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1.
Nat Commun ; 14(1): 564, 2023 02 02.
Artigo em Inglês | MEDLINE | ID: mdl-36732509

RESUMO

Zooplankton are major consumers of phytoplankton primary production in marine ecosystems. As such, they represent a critical link for energy and matter transfer between phytoplankton and bacterioplankton to higher trophic levels and play an important role in global biogeochemical cycles. In this Review, we discuss key responses of zooplankton to ocean warming, including shifts in phenology, range, and body size, and assess the implications to the biological carbon pump and interactions with higher trophic levels. Our synthesis highlights key knowledge gaps and geographic gaps in monitoring coverage that need to be urgently addressed. We also discuss an integrated sampling approach that combines traditional and novel techniques to improve zooplankton observation for the benefit of monitoring zooplankton populations and modelling future scenarios under global changes.


Assuntos
Ecossistema , Zooplâncton , Animais , Zooplâncton/fisiologia , Cadeia Alimentar , Clima , Fitoplâncton/fisiologia , Mudança Climática
2.
Curr Biol ; 31(13): R848-R850, 2021 07 12.
Artigo em Inglês | MEDLINE | ID: mdl-34256917

RESUMO

The scarcity of iron limits phytoplankton growth in large areas of the global ocean. Zooplankton may contribute to the cycling of iron via excretion and egestion. Despite evidence of high iron content in zooplankton excretion and faecal products, many questions arise as to the availability of regenerated iron for phytoplankton growth.


Assuntos
Ferro , Zooplâncton , Animais , Oceanos e Mares , Fitoplâncton
3.
Geophys Res Lett ; 48(1): e2020GL088369, 2021 Jan 16.
Artigo em Inglês | MEDLINE | ID: mdl-33518833

RESUMO

Across the Southern Ocean, phytoplankton growth is governed by iron and light, while bacterial growth is regulated by iron and labile dissolved organic carbon (LDOC). We use a mechanistic model to examine how competition for iron between phytoplankton and bacteria responds to changes in iron, light, and LDOC. Consistent with experimental evidence, increasing iron and light encourages phytoplankton dominance, while increasing LDOC and decreasing light favors bacterial dominance. Under elevated LDOC, bacteria can outcompete phytoplankton for iron, most easily under lower iron. Simulations reveal that bacteria are major iron consumers and suggest that luxury storage plays a key role in competitive iron uptake. Under seasonal conditions typical of the Southern Ocean, sources of LDOC besides phytoplankton exudation modulate the strength of competitive interactions. Continued investigations on the competitive fitness of bacteria in driving changes in primary production in iron-limited systems will be invaluable in refining these results.

4.
Curr Biol ; 26(19): R884-R887, 2016 10 10.
Artigo em Inglês | MEDLINE | ID: mdl-27728790

RESUMO

Iron limits phytoplankton growth in large areas of the Southern Ocean. A new study shows that Antarctic krill play a crucial role in the recycling of iron in the iron-limited waters.


Assuntos
Euphausiacea , Ferro/análise , Animais , Regiões Antárticas , Alimentos , Fitoplâncton
5.
Proc Biol Sci ; 283(1829)2016 04 27.
Artigo em Inglês | MEDLINE | ID: mdl-27122551

RESUMO

Plant litter breakdown is a key ecological process in terrestrial and freshwater ecosystems. Streams and rivers, in particular, contribute substantially to global carbon fluxes. However, there is little information available on the relative roles of different drivers of plant litter breakdown in fresh waters, particularly at large scales. We present a global-scale study of litter breakdown in streams to compare the roles of biotic, climatic and other environmental factors on breakdown rates. We conducted an experiment in 24 streams encompassing latitudes from 47.8° N to 42.8° S, using litter mixtures of local species differing in quality and phylogenetic diversity (PD), and alder (Alnus glutinosa) to control for variation in litter traits. Our models revealed that breakdown of alder was driven by climate, with some influence of pH, whereas variation in breakdown of litter mixtures was explained mainly by litter quality and PD. Effects of litter quality and PD and stream pH were more positive at higher temperatures, indicating that different mechanisms may operate at different latitudes. These results reflect global variability caused by multiple factors, but unexplained variance points to the need for expanded global-scale comparisons.


Assuntos
Biodegradação Ambiental , Plantas , Rios , Biodiversidade , Biota , Ciclo do Carbono , Clima , Ecossistema , Concentração de Íons de Hidrogênio , Filogenia
7.
PLoS One ; 9(12): e114067, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25469984

RESUMO

The availability of micronutrients is a key factor that affects primary productivity in High Nutrient Low Chlorophyll (HNLC) regions of the Southern Ocean. Nutrient supply is governed by a range of physical, chemical and biological processes, and there are significant feedbacks within the ecosystem. It has been suggested that baleen whales form a crucial part of biogeochemical cycling processes through the consumption of nutrient-rich krill and subsequent defecation, but data on their contribution are scarce. We analysed the concentration of iron, cadmium, manganese, cobalt, copper, zinc, phosphorus and carbon in baleen whale faeces and muscle, and krill tissue using inductively coupled plasma mass spectrometry. Metal concentrations in krill tissue were between 20 thousand and 4.8 million times higher than typical Southern Ocean HNLC seawater concentrations, while whale faecal matter was between 276 thousand and 10 million times higher. These findings suggest that krill act as a mechanism for concentrating and retaining elements in the surface layer, which are subsequently released back into the ocean, once eaten by whales, through defecation. Trace metal to carbon ratios were also higher in whale faeces compared to whale muscle indicating that whales are concentrating carbon and actively defecating trace elements. Consequently, recovery of the great whales may facilitate the recycling of nutrients via defecation, which may affect productivity in HNLC areas.


Assuntos
Ecossistema , Euphausiacea/metabolismo , Micronutrientes/metabolismo , Baleias/metabolismo , Animais , Carbono/análise , Carbono/metabolismo , Fezes/química , Espectrometria de Massas/métodos , Metais/análise , Metais/metabolismo , Micronutrientes/análise , Músculos/química , Fósforo/análise , Fósforo/metabolismo , Água do Mar/química , Oligoelementos/análise , Oligoelementos/metabolismo
8.
Ecol Lett ; 14(3): 289-94, 2011 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-21299824

RESUMO

The decomposition of plant litter is one of the most important ecosystem processes in the biosphere and is particularly sensitive to climate warming. Aquatic ecosystems are well suited to studying warming effects on decomposition because the otherwise confounding influence of moisture is constant. By using a latitudinal temperature gradient in an unprecedented global experiment in streams, we found that climate warming will likely hasten microbial litter decomposition and produce an equivalent decline in detritivore-mediated decomposition rates. As a result, overall decomposition rates should remain unchanged. Nevertheless, the process would be profoundly altered, because the shift in importance from detritivores to microbes in warm climates would likely increase CO(2) production and decrease the generation and sequestration of recalcitrant organic particles. In view of recent estimates showing that inland waters are a significant component of the global carbon cycle, this implies consequences for global biogeochemistry and a possible positive climate feedback.


Assuntos
Água Doce , Folhas de Planta/metabolismo , Ciclo do Carbono , Dióxido de Carbono , Sequestro de Carbono , Mudança Climática , Ecossistema , Plantas/metabolismo , Temperatura
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