Zostera noltii development probing using chlorophyll a transient analysis (JIP-test) under field conditions: Integrating physiological insights into a photochemical stress index

dc.contributor.authorDuarte, Bernardo
dc.contributor.authorPedro, Sílvia
dc.contributor.authorMarques, João Carlos
dc.contributor.authorAdão, Helena
dc.contributor.authorCaçador, Isabel
dc.contributor.editorMarques, J.C.
dc.date.accessioned2018-02-05T15:17:49Z
dc.date.available2018-02-05T15:17:49Z
dc.date.issued2017-02-03
dc.description.abstractBeyond their undeniable role, nowadays we also must look to seagrass beds as endangered environments with urgent monitoring and conservation needs. In the present study Z. noltii photochemical performance of under different stages of development/recovery was assessed and its results applied in the development of a photochemical stress index (PSI) to classify and efficiently assess the physiological condition of seagrass beds. In order to investigate deeper into this metabolic network the JIP-test was applied, allowing to identify the reasons underlying the first signs of stress. Less developed beds low connectivity between PS II antennae leading inevitably to an impairment of the energetic transport. Associated to this also the quinone pool showed severe depletion both in number and function. Alongside the Kstep presence in the Kautsky curve points to severe damage at donor side of the PS II, where the Oxygen Evolving Complexes (OECs) are located. All these negative impacts increase the quantum yield of the nonphotochemical reactions in stressed/less developed seagrass beds. In sum, more developed beds show proportionally higher light use efficiencies promoted by a higher number of oxidized reaction centres coupled with an enhanced capacity in using the generated electron potential and relatively lower energy dissipations. Coupling all the photochemical into an Integrated Biomarker Response (IBR) approach, a photochemical stress index (PSI) was produced. The PSI showed that more developed sites present lower photochemical stress values with inverse significant correlation with biomass coverage, reinforcing the applicability of this non-invasive index as a reflex of the seagrass bed development stage.por
dc.identifier.authoremailbaduarte@fc.ul.pt
dc.identifier.authoremailsspedro@fc.ul.pt
dc.identifier.authoremailjcmimar@ci.uc.pt
dc.identifier.authoremailhadao@uevora.pt
dc.identifier.authoremailmicacador@uevora.pt
dc.identifier.citationEcological Indicators, ISSN: 1470-160X, Vol: 76, Page: 219-229 Publication Year: 2017por
dc.identifier.doihttps://doi.org/10.1016/j.ecolind.2017.01.023por
dc.identifier.scientificarea223por
dc.identifier.urihttp://hdl.handle.net/10174/22020
dc.language.isoengpor
dc.peerreviewedyespor
dc.publisherElsevierpor
dc.rightsopenAccesspor
dc.subjectSeagrassespor
dc.subjectRecoverypor
dc.subjectPhotochemistrypor
dc.subjectIBRpor
dc.titleZostera noltii development probing using chlorophyll a transient analysis (JIP-test) under field conditions: Integrating physiological insights into a photochemical stress indexpor
dc.typearticlepor

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