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Zelada-Mazmela, E.

Publications and source records attributed to Zelada-Mazmela, E..

5 recordsLinked to original sources

Hypanus brevis: a newly resurrected Eastern South Pacific stingray lineage revealed by integrative taxonomy

Hypanus brevis (Garman, 1880) and Hypanus dipterurus (Jordan & Gilbert, 1880) are currently considered as a conspecific lineage of the Eastern Pacific "diamond stingray". This group has been the subject of nomenclatural disputes for about 145 years, with H. brevis accepted as the junior synonym. To clarify the historical confusion surrounding this lineage, we employed an integrative taxonomic approach using specimens from the Eastern North and Eastern South Pacific (ENP and ESP). Both single (COI) and multilocus (COI - 16S rRNA) genetic analyses revealed a distinct evolutionary unit in the ESP. While morphological analyses detected subtle differences between ENP and ESP specimens (e.g., disc length and internostril width), most characters exhibited significant overlap, suggesting low evolutionary divergence. A Bayesian molecular clock analysis estimated this divergence at approximately 5.6 Ma. In accordance with Garmans (1880) original description based on specimens from Paita (northern Peru), we formally resurrect H. brevis from synonymy with H. dipterurus. Our findings suggest an anti-tropical speciation pathway, with core populations of H. brevis and H. dipterurus restricted to the temperate waters of the ESP and ENP, respectively. Notably, a single, fixed COI haplotype was detected in all H. brevis specimens from the north-central Peruvian coast. This result may indicate a severe bottleneck event, raising concerns about the genetic health and long-term viability of this vulnerable species. Finally, we analyzed historical fishery data of H. brevis to infer its current population status, suggesting targeted conservation measures and precautionary management to prevent further loss of genetic diversity.

genetics↗

Tracing the illicit Peruvian delicacy: proof-of-concept multiplex-PCR for the simultaneous detection of seven commercial Macrobrachium prawn species

The genus Macrobrachium (Decapoda, Palaemonidae) comprises nearly 300 prawn species distributed worldwide. At least nine of these species naturally inhabit the Pacific slope river systems of Peru, where most sustain significant artisanal fisheries and are highly prized as a luxury delicacy in the nations traditional cuisine. Here, we developed and validated a multiplex PCR assay with species-specific primers to identify seven Macrobrachium species of economic importance to Peru. Through robust validation, our assays achieved high specificity and efficiency, enabling fast and simultaneous identification of the seven target species. The utility of our novel multiplex PCR assay was evaluated as a proof-of-concept tool for conducting the first molecular monitoring of species diversity and illegal trade in Peruvian prawns across different commercial sectors. Among the 51 analyzed commercial prawn samples, a total of four species were detected, including M. caementarius (82.4%), M. rosenbergii (11.8%), M. americanum (3.9%), and M. gallus (1.9%). Notably, our molecular monitoring in restaurants revealed the first evidence of illegal trade in native wild-caught prawns in La Libertad region occurring during the reproductive closed season, when only the market of the exotic farmed prawn M. rosenbergii is permitted. These findings underscore the urgent need for enhanced monitoring programs in prawn fisheries in northern Peru, as current efforts are mainly focused on more productive central and southern regions. Our multiplex PCR assay provides a robust and efficient tool that can assist authorities and researchers in monitoring efforts, combating illegal trade, conducting diversity research, and supporting conservation.

genetics↗

Complete mitochondrial genome assembly of two searobin species (genus Prionotus) and their phylogenetic relationships (Triglidae: Prionotinae)

Species from the genera Bellator and Prionotus, commonly known as searobins, are marine ray-finned fish that belong to the subfamily Prionotinae. These fish have evolved distinctive morphological features and specialized behaviors that enable them to walk along the seafloor while detecting buried prey. This unique adaptation makes them ideal candidates for studies in evolutionary genetics. However, their phylogenetic relationships remain poorly understood. In this study, we utilized publicly available genomic reads from the GenBank database to assemble the first complete mitochondrial genomes of three searobin species: Bellator militaris, Prionotus alatus, and P. stephanophrys. We conducted a comparative analysis of these mitochondrial genomes, including the first phylogenetic analysis of the Prionotinae based on complete mitogenomic data. The resulting circular contigs measured 16,765 base pairs for B. militaris, 16,602 base pairs for P. alatus, and 16,896 base pairs for P. stephanophrys. The three mitogenomes exhibited a typical vertebrate organization, which includes 13 protein-coding genes, 2 ribosomal RNAs, 22 transfer RNAs, and a putative control region. Notably, P. stephanophrys contained an additional tRNA-Leu and an extra non-coding region. A Bayesian phylogenetic analysis grouped all Bellator species into a monophyletic clade within Prionotinae, while the sister taxon Prionotus formed a separate monophyletic subclade. The findings of this research provide valuable insights into the phylogenetic relationships and evolutionary history of the genera Bellator and Prionotus. Clarifying the taxonomy of these species may also support future management and conservation efforts for these economically valuable species.

genomics↗

Development and validation of versatile species-specific primer assays for eDNA monitoring and authentication of 10 commercially important Peruvian marine species

Molecular identification assays provide crucial support in the research and regulation of aquatic resources. Among them, species-specific primers provide strong discriminatory power for fast and simultaneous differentiation between closely related species. In this study, we used interspecific variations detected in two mitochondrial genes to develop species-specific primers for eDNA monitoring and identifying 10 fish and shellfish species commercially available within the Peruvian seafood sector. To ensure versatility and high specificity, our primers were subjected to PCR, qPCR, and sequencing methods, coupled with robust validation assays that included a) an in-silico stage using self-generated and public DNA sequences, b) an in-vitro stage using target species belonging to vouchered specimens, fresh and cooked commercial samples, early life stages, and broad taxa of non-target species, and c) an in-situ stage using eDNA samples from different Peruvian marine ecosystems. Our novel species-specific primers successfully passed the validation process with high efficiency and specificity in unequivocally identifying all target species with 100% accuracy and without cross-species amplifications, thereby making them valuable tools for eDNA monitoring, seafood authentication, and to identify and combat illegal, unreported and unregulated fishing. The identification assays presented herein can be used to support effective fishery management and conservation efforts not only in the Peruvian fishery sector but also in other countries where our target species also occur or are available as imported commodities.

genetics↗

Cellular and transcriptomic response to pathogenic and non-pathogenic Vibrio parahaemolyticus strains causing acute hepatopancreatic necrosis disease (AHPND) in Litopenaeus vannamei

The shrimp industry has historically been affected by viral and bacterial diseases. One of the most recent emerging diseases is the Acute Hepatopancreatic Necrosis Disease (AHPND), which causes severe mortality. Despite its significance to both sanitation and economics, little is known about the molecular response of shrimp to this disease. Here, we present the cellular and transcriptomic responses of Litopenaeus vannamei exposed to two Vibrio parahaemolyticus strains for 98h, wherein one is non-pathogenic (VpN) and the other causes AHPND (VpP). Exposure to VpN strain resulted in minor alterations in hepatopancreas morphology, including reductions in the size of R and B cells as well as detachments of small epithelial cells from 72 h onwards. On the other hand, exposure to VpP strain is characterized by acute detachment of epithelial cell from the hepatopancreatic tubules and infiltration of hemocytes in the inter-tubular spaces. At the end of exposure, RNA-Seq analysis revealed functional enrichment in biological processes, such as the toll3 receptor signaling pathway, apoptotic processes, and production of molecular mediators involved in the inflammatory response of shrimp exposed to VpN treatment. The biological processes identified in the VpP treatment include superoxide anion metabolism, innate immune response, antimicrobial humoral response, and toll3 receptor signaling pathway. Furthermore, KEGG enrichment analysis revealed metabolic pathways associated with survival, cell adhesion, and reactive oxygen species, among others, for shrimp that were exposed to VpP. Our study proves the differential immune responses to two strains of V. parahaemolyticus, one pathogenic and the other nonpathogenic, enlarges our knowledge on the evolution of AHPND in L. vannamei, and uncovers unique perspectives on establishing genomic resources that may function as a groundwork for detecting probable molecular markers linked to the immune system in shrimp.

immunology↗