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. 2017;58(4):437-453.
doi: 10.1007/s10933-017-0001-0. Epub 2017 Oct 5.

Aquatic community response to volcanic eruptions on the Ecuadorian Andean flank: evidence from the palaeoecological record

Affiliations

Aquatic community response to volcanic eruptions on the Ecuadorian Andean flank: evidence from the palaeoecological record

Frazer Matthews-Bird et al. J Paleolimnol. 2017.

Abstract

Aquatic ecosystems in the tropical Andes are under increasing pressure from human modification of the landscape (deforestation and dams) and climatic change (increase of extreme events and 1.5 °C on average temperatures are projected for AD 2100). However, the resilience of these ecosystems to perturbations is poorly understood. Here we use a multi-proxy palaeoecological approach to assess the response of aquatic ecosystems to a major mechanism for natural disturbance, volcanic ash deposition. Specifically, we present data from two Neotropical lakes located on the eastern Andean flank of Ecuador. Laguna Pindo (1°27.132'S-78°04.847'W) is a tectonically formed closed basin surrounded by a dense mid-elevation forest, whereas Laguna Baños (0°19.328'S-78°09.175'W) is a glacially formed lake with an inflow and outflow in high Andean Páramo grasslands. In each lake we examined the dynamics of chironomids and other aquatic and semi-aquatic organisms to explore the effect of thick (> 5 cm) volcanic deposits on the aquatic communities in these two systems with different catchment features. In both lakes past volcanic ash deposition was evident from four large tephras dated to c.850 cal year BP (Pindo), and 4600, 3600 and 1500 cal year BP (Baños). Examination of the chironomid and aquatic assemblages before and after the ash depositions revealed no shift in composition at Pindo, but a major change at Baños occurred after the last event around 1500 cal year BP. Chironomids at Baños changed from an assemblage dominated by Pseudochironomus and Polypedilum nubifer-type to Cricotopus/Paratrichocladius type-II, and such a dominance lasted for approximately 380 years. We suggest that, despite potential changes in the water chemistry, the major effect on the chironomid community resulted from the thickness of the tephra being deposited, which acted to shallow the water body beyond a depth threshold. Changes in the aquatic flora and fauna at the base of the trophic chain can promote cascade effects that may deteriorate the ecosystem, especially when already influenced by human activities, such as deforestation and dams, which is frequent in the high Andes.

Keywords: Chironomids; Lake sediment burial; Long-term changes; Non-Pollen Palynomorphs (NPP); Sensitivity; Tephras.

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Figures

Fig. 1
Fig. 1
a Map of Ecuador, showing location of the lakes studied (marked as stars: a Laguna Baños and b Laguna Pindo) and the main volcanoes close to the lakes (circles). b Laguna Pindo: Image of the lake (b.1), and Google Earth view of the catchment (b.2). c Laguna Baños: image of the lake (c.1), and Google Earth view of the catchment (c.2: numbers 1 and 2 indicate the water body analysed in Michelutti et al. (2016) and the present study respectively). Google Earth access on February 2016. Note the differences in the scale used for both images and in the openness of the catchment showed by colours in the online version (green/dark = forest; yellow/light = grassland)
Fig. 2
Fig. 2
Sediment lithology, radiocarbon dates (uncalibrated age), position of the tephras analysed (except PINDO/B) and age-depth models of a Laguna Pindo and b Pond Baños. Key colour for sediment descriptions in the online version: Black or dark brown = organic rich sediments (peat, clay); white = grey sandy intervals; grey = compacted grey clay sediments (tephra); green = greenish sandy clay, not compacted; yellow = sediment gap (no sediment)
Fig. 3
Fig. 3
Total alkali–silica (TAS) plot of the considered tephras following classification of Le Bas et al. (1986), and based on the results of Table 2
Fig. 4
Fig. 4
Percentage diagram of chironomids in Laguna Pindo. QZ: Chironomids zones. The grey band denotes tephra deposition (labelled in italics). DCA axis score was calculated with chironomid abundance square root transformed
Fig. 5
Fig. 5
Percentage diagram of chironomids in Laguna Baños. QZ: Chironomids zones. The grey bands denote tephra depositions (labelled in italics). DCA axis score was calculated with chironomid abundance square root transformed. Asterisks mark presence of taxa in samples with very low concentration of head capsules (samples with < 10 head capsules in total)
Fig. 6
Fig. 6
Percentage diagrams (based on the sum of total terrestrial pollen, counts shown in the first column) of other aquatic communities (ferns, aquatic and semiaquatic plants, algae and other zoological remains other than chironomids) of the two sedimentary sequences studied. Grey bands indicate tephra deposits (labelled in italics)

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