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Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems

Seaweed aquaculture is affected by natural and anthropogenic stressors, which put the biomass productivity of the cultures at risk. Seaweed biomass for commercial purposes, principally in pharmaceutical and/or nutraceutical applications, needs to be free of pollutants; therefore, controlled cultures...

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Autores principales: Rivas, Jorge, Piña, Florentina, Araya, Matías, Latorre-Padilla, Nicolás, Pinilla-Rojas, Benjamín, Caroca, Sofía, Bronfman, Francisca C., Contreras-Porcia, Loretto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9611025/
https://www.ncbi.nlm.nih.gov/pubmed/36296423
http://dx.doi.org/10.3390/molecules27206832
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author Rivas, Jorge
Piña, Florentina
Araya, Matías
Latorre-Padilla, Nicolás
Pinilla-Rojas, Benjamín
Caroca, Sofía
Bronfman, Francisca C.
Contreras-Porcia, Loretto
author_facet Rivas, Jorge
Piña, Florentina
Araya, Matías
Latorre-Padilla, Nicolás
Pinilla-Rojas, Benjamín
Caroca, Sofía
Bronfman, Francisca C.
Contreras-Porcia, Loretto
author_sort Rivas, Jorge
collection PubMed
description Seaweed aquaculture is affected by natural and anthropogenic stressors, which put the biomass productivity of the cultures at risk. Seaweed biomass for commercial purposes, principally in pharmaceutical and/or nutraceutical applications, needs to be free of pollutants; therefore, controlled cultures have relevance in regulating the quality of biomass. The aim of this work was to demonstrate the successful utilization of controlled outdoor cultures to remove excess heavy metal accumulation in Gracilaria chilensis, an important commercial seaweed farming model. Specifically, we designed a simple and operational heavy metal depuration protocol, utilizing seawater and tap water removal, which permitted the concentration reduction of 10 heavy metals, including As, Cu, and Cd but not Zn, from the biomass at 7 days of culture. The percentage of depuration of the heavy metals ranged from 32 to 92% at 7 days, which was maintained throughout 21 days of culture. During the culture period, the monitored physicochemical parameters (temperature, salinity, and dissolved oxygen, among others) remained stable, with an increase in the daily growth rate (DGR% d(−1)) of the biomass recorded after 14 days of culture. Consequently, the experimental setup was successful for heavy metal depuration, which highlights the importance of controlled outdoor cultures as important tools of sustainability.
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spelling pubmed-96110252022-10-28 Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems Rivas, Jorge Piña, Florentina Araya, Matías Latorre-Padilla, Nicolás Pinilla-Rojas, Benjamín Caroca, Sofía Bronfman, Francisca C. Contreras-Porcia, Loretto Molecules Communication Seaweed aquaculture is affected by natural and anthropogenic stressors, which put the biomass productivity of the cultures at risk. Seaweed biomass for commercial purposes, principally in pharmaceutical and/or nutraceutical applications, needs to be free of pollutants; therefore, controlled cultures have relevance in regulating the quality of biomass. The aim of this work was to demonstrate the successful utilization of controlled outdoor cultures to remove excess heavy metal accumulation in Gracilaria chilensis, an important commercial seaweed farming model. Specifically, we designed a simple and operational heavy metal depuration protocol, utilizing seawater and tap water removal, which permitted the concentration reduction of 10 heavy metals, including As, Cu, and Cd but not Zn, from the biomass at 7 days of culture. The percentage of depuration of the heavy metals ranged from 32 to 92% at 7 days, which was maintained throughout 21 days of culture. During the culture period, the monitored physicochemical parameters (temperature, salinity, and dissolved oxygen, among others) remained stable, with an increase in the daily growth rate (DGR% d(−1)) of the biomass recorded after 14 days of culture. Consequently, the experimental setup was successful for heavy metal depuration, which highlights the importance of controlled outdoor cultures as important tools of sustainability. MDPI 2022-10-12 /pmc/articles/PMC9611025/ /pubmed/36296423 http://dx.doi.org/10.3390/molecules27206832 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Rivas, Jorge
Piña, Florentina
Araya, Matías
Latorre-Padilla, Nicolás
Pinilla-Rojas, Benjamín
Caroca, Sofía
Bronfman, Francisca C.
Contreras-Porcia, Loretto
Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title_full Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title_fullStr Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title_full_unstemmed Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title_short Heavy Metal Depuration Steps for Gracilaria chilensis in Outdoor Culture Systems
title_sort heavy metal depuration steps for gracilaria chilensis in outdoor culture systems
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9611025/
https://www.ncbi.nlm.nih.gov/pubmed/36296423
http://dx.doi.org/10.3390/molecules27206832
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