Search bioRxiv⌕ Search

bioRxiv · 10.1101/2025.05.23.655712

Population-specific bycatch risks in two vulnerable anadromous clupeids: insights from otolith microchemistry

Abstract

Otolith microchemistry analysis revealed that bycatch of European shads--allis shad Alosa alosa (L. 1758) and twaite shad Alosa fallax (Lacepede 1803)-- in western Iberian commercial fisheries removes individuals from a wide array of natal origins, with the most abundant source rivers suffering the heaviest losses. Spatial variation in bycatch risk was evident: specific marine areas exhibited high natal-origin diversity, reflecting complex dispersal. A. alosa showed extensive medium- and long-distance movements-- including rare longitudinal displacements along the Cantabrian slope--and greater natal origin diversity than A. fallax, whose dispersal was largely restricted to middle-distance, latitudinal migrations. In both species, bycatches were dominated by the most abundant continental populations--Mondego and Minho for A. alosa, and Ulla and Minho for A. fallax--suggesting that these rivers function as source populations exporting individuals to sink populations through marine dispersal. Despite their differing dispersal ranges, both species displayed dual resident-dispersive contingents coexisting within the same populations, reflecting an interplay of river proximity, philopatry and resource availability. The stronger philopatry and constrained range of A. fallax imply heightened vulnerability to localized bycatch pressure near natal rivers, whereas A. alosas broader dispersal and higher origin diversity expose multiple populations to risk at a regional scale. These species-specific dispersal capacities and metapopulation structures critically shape bycatch vulnerability. Incorporating natal-origin and dispersal data into transnational, ecosystem-based management--such as targeted temporal or spatial fishing restrictions at mixing hotspots--will be essential to safeguard metapopulation dynamics, mitigate bycatch mortality, and maintain ecological connectivity among European shad populations.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Nachon, D. J., Pico-Calvo, A., Daverat, F., Vieira-Lanero, R., Crujeiras, R. M., Belo, A. F., Mateus, C. S., Quintella, B., Almeida, P. R., Antunes, C., Bareille, G., Pecheyran, C., Claverie, F., Lambert, P., Lasalle, G., Cobo, F.. 2025-05-28. Population-specific bycatch risks in two vulnerable anadromous clupeids: insights from otolith microchemistry. https://doi.org/10.1101/2025.05.23.655712

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Environmental DNA substrates capture complementary dimensions of insect biodiversity

Environmental DNA (eDNA) metabarcoding has become a powerful approach for biodiversity assessment, yet whether different environmental substrates provide equivalent or complementary representations of terrestrial biodiversity remains unresolved. Here we addressed this question by comparing insect assemblages recovered from Malaise traps and six environmental substrates (water, sediment, soil, spiderwebs, deadwood, and anthills) across 45 forest locations using a standardized COI metabarcoding workflow. Substrate identity consistently shaped insect detection, diversity, taxonomic representation, and community composition, with each substrate recovering distinct components of insect biodiversity rather than a common biodiversity signal. Malaise traps recovered the greatest overall richness, while water and spiderwebs contributed the largest proportion of additional taxa, demonstrating that no single substrate represented the full spectrum of insect biodiversity. These findings show that environmental substrates capture complementary representations of biodiversity through distinct ecological processes of eDNA deposition, transport, accumulation, and persistence. Different substrates should therefore be interpreted as complementary sources of biodiversity observations instead of interchangeable sampling media, and their integration can support more comprehensive ecological inference. Our study identifies substrate complementarity as a key consideration for interpreting terrestrial eDNA observations and for designing future biodiversity surveys.

ecology↗

Seasonal Light and Temperature Timing in a Stoichiometric Food Web

Seasonal food-web interactions can depend on whether consumer performance is high when food quantity and elemental quality are favorable. We extend a closed-phosphorus model containing pelagic and benthic producers, variable producer phosphorus quotas, and a shared Daphnia grazer by allowing annual light and temperature cycles to have an adjustable phase difference. The previous light-seasonality preprint has a nonisolated grazer-free boundary. We parameterize its annual periodic extension by the fraction of producer phosphorus in phytoplankton and derive the unique positive annual producer orbit for every fixed allocation. Linearization in the rare-grazer direction then gives an exact conditional Floquet exponent. Its decomposition into a mean-rate term and a covariance term identifies the effect of seasonal timing. A reconstructed descriptive thermal proxy uses quasi-acclimated filtration-capacity means from the official Muller et al. dataset; it supplies only a relative response shape over 15-25 degrees C, not an absolute ingestion calibration. In a representative configuration, changing phase while preserving the annual light and temperature distributions changes the invasion exponent from -0.00382 to 0.01486 day^-1, with annual multipliers 0.248 and 227, respectively. The constant-mean-ingestion exponent is positive, so the negative case is generated by adverse timing covariance. Sign reversal persists across a range of phosphorus allocations, but not across the entire boundary family. The result is a local invasion criterion for specified grazer-free cycles, not a theorem of global persistence or extinction. Within this parameterized boundary problem, relative seasonal timing can change the sign of infinitesimal consumer growth.

ecology↗

Functional niche attributes shape species interaction roles in ecological networks

Identifying how species interact in ecological networks is key to understanding species' contributions to ecosystem functioning, but can be difficult to establish in species-rich communities. Functional niches, which capture broader ecological strategies, are often easier to assess and could help approximate species' interaction roles. We tested this by integrating species interaction and leaf functional trait data of tree species and leaf-associated interaction types from a large-scale forest biodiversity experiment. We found that identity, variability, and similarities of functional niches shaped corresponding aspects of interaction roles. Interestingly, however, this association inversed in the case of functional niche variability, which decreased instead of increased the variability of species interactions. This suggests a potential trade-off between processes that determine variability in functional and interaction space. Furthermore, effects were not constrained within aspects, with similarities of interactions being particularly responsive to most tested niche aspects, indicating that interaction-based competition among plants is particularly sensitive to functional niche differences. Moreover, many effects of functional niches depended on tree species biomass and tree species richness, highlighting the importance of the larger ecological context for determining species interaction roles. Together, our findings show that species' interaction roles, while clearly altered by, are not simply a consequence of functional niches. Instead, interaction roles integrate multiple aspects of functional niches depending on species performances and community composition and can therefore be crucial for anticipating ecosystem change.

ecology↗