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1.
ISME J ; 16(4): 1055-1064, 2022 04.
Artigo em Inglês | MEDLINE | ID: mdl-34819612

RESUMO

The filamentous diazotrophic cyanobacterium Trichodesmium is responsible for a significant fraction of marine di-nitrogen (N2) fixation. Growth and distribution of Trichodesmium and other diazotrophs in the vast oligotrophic subtropical gyres is influenced by iron (Fe) and phosphorus (P) availability, while reciprocally influencing the biogeochemistry of these nutrients. Here we use observations across natural inverse gradients in Fe and P in the North Atlantic subtropical gyre (NASG) to demonstrate how Trichodesmium acclimates in situ to resource availability. Transcriptomic analysis identified progressive upregulation of known iron-stress biomarker genes with decreasing Fe availability, and progressive upregulation of genes involved in the acquisition of diverse P sources with decreasing P availability, while genes involved in N2 fixation were upregulated at the intersection under moderate Fe and P availability. Enhanced N2 fixation within the Fe and P co-stressed transition region was also associated with a distinct, consistent metabolic profile, including the expression of alternative photosynthetic pathways that potentially facilitate ATP generation required for N2 fixation with reduced net oxygen production. The observed response of Trichodesmium to availability of both Fe and P supports suggestions that these biogeochemically significant organisms employ unique molecular, and thus physiological responses as adaptations to specifically exploit the Fe and P co-limited niche they construct.


Assuntos
Cianobactérias , Trichodesmium , Cianobactérias/genética , Cianobactérias/metabolismo , Ferro/metabolismo , Nitrogênio/metabolismo , Fixação de Nitrogênio/genética , Trichodesmium/genética , Trichodesmium/metabolismo
2.
Ecotoxicology ; 21(5): 1436-47, 2012 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-22476697

RESUMO

A major challenge in ecotoxicology is to understand the effects of multiple toxicants on organisms. Here we assess the effects on survival, weight change, cocoon production and metabolism caused by exposure to two similarly acting (imidacloprid/thiacloprid) and two dissimilarly acting (chlorpyrifos/Nickel) chemicals on the earthworm Lumbricus rubellus. We assessed the standard models of concentration addition (CA) and independent action (IA), in conjunction with a metabolomics based approach to elucidate mechanisms of effect. For imidacloprid and thiacloprid the reproductive effects indicated probable additivity. Although this suggests joint effects through a similar mechanism, metabolite changes for each pesticide actually indicated distinct effects. Further, earthworms exposed to a 0.5 toxic unit equitoxic mixture demonstrated metabolic effects intermediate between those for each pesticide, indicating a non-interactive, independent joint effect. For higher effect level mixtures (1 and 1.5 toxic units), metabolite changes associated with thiacloprid exposure began to dominate. The metabolomic effects of the two dissimilarly acting chemicals were distinct, confirming separate modes of action and both proved more toxic than anticipated from previous studies. In the mixtures, phenotypic effects were in accordance with IA estimates, while metabolite changes were dominated by Ni effects, even though chlorpyrifos contributed most to reproductive toxicity. This could be attributed to the greater systematic effect of Ni when compared to the more specifically acting chlorpyrifos.


Assuntos
Metabolômica/métodos , Oligoquetos/efeitos dos fármacos , Poluentes do Solo/toxicidade , Animais , Clorpirifos/toxicidade , Relação Dose-Resposta a Droga , Ecotoxicologia/métodos , Imidazóis/toxicidade , Espectroscopia de Ressonância Magnética/métodos , Neonicotinoides , Níquel/toxicidade , Nitrocompostos/toxicidade , Oligoquetos/metabolismo , Praguicidas/toxicidade , Piridinas/toxicidade , Reprodução/efeitos dos fármacos , Tiazinas/toxicidade
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