Showing posts with label Oceanography. Show all posts
Showing posts with label Oceanography. Show all posts

Wednesday, 29 April 2020

Emiliania huxleyi: Modelling how an Atlantic Coccolithophore is invading the Arctic Ocean.

The European Arctic Corridor is the main gateway to the Arctic Ocean, where 80% of both in- and outflow takes place. One of the most prominent feature of the European Arctic Corridor is the northward flowing North Atlantic Waters entering the Arctic Ocean through two main branches, which separate around 70°N. One branch keeps flowing northward toward Fram Strait while the second one turns eastward into the Barents Sea. Over the last three decades, in a context of amplified warming and sea-ice loss, substantial changes have been documented in the North Atlantic Water inflow with a twofold increase of its volume occupation and a northward shift of the polar front structure in the Barents Sea. The North Atlantic Water inflow largely controls the physical and sea-ice conditions of the region In addition, almost 50% of the total Arctic primary production takes place in the European Arctic Corridor, which is of major importance for fisheries. Recent warming of the European Arctic Corridor related to the North Atlantic Water inflow has been suspected to trigger poleward intrusions of temperate phytoplankton and species from higher trophic levels. By carrying biomass and nutrients produced elsewhere, bioadvection has recently been proposed as an 'essential mechanism' for ecosystem dynamics in the Arctic Ocean. Although the actual role of advection has already been identified as a potential driver altering zooplankton dynamics, it has never been assessed quantitatively from observations for phytoplankton in the European Arctic Corridor, or more generally in the Arctic Ocean.

In a paper published in the journal Nature Communications on 10 April 2020, Laurent Oziel of the Ocean and Ecosystem Sciences Division at Fisheries and Oceans Canada, the joint Takuvik International Research Laboratory of Université Laval and the Centre National de la Recherche Scientifique, and the Laboratoire d’Océanographie de Villefranche-sur-Mer of Sorbonne Université, Alberto Baudena, also of the Laboratoire d’Océanographie de Villefranche-sur-Mer, Mathieu Ardyna also of the Laboratoire d’Océanographie de Villefranche-sur-Mer, and of the Department of Earth System Science at Stanford University, Philippe Massicotte and Achim Randelhoff, also of the Takuvik International Research Laboratory, Jean-Baptiste Sallée, again of Sorbonne Université, Randi Ingvaldsen of the Institute of Marine Research, Emmanuel Devred, also of the Ocean and Ecosystem Sciences Division at Fisheries and Oceans Canada, and Marcel Babin, again of the Takuvik International Research Laboratory, present the results of an investigation into how ocean currents control the spatial dynamics of a specific Coccolithophore bloom-forming species, Emiliania huxleyi.  

The European Arctic Corridor. Bathymetry and surface circulation. The Atlantic currents are in red, the Arctic or Polar Waters are in blue and the Coastal Waters are in green. The southern Barents Sea Polar Front is illustrated in black dashed line and separates the Atlantic Waters from the colder and fresher waters from the North. Oziel et al. (2020).

Emiliania huxleyi is usually associated with the surface layer of the temperate North Atlantic Waters in summer, typically in a post-spring bloom context characterized by low nutrients, low light and strong stratification. Since Emiliania huxleyi does not form winter resting spores, this tracer of Atlantic ecosystem is generally considered to be a summer visitor in the Barents Sea, unlike neritic Diatoms species. A combination of bottom-up (i.e. winter darkness, cold temperatures and intense vertical mixing) and top-down controls (i.e. zooplankton grazing, viral lysis) prevent Emiliania huxleyi from year-to-year survival in the north-easternmost parts of the Barents Sea. Because of their high abundance in Emiliania huxleyi (115 000 000 cells per litre), coastal regions and fjords of the Norwegian Sea have been suspected to be the source of Emiliania huxleyi for the whole European Arctic Corridor.

Using a Lagrangian tracking approach based on satellite derived current fields, Oziel et al. explored how the advection of Emiliania huxleyi cells from these upstream coastal temperate regions shapes the distribution of the massive Emiliania huxleyi blooms in the Barents Sea (via the 'seeding effect'). By combining satellite-derived altimetry with ocean-color Particulate Inorganic Carbon (a Coccolithophore biomass proxy) estimates, Oziel et al. demonstrate a major role of bio-advection in phytoplankton transport along the European Arctic Corridor.

An individual Emiliania huxleyi cell. Stig Haugen/Institute of Marine Research.

To document the interannual and decadal variability of surface North Atlantic Water currents, Oziel et al. first performed an statistical analysis of Sea Level Anomalies from 1993 to 2016, on which the seasonal signal was removed. The analysis showed that the two variables accounted for more than 80% of the non-seasonal variability. A dipole structure emerged, centered on the North Atlantic Waters path between the Barents and Norwegian Sea shelves (east of 5°E) and the center of the Norwegian Sea (west of 5°E). The associated time-series showed a linear positive trend over the last 24 years with high energy at the interannual and decadal time scale. This trend toward a more positive phase corresponds to an increase of the sea level gradient across the North Atlantic Waters path, hence intensifying North Atlantic Waters currents, while negative phases are associated with weaker North Atlantic Waters currents.

Statistical analysis of Monthly averaged Sea Level Anomalies in the European Arctic Corridor. The sum of the first two modes account for more than 80% of the total variability. Oziel et al. (2020).

To reveal the impact of changing sea level on surface velocity fields, absolute surface geostrophic velocities, derived from Absolute Dynamic Topography fields were mapped during the extreme negative (1993) and positive (2015) phases of the analysis. These two contrasting years illustrate the ongoing strengthening of the ocean surface circulation in the European Arctic Corridor associated with the Atlantic inflow. Surface geostrophic current linear trends showed that surface currents changed in most of the Atlantic pathway In the Norwegian Sea, the increase in the Atlantic surface current speed reached 2 mm per second per year, corresponding to a relative increase ranging from 30% on the shelf to 100% in the basin. The surface currents in the eastern Barents Sea-Atlantic corridor also significantly increased by about 6 mm per second per year, an increase in flow rate of about 14%. The positive phase associated with stronger north-eastward North Atlantic Waters surface currents since year 2000 reflects an increase in advection at or near the surface. This result is consistent with the recent trends in North Atlantic Waters current velocities observed upstream in the Nordic Seas or modelled in the Barents Sea.

Surface absolute geostrophic velocities during the extremums of the timeseries which are, respectively, reached in (a) December 1993 (minimum) and (b) 2015 (maximum) with (c|) the corresponding absolute linear trend of the entire time-series (all months) over the 1993–2016 period. Areas covered by sea ice (sea-ice concentration over 15%) or with insufficient data coverage for the trend (less than 50%) are in dark gray. Oziel et al. (2020).

The interannual fluctuations as well as the long-term trend observed in the time-series of surface geostrophic velocities are mainly attributed to the dynamics of the North Atlantic Subpolar Gyre, and to the atmospheric forcing of the North Atlantic Oscillation, which are both tightly coupled. This suggests that the increase in surface advection in the European Arctic Corridor is likely due to a natural multidecadal oscillation related to the upstream synoptic oceanic circulation and atmospheric forcing, which could, in turn, drive long-term climatic change in the Barents Sea.

The first hypothesis that ocean currents control the summer spatial distribution of Emiliania huxleyi in the Barents Sea was tested using a Lagrangian model. Oziel et al. advected virtual particles (considered as the inoculum of Emiliania huxleyi cells), using observations of surface geostrophic velocities, from their expected overwintering location in March (defined by sea surface temperatures greater than 4°C and distance from coast no more than 180 km). This model revealed that the spatial distribution of the virtual particles at the end of the advection period matched the extent of Emiliania huxleyi blooms (evidenced by satellite-derived Particulate Inorganic Concentration), with 80% of tracked particles ending up within 50 km of an Emiliania huxleyi blooming location. The year-to-year robustness of the matchup between virtual particles and Particulate Inorganic Concentration clearly supports the fact that the North Atlantic Waters surface currents shape the location and extent of Emiliania huxleyi blooms in the European Arctic Corridor.

Poleward expansion of Emiliania huxleyi (EHux) in the European Arctic Corridor. Comparison between 1998 (a) and 2015 (b). The initialisation (inoculum) of virtual particles in March are illustrated by brown dots. During 6 months, particles drift with the Norwegian Atlantic Current (red arrows) as the ocean seasonally warms as illustrated by the northward expansion of the 4 °C isotherm. In August, the particles end up in positions indicated by the red dots. In the background, remotely sensed Particulate Inorganic Concentration indicating Coccolithophore biomass in summer (July–August–September) is shown in blue colors. Areas with no data are in dark gray. Oziel et al. (2020).

It is noteworthy that the particles reached further north and east in the European Arctic Corridor in 2015 than in 1998, in agreement with Emiliania huxleyi blooms. The north-eastward expansion of the Emiliania huxleyi bloom, expressed here as the distance reached by the leading-edge increased on average by 325 km during the last 19 years as indicated by ocean-color observations, in close agreement with previous estimations (324 km, 40–50°E, 1989–2016) and with the estimates from Oziel et al.'s model.

The 4 °C surface isotherm is considered for Emiliania huxleyi as the lowest temperature required for sufficient growth to allow bloom formation. However, the Emiliania huxleyi blooms do not seem to follow this isotherm in summer and appear to be constrained by another factor. For example, the north-eastward expansion of the winter 4°C isotherm, which delimits the areal extent of the inoculum in Oziel et al.'s model, could contribute to reduce the distance between the Emiliania huxleyi winter location and the Arctic domain. To test this hypothesis, Oziel et al created two additional models to examine both the role of currents and winter temperature on the poleward expansion of Emiliania huxleyi. In the second model Oziel et al. constantly initialised the virtual particles at the same inoculation region for all years, using a climatological mean temperature field to determine the inoculation region. Hence, the second model exclusively reflected the role of currents on the interannual variability of the advected particles. In contrast, in the third model, the constant inoculation region varied from one year to another, but Oziel et al used a climatological mean current to advect the particles. In this way, the interannual variability of the advected particles due to interannual variability of the inoculation region was quantified. The interannual Particulate Inorganic Concentration leading-edge location was highly correlated with the leading-edge from the second model, suggesting a stronger control of the bloom expansion by currents than by winter temperature. On the decadal scale, currents were found responsible for the 56% (240 km) increase in the long-term leading-edge expansion against 44% (186 km) for winter temperature, when compared to the first model. This significant increasing trend in current velocities was also revealed by the greater distance covered by the virtual particles reaching the Barents Sea, which increased by 110 km on average since 1993.

Shifting position of the leading-edge Emiliania huxleyi bloom distribution. Shifting position from ocean-colour Particulate Inorganic Concentration (a), and the three models (b)–(d) for the last 19-years (1998–2016). The comparison between the first model (EXP1), (b) with the second (EXP2), (c) and the third (EXP3), (d) aims at estimating the relative contribution of currents (EXP2, constant temperature) vs. temperature (EXP3, constant currents) on the total Emiliania huxleyi poleward expansion (EXP1, varying temperature and currents). The right panel is a schematic illustration of the poleward expansion of the Emiliania huxleyi with the winter 4°C isotherm (lowest temperature for a ‘regular’ Emiliania huxleyi growth) in blue and the summer bloom position (northern boundary) in red. The two extreme years 1998 (dashed) and 2015 (solid) are represented. Arrows indicate the contribution from temperature and/or currents keeping the same color code. Oziel et al. (2020).

Increasing water temperature has previously been assumed to be the main driver of the spatial distribution of Emiliania huxleyi blooms in the Barents Sea. Oziel et al.'s results demonstrate that the primary driver of the Emiliania huxleyi dynamics (i.e., spatial distribution and timing) could be, in fact, stronger surface currents, which in turn intrinsically shape the temperature field and frontal structures. Oziel et al. show that oceanic currents (i.e. their intensity and fluctuations) drive the spatial distribution of the bloom, its interannual variability and more than 50% of the long-term poleward expansion of Emiliania huxleyi bloom in the Barents Sea. More importantly, from 2006 and onward, the contribution of water temperature to the expansion of Emiliania huxleyi blooms becomes negligible, and its poleward expansion is entirely due to the accelerating currents.

Emiliania huxleyi is largely studied for its significant role in marine geochemical cycles, as illustrated by its sensitivity to ocean acidification, its effect on carbon dioxide pressure and carbon dioxide uptake, and its role on carbon export by providing calcite ballast effect. In Oziel et al.'s study Emiliania huxleyi was used as an indicator of Atlantic ecosystems. By expanding poleward and doubling its areal extent in the Barents Sea, Emiliania huxleyi attests to the ongoing 'Atlantification' of the Arctic Ocean. Both arctic and Atlantic domains have distinct ecological signatures, and the latter is undeniably 'invading' the former. Advected with the surface currents, Emiliania huxleyi will have to survive during the travel (for example avoiding grazing by zooplankton, and subduction under the polar mixed layer in the Fram Strait) until finding more favourable blooming conditions in the Barents Sea in summer. The fate of Emiliania huxleyi in the Barents Sea is therefore of major importance as it determines the potential 'seeding effect' of Emiliania huxleyi in the Arctic regions. Emiliania huxleyi seems to be adapted to the low light, low nutrient, oligotrophic and highly stratified conditions of the North Atlantic Waters in summer such that its expansion, growth and blooming in the Arctic Ocean will be limited at some point by those constraints (bottom-up) but also by the grazing pressure (top-down).

Despite its adaptation to low light conditions, Emiliania huxleyi still requires sufficient light levels to sustain the energy-demanding calcification of its coccoliths. Such conditions are met in highly stratified oceans where Emiliania huxleyi can accumulate in the surface layer. At high latitudes (more than 81°N), even with sea surface temperature above 3 or 4 °C, the survival of Emiliania huxleyi would require adaptation to rapidly decreasing solar radiations in late summer. Emiliania huxleyi's fate thus mainly relies on its ability to drift, with the appropriate timing, to highly stratified and temperate areas that allow it to stay in the surface euphotic layer. These conditions would likely be met in the Eurasian interior shelves of the Arctic Ocean (i.e. the Kara, Laptev, and Siberian seas) where surface waters are warming and freshening. If the increase in advection along the shelf slope continues in the future, Oziel et al. expect Emiliania huxleyi to become a summer resident of the newly 'Atlantified; Eurasian interior shelves, as previously revealed during the last interglacial.

By driving such a poleward expansion, advective processes could affect the entire marine ecosystems by shifting species distribution and modifying interactions at higher trophic levels. The concomitant decline of silicate concentrations in North Atlantic Waters may also contribute to the success of non-silicifying and small phytoplankton such as Emiliania huxleyi. n addition, a change toward temperate pelagic species could have an impact on energy transfer to higher trophic levels, including Marine Mammals and commercial Fish stocks. Considering the role of 'bio-advection' in ecological models (i.e., trait-based and niche-based approaches) must improve predictions of community shifts. The comparable increase in poleward advection of Pacific waters occurring in the Bering Strait suggests that the shrinking polar domain of the Arctic Ocean may be prone to intrusions of temperate species at a pan-Arctic scale.

See also...

https://sciencythoughts.blogspot.com/2020/04/looking-for-causes-of-recurring.htmlhttps://sciencythoughts.blogspot.com/2020/04/using-high-throughput-sequencing-to.html
https://sciencythoughts.blogspot.com/2018/11/glacial-flour-creates-dust-storm-in.htmlhttps://sciencythoughts.blogspot.com/2017/10/algal-bloom-covers-much-of-western-lake.html
https://sciencythoughts.blogspot.com/2015/03/methyl-mercury-levels-in-feathers-of.htmlhttps://sciencythoughts.blogspot.com/2014/03/a-new-species-of-golden-algae-from.html









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Sunday, 28 June 2015

Understanding current flows in hydrothermal vents.


Hydrothermal vents are areas on the sea floor where water warmed by the heat of the Earth’s interior escapes into the wider ocean. These waters contain high levels of dissolved minerals and nutrients rare in the wider oceans, and therefore support unique ecosystems able to survive without any input of solar energy. The most extreme examples of hydrothermal vents are the black smokers found around volcanically active ocean ridges. These vents produce water with temperatures reaching hundreds of degrees centigrade, kept liquid only by the high pressures present on the ocean floor, and opaque due to the high levels of minerals present. However hydrothermal vents are also present on areas of the ocean floor far from the active ridges, or any other form of volcanic influence, apparently emitting water that has been transported hundreds of kilometres beneath the ocean floor, which is far harder to explain.

In a paper published in the journal Nature Communications on 26 June 2015, Dustin Winslow of the Earth and Planetary Sciences Department at the University of California Santa Cruz and Andrew Fisher of the Earth and Planetary Sciences Department and Institute for Geophysics and Planetary Physics at the University of California Santa Cruz describe the results of a computer model of water flows supplying water to hydrothermal vents on the ocean floor, based upon observations of vents around the Juan de Fuca Ridge off the northwest coast of North America, which appears to solve the mystery of water supply to distant hydrothermal vents.

Marine sediments tend to be very rich in clay minerals, and are thus effectively impermeable to the flow of water. However the volcanic rocks that lay beneath these sediments tend to be highly porous, allowing the free transport of water. Therefore areas of exposed rock can act as either entrances or exits for water moving through subsurface aquifers, which are isolated from the general ocean in areas where the volcanic bedrock is covered by sediments. Observational evidence from around the Juan de Fuca Ridge suggest that whether an area of exposed volcanic rock serves as an entrance or exit to the aquifer is driven by the size of the exposure rather than other factors, such as proximity to volcanic heating, or the temperature or current speeds of the water passing over the entrances, with hydrothermal vents (i.e. areas where water exits from the aquifers) always occurring from exposed rocks with limited areas.

Geometry and configuration of 3D domains. Domains represent a section of upper ocean crust, oriented with the long-axis parallel to the spreading ridge, consistent with conditions at a field site on the eastern flank of the Juan de Fuca Ridge. A conductive volcanic rock section (red, lower permeability) is overlain by a crustal aquifer (orange, higher permeability) and marine sediments (blue, lower permeability) and two volcanic rock outcrops penetrate through the sediment (light blue). Heat is applied to the base, following a lithospheric cooling trend. The sides and base are no-fluid flow boundaries, and the top is free flow (fluid and heat) with pressure varying as a function of seafloor depth. Winslow & Fisher (2015).

Winslow and Fisher simulated flows between outcrops of different sizes, through subsurface aquifers being heated gently but evenly and constantly from below. They initially tried modelling systems where the current was present at the start of the experiment, on the basis that establishing a system and maintaining it are not the same, but found that even where no current was present at the outset of the experiment, a current flow from the larger opening to the smaller was quickly established.

Larger areas of permeable rock exposure allow both the entrance and exit of water across their surface, whereas smaller openings allow movement in only one direction. As warmer water rises from the vent into the water column warm water exiting from the vent quickly comes to dominate the flow of water at smaller vents, particularly if these are raised above the surrounding area (i.e. sticking up through the mud). This in turn leads to a draw on the waters of the aquifer, effectively pulling water through from the larger areas of exposure.

Simulation results at dynamic steady state. This simulation, showing one quarter of the domain illustrated in the top figure, has one large outcrop and one small outcrop. Domain colours show domain temperatures, including influence of rolling/mixed convection in basement aquifer and thermal influence of recharging/discharging outcrops. Inset diagrams show fluid flow vectors within and around outcrops (length indicates flow rate), with vectors plotted on a natural-log scale, the longest vector (exiting the top of the discharging outcrop) corresponding to a flow rate of 14m per year. Fluid flow through the sediment is so slow that it would generate no detectable thermal or geochemical anomalies. Vertical exaggeration (VE) of main image is times three; VE of inset images is times two. Winslow & Fisher (2015).

Hydrothermal vents are thought to account for about 25% of heat loss from the Earth’s interior, which if correct suggests that a very large amount of water is exiting from such vents every day. Despite this such vents are notoriously hard to find, with efforts to locate them with satellites having been largely inconclusive, and most known vents having been discovered by exploratory missions involving deep-sea submersibles. Winslow and Fisher’s findings suggest that a preference for such vents occurring on smaller outcrops is a genuine natural phenomenon, rather than a product of the observation methods being used. This would explain the difficulty in finding such vents using satellites, as very small discrete vents, no matter how numerous, would fall below the area/size at which it was possible to detect them using remote sensing technology.

See also…

A seismic monitoring system beneath the northeast Pacific operated by the Ocean Observatories Initiative has detected a probable eruption on Axial Seamount, a submarine volcano roughly 480 km off the coast of Oregon. The network has detected...


Hydrothermal vents in the deep oceans are colonized by a broad array of invertebrates that have symbiotic relationships with chemotropic Bacteria. These Bacteria are able to derive energy from chemicals discharged by the vents, providing a base for ecosystems entirely separated from the light of the Sun. Not all...


Deep sea hydrothermal vents are unique ecosystems where the food chain is based not upon the photosynthetic activity of plants or algae, but rather of chemotrophic bacteria that gain their energy from...


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Monday, 27 October 2014

Interpretting turbidite deposits on the Eel Fan off the coast of Northern California.


Turbidites are sedimentary deposits formed by submarine landslides. They have a distinctive structure, typically course grained at the base with the sediment growing finer upwards within the deposit. Since the conditions for the formation of such deposits tend to persist for long periods of time, sequences made up of many repeated turbidite deposits are frequently encountered in the geological record. Such deposits are typically thought to arise from geologic events such as large Earthquakes or tsunamis.

In a paper published in the journal Geology on 15 August 2014, a team of scientists led by Charles Paull of the Monterey Bay Aquarium ResearchInstitute describe the results of a study of a sequence of turbidite deposits on the Eel Fan off the coast of Northern California. The Eel Fan is about 2.6 km beneath the sea surface and lays west the Eel Canyon. The Eel River is thought to have run directly into the Eel Canyon until the end of the Pleistocene, when sea levels were lower, but is now separated by about 20 km of shallow marine shelf.

Map showing location of high-resolution bathymetric surveys, with respect to Eel Canyon and Eel River, California, USA. Box in inset shows location of main figure with respect to California. Contours are at 50 m, and every 200 m interval. R.—River. Paull et al. (2014).

Paullet al. surveyed two areas of scouring, where subsequent landslips have exposed layered deposits, this the Monterey Bay Aquarium Research Institute’s remotely operated vehicle (ROV) Doc Ricketts, which was able to both photograph the deposits and drill cores up to 134 cm in length.

Video still images with an ~2.5 m field of view showing turbidite beds in scours on Eel Fan, California, USA. Horizontal push core being taken from the outcrop face is shown in (A). Note beds wrap around V-shaped ridge in (B). Paull et al. (2014).

Paul et al. first attempted to date the deposits using planktic Foraminifera from the fine grained sections of the sequences, but were unable to find sufficient material to do this. Next they attempted to obtain dates from reworked benthic Foraminifera (i.e. Formainiferans buried once then excavated and reburied by geological events) in the courser grained parts of the deposits. This resulted in dates of between 29 100 and 6100 before the present. Finally they obtained carbon isotope dates from wood samples within the deposits, producing dates of between 12 800 and 7100 years before the present.

By calculating the thinkness and age of the individual beds combined with their approximate ages, Paull et al. conclude that the turbidite flows occurred at a rate of about one every 36 years in the later part of the sequence, but about once every seven years during the Early Holocene (about 12 900 to 8000 years ago). This is far more frequent that can be accounted for by major Earthquake events, but fits well with the known frequency of flood events on the Eel River, which in the Early Holocene would have entered the sea much closer to the Eel Canyon.

See also…

Foraminiferans are Amoeba-like single-celled organisms found either free-floating or attached to surfaces in marine ecosystems. Many build ornate tests (shells) from calcium carbonate, and planktonic forms...


Unlike most Sponges (Porifera), which feed by filter feeding water pumped through their bodies, Carnivorous Sponges (Cladorhizidae) feed by capturing Crustaceans and other small animals on hooked spicules on filaments, then digesting them externally.  The group are predominantly found in deep water, where carnivory is presumed to be a better feeding strategy than filter...

 Turbidites are sedimentary rock formations formed by submarine landslides. They are very distinctive, as water is very efficient at separating sediments by particle size, since larger, heavier particles will sink rapidly but smaller, lighter particles will remain in suspension for longer, taking more time to settle out. The upshot of this is that turbidite deposits show a...


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Saturday, 1 June 2013

The mysterious ebb and flow of Jellyfish populations.

Many scientists and conservationists are worried about the state of the world's oceans. Many important marine ecosystems are known to be under stress: once prolific fisheries have collapsed; dead zones lacking oxygen, and therefore life, have appeared in the coastal waters of developed Northern Hemisphere nations; other areas are suffering from nutrient excesses from agricultural runoff, provoking blooms of toxic algae; and the oceans are becoming more acidic. One concern that has received significant publicity in recent years is the apparent explosion in Jellyfish numbers since the 1970s, with anecdotal evidence from around the world suggesting that these animals have undergone a dramatic, and unprecedented, rise in numbers, potentially to the detriment of other marine life.

Giant Jellyfish (Nemopilema nomurai) clog fishing nets in Japan. Shin-ichi Uye/phys.org.

In a paper published in the Proceedings of the National Academy of Sciences of the United States of America on 15 January 2013, a team of scientists led by Robert Condon of the Dauphin Island Sea Laboratory in Alabama, examine data on Jellyfish populations for the past century in order to try to quantify the apparent rise in numbers in the last 40 years.

Data on Jellyfish populations used in the study. Areas where populations have been recorded for longer have larger circles. Areas where populations have increased significantly during this time are represented in red, areas where Jellyfish have declined in blue. Condon et al. (2013).

In the course of this study Condon et al. made an unexpected discovery; Jellyfish populations across the globe rise and fall in a 20-year cycle, for reasons which could not be determined in the course of the study. Jellyfish numbers have risen since the 1970s, but not as much has been assumed, since two cycles of natural expansion, in the 70s and 90s, are included in the period over which people have noticed the rise in numbers.

Bloom of Moon Jellies (Aurelia aurita) in Chesapeake Bay. Scott Kupiec/National Science Foundation.


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