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Pitaluga, A. N.

Publications and source records attributed to Pitaluga, A. N..

3 recordsLinked to original sources

A field-ready molecular workflow for sample-to-result detection of the harmful dinoflagellate species Prorocentrum cordatum in coastal waters

The globally distributed dinoflagellate Prorocentrum cordatum contributes to harmful algal blooms, posing serious risks to marine ecosystems and coastal economies. Conventional monitoring of toxic phytoplankton is time-consuming, requires large sample volumes, and depends on expert taxonomic identification, highlighting the need for faster, more sensitive and widely accessible methods. This study presents a sample-to-result molecular assay for detection P. cordatum using polymerase chain reaction (PCR) and loop-mediated isothermal amplification (LAMP) targeting the ITS and psbA genes. Analyses were performed on small volumes of water (5-50 mL), concentrated with syringe filters and membranes. Sensitivity was evaluated through 10-fold serial dilutions of P. cordatum DNA, and specificity tested against three other potentially harmful dinoflagellates, P. lima, P. hoffmannianum, and Takayama acrotrocha. Detection limits were 5.3 x 102 cells L-1 for ITS-PCR and 5.3 x 103 cells L-1 for psbA-PCR; and 5.3 x 10 and 5.3 x 10 cells L-1 for ITS-LAMP and psbA-LAMP, respectively. In field tests (n = 48, all < 106 cells L-1), P. cordatum was detected in 32 samples by ITS-PCR and 29 by psbA-PCR. By contrast, ITS-LAMP detected the species in only three samples, and psbA-LAMP in none. Overall, PCR proved highly sensitive and specific for detecting low cell densities, while LAMP, although less sensitive, offers a rapid and portable option for field monitoring during moderate-to-high bloom conditions. Highlights* P. cordatum was isolated for molecular assays development. * Biomass concentration was achieved using small volumes. * PCR and LAMP assays targeting ITS and psbA were validated.

molecular biology↗

Anopheles (Kerteszia) cruzii, the main malaria vector in the Brazilian Atlantic Forest, is a complex of at least five cryptic species

Malaria, a tropical disease caused by Plasmodium and transmitted by Anopheles, remains a public health concern in Brazil. While most cases occur in the Amazon, transmission persists in the Atlantic Forest, where Anopheles mosquitoes of the Kerteszia subgenus are the primary vectors of human and simian malaria. Previous studies using cytogenetics, isoenzymes, and molecular markers have suggested cryptic species within Anopheles (Kerteszia) cruzii and Anopheles (Kerteszia) bellator. We sequenced 55 genomes: 35 An. cruzii s.l. (four with Nanopore and 31 with Illumina), 12 An. bellator s.l., and eight An. homunculus, the latter two with Illumina. Phylogenomic analysis revealed at least five cryptic species within An. cruzii s.l., labelled A-E, with evidence of sympatry in some locations. Anopheles bellator s.l. also forms a species complex, comprising at least three distinct lineages. These cryptic species showed high genetic differentiation (FST range: 0.4-0.7), typical of interspecific comparisons. In contrast, An. homunculus populations showed low differentiation (FST [~] 0.2), suggesting a single widespread species. Our analysis confirms cryptic speciation in An. cruzii and An. bellator, but not in An. homunculus. These findings are important for understanding malaria transmission in the Atlantic Forest, given that vector competence may differ among cryptic species.

evolutionary biology↗

Assessing the Sylvatic Yellow Fever Vectors in Southern Brazil

Yellow fever (YF) is an infectious disease caused by the yellow fever virus (YFV), an arbovirus of the Flaviviridae family. It is transmitted through the bite of infected mosquitoes belonging to the Culicidae family and affects both humans and non-human primates (NHPs). This study aimed to investigate the sylvatic Culicidae fauna and the occurrence of natural YFV infection in a microregion of southern Santa Catarina, Brazil, an area recently affected by a sylvatic YF outbreak. Entomological collections were carried out between January and February 2023 in five municipalities with confirmed viral circulation. Natural YFV infection was assessed using RT-LAMP. A total of 4,352 female culicids were collected, representing at least 32 species, including several key sylvatic YFV vectors. Haemagogus leucocelaenus was identified in all sampled municipalities, whereas Haemagogus janthinomys, the primary vector of sylvatic YFV in Brazil, was not detected. Mosquitoes from the genera Aedes, Haemagogus, Psorophora, and Sabethes were tested for YFV. Only one pool, composed of Sabethes albiprivus, tested positive, yielding a minimum infection rate (MIR) of 11.6. This is the first record of natural YFV infection in Sa. albiprivus in southern Brazil, and only the third reported case globally, highlighting its potential role as a secondary vector in maintaining viral circulation in sylvatic environments. Based on species presence and abundance, Hg. leucocelaenus is likely to have acted as the primary YFV vector in the study area. The composition of the culicid fauna, coupled with the detection of YFV in sylvatic vectors, indicates an ongoing epidemiological risk. These findings underscore the need to strengthen entomological surveillance and expand YF vaccination coverage in affected and neighbouring regions. Author SummaryThis study investigated sylvatic mosquito populations in a region of southern Santa Catarina, Brazil, recently affected by a yellow fever outbreak. Yellow fever is a serious mosquito-borne disease that can affect both humans and non-human primates. Nearly 4,400 mosquitoes from various species were collected, and, for the first time in southern Brazil, natural infection with yellow fever virus (YFV) was detected in Sabethes albiprivus. This finding suggests that Sa. albiprivus may play a previously unrecognized role in maintaining YFV in the environment. The known vector Haemagogus leucocelaenus was found in all sampled locations, indicating it may have been the primary vector responsible for virus transmission in the region. These results enhance our understanding of YFVs natural transmission cycles and provide new insights into how the virus persists in sylvatic environments. This research contributes to the fields of biology, ecology, and public health by reinforcing the importance of ongoing entomological surveillance and preventive vaccination, both of which are essential for preventing future outbreaks and protecting vulnerable populations.

microbiology↗