Cargando…
A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays
In the past decades, bioassays and whole-organism bioassay have become important tools not only in compliance testing of industrial chemicals and plant protection products, but also in the monitoring of environmental quality. With few exceptions, such test systems are discontinuous. They require exp...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2017
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5473567/ https://www.ncbi.nlm.nih.gov/pubmed/28622373 http://dx.doi.org/10.1371/journal.pone.0179636 |
_version_ | 1783244310634823680 |
---|---|
author | Steffens, Sebastian Nüßer, Leonie Seiler, Thomas-Benjamin Ruchter, Nadine Schumann, Mark Döring, Ricarda Cofalla, Catrina Ostfeld, Avi Salomons, Elad Schüttrumpf, Holger Hollert, Henner Brinkmann, Markus |
author_facet | Steffens, Sebastian Nüßer, Leonie Seiler, Thomas-Benjamin Ruchter, Nadine Schumann, Mark Döring, Ricarda Cofalla, Catrina Ostfeld, Avi Salomons, Elad Schüttrumpf, Holger Hollert, Henner Brinkmann, Markus |
author_sort | Steffens, Sebastian |
collection | PubMed |
description | In the past decades, bioassays and whole-organism bioassay have become important tools not only in compliance testing of industrial chemicals and plant protection products, but also in the monitoring of environmental quality. With few exceptions, such test systems are discontinuous. They require exposure of the biological test material in small units, such as multiwell plates, during prolonged incubation periods, and do not allow online read-outs. It is mostly due to these shortcomings that applications in continuous monitoring of, e.g., drinking or surface water quality are largely missing. We propose the use of pipetting robots that can be used to automatically exchange samples in multiwell plates with fresh samples in a semi-static manner, as a potential solution to overcome these limitations. In this study, we developed a simple and low-cost, versatile pipetting robot constructed partly using open-source hardware that has a small footprint and can be used for online monitoring of water quality by means of an automated whole-organism bioassay. We tested its precision in automated 2-fold dilution series and used it for exposure of zebrafish embryos (Danio rerio)–a common model species in ecotoxicology—to cadmium chloride and permethrin. We found that, compared to conventional static or semi-static exposure scenarios, effects of the two chemicals in zebrafish embryos generally occurred at lower concentrations, and analytically verified that the increased frequency of media exchange resulted in a greater availability of the chemical. In combination with advanced detection systems this custom-made pipetting robot has the potential to become a valuable tool in future monitoring strategies for drinking and surface water. |
format | Online Article Text |
id | pubmed-5473567 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-54735672017-06-22 A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays Steffens, Sebastian Nüßer, Leonie Seiler, Thomas-Benjamin Ruchter, Nadine Schumann, Mark Döring, Ricarda Cofalla, Catrina Ostfeld, Avi Salomons, Elad Schüttrumpf, Holger Hollert, Henner Brinkmann, Markus PLoS One Research Article In the past decades, bioassays and whole-organism bioassay have become important tools not only in compliance testing of industrial chemicals and plant protection products, but also in the monitoring of environmental quality. With few exceptions, such test systems are discontinuous. They require exposure of the biological test material in small units, such as multiwell plates, during prolonged incubation periods, and do not allow online read-outs. It is mostly due to these shortcomings that applications in continuous monitoring of, e.g., drinking or surface water quality are largely missing. We propose the use of pipetting robots that can be used to automatically exchange samples in multiwell plates with fresh samples in a semi-static manner, as a potential solution to overcome these limitations. In this study, we developed a simple and low-cost, versatile pipetting robot constructed partly using open-source hardware that has a small footprint and can be used for online monitoring of water quality by means of an automated whole-organism bioassay. We tested its precision in automated 2-fold dilution series and used it for exposure of zebrafish embryos (Danio rerio)–a common model species in ecotoxicology—to cadmium chloride and permethrin. We found that, compared to conventional static or semi-static exposure scenarios, effects of the two chemicals in zebrafish embryos generally occurred at lower concentrations, and analytically verified that the increased frequency of media exchange resulted in a greater availability of the chemical. In combination with advanced detection systems this custom-made pipetting robot has the potential to become a valuable tool in future monitoring strategies for drinking and surface water. Public Library of Science 2017-06-16 /pmc/articles/PMC5473567/ /pubmed/28622373 http://dx.doi.org/10.1371/journal.pone.0179636 Text en © 2017 Steffens et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. |
spellingShingle | Research Article Steffens, Sebastian Nüßer, Leonie Seiler, Thomas-Benjamin Ruchter, Nadine Schumann, Mark Döring, Ricarda Cofalla, Catrina Ostfeld, Avi Salomons, Elad Schüttrumpf, Holger Hollert, Henner Brinkmann, Markus A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title | A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title_full | A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title_fullStr | A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title_full_unstemmed | A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title_short | A versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
title_sort | versatile and low-cost open source pipetting robot for automation of toxicological and ecotoxicological bioassays |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5473567/ https://www.ncbi.nlm.nih.gov/pubmed/28622373 http://dx.doi.org/10.1371/journal.pone.0179636 |
work_keys_str_mv | AT steffenssebastian aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT nußerleonie aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT seilerthomasbenjamin aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT ruchternadine aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT schumannmark aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT doringricarda aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT cofallacatrina aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT ostfeldavi aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT salomonselad aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT schuttrumpfholger aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT hollerthenner aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT brinkmannmarkus aversatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT steffenssebastian versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT nußerleonie versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT seilerthomasbenjamin versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT ruchternadine versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT schumannmark versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT doringricarda versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT cofallacatrina versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT ostfeldavi versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT salomonselad versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT schuttrumpfholger versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT hollerthenner versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays AT brinkmannmarkus versatileandlowcostopensourcepipettingrobotforautomationoftoxicologicalandecotoxicologicalbioassays |