Biological Oceanography of the Baltic Sea pp 23-84 | Cite as
Why is the Baltic Sea so special to live in?
Abstract
- 1.
Geographical position, geological development, hydrographical features, climate and physical drivers together create the Baltic Sea environment.
- 2.
Baltic Sea water is brackish and characterised by pronounced salinity gradients, both in horizontal and vertical directions, because of the large volume of freshwater runoff from over 100 rivers, which mixes with the saline water from the Kattegat that enters the Baltic Sea via narrow shallow straits.
- 3.
Being a semi-enclosed continental sea with a large drainage area compared to its water volume, the Baltic Sea ecosystem is heavily impacted by the surrounding landmasses.
- 4.
The water residence time in the Baltic Sea is long (30–40 years), and therefore discharged nutrients and toxic compounds circulate within the sea for a long time, which contributes to its vulnerability to eutrophication and chemical contamination by hazardous substances.
- 5.
The Baltic Sea Area is geologically young and the Baltic Sea ecosystem is extremely young in an evolutionary perspective. Only few macroscopic species are fully adapted to its low-salinity environment.
- 6.
Chief factors that affect species distributions in the Baltic Sea along local, regional and ecosystem-wide gradients are salinity, climate, ice cover, currents, permanent salinity stratification, hypoxia, and benthic substrate types (rock, sand, mud).
- 7.
Environmental drivers vary either in time or space or both and contribute to the north-south “large-scale Baltic Sea gradient”, along which many species experience physiological stress, lose the ability to reproduce sexually and reach the ecological limit of their occurrence.
- 8.
In an ecosystem-wide perspective, the large-scale Baltic Sea gradient is the principal ecological characteristic of the Baltic Sea.
Keywords
Ecological characteristics Environmental gradients Geography Geology Human impacts HydrographyReferences
- Al-Hamdani Z, Reker J (eds) (2007) Towards marine landscapes in the Baltic Sea. BALANCE Interim Report 10:1–116 [http://balance-eu.org/publications/index.html]
- Alheit J, Möllmann J, Dutz J, Kornilovs G, Loewe P, Mohrholz V, Wasmund N (2005) Synchronous ecological regime shifts in the central Baltic and the North Sea in the late 1980s. ICES Journal of Marine Science 62:1205–1215CrossRefGoogle Scholar
- Andersen JH, Carstensen J, Conley DJ, Dromph K, Fleming V, et al. (2015) Long-term temporal and spatial trends in eutrophication status of the Baltic Sea. Biological Reviews [http://onlinelibrary.wiley.com/doi/10.1111/brv.12221/epdf]
- Andrén E (1999) Holocene environmental changes recorded by diatom stratigraphy in the southern Baltic Sea. Meddelanden från Stockholms universitets institution för geologi och geokemi 302:1–22 [PhD Thesis]Google Scholar
- Andrén E, Andrén T, Kunzendorf H (2000) Holocene history of the Baltic Sea as a background for assessing records of human impact in the sediments of the Gotland basin. Holocene 10:687–702CrossRefGoogle Scholar
- Andrén T, Björck S, Andrén E, Conley DJ, Zillén L et al (2011) The development of the Baltic Sea basin during the last 130,000 years. In: Harff J, Björck S, Hoth P (eds) The Baltic Sea basin. Springer, Berlin, pp 75–97CrossRefGoogle Scholar
- Bakun A (2006) Wasp-waist populations and marine ecosystem dynamics: navigating the “predator pit” topographies. Progress in Oceanography 68:271–288CrossRefGoogle Scholar
- Beaugrand G, Conversi A, Chiba S, Edwards M, Fonda-Umani S et al (2015) Synchronous marine pelagic regime shifts in the Northern Hemisphere. Philosophical Transactions of the Royal Society B 370:20130272CrossRefGoogle Scholar
- Belkin IM (2009) Rapid warming of large marine ecosystems. Progress in Oceanography 81:207–213CrossRefGoogle Scholar
- Benson BB, Krause D Jr (1984) The concentration and isotopic fractionation of oxygen dissolved in freshwater and seawater in equilibrium with the atmosphere. Limnology and Oceanography 29:620–632CrossRefGoogle Scholar
- Bernes C (2005) Change beneath the surface—an in-depth look at Sweden’s marine environment. Monitor 19:1–192. Swedish Environmental Protection Agency, StockholmGoogle Scholar
- Bhend J, von Storch H (2009) Is greenhouse gas forcing a plausible explanation for the observed warming in the Baltic Sea catchment area? Boreal Environment Research 14:81–88Google Scholar
- Bianchi TS, Engelhaupt E, Westman P, Andrén T, Rolff C et al (2000) Cyanobacterial blooms in the Baltic Sea: natural or human-induced? Limnology and Oceanography 45:716–726CrossRefGoogle Scholar
- Björck S (1995) A review of the history of the Baltic Sea. 13.0–8.0 ka BP. Quaternary International 27:19–40CrossRefGoogle Scholar
- Björck S (2008) The late Quaternary development of the Baltic Sea. BACC Author Team. Assessment of climate change for the Baltic Sea basin. Regional Climate Studies, Springer, Berlin, pp 398–407Google Scholar
- Björck S, Andrén T, Jensen JB (2008) An attempt to resolve the partly conflicting data and ideas on the Ancylus-Littorina transition. Polish Geological Institute Special Papers 23:21–26Google Scholar
- Blomqvist S, Gunnars A, Elmgren R (2004) Why the limiting nutrient differs between temperate coastal seas and freshwater lakes: a matter of salt. Limnology and Oceanography 49:2236–2241CrossRefGoogle Scholar
- Boedeker D, Knapp HD (1995) Ökologie der Salzwiesen, Dünen und Schären. In: Rheinheimer G (ed) Meereskunde der Ostsee, 2nd edn Springer, Berlin, pp 222–229 [in German]Google Scholar
- Borgendahl J, Westman P (2007) Cyanobacteria as a trigger for increased primary productivity during sapropel formation in the Baltic Sea—a study of the Ancylus/Littorina transition. Journal of Paleolimnology 38:1–12CrossRefGoogle Scholar
- Brzezinski MA (1985) The Si-C-N ratio of marine diatoms—interspecific variability and the effect of some environmental variables. Journal of Phycology 21:347–357CrossRefGoogle Scholar
- Calow P (1973) The food of Ancylus fluviatilis (Müll.), a littoral stone-dwelling herbivore. Oecologia 13:113–133CrossRefGoogle Scholar
- Cameron A, Askew N (eds) (2011) EUSeaMap—preparatory action for development and assessment of a European broad-scale seabed habitat map: final report. Technical appendix No. 1: Light data and thresholds [http://jncc.gov.uk/euseamap]
- Cardinale M, Svedäng H (2011) The beauty of simplicity in science: Baltic cod stock improves rapidly in a ‘cod hostile’ ecosystem state. Marine Ecology Progress Series 425:297–301Google Scholar
- Carstensen J, Andersen JH, Gustafsson BG, Conley DJ (2014) Deoxygenation of the Baltic Sea during the last century. Proceedings of the National Academy of Sciences of the USA 111:5628–5633CrossRefGoogle Scholar
- Casini M, Hjelm J, Molinero JC, Lövgren J, Cardinale M et al (2009) Trophic cascades promote threshold-like shifts in pelagic marine ecosystems. Proceedings of the National Academy of Sciences of the USA 106:197–202CrossRefGoogle Scholar
- Cederwall H, Elmgren R (1980) Biomass increase of benthic macrofauna demonstrates eutrophication of the Baltic Sea. Ophelia Supplement 1:287–304Google Scholar
- Cloern JE, Foster SQ, Kleckner AE (2014) Phytoplankton primary production in the world’s estuarine-coastal ecsystems. Biogeosciences 11:2477–2501CrossRefGoogle Scholar
- Conley DJ (2000) Biogeochemical nutrient cycles and nutrient management strategies. Hydrobiologia 410:87–96CrossRefGoogle Scholar
- Conley DJ, Björck S, Bonsdorff E, Carstensen J, Destouni G et al (2009) Hypoxia-related processes in the Baltic Sea. Environmental Science and Technology 43:3412–3420CrossRefGoogle Scholar
- Conley DJ, Carstensen J, Aigars J, Axe P, Bonsdorff E et al (2011) Hypoxia is increasing in the coastal zone of the Baltic Sea. Environmental Science and Technology 45:6777–6783CrossRefGoogle Scholar
- Cury P, Bakun A, Crawford RJM, Jarre A, Quinones RA, Shannon LJ et al (2000) Small pelagics in upwelling systems: patterns of interaction and structural changes in “wasp-waist” ecosystems. ICES Journal of Marine Science 57:603–618CrossRefGoogle Scholar
- Cyberski J, Wróblewski A (2000) Riverine water inflows and the Baltic Sea water volume 1901–1990. Hydrology and Earth System Sciences Discussions, European Geosciences Union 4:1–11CrossRefGoogle Scholar
- De Geer G (1912) A geochronology of the last 12,000 years. XIth International Geological Congress, Stockholm 1:241–253Google Scholar
- De Geer G (1932) Stockholmstraktens kvartärgeologi: beskrivning till kvartärgeologisk karta över Stockholmstrakten. Sveriges geologiska undersökning, Serie Ba, 89 pp [in Swedish]Google Scholar
- Del Amo Y, Brzezinski MA (2000) The chemical form of dissolved Si taken up by marine diatoms. Journal of Phycology 35:1162–1170CrossRefGoogle Scholar
- Deutsch C, Weber T (2012) Nutrient ratios as a tracer and driver of ocean biogeochemistry. Annual Review of Marine Science 4:113–141CrossRefGoogle Scholar
- Diaz RJ, Rosenberg R (1995) Marine benthic hypoxia: a review of its ecological effects and the behavioural responses of benthic macrofauna. Oceanography and Marine Biology 33:245–303Google Scholar
- Diaz RJ, Rosenberg R (2008) Spreading dead zones and consequences for marine ecosystems. Science 321:926–929CrossRefGoogle Scholar
- Diekmann R, Möllmann C (eds) (2010) Integrated ecosystem assessments of seven Baltic Sea areas covering the last three decades. ICES Cooperative Research Report 302:1–90Google Scholar
- Du Rietz GE (1930) Algbälten och vattenståndsväxlingar vid svenska östersjökusten. Botaniska Notiser 1930:421–432 [in Swedish]Google Scholar
- Ekman M (1996) A consistent map of the postglacial uplift of Fennoscandia. Terra Nova 8:158–165CrossRefGoogle Scholar
- Elliott M, McLusky DS (2002) The need for definitions in understanding estuaries. Estuarine, Coastal and Shelf Science 55:815–827CrossRefGoogle Scholar
- Elmgren R, Blenckner T, Andersson A (2015) Baltic Sea management: successes and failures. AMBIO 44 (Supplement):S335–S344CrossRefGoogle Scholar
- Fairbanks RG (1989) A 17,000-year glacio-eustatic sea level record: influence of glacial melting rates on the younger Dryas event and deep-ocean circulation. Nature 342:637–642CrossRefGoogle Scholar
- Feistel R, Nausch G, Hagen E (2006) Unusual Baltic inflow activity in 2002–2003 and varying deep-water properties. Oceanologia 48:21–35Google Scholar
- Field CB, Behrenfeld MJ, Randerson JT, Falkowski P (1998) Primary production of the biosphere: integrating terrestrial and oceanic components. Science 281:237–240CrossRefGoogle Scholar
- Finni T, Kononen K, Olsonen R, Wallström K (2001) The history of cyanobacterial blooms in the Baltic Sea. AMBIO 30:168–172CrossRefGoogle Scholar
- Fisher H, Matthäus W (1996) The importance of the Drogden sill in the sound for major Baltic inflows. Journal of Marine Systems 9:137-157Google Scholar
- Fonselius S (1995) Västerhavets och Östersjöns Oceanografi. Swedish Meteorological and Hydrological Institute (SMHI), Norrköping, 200 pp [in Swedish]Google Scholar
- Fredén C (ed) (1994) Berg och jord. Sveriges Nationalatlas. SNA Förlag, Stockholm, 208 pp [in Swedish]Google Scholar
- Granéli E, Wallström K, Larsson U, Granéli W, Elmgren R (1990) Nutrient limitation of primary production in the Baltic Sea Area. AMBIO 19:142–151Google Scholar
- Gräwe U, Naumann M, Mohrholz V, Burchard H (2015) Anatomizing one of the largest saltwater inflows into the Baltic Sea in December 2014. Journal of Geophysical Research 120:7676–7697Google Scholar
- Guildford SJ, Hecky RE (2000) Total nitrogen, total phosphorus, and nutrient limitation in lakes and oceans: is there a common relationship? Limnology and Oceanography 45:1213–1223CrossRefGoogle Scholar
- Gustafsson BG, Schenk F, Blenckner T, Eilola K, Meier HEM et al (2012) Reconstructing the development of Baltic Sea eutrophication 1850–2006. AMBIO 41:534–548CrossRefGoogle Scholar
- Gustafsson BG, Westman P (2002) On the causes for salinity variations in the Baltic Sea for the last 8500 years. Paleoceanography 17:1–14CrossRefGoogle Scholar
- Gustafsson E, Omstedt A, Gustafsson BG (2015) The air-water CO2 exchange of a coastal sea—a sensitivity study on factors that influence the absorption and outgassing of CO2 in the Baltic Sea. Journal of Geophysics Research, Oceans 120:5342–5357CrossRefGoogle Scholar
- Hagström Å, Azam F, Kuparinen J, Zweifel UL (2001) Pelagic plankton growth and resource limitations in the Baltic Sea. In: Wulff FV, Rahm L, Larsson P (eds) A systems analysis of the Baltic Sea. Springer, Berlin, Ecological Studies 148:177–210Google Scholar
- Hannerz F, Destouni G (2006) Spatial characterization of the Baltic Sea drainage basin and its unmonitored catchments. AMBIO 35:214–219CrossRefGoogle Scholar
- Hansen HP, Koroleff F (1999) Determination of nutrients. In: Grasshoff K, Kremling K, Erhardt M (eds) Methods of seawater analysis, 3rd edn Wiley-VCH Verlag, Weinheim, pp 159–228CrossRefGoogle Scholar
- Hansson D, Eriksson C, Omstedt A, Chen D (2011a) Reconstruction of river runoff to the Baltic Sea, AD 1500–1995. International Journal of Climatology 31:696–703CrossRefGoogle Scholar
- Hansson M, Andersson L, Axe P (2011b) Areal extent and volume of anoxia and hypoxia in the Baltic Sea, 1960–2011. Report Oceanography 42:1–63. Swedish Meteorological and Hydrological Institute, NorrköpingGoogle Scholar
- Hardin G (1968) The tragedy of the commons. Science 162:1243–1248CrossRefGoogle Scholar
- Hayes MO (1979) Barrier island morphology as a function of tidal and wave regime. In: Leatherman SP (ed) Barrier islands. Academic Press, New York NY, pp 1–28Google Scholar
- Hecky RE, Campbell P, Hendzel LL (1993) The stoichiometry of carbon, nitrogen and phosphorus in particulate matter of lakes and oceans. Limnology and Oceanography 38:709–724CrossRefGoogle Scholar
- Hecky RE, Kilham P (1988) Nutrient limitation of phytoplankton in freshwater and marine environments: a review of recent evidence on the effects of enrichment. Limnology and Oceanography 33:796–822Google Scholar
- HELCOM (1993) Convention of the protection of the marine environment of the Baltic Sea Area, 1974 (Helsinki Convention), with amendments to its Annexes adopted by the Helsinki Commission in 1983, 1987, 1989, 1990, 1992 and 1993. Printed by HELCOM, Helsinki, 27 ppGoogle Scholar
- HELCOM (1996) Water balance of the Baltic Sea—a regional cooperation project of the Baltic Sea states international summary report. Baltic Sea Environment Proceedings 16:1–174Google Scholar
- HELCOM (2010a) Hazardous substances in the Baltic Sea—an integrated thematic assessment of hazardous substances in the Baltic Sea. Baltic Sea Environment Proceedings 120B:1–116Google Scholar
- HELCOM (2010b) Maritime activities in the Baltic Sea—an integrated thematic assessment on maritime activities and response to pollution at sea in the Baltic Sea region. Baltic Sea Environment Proceedings 123:1–64Google Scholar
- HELCOM (2012) Checklist of Baltic Sea macro-species. Baltic Sea Environment Proceedings 130:1–203Google Scholar
- Holte B, Guliksen B (1998) Common macrofaunal dominant species in the sediments of some north Norwegian and Svalbard glacial fjords. Polar Biology 19:375–382CrossRefGoogle Scholar
- Humborg C, Smedberg E, Rodriguez-Medina M, Mörth CM (2007) Changes in dissolved silicate loads to the Baltic Sea—the effects of lakes and reservoirs. Journal of Marine Systems 73:223–235CrossRefGoogle Scholar
- Jakobsen F, Trébuchet C (2000) Observations of the transport through the Belt Sea and an investigation of the momentum balance. Continental Shelf Research 20:293–311CrossRefGoogle Scholar
- Jöns (2011) Settlement development in the shadow of coastal changes—case studies from the Baltic rim. In: Harff J, Björck S, Hoth P (eds) The Baltic Sea basin. Springer, Berlin, pp 301–336CrossRefGoogle Scholar
- Kirk JTO (2011) Light and photosynthesis in aquatic ecosystems, 3rd edn Cambridge University Press, Cambridge 662 ppGoogle Scholar
- Kraberg AC, Wasmund N, Vanaverbeke J, Schiedel D, Wiltshire KH, Mieszkowska (2011) Regime shifts in the marine environment: the scientific basis and political context. Marine Pollution Bulletin 62:7–20CrossRefGoogle Scholar
- Krumbein WC (1934) Size frequency distributions of sediments. Journal of Sedimentary Petrology 4:65–77CrossRefGoogle Scholar
- Kuparinen J, Leonardsson K, Mattila J, Wikner J (1994) Food web structure, carbon flow and trends in the Gulf of Bothnia, Baltic Sea. Vatten 50:201–219Google Scholar
- Lampe R (1995) Küstentypen. In: Rheinheimer G (ed) Meereskunde der Ostsee, 2nd edn Springer, Berlin, pp 17–25 [in German]Google Scholar
- Lass HU, Matthäus W (1996) On temporal wind variations forcing salt water inflows into the Baltic Sea. Tellus A 48:663–671CrossRefGoogle Scholar
- Lass HU, Matthäus W (2008) General oceanography of the Baltic Sea. In: Feistel R, Nausch G, Wasmund (eds) State and evolution of the Baltic Sea, 1952–2005—a detailed 50-year survey of meteorology and climate, physics, chemistry, biology, and marine environment. John Wiley and Sons, Hoboken, NJ, pp 5–43Google Scholar
- Lauckner G (1984) Brackish-water submergence of the common periwinkle, Littorina littorea, and its digenean parasites in the Baltic Sea and in the Kattegat. Helgoländer Meeresuntersuchungen 37:177–184CrossRefGoogle Scholar
- Launiainen J, Vihma T (1990) Derivation of turbulent surface fluxes—an iterative flux-profile method allowing arbitrary observing heights. Environmental Software 5:113–124Google Scholar
- Lehmann A, Myrberg K (2008) Upwelling in the Baltic Sea. Journal of Marine Systems 74:S3–S12CrossRefGoogle Scholar
- Lehmann A, Post P (2015) Variability of atmospheric circulation patterns associated with large volume changes of the Baltic Sea. Advances in Science and Research 12:219–225CrossRefGoogle Scholar
- Lehtiniemi M, Lehmann A, Javidpour J, Myrberg K (2012) Spreading and physico-biological reproduction limitations of the invasive American comb jelly Mnemiopsis leidyi in the Baltic Sea. Biological Invasions 14:341–354CrossRefGoogle Scholar
- Lehtoranta J, Ekholm P, Pitkänen H (2008) Eutrophication-driven sediment microbial processes can explain the regional variation in phosphorus concentrations between Baltic Sea subbasins. Journal of Marine Systems 74:495–504CrossRefGoogle Scholar
- Lemke W, Kuijpers A, Hoffmann G, Milkert D, Atzler R (1994) The Darß sill, hydrographic threshold in the southwestern Baltic: Late Quaternary geology and recent sediment dynamics. Continental Shelf Research 14:847–870CrossRefGoogle Scholar
- Leppäranta M, Myrberg K (2009) Physical oceanography of the Baltic Sea. Springer, Berlin 378 ppCrossRefGoogle Scholar
- Levinton JS (2010) Marine biology: function, biodiversity, ecology, 3rd edn Oxford University Press, Oxford 588 ppGoogle Scholar
- Lindström G (1886) Om postglaciala sänkningar af Gotland. Geologiska Föreningens i Stockholm Förhandlingar 102 VIII:251–281 [in Swedish]Google Scholar
- Linnaeus, C. (1747) Wästgöta-resa, på riksens högloflige ständers befallning förrättad år 1746. Med anmärkningar uti oeconomien, naturkunnogheten, antiquiteter, invånarnes seder och lefnads-sätt. Lars Salvius, Stockholm [in Swedish]Google Scholar
- Matthäus W (2006) The history of investigation of salt water inflows into the Baltic Sea: from the early beginning to recent results. Baltic Sea Research Institute Warnemünde. Germany. Marine Science Reports 65:1–74Google Scholar
- Matthäus W, Nehring D, Feistel R, Nausch G, Mohrholz V, Lass HU (2008) The inflow of highly saline water into the Baltic Sea. In: Feistel R, Nausch G, Wasmund (eds) State and evolution of the Baltic Sea, 1952–2005—a detailed 50-year survey of meteorology and climate, physics, chemistry, biology, and marine environment. John Wiley and Sons, Hoboken, NJ, pp 265–309Google Scholar
- Matthäus W, Schinke H (1999) The influence of river runoff on deep water conditions of the Baltic Sea. Hydrobiologia 393:1–10CrossRefGoogle Scholar
- Mattsson J (1996) Some comments on the barotropic flow through the Danish straits and the division of the flow between the Belt Sea and the Öresund. Tellus A 48:456–464CrossRefGoogle Scholar
- McLusky DS, Elliott M (2007) Transitional waters: a new approach, semantics or just muddying the waters? Estuarine, Coastal and Shelf Science 71:359–363CrossRefGoogle Scholar
- Meier HEM (2007) Modeling the pathways and ages of inflowing salt- and freshwater in the Baltic Sea. Estuarine, Coastal and Shelf Science 74:610–627CrossRefGoogle Scholar
- Meier HEM, Feistel R, Piechura J, Arneborg L, Burchard H et al (2006) Ventilation of the Baltic Sea deep water: a brief review of present knowledge from observations to models. Oceanologia 48:133–164Google Scholar
- Meier HEM, Kauker F (2003) Modeling decadal variability of the Baltic Sea: 2. Role of freshwater inflow and large-scale atmospheric circulation for salinity. Journal of Geophysical Research 108(C11):3368CrossRefGoogle Scholar
- Meier HEM, Müller-Karulis B, Andersson HC, Dieterich C, Eilola K et al (2012) Impact of climate change on ecological quality indicators and biogeochemical fluxes in the Baltic Sea: a multi-model ensemble study. AMBIO 41:558–573CrossRefGoogle Scholar
- Miettinen A (2002) Relative sea level changes in the eastern part of the Gulf of Finland during the last 8,000 years. Annales Academiae Scientarum Fennicae Geologica-Geographica 162:1–102Google Scholar
- Mohrholz V, Naumann M, Nausch G, Krüger S, Gräwe U (2015) Fresh oxygen for the Baltic Sea—an exceptional saline inflow after a decade of stagnation. Journal of Marine Systems 148:152–166CrossRefGoogle Scholar
- Möllmann C, Diekmann R (2012) Marine ecosystem regime shifts induced by climate and overfishing: a review for the northern hemisphere. Advances in Ecological Research 47:303–347CrossRefGoogle Scholar
- Möllmann C, Diekmann R, Müller-Karulis B, Kornilovs G, Plikshs M, Axe P (2009) Reorganization of a large marine ecosystem due to atmospheric and anthropogenic pressure: a discontinuous regime shift in the central Baltic Sea. Global Change Biology 15:1377–1393CrossRefGoogle Scholar
- Murray JW, Jannasch HW, Honjo S, Anderson RF, Reeburgh WS et al (1989) Unexpected changes in the oxic/anoxic interface in the Black Sea. Nature 338:411–413CrossRefGoogle Scholar
- Myrberg K, Andrejev O (2003) Main upwelling regions in the Baltic Sea—a statistical analysis based on three-dimensional modelling. Boreal Environment Research 8:97–112Google Scholar
- Niiranen S, Yletyinen J, Tomczak MT, Blenckner T, Hjerne O et al (2013) Combined effects of global climate change and regional ecosystem drivers on an exploited marine food web. Global Change Biology 19:3327–3342Google Scholar
- Nixon SW (1995) Coastal marine eutrophication: a definition, social causes, and future concerns. Ophelia 41:199–219CrossRefGoogle Scholar
- Nixon SW, Buckley BA (2002) “A strikingly rich zone”—nutrient enrichment and secondary production in coastal marine ecosystems. Estuaries 25:782–796CrossRefGoogle Scholar
- Novotny K, Liebsch G, Lehmann A, Dietrich R (2006) Variability of sea surface heights in the Baltic Sea: an intercomparison of observations and model simulations. Marine Geodesy 29:113–134CrossRefGoogle Scholar
- Omstedt A (2015) Guide to process-based modelling of lakes and coastal seas, 2nd edn Springer-Praxis books in Geophysical Sciences, Springer, Berlin 273 ppCrossRefGoogle Scholar
- Omstedt A, Axell LB (2003) Modeling the variations of salinity and temperature in the large gulfs of the Baltic Sea. Continental Shelf Research 23:265–294CrossRefGoogle Scholar
- Omstedt A, Meuller L, Nyber L (1997) Interannual, seasonal and regional variations of precipitation and evaporation over the Baltic Sea. AMBIO 26:484–492Google Scholar
- OSPAR (1998) OSPAR Agreement 1998–18, Annex 1. OSPAR strategy to combat eutrophication. [http://www.bmu.de/files/pdfs/allgemein/application/pdf/ospar_strategy3_eut.pdf]
- Österblom H, Hansson S, Larsson U, Hjerne O, Wulff F et al (2007) Human-induced trophic cascades and ecological regime shifts in the Baltic Sea. Ecosystems 10:877–889CrossRefGoogle Scholar
- Piechura J, Beszczyńska-Möller A (2004) Inflow waters in the deep regions of the southern Baltic Sea—transport and transformations (corrected version). Oceanologia 46:113–141Google Scholar
- Pirazzoli PA (1991) World Atlas of Holocene sea level changes. Elsevier, 291 ppGoogle Scholar
- Poulícková A, Jahn R (2007) Campylodiscus clypeus (Ehrenberg) Ehrenberg ex Kützing: typification, morphology and distribution. Diatom Research 22:135–146CrossRefGoogle Scholar
- Rabalais NN, Díaz RJ, Levin LA, Turber RE, Gilbert D et al (2010) Dynamics and distribution of natural human-caused hypoxia. Biogeosciences 7:585–619CrossRefGoogle Scholar
- Redfield AC (1934) On the proportions of organic derivatives in seawater and their relation to the composition of plankton. In: James Johnstone Memorial Volume. University of Liverpool, pp 176–192Google Scholar
- Redfield AC (1958) The biological control of chemical factors in the environment. American Scientist 46(205–221):230AGoogle Scholar
- Redfield AC, Ketchum BH, Richards FA (1963) The influence of organisms on the composition of seawater. In: Hill MN (ed) The sea. Wiley-Liss, New York NY, pp 26–77Google Scholar
- Reid PC, Hari RA, Beaugrand G, Livingstone DM, Marty C et al (2016) Global impacts of the 1980s regime shift. Global Change Biology 22:682–703CrossRefGoogle Scholar
- Remane A (1934) Die Brackwasserfauna. Verhandlungen der Deutschen Zoologischen Gesellschaft 36:34–74 [in German] Google Scholar
- Rutgersson A, Jaagus Schenk JF, Stendel M (2014) Observed changes and variability of atmospheric parameters in the Baltic Sea region during the last 200 years. Climate Research 61:177–190CrossRefGoogle Scholar
- Savchuk OP, Eilola K, Gustafsson BG, Rodríguez Medina M, Ruoho-Airola T (2012a) Long-term reconstruction of nutrient loads to the Baltic Sea, 1850–2006. Baltic Nest Institute Technical Report Series 6:1–9Google Scholar
- Savchuk OP, Gustafsson BG, Rodríguez Medina M, Sokolov AV, Wulff F (2012b) External nutrient loads to the Baltic Sea, 1970–2006. Baltic Nest Institute Technical Report Series 5:1–19Google Scholar
- Savchuk OP, Wulff F, Hille S, Humborg C, Pollehne F (2008) The Baltic Sea a century ago—a reconstruction from model simulations, verified by observations. Journal of Marine Systems 74:485–494CrossRefGoogle Scholar
- Schmelzer N, Seinä A, Lundquist JA, Sztobryn M (2008) Ice. In: Feistel R, Nausch G, Wasmund N (eds) State and evolution of the Baltic Sea 1952–2005—a detailed 50-year survey of meteorology and climate, physics, chemistry, biology, and marine environment. John Wiley and Sons, Hoboken, NJ, pp 199–240CrossRefGoogle Scholar
- Schönfeld J, Numberger L (2007) Seasonal dynamics and decadal changes of benthic foraminiferal assemblages in the western Baltic Sea (NW Europe). Journal of Micropalaeontology 26:47–60CrossRefGoogle Scholar
- Schoning K (2001) The brackish Baltic Sea Yoldia Stage—palaeoenvironmental implications from marine benthic fauna and stable oxygen isotopes. Boreas 30:290–298CrossRefGoogle Scholar
- Schoning K, Wastegård S (1999) Ostracod assemblages in late Quaternary varved glaciomarine clay of the Baltic Sea Yoldia stage in eastern middle Sweden. Marine Micropaleontology 37:313–325CrossRefGoogle Scholar
- Seppä H, Bjune AE, Telford RJ, Birks HJB, Veski S (2009) Last nine-thousand years of temperature variability in Northern Europe. Climate of the Past 5:523–535CrossRefGoogle Scholar
- Siegel H, Gerth M, Tschersich G (2008) Satellite-derived sea surface temperature for the period 1990–2005. In: Feistel R, Nausch G, Wasmund N (eds) State and evolution of the Baltic Sea 1952–2005: a detailed 50-year survey of meteorology and climate, physics, chemistry, biology, and marine environment. John Wiley and Sons, Hoboken, NJ, pp 241–265CrossRefGoogle Scholar
- Sjöberg B (ed) (1992) Hav och kust. Sveriges Nationalatlas. SNA Förlag, Stockholm, 127 pp [in Swedish]Google Scholar
- Soesoo A, Miidel A (2007) North Estonian Klint. MTÜ GEOGuide Baltoscandia. Tallinn, 2007, 29 ppGoogle Scholar
- Sohlenius G, Emeis KC, Andrén E, Andrén T, Kohly A (2001) Development of anoxia during the fresh-brackish water transition in the Baltic Sea. Marine Geology 177:221–242CrossRefGoogle Scholar
- Stedmon CA, Osburn CL, Kragh T (2010) Tracing water mass mixing in the Baltic—North Sea transition zone using the optical properties of coloured dissolved organic matter. Estuarine, Coastal and Shelf Science 87:156–162CrossRefGoogle Scholar
- Strasser M (1999) Mya arenaria—an ancient invader of the North Sea coast. Helgoländer Meeresuntersuchungen 52:309–324CrossRefGoogle Scholar
- Svendsen JI, Alexandersson H, Astakhov VI, Demidov I, Dowdeswell JA et al (2004) Late Quaternary ice sheet history of northern Eurasia. Quaternary Science Reviews 23:1229–1271CrossRefGoogle Scholar
- Thamatrakoln K, Hildebrand M (2008) Silicon uptake in diatoms revisited: a model for saturable and nonsaturable uptake kinetics and the role of silicon transporters. Plant Physiology 146:1397–1407CrossRefGoogle Scholar
- Thrush SF, Dayton PK (2010) What can ecology contribute to ecosystem-based management? Annual Review in Marine Science 2:419–441CrossRefGoogle Scholar
- Thurow F (1997) Estimation of the total fish biomass in the Baltic Sea during the 20th century. ICES Journal of Marine Science 54:444–461CrossRefGoogle Scholar
- Vähätalo AV, Järvinen M (2007) Photochemically produced bioavailable nitrogen from biologically recalcitrant dissolved organic matter stimulates production of a nitrogen-limited microbial food web in the Baltic Sea. Limnology and Oceanography 52:132–143CrossRefGoogle Scholar
- Vaquer-Sunyer R, Duarte CM (2008) Thresholds of hypoxia for marine biodiversity. Proceedings of the National Academy of Sciences of the USA 105:15452–15457CrossRefGoogle Scholar
- Wærn M (1952) Rocky-shore algae in the Öregrund archipelago. Acta Phytogeographica Suecica 30:1–298Google Scholar
- Watson DC, Norton TA (1985) Dietary preferences of the common periwinkle, Littorina littorea (L.). Journal of Experimental Marine Biology and Ecology 88:121–193CrossRefGoogle Scholar
- Wentworth CK (1922) A scale of grade and class terms for clastic sediments. The Journal of Geology 30:377–392CrossRefGoogle Scholar
- Widerlund A, Andersson PS (2006) Strontium isotopic composition of modern and Holocene mollusc shells as a palaeosalinity indicator for the Baltic Sea. Chemical Geology 232:54–66CrossRefGoogle Scholar
- Winterhalter B (1992) Late-Quaternary stratigraphy of Baltic Sea basins—a review. Bulletin of the Geological Society of Finland 64:189–194Google Scholar
- Wulff F, Sokolov A, Savchuk (2013) Nest—a decision support system for management of the Baltic Sea, a user manual. Baltic Nest Institute, Stockholm University Baltic Sea Centre, Technical Report 10:1–70Google Scholar
- Wulff F, Stigebrandt A, Rahm L (1990) Nutrient dynamics of the Baltic Sea. AMBIO 19:126–133Google Scholar
- Zillén L, Conley DJ, Andrén T, Andrén E, Björck S (2008) Past occurrences of hypoxia in the Baltic Sea and the role of climate variability, environmental change and human impact. Earth-Science Review 91:77–92CrossRefGoogle Scholar
- Zorita E, Laine A (2000) Dependence of salinity and oxygen concentrations in the Baltic Sea on large-scale atmospheric circulation. Climate Research 14:25–41CrossRefGoogle Scholar
- Zweifel UL, Wilmer J, Hagström A, Lundberg E, Norrman B (1995) Dynamics of in a coastal ecosystem. Limnology and Oceanography 40:299–305CrossRefGoogle Scholar