94
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Factors contributing to the potential expansion of Limnomonas gaiensis (Chlamydomonadales, Chlorophyta) in freshwater lakes in Northern Europe

ORCID Icon, ORCID Icon & ORCID Icon
Pages 169-183 | Received 22 Feb 2023, Accepted 17 Oct 2023, Published online: 07 Dec 2023

References

  • Attard, E., Yang, H., Delort, A.-M., Amato, P., Pöschl, U., Glaux, C., Koop, T. & Morris, C.E. (2012). Effects of atmospheric conditions on ice nucleation activity of Pseudomonas. Atmospheric Chemistry and Physics, 12: 10667–10677.
  • Bengtsson, B. (2008). Ringsjön - Vattenundersökningar 2007. Ekologgruppen i Landskrona AB, Sweden.
  • Bischoff, H.W. & Bold, H.C. (1963). Phycological studies IV. Some soil algae from enchanted rock and related algal species. University of Texas Publication, 6318: 1–95.
  • Bloodgood, R.A., Leffler, E.M. & Bojczuk, A.T. (1979). Reversible inhibition of Chlamydomonas flagellar surface motility. Journal of Cell Biology, 82: 664–674.
  • Bonente, G., Pippa, S., Castellano, S., Bassi, R.& Ballottari, M. (2012). Acclimation of chlamydomonas reinhardtii to different growth irradiances. Journal of Biological Chemistry, 287: 5833–5847
  • Chiu, C.-S., Chiu, P.-H., Yong, T.C., Tsai, H.-P., Soong, K., Huang, H.-E. & Chen, C.-N.-N. (2020). Mechanisms protect airborne green microalgae during long distance dispersal. Scientific Reports, 10: 13984.
  • Coleman, A.W. (2003). ITS2 is a double-edged tool for eukaryote evolutionary comparisons. Trends in Genetics, 19: 370–375.
  • Coleman, A.W. (2009). Is there a molecular key to the level of “biological species” in eukaryotes? A DNA guide. Molecular Phylogenetics and Evolution, 50: 197–203.
  • Coleman, A.W., Suarez, A. & Goff, L.J. (1994). Molecular delineation of species and syngenes in volvocalean green algae (Chlorophyta). Journal of Phycology, 30: 80–90.
  • Coughlan, N.E., Kelly, T.C., Davenport, J. & Jansen, M.A.J. (2017). Up, up and away: bird-mediated ectozoochorous dispersal between aquatic environments. Freshwater Biology, 62: 631–648.
  • Cronberg, G. (1996). Växtplankton i Vombsjön 1989–1995. Limnologi, Ekologiska Institutionen, Lund, 20.
  • Engdahl, A., Nilsson, P.-A., Sundberg, I., Bodin, I., Johanssom, K. & Vattenråd, L. (2019). Recipientkontrollen i Rolfsån 2018. Medins Havs och Vattenkonsulter AB., 173.
  • Ermilova, E. (2020). Cold stress response: an overview in Chlamydomonas. Frontiers in Plant Science, 11:569437
  • Folmer, O., Black, M., Hoeh, W., Lutz, R. & Vrijenhoek, R. (1994). DNA primers for amplification of mitochondrial cytochrome c oxidase subunit I from diverse metazoan invertebrates. Molecular Marine Biology and Biotechnology, 3: 294–299.
  • Ford, S.A., Craig, R.J. & Ness, R.W. (2022). A novel method for identifying Chlamydomonas reinhardtii (Chlorophyta) and closely related species from nature. Journal of Phycology, 59: 281–288.
  • Genitsaris, S., Moustaka-Gouni, M. & Kormas, K.A. (2011). Airborne microeukaryote colonists in experimental water containers: diversity, succession, life histories and established food webs. Aquatic Microbial Ecology: International Journal, 62: 139–152
  • Gray, E., Jones, I.D., Mackay, E.B., Elliott, J.A. & Folkard, A.M. (2019). Blelham Tarn: ecological and chemical lake profiles, and inflow and outflow chemistry 2016–17. NERC Environmental Information Data Centre (Dataset). https://doi.org/10.5285/791f7613-c7a4-44e0-b197-53f92757f875
  • Grobe, H., Sieger, R. & Diepenbroek, M. (2003). Geographic information system PanMap including geographical resources. Alfred Wegener Institute For Polar and Marine Research, Bremerhaven. https://doi.org/10.1594/PANGAEA.104840
  • Guillard, R.R.L. (1973). Division Rates. In Handbook of Phycological Methods: Culture Methods and Growth Treatment (Stein, J.R., ed.), 289. University Press, Cambridge, London.
  • Guillard, R.R.L. & Lorenzen, C.J. (1972). Yellow-green algae with chlorophyllide c. Journal of Phycology, 8: 10–14.
  • Guiry, M.D. & Guiry, G.M. (2023). AlgaeBase. World-wide electronic publication, National University of Ireland, Galway. https://www.algaebase.org; searched on July 6, 2023.
  • Gustafsson, S. & Cronberg, G. (2012). Compilation and evaluation of the plankton community in Lake Vombsjön. The county administrative board in Skåne County, 18 pp. https://catalog.lansstyrelsen.se/store/18/resource/2012_16 (accessed 26 September 2023, in Swedish)
  • Hadi, S.I.I.A., Santana, H., Brunale, P.P.M., Gomes, T.G., Oliveira, M.D. & Matthiensen, A. (2016). DNA barcoding green microalgae isolated from neotropical inland waters. PLoS ONE, 11: e0149284.
  • Hall, T.A. (1999). BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symposium Series, 41: 95–98.
  • Hall, J.D., Fučíková, K., Lo, C., Lewis, L.A. & Karol, K.G. (2010). An assessment of proposed DNA barcodes in freshwater green algae. Cryptogamie Algologie, 31: 529–555.
  • Heikkinen, R.K., Luoto, M., Araújo, M.B., Virkkala, R., Thuiller, W. & Sykes, M.T. (2006). Methods and uncertainties in bioclimatic envelope modelling under climate change. Progress in Physical Geography, 30: 751.
  • Hillebrand, H., Dürselen, C.-D., Kirschtel, D., Pollingher, U. & Zohary, T. (1999). Biovolume calculation for pelagic and benthic microalgae. Journal of Phycology, 35: 403–424.
  • Holmgren, S. (1985). Phytoplankton in a polluted subartic lake before and after nutrient reduction. Water Research, 19: 63–71.
  • Karlson, B. (2022). Bearbetad lista över encelliga organismer i marin miljö. Listan följer Algaebase (http://www.algaebase.org) och har bearbetats av Bengt Karlson (SMHI). Dyntaxa, 2008, https://www.dyntaxa.se/taxon/info/1010783 ( accessed 22 May 2022).
  • Lebret, K., Tesson, S.V.M., Kritzberg, E.S., Tomas, C. & Rengefors, K. (2015). Phylogeography of the freshwater raphidophyte Gonyostomum semen confirms a recent expansion in Northern Europe by a single haplotype. Journal of Phycology, 51: 768–781.
  • Mai, J.C. & Coleman, A.W. (1997). The internal transcribed spacer 2 exhibits a common secondary structure in green algae and flowering plants. Journal of Molecular Evolution, 44: 258–271.
  • Maul, J.E., Lilly, J.W., Cui, L., dePamphilis, C.W., Miller, W., Harris, E.H. & Stern, D.B. (2002). The Chlamydomonas reinhardtii plastid chromosome: islands of genes in a sea of repeats. The Plant Cell, 14: 2659–2679.
  • Medins Biologi, A.B. & Runnels, K. (2009). Växtplankton i 25 sjöar i Örebro län 2007–2008. Statusbedömning av miljötillståndet. Länsstyrelsen I Örebro Län, 21: 100.
  • Novosel, N., Mišić Radić, T., Zemla, J., Lekka, M., Čačković, A., Kasum, D., Legović, T., Žutinić, P., Gligora Udovič, M. & Ivošević Denardis, N. (2022). Temperature‐induced response in algal cell surface properties and behaviour: an experimental approach. Journal of Applied Phycology, 34: 243–259.
  • Pereira, C.L., Gilbert, M.T.P., Araújo, M.B. & Matias, M.G. (2021). Fine-tuning biodiversity assessments: a framework to pair eDNA metabarcoding and morphological approaches. Methods In Ecology and Evolution, 12: 2397–2409.
  • Perrigo, A.L., Romeralo, M. & Baldauf, S.L. (2012). What’s on your boots: an investigation into the role we play in protist dispersal. Journal of Biogeography, 39: 995–1003.
  • Pröschold, T., Marin, B., Schlösser, U.G. & Melkonian, M. (2001). Molecular phylogeny and taxonomic revision of Chlamydomonas (Chlorophyta). I. Emendation of Chlamydomonas Ehrenberg and Chloromonas Gobi, and description of Oogamochlamys gen. nov. and Lobochlamys gen. nov. Protist, 152: 265–300.
  • R Core Team. (2022). R: A Language and Environment For Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.R-project.org/
  • Rengefors, K., Weyhenmeyer, G.A. & Bloch, I. (2012). Temperature as a driver for the expansion of the microalga Gonyostomum semen in Swedish lakes. Harmful Algae, 18: 65–73.
  • Rochaix, J.D. & Malnoe, P. (1978). Anatomy of the Chloroplast Ribosomal DNA of Chlamydomonas reinhardii. Cell, 15: 661–670.
  • Schneider, C.A., Rasband, W.S. & Eliceiri, K.W. (2012). NIH Image to ImageJ: 25 years of image analysis. Nature Methods, 9: 671.
  • Sherwood, A.R. & Presting, G.G. (2007). Universal primers amplify a 23S rDNA plastid marker in Eukaryotic algae and Cyanobacteria. Journal of Phycology, 43: 605–608.
  • Skuja, H. (1948). Taxonomie des Phytoplanktons einiger Seen in Uppland, Schweden. Symbolae Botanicae Upsalienses, 9: 399.
  • Skuja, H. (1956). Taxonomische und biologische Studien über das Phytoplankton schwedischer Binnengewässer. Nova acta Regiae Societatis Scientiarum Upsaliensis Series IV, 16: 404.
  • Skuja, H. (1964). Grundzüge der Algenflora und Algenvegetation der Fjeld-Gegenden um Abisko in Schwedisch-Lappland. Nova acta Regiae Societatis Scientiarum Upsaliensis Series IV, 18: 465.
  • Sun, J. & Liu, D. (2003). Geometric models for calculating cell biovolume and surface area for phytoplankton. Journal of Plankton Research, 25: 1331–1346.
  • Tamura, K., Stecher, G. & Kumar, S. (2021). MEGA11: molecular evolutionary genetics analysis version 11. Molecular Biology and Evolution, 38: 3022–3027.
  • Tesson, S.V.M. (2023). Physiological responses to pH in the freshwater microalga Limnomonas gaiensis. Journal of Basic Microbiology, 63: 944–956.
  • Tesson, S.V.M., Ambelas Skjøth, C., Šantl-Temkiv, T. & Löndahl, J. (2016b). Airborne microalgae: new insights, opportunities and challenges. Applied and Environmental Microbiology, 82: 1978–1991.
  • Tesson, S.V.M., Barbato, M. & Rosati, B. (2023). Aerosolization flux, bio-products, and dispersal capacities in the freshwater microalga Limnomonas gaiensis (Chlorophyceae). Communications Biology, 6: 845.
  • Tesson, S.V.M., Borra, M., Kooistra, W.H. & Procaccini, G. (2011). Microsatellite primers in the planktonic diatom Pseudo-nitzschia multistriata (Bacillariophyceae). American Journal of Botany, 98: e33–35.
  • Tesson, S.V.M., Okamura, B., Dudaniec, R.Y., Vyverman, W., Löndahl, J., Rushing, C., Valentini, A. & Green, A.J. (2016a). Integrating microorganism and macroorganism dispersal: modes, techniques and challenges with particular focus on co-dispersal. Ecoscience, 22: 109–124.
  • Tesson, S.V.M. & Pröschold, T. (2022). Description of Limnomonas gen. nov. and L. gaiensis sp. nov. (Chlamydomonadales, Chlorophyta) from Swedish lakes. Diversity, 14: 481.
  • Tesson, S.V.M. & Šantl-Temkiv, T. (2018). Ice nucleation activity and aeolian dispersal success in airborne and aquatic microalgae. Frontiers In Microbiology – Extreme Microbiology, 9: 2681.
  • Tesson, S.V.M., Weißbach, A., Kremp, A., Lindström, Å. & Rengefors, K. (2018). The potential for dispersal of microalgal resting cysts by migratory birds. Journal of Phycology, 54: 518–528.
  • Thermo Fisher Scientific. (2015). https://www.thermofisher.com/document-connect/document-connect.html?url=https://assets.thermofisher.com/TFS-Assets%2FLSG%2Fmanuals%2FMAN0012966_CloneJET_PCR_Cloning_40rxn_UG.pdf
  • Valledor, L., Furuhashi, T., Hanak, A.-M. & Weckwerth, W. (2013). Systemic cold stress adaptation of Chlamydomonas reinhardtii. Molecular & Cellular Proteomics, 12: 2032–2047.
  • Vítová, M., Bišová, K., Hlavová, M., Kawano, S., Zachleder, V. & Cízková, M. (2011). Chlamydomonas reinhardtii: duration of its cell cycle and phases at growth rates affected by temperature. Planta, 234: 599–608.
  • Watanabe, S. & Lewis, L.A. (2017). Phylogenetic interpretation of light and electron microscopic features of selected members of the phylogroup Moewusinia (Chlorophyceae), with new generic taxonomy. Phycologia, 56: 329–353.
  • Willén, T. (1969). Phytoplankton from Swedish lakes II. Lake Assjön 1961-1962. Oikos, 20: 67–77.
  • Zachleder, V., Ivanov, I., Vítová, M. & Bišová, K. (2019). Cell cycle arrest by supraoptimal temperature in the alga Chlamydomonas reinhardtii. Cells, 8: 1237.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.