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Silva, D. J. F.

Publications and source records attributed to Silva, D. J. F..

2 recordsLinked to original sources

From Nets to Molecules: A Comparative Study of Stream Fish Diversity Recovery Using Different Sampling Methods in Eastern Amazonia

The Neotropical freshwaters of South America host an exceptional level of ichthyofaunal diversity with over 5,160 species, making it the richest continental fauna worldwide. Despite their richness, these freshwater ecosystems face severe threats from human activities, leading to significant declines in fish populations. Traditional fish sampling techniques, such as netting, have been fundamental to ichthyology, offering insights into species richness and abundance. However, the complexity of stream environments limits the effectiveness of conventional sampling tools. As a result, more elusive or niche species are often missed. In recent years, water environmental DNA (eDNA) has emerged as a complementary method to traditional sampling. It allows for detection of aquatic organisms from water samples, expanding the scope of biodiversity assessments. Nevertheless, eDNA filtration faces challenges, especially in turbid waters, including the likelihood of co-extracting inhibitors that can affect amplification and detection processes, as well as the downstream flow of eDNA signals, which means that samples predominantly detect upstream fauna. To address these limitations, the use of bulk samples, such as stomach contents, provides a robust alternative by directly analyzing biological tissues and leveraging the bidirectional mobility of organisms within the stream, enabling the detection of taxa from both upstream and downstream regions. Given these issues, this study combines traditional netting, water eDNA analysis, and dietary metabarcoding to assess the fish biodiversity in three Neotropical streams in the Capim River basin, Para, Brazil. The integration of multiple sampling techniques offers a more accurate picture of biodiversity, helping to overcome the limitations of each individual method and providing essential insights for conservation efforts.

genetics↗

The role of Miocene-Pleistocene environmental change in diversification of the genus Hypoclinemus Chabanaud, 1928.

The Neotropical region stands out as one of the most taxonomically diverse areas on the planet, garnering significant attention in the context of marine incursions and their role in shaping this diversity. Among marine-derived taxa, pleuronectiform fishes exhibit distinctive morphological characteristics that have attracted significant scientific interest. However, the biogeography of Hypoclinemus mentalis, initially described as Solea mentalis and subsequently assigned to the genus Achirus, was eventually reclassified into its current monotypic genus due to its limited distribution in freshwater environments, in contrast to the species of Achirus. The broad distribution of a single species across multiple South American river basins positions H. mentalis as an ideal candidate for biogeographic studies within South America, with an emphasis on the detection of cryptic lineages associated with major drainage basins. In our study, we employed mitochondrial and nuclear markers to investigate the potential existence of such lineages within the broader context of a molecular phylogeny that encompasses all valid genera in the flatfish family Achiridae. Our findings reveal that Hypoclinemus comprises seven operational taxonomic units (OTUs), as deduced from specimens collected across the majority of its documented range. Furthermore, our phylogeographic analyses support the hypothesis that colonization of freshwater habitats occurred through connections between the Caribbean Sea and Lake Pebas approximately 21.28 million years ago. Moreover, we observed that differentiation of lineages within the Hypoclinemus genus was significantly influenced by pronounced sea level fluctuations during the Plio-Pleistocene epoch, underscoring the impact of glaciations and interglacial periods on the biogeographic patterns.

evolutionary biology↗