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Accensi, F.

Publications and source records attributed to Accensi, F..

2 recordsLinked to original sources

Distinct cytotoxic cell subsets underlie protective and non-protective immunity to African swine fever virus

Limited understanding of African swine fever (ASF) immunity remains a major barrier to the rational development of safe and effective vaccines. While antibody-mediated protection is still poorly defined, growing evidence highlights a central role for cellular immunity. In particular, cytotoxic cells have emerged as key components to control ASF virus (ASFV) infection. However, the contribution of individual cytotoxic subsets across different virological and immunological contexts is not well characterised. Here, we investigated cytotoxic responses during BA71{Delta}CD2 live attenuated vaccine (LAV)-induced protection and during late-stage lethal ASFV infection, and demonstrated the involvement of different cytotoxic subsets in each scenario. Early increases in perforin-producing CD8{beta}+ T cells in blood after immunisation coincided with the onset of protection. At later time points, elevated levels of these cells after in vitro ASFV-specific stimulation correlated with survival to lethal challenge, supporting their central role in protective immunity. Additional correlates of protection during recall responses included CD4+CD8{beta}+ cytotoxic T cells, IFN{gamma}-producing cells, and ASFV-specific antibodies, illustrating the multifactorial nature of immunity to ASF. In contrast, pigs with acute ASF exhibited a distinct cytotoxic profile characterised by broad increases across multiple perforin-producing subsets. Although all of them showed reduced susceptibility to ASFV-induced lymphopenia, only perforin-producing NK and{gamma}{delta} T cells correlated with viremia, suggesting their active involvement during late disease. Together, these findings advance our understanding of cytotoxic responses to ASFV and identify cytotoxic T cells, alongside other immune components, as potential correlates of protection that may guide future vaccine development.

immunology↗

Inefficient transmission of African swine fever virus to sentinel pigs from environmental contamination under experimental conditions

Knowledge about African swine fever virus (ASFV) transmission and its survival in the environment is mandatory to develop rational control strategies and combat this serious disease in pigs. In this study, the risk that environmental contamination poses for infection of naive pigs was investigated. Naive pigs were introduced as sentinels into contaminated pens either on the same day or up to three days after ASFV-infected pigs were removed. Three experiments were carried out in which four to six pigs per pen were inoculated with virulent ASFV isolates OURT88/1 (genotype I), Georgia 2007/1 or POL/2015/Podlaskie (genotype II), respectively. The majority of the inoculated pigs developed acute disease but with no evident haemorrhagic lesions or haemorrhagic diarrhoea and were culled at the predefined humane endpoint. The levels of ASFV DNA detected in the blood of the infected animals reached 107-9 genome copies/ml before euthanasia. Environmental swabs were taken from different surfaces in the animal rooms, as well as from faeces and urine, close to the time of introduction of the naive animals. Relatively low quantities of virus DNA were detected in the environmental samples, in the order of 103-7 genome copies. Neither clinical signs nor virus genomes were detected in the blood of any of the sentinel pigs over a period of two to three weeks after exposure, indicating that transmission from the ASFV-contaminated environment did not occur. Interestingly, viral DNA was detected in nasal and oral swabs from some of the sentinel animals at early days of exposure (ranging between 103.7-5.8 genome copies), though none of them developed ASF. The results indicate a relatively low risk of ASFV transmission from a contaminated environment in the absence of blood from infected animals.

microbiology↗