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Keywords = valvometry

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17 pages, 2517 KB  
Article
Development of the BioSentinel Health Index: A Proposed Framework to Support Sustainable Management of Marinas
by Alan Cottingham, Stephen Beatty, Jake Daviot and James R. Tweedley
Sustainability 2026, 18(17), 8897; https://doi.org/10.3390/su18178897 - 31 Aug 2026
Viewed by 180
Abstract
Marinas support recreational and commercial activities but can experience rapidly changing environmental conditions. Conventional monitoring may miss short-lived events, unrecognized contaminants and the combined biological effects of multiple stressors. Valvometry, the measurement of bivalve shell behaviour, provides continuous biological information on environmental variability [...] Read more.
Marinas support recreational and commercial activities but can experience rapidly changing environmental conditions. Conventional monitoring may miss short-lived events, unrecognized contaminants and the combined biological effects of multiple stressors. Valvometry, the measurement of bivalve shell behaviour, provides continuous biological information on environmental variability and stress. This study developed and demonstrated the BioSentinel Health Index, a modular framework in which bivalve behaviour provides the primary assessment of biological condition, supported by separate evaluations of monitoring quality and management readiness. Minute-scale valve-gape data from the Mytilus galloprovincialis at Mandurah Ocean Marina, Western Australia, were analysed over 12 months. The Ecosystem Health module result was 87.9%, representing the proportion of valid observations for which mussels’ valves were classified as open, with all eight mussels exhibiting dominant periodicities close to 24 h. Mean valve gape showed a strong nonlinear association with water temperature, declining markedly above 22 °C. No validated environmental coordinated-closure alarm occurred during this study. Monitoring and Data module achieved 70.3%, while Management and Response module achieved 100%. The framework provides a transparent approach for integrating continuous biological monitoring with environmental management while keeping biological condition separate from monitoring and response capacity. Full article
(This article belongs to the Section Sustainable Oceans)
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11 pages, 4648 KB  
Article
Valve Gape Movement of an Endangered Freshwater Mussel During Burrowing
by Alan Cottingham, Jake Daviot, James R. Tweedley and Stephen Beatty
Hydrobiology 2026, 5(1), 2; https://doi.org/10.3390/hydrobiology5010002 - 5 Jan 2026
Viewed by 1547
Abstract
Understanding the behavioral strategies that allow freshwater mussels to persist under environmental stress is essential for their conservation, yet burrowing behavior remains poorly quantified. We tested whether valve movement data could be used to detect and characterize burrowing in the endangered Westralunio carteri [...] Read more.
Understanding the behavioral strategies that allow freshwater mussels to persist under environmental stress is essential for their conservation, yet burrowing behavior remains poorly quantified. We tested whether valve movement data could be used to detect and characterize burrowing in the endangered Westralunio carteri; a species endemic to a region undergoing severe climatic drying. Mussels from multiple populations were monitored individually under laboratory conditions using Hall effect sensors, and valve movement patterns were analyzed to distinguish between burrowing and non-burrowing behaviors. Burrowing was associated with rapid, high-amplitude valve movements that lengthened as burial progressed, while non-burrowing behaviors showed distinct, slower patterns. These differences indicate that valvometry can reliably identify burrowing behavior, providing a non-invasive method for monitoring mussel activity. This approach has broad applications for ecological research, conservation assessment, and early-warning biomonitoring of imperiled freshwater mussel populations. Full article
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18 pages, 5446 KB  
Article
At-Sea Measurement of the Effect of Ship Noise on Mussel Behaviour
by Soledad Torres-Guijarro, David Santos-Domínguez, Jose M. F. Babarro, Laura García Peteiro and Miguel Gilcoto
Sensors 2025, 25(13), 3914; https://doi.org/10.3390/s25133914 - 23 Jun 2025
Cited by 3 | Viewed by 1367
Abstract
Anthropogenic underwater noise is an increasing form of pollution that negatively affects biota. The effect of this pollutant on many marine species is still largely unknown, especially those that are more sensitive to particle motion than to sound pressure. In these cases, experiments [...] Read more.
Anthropogenic underwater noise is an increasing form of pollution that negatively affects biota. The effect of this pollutant on many marine species is still largely unknown, especially those that are more sensitive to particle motion than to sound pressure. In these cases, experiments at sea are necessary, due to the difficulty of recreating the particle movement of a real acoustic field under laboratory conditions. This work aims to contribute to the knowledge of the effect of ship noise on the behaviour of mussels (Mytilus galloprovincialis), performing measurements at sea on a real mussel cultivation raft for the first time. The study is carried out on cluster-forming individuals living in the rafts where they are cultivated. Their behaviour is monitored by means of valvometry systems, which measure the magnitude of shell opening using a High-Frequency Non-Invasive (HFNI) system. Simultaneously, the acoustic field generated by the abundant traffic in the area is measured. The results show cause-and-effect relationships between ship noise and valve closure events. Full article
(This article belongs to the Section Environmental Sensing)
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8 pages, 794 KB  
Communication
Impact of the Toxic Dinoflagellate Alexandrium catenella on the Valve Movement of Mytilus edulis: A Comparison between Two Populations with Contrasting Histories Exposure
by Guillaume Durier, Luc A. Comeau, José M. F. Babarro, Michel Starr, Jeff C. Clements and Réjean Tremblay
Coasts 2023, 3(4), 426-433; https://doi.org/10.3390/coasts3040026 - 13 Dec 2023
Cited by 1 | Viewed by 2211
Abstract
Shellfish aquaculture farms, due to their coastal position, face the threat of exposure to harmful algal blooms. Such blooms can release, among others, paralytic shellfish toxins (PST) produced by the dinoflagellate Alexandrium catenella and are known to cause the restriction of bivalve harvesting [...] Read more.
Shellfish aquaculture farms, due to their coastal position, face the threat of exposure to harmful algal blooms. Such blooms can release, among others, paralytic shellfish toxins (PST) produced by the dinoflagellate Alexandrium catenella and are known to cause the restriction of bivalve harvesting sites. Shellfish can accumulate PSTs in levels that are poisonous for humans, therefore making them unfit for consumption. Thus, the ability to detect PSTs before they reach the critical threshold is crucial for minimizing losses in the industry. Previous studies have demonstrated that toxic algae detection is possible with the use of an early warning system based on the valve-gaping behaviour of blue mussel Mytilus edulis. However, some studies observed the presence of toxin resistance in other species of bivalves when they are regularly exposed to PSTs. If no resistance is observed whatever the past history of the populations would be with regard to PST exposure, this species could be appropriate as a sentinel candidate. In this study, we compare the valve-gaping behaviour of two blue mussel populations with contrasting long-term histories of PSTs events (i.e., regularly vs. not previously exposed to the PSTs producer) were compared using experimental exposure of A. catenella to M. edulis. It was found that mussels from both populations exhibited similar gaping behaviour patterns when exposed to A. catenella. For both populations, the number of valve closures and closure duration tended to increase in the presence of A. catenella, which suggested an avoidance response to the toxic dinoflagellate. In conclusion, our results support the use of M. edulis without origin discrimination Full article
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34 pages, 7272 KB  
Review
Shellfish as Biosensors in Online Monitoring of Aquatic Ecosystems: A Review of Russian Studies
by Alexander G. Dvoretsky and Vladimir G. Dvoretsky
Fishes 2023, 8(2), 102; https://doi.org/10.3390/fishes8020102 - 8 Feb 2023
Cited by 24 | Viewed by 10316
Abstract
The use of biological objects in monitoring the state of the environment and the changes caused by the impact of environmental pollution on marine and fresh waters is a promising tool due to a lower cost in comparison to traditional monitoring and the [...] Read more.
The use of biological objects in monitoring the state of the environment and the changes caused by the impact of environmental pollution on marine and fresh waters is a promising tool due to a lower cost in comparison to traditional monitoring and the ability to receive immediate information about the ecosystem status. In this review, we summarize the biological information about shellfish biomonitors and the results of studies focused on the development and use of the bioindicator species in early warning systems in Russia. Since the mid-1980s, Russian specialists have developed online biomonitoring systems; as in the rest of world, there are two main approaches that are currently applied to study the physiological status of potential biosensor shellfish species and to monitor freshwater and marine systems: valvometry (registration of gaping activity in bivalve mollusks) and photoplethysmography (registration of cardiac activity in mollusks and crustaceans). Valve movement responses to stressors such as abnormal conditions and pollutants include the closure of shell valves for a long period, decrease in the average distance between valves, rapid shell opening, and higher closing frequency. Cardiac activity reactions of shellfish to stress factors include rapid increases in heart rate and stress index, higher variability in heart rate than under normal conditions, and longer periods required for heart rate recovery after stress. The most common bioindicators used to monitor environmental disturbances in marine ecosystems are blue mussels, Iceland scallops, and red king crabs in cold-water habitats and Black Sea mussels in warmer waters as well as freshwater mussels and crayfish in fresh waters. Full article
(This article belongs to the Special Issue Response of Aquatic Animals to Environmental Changes)
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24 pages, 1639 KB  
Article
Designing the Next Generation of Condition Tracking and Early Warning Systems for Shellfish Aquaculture
by Jean-Marc Guarini, Shawn Hinz and Jennifer Coston-Guarini
J. Mar. Sci. Eng. 2021, 9(10), 1084; https://doi.org/10.3390/jmse9101084 - 5 Oct 2021
Cited by 8 | Viewed by 3893
Abstract
Early detection of environmental disturbances affecting shellfish stock condition is highly desirable for aquaculture activities. In this article, a new biophysical model-based early warning system (EWS) is described, that assesses bivalve stock condition by diagnosing signs of persistent physiological dysfunctioning. The biophysical model [...] Read more.
Early detection of environmental disturbances affecting shellfish stock condition is highly desirable for aquaculture activities. In this article, a new biophysical model-based early warning system (EWS) is described, that assesses bivalve stock condition by diagnosing signs of persistent physiological dysfunctioning. The biophysical model represents valve gape dynamics, controlled by active contractions of the adductor muscle countering the passive action of the hinge ligament; the dynamics combine continuous convergence to a steady-state interspersed with discrete closing events. A null simulation was introduced to describe undisturbed conditions. The diagnostic compares valve gape measurements and simulations. Indicators are inferred from the model parameters, and disturbances are assessed when their estimates deviate from their null distribution. Instead of focusing only on discrete events, our EWS exploits the complete observed dynamics within successive time intervals defined by the variation scales. When applied to a valvometry data series, collected in controlled conditions from scallops (Pecten maximus), the EWS indicated that one among four individuals exhibited signs its physiological condition was degrading. This was detected neither during experiments nor during the initial data analysis, suggesting the utility of an approach that quantifies physiological mechanisms underlying functional responses. Practical implementations of biological-EWS at farming sites are then discussed. Full article
(This article belongs to the Section Marine Environmental Science)
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19 pages, 5871 KB  
Article
Biological Early Warning Systems: The Experience in the Gran Sasso-Sirente Aquifer
by Federica Di Giacinto, Miriam Berti, Luigi Carbone, Riccardo Caprioli, Valentina Colaiuda, Annalina Lombardi, Barbara Tomassetti, Paolo Tuccella, Gianpaolo De Iuliis, Adelina Pietroleonardo, Mario Latini, Giuseppina Mascilongo, Ludovica Di Renzo, Nicola D’Alterio and Nicola Ferri
Water 2021, 13(11), 1529; https://doi.org/10.3390/w13111529 - 29 May 2021
Cited by 3 | Viewed by 4417
Abstract
Biological early warning systems (BEWS) are installed worldwide for the continuous control of water intended for multiple uses. Sentinel aquatic organisms can alert us to contaminant presence through their physiological or behavioural alterations. The present study is aimed at sharing the experience acquired [...] Read more.
Biological early warning systems (BEWS) are installed worldwide for the continuous control of water intended for multiple uses. Sentinel aquatic organisms can alert us to contaminant presence through their physiological or behavioural alterations. The present study is aimed at sharing the experience acquired with water biomonitoring of the Gran Sasso-Sirente (GS-S) aquifer. It represents the major source of the Abruzzi region surface water, also intended as drinkable and for irrigation use. Besides the biomonitoring of drinkable water of the Teramo Province made by Daphnia Toximeter and irrigation water of the L’Aquila Province by Algae Toximeter, a novel sensor named “SmartShell” has been developed to register the behaviour of the “pea clam” P. casertanum, an autochthonous small bivalve living in the Nature 2000 site “Tirino River spring”. The valve movements have been recorded directly on the field. Its behavioural rhythms have been analysed through spectral analyses, providing the basis for further investigations on their alterations as early warnings and allowing us to propose this autochthonous bivalve species as a novel sentinel organism for spring water. Full article
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