 16, p. 4751-4765Article in journal (Refereed) Published
Abstract [en]

The Baltic Sea is the world's largest area suffering from eutrophication-driven hypoxia. Low oxygen levels are threatening its biodiversity and ecosystem functioning. The main causes for eutrophication-driven hypoxia are high nutrient loadings and global warming. Wastewater treatment plants (WWTP) contribute to eutrophication as they are important sources of nitrogen to coastal areas. Here, we evaluated the effects of wastewater treatment plant effluent inputs on Baltic Sea planktonic communities in four experiments. We tested for effects of effluent inputs on chlorophyll a content, bacterial community composition, and metabolic rates: gross primary production (GPP), net community production (NCP), community respiration (CR) and bacterial production (BP). Nitrogen-rich dissolved organic matter (DOM) inputs from effluents increased bacterial production and decreased primary production and community respiration. Nutrient amendments and seasonally variable environmental conditions lead to lower alpha-diversity and shifts in bacterial community composition (e.g. increased abundance of a few cyanobacterial populations in the summer experiment), concomitant with changes in metabolic rates. An increase in BP and decrease in CR could be caused by high lability of the DOM that can support secondary bacterial production, without an increase in respiration. Increases in bacterial production and simultaneous decreases of primary production lead to more carbon being consumed in the microbial loop, and may shift the ecosystem towards heterotrophy.

National Category
Ecology
Research subject
Ecology, Aquatic Ecology
Identifiers
urn:nbn:se:lnu:diva-57461 (URN)10.5194/bg-13-4751-2016 (DOI)000383799000003 ()2-s2.0-84983801370 (Scopus ID)
Available from: 2016-10-25 Created: 2016-10-19 Last updated: 2025-09-23Bibliographically approved
Muthusamy, S. D. (2016). Functional Profiling Of Metabolic Regulation In Marine Bacteria. (Doctoral dissertation). Växjö: Linnaeus University Press
Open this publication in new window or tab >>Functional Profiling Of Metabolic Regulation In Marine Bacteria
2016 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Oceans are powered by active, metabolically diverse microorganisms, which are important in regulating biogeochemical cycles on Earth. Most of the ocean surface is often limited by nutrients, influencing bacterial growth and activities. Bacterial adaptation to fluctuating environmental conditions involves extensive reprogramming, and redirection of bacterial metabolism and physiology. In this thesis, I investigated the molecular mechanisms of bacterial adaptation strategies to sustain their growth and survival, focusing on the regulation of gene and protein expression in heterotrophic marine bacteria.

Comparative proteomics analyses of the growth and non-growth conditions, uncovered central adaptations that marine bacteria employ to allow them to change their metabolism to support exponential growth in response to nutrients and to readjust to stationary phase under nutrient limitation. Our results highlight that during nutrient rich conditions three distinct bacteria lineages have great similarities in their proteome. On the other hand, we observed pronounced differences in behavior between taxa during stationary phase.

Analyses of the proteorhodopsin containing bacterium Vibrio sp. AND4 during starvation showed that significantly improved survival in the light compared to darkness. Notably, proteins involved in promoting cell vitality and survival had higher relative abundance under light. In contrast, cells in the dark need to degrade their endogenous resources to support their basic cellular demands under starvation. Thus, light strongly influences how PR-containing bacteria organize their molecular composition in response to starvation.

Study of alternative energy generation metabolisms in the Alphaproteobacteria Phaeobacter sp. MED193 showed that the addition of thiosulfate enhanced the bacterial growth yields. Concomitantly, inorganic sulfur oxidation gene expression increased with thiosulfate compared to controls. Moreover, thiosulfate stimulated protein synthesis and anaplerotic CO2 fixation. These findings imply that this bacterium could use their lithotrophic potential to gain additional energy from sulfur oxidation for both improving their growth and survival.

This thesis concludes that analyses in model organisms under defined growth conditions gives invaluable knowledge about the regulatory networks and physiological strategies that ensure the growth and survival of heterotrophic bacteria. This is critically important for interpreting bacterial responses to dynamic environmental changes.

Moreover, these analyses are crucial for understanding genetic and proteomic responses in microbial communities or uncultivated organisms in terms of defining ecological niches of planktonic bacteria

Place, publisher, year, edition, pages
Växjö: Linnaeus University Press, 2016. p. 152
Series
Linnaeus University Dissertations ; 245
Keywords
marine microbiology, physiology, heterotrophic bacteria, adaptive strategies, survival, proteomics, growth phase, proteorhodopsin, inorganic sulphur oxidation, anaplerotic CO2 fixation
National Category
Microbiology
Research subject
Natural Science, Environmental Science
Identifiers
urn:nbn:se:lnu:diva-58257 (URN)9789188357076 (ISBN)
Public defence
2016-05-20, Fullriggaren, Kalmar, 09:30 (English)
Opponent
Supervisors
Available from: 2016-11-24 Created: 2016-11-22 Last updated: 2025-02-05Bibliographically approved
Lindh, M. V., Sjöstedt, J., Andersson, A. F., Baltar, F., Hugerth, L., Lundin, D., . . . Pinhassi, J. (2015). Disentangling seasonal bacterioplankton population dynamics by high-frequency sampling. Environmental Microbiology, 17(7), 2459-2476
Open this publication in new window or tab >>Disentangling seasonal bacterioplankton population dynamics by high-frequency sampling
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2015 (English)In: Environmental Microbiology, ISSN 1462-2912, E-ISSN 1462-2920, Vol. 17, no 7, p. 2459-2476Article in journal (Refereed) Published
Abstract [en]

Multiyear comparisons of bacterioplankton succession reveal that environmental conditions drive community shifts with repeatable patterns between years. However, corresponding insight into bacterioplankton dynamics at a temporal resolution relevant for detailed examination of variation and characteristics of specific populations within years is essentially lacking. During 1 year, we collected 46 samples in the Baltic Sea for assessing bacterial community composition by 16S rRNA gene pyrosequencing (nearly twice weekly during productive season). Beta-diversity analysis showed distinct clustering of samples, attributable to seemingly synchronous temporal transitions among populations (populations defined by 97% 16S rRNA gene sequence identity). A wide spectrum of bacterioplankton dynamics was evident, where divergent temporal patterns resulted both from pronounced differences in relative abundance and presence/absence of populations. Rates of change in relative abundance calculated for individual populations ranged from 0.23 to 1.79 day(-1). Populations that were persistently dominant, transiently abundant or generally rare were found in several major bacterial groups, implying evolution has favoured a similar variety of life strategies within these groups. These findings suggest that high temporal resolution sampling allows constraining the timescales and frequencies at which distinct populations transition between being abundant or rare, thus potentially providing clues about physical, chemical or biological forcing on bacterioplankton community structure.

Place, publisher, year, edition, pages
Society for Applied Microbiology and John Wiley & Sons Ltd, 2015
National Category
Ecology
Research subject
Ecology, Aquatic Ecology
Identifiers
urn:nbn:se:lnu:diva-45558 (URN)10.1111/1462-2920.12720 (DOI)000358114300023 ()2-s2.0-84937073236 (Scopus ID)
Projects
EcoChange
Funder
Swedish Research Council FormasSwedish Research CouncilEcosystem dynamics in the Baltic Sea in a changing climate perspective - ECOCHANGE
Available from: 2015-07-25 Created: 2015-07-25 Last updated: 2025-09-23Bibliographically approved
Vaquer-Sunyer, R., Conley, D. J., Muthusamy, S. D., Lindh, M. V., Pinhassi, J. & Kritzberg, E. S. (2015). Dissolved Organic Nitrogen Inputs from Wastewater Treatment Plant Effluents Increase Responses of Planktonic Metabolic Rates to Warming. Environmental Science and Technology, 49(19), 11411-11420
Open this publication in new window or tab >>Dissolved Organic Nitrogen Inputs from Wastewater Treatment Plant Effluents Increase Responses of Planktonic Metabolic Rates to Warming
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2015 (English)In: Environmental Science and Technology, ISSN 0013-936X, E-ISSN 1520-5851, Vol. 49, no 19, p. 11411-11420Article in journal (Refereed) Published
Abstract [en]

Increased anthropogenic pressures on coastal marine ecosystems in the last century are threatening their biodiversity and functioning. Global warming and increases in nutrient loadings are two major stressors affecting these systems. Global warming is expected to increase both atmospheric and water temperatures and increase precipitation and terrestrial runoff, further increasing organic matter and nutrient inputs to coastal areas. Dissolved organic nitrogen (DON) concentrations frequently exceed those of dissolved inorganic nitrogen in aquatic systems. Many components of the DON pool have been shown to supply nitrogen nutrition to phytoplankton and bacteria. Predictions of how global warming and eutrophication will affect metabolic rates and dissolved oxygen dynamics in the future are needed to elucidate their impacts on biodiversity and ecosystem functioning. Here, we experimentally determine simultaneous DON additions and warming on planktonic community metabolism in the Baltic Sea, the largest coastal area suffering from eutrophication-driven hypoxia. Both bacterioplankton community composition and metabolic rates changed in relation to temperature. DON additions from wastewater treatment plant effluents significantly increased the activation energies for community respiration and gross primary production. Activation energies for community respiration were higher than those for gross primary production. Results support the prediction that warming of the Baltic Sea will enhance planktonic respiration rates faster than it will for planktonic primary production. Higher increases in respiration rates than in production may lead to the depletion of the oxygen pool, further aggravating hypoxia in the Baltic Sea.

National Category
Environmental Sciences
Research subject
Natural Science, Environmental Science
Identifiers
urn:nbn:se:lnu:diva-47070 (URN)10.1021/acs.est.5b00674 (DOI)000362629100019 ()26356812 (PubMedID)2-s2.0-84943368839 (Scopus ID)
Projects
EcoChange
Available from: 2015-11-06 Created: 2015-11-06 Last updated: 2025-09-23Bibliographically approved
Muthusamy, S. D., Baltar, F., González, J. M. & Pinhassi, J. (2014). Dynamics of metabolic activities and gene expression in the Roseobacter clade bacterium Phaeobacter sp. MED193 during growth with thiosulfate. Applied and Environmental Microbiology, 80(22), 6933-6942
Open this publication in new window or tab >>Dynamics of metabolic activities and gene expression in the Roseobacter clade bacterium Phaeobacter sp. MED193 during growth with thiosulfate
2014 (English)In: Applied and Environmental Microbiology, ISSN 0099-2240, E-ISSN 1098-5336, Vol. 80, no 22, p. 6933-6942Article in journal (Refereed) Published
Abstract [en]

Metagenomic analyses of surface seawater reveal that genes for sulfur oxidation are widespread in bacterioplankton communities. However, little is known about the metabolic processes used to exploit the energy potentially gained from inorganic sulfur oxidation in oxic seawater. We therefore studied the sox gene system containing Roseobacter clade isolate Phaeobacter sp. strain MED193 in acetate minimal medium with and without thiosulfate. The addition of thiosulfate enhanced the bacterial growth yields up to 40% in this strain. Concomitantly, soxB and soxY gene expression increased about 8-fold with thiosulfate and remained 11-fold higher than that in controls through stationary phase. At stationary phase, thiosulfate stimulated protein synthesis and anaplerotic CO2 fixation rates up to 5- and 35-fold, respectively. Several genes involved in anaplerotic CO2 fixation (i.e., pyruvate carboxylase, propionyl coenzyme A [CoA], and crotonyl-CoA carboxylase) were highly expressed during active growth, coinciding with high CO2 fixation rates. The high expression of key genes in the ethylmalonyl-CoA pathway suggests that this is an important pathway for the utilization of two-carbon compounds in Phaeobacter sp. MED193. Overall, our findings imply that Roseobacter clade bacteria carrying sox genes can use their lithotrophic potential to gain additional energy from sulfur oxidation for both increasing their growth capacity and improving their long-term survival.

National Category
Microbiology
Research subject
Ecology, Microbiology
Identifiers
urn:nbn:se:lnu:diva-37307 (URN)10.1128/AEM.02038-14 (DOI)000344161700010 ()2-s2.0-84908269085 (Scopus ID)
Available from: 2014-09-27 Created: 2014-09-27 Last updated: 2025-09-23Bibliographically approved
Kanagarajan, S., Muthusamy, S. D., Gliszczynska, A., Lundgren, A. & Brodelius, P. E. (2012). Functional expression and characterization of sesquiterpene synthases from Artemisia annua L. using transient expression system in Nicotiana benthamiana.. Plant Cell Reports, 31(7), 1309-1319
Open this publication in new window or tab >>Functional expression and characterization of sesquiterpene synthases from Artemisia annua L. using transient expression system in Nicotiana benthamiana.
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2012 (English)In: Plant Cell Reports, ISSN 0721-7714, E-ISSN 1432-203X, Vol. 31, no 7, p. 1309-1319Article in journal (Refereed) Published
Abstract [en]

Artemisia annua L. produces a number of sesquiterpene synthases, which catalyze the conversion of farnesyl diphosphate to various sesquiterpenes. The cDNAs encoding amorpha-4,11-diene synthase (ADS), a key enzyme in the artemisinin biosynthesis, and epi-cedrol synthase (ECS), a complex sesquiterpene cyclization syn- thase, were cloned into Cowpea mosaic virus-based viral vector (pEAQ-HT) with Kozak consensus motif and C-terminal histidine tag. The plasmids were transformed into Agrobacterium LBA4404 and, agroinfiltrated into Nicotiana benthamiana leaves along with vector (pJL3:p19) containing Tomato bushy stunt virus post- transcriptional gene silencing suppressor. Quantitative PCR was carried out to measure the transcript levels at 0, 3, 6, 9, 12 and 15 days post-infiltration (dpi). The highest relative expression was observed at 9 dpi for both genes. Transiently expressed recombinant proteins of ADS and ECS were confirmed by SDS-PAGE and western blot. Recombinant proteins were extracted from 9 dpi leaves and purified by immobilized metal ion affinity chroma- tography using histidine tag, which produced yields of 90 and 96 mg kg-1 fresh weight of leaves for ADS and ECS, respectively. Activities of the purified enzymes were assayed using gas chromatography–mass spectrometry for product identification and quantification using valencene as internal standard. The recombinant ADS and ECS con- verted farnesyl diphosphate into amorpha-4,11-diene (97 %) and epi-cedrol (96 %) as the major products, respectively. The purified enzymes exhibited the specific activity of 0.002 and 0.01 mmol min-1 mg-1 protein for ADS and ECS, respectively. The apparent kcat values were 2.1 x 10-3 s-1 and 11 x 10-3 s-1 for ADS and ECS, respectively.

Place, publisher, year, edition, pages
Springer Berlin/Heidelberg, 2012
National Category
Botany
Research subject
Chemistry, Biochemistry
Identifiers
urn:nbn:se:lnu:diva-21154 (URN)10.1007/s00299-012-1250-z (DOI)000305219900014 ()22565787 (PubMedID)2-s2.0-84862493162 (Scopus ID)
Available from: 2012-08-13 Created: 2012-08-13 Last updated: 2025-05-06Bibliographically approved
Bunse, C., Lundin, D., Lindh, M. V., Sjöstedt, J., Israelsson, S., Martínez-García, S., . . . Pinhassi, J.Seasonality and co-occurrences of free-living Baltic Sea bacterioplankton.
Open this publication in new window or tab >>Seasonality and co-occurrences of free-living Baltic Sea bacterioplankton
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(English)Manuscript (preprint) (Other academic)
Keywords
seasonal succession, marine bacteria, amplicon 16S rRNA, microbial time series, highfrequency sampling
National Category
Environmental Sciences Microbiology Oceanography, Hydrology and Water Resources
Research subject
Ecology, Microbiology
Identifiers
urn:nbn:se:lnu:diva-69150 (URN)
Available from: 2017-12-11 Created: 2017-12-11 Last updated: 2025-06-05Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-6550-1565

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