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Top, S.

Publications and source records attributed to Top, S..

3 recordsLinked to original sources

SG33, a vaccine strain of myxoma virus with oncolytic potential, exploits macropinocytosis and clathrin-mediated endocytosis for entry into pancreatic cancer cells.

Oncolytic viruses are being investigated as therapeutic agents in cancer, yet their mechanisms of entry into tumor cells remain incompletely understood. We previously showed that SG33, a veterinary vaccinal strain derived from a pathogenous myxoma virus, displays oncolytic activity in preclinical models of pancreatic ductal adenocarcinoma (PDAC). Here, we investigated the entry pathways of SG33 into primary PDAC-derived cultures. We found that macropinocytosis, an endocytic process frequently upregulated in PDAC, contributes to SG33 uptake. Moreover, SG33 infection itself induced macropinocytosis in a subset of primary PDAC cultures. Mechanistic studies revealed that phosphatidylserine exposed on the viral envelope promotes SG33 internalization through apoptotic mimicry. In PDAC cultures lacking detectable macropinocytosis, SG33 employed clathrin-mediated endocytosis as an alternative entry route. These findings provide the first insights into the entry mechanisms of SG33 into PDAC-derived cells and indicate that this virus can utilize distinct endocytic pathways depending on the cellular context. ImportancePancreatic ductal adenocarcinoma (PDAC) remains one of the most lethal cancers, with limited therapeutic options. Oncolytic virotherapy is emerging as a promising strategy to overcome treatment resistance, yet the mechanisms by which candidate viruses enter cancer cells remain poorly defined. Here, we characterize the entry route of SG33, a derivative of myxoma virus with potent oncolytic activity in PDAC models. We show that SG33 exploits multiple endocytic pathways, including macropinocytosis (MPC), induces MPC through apoptotic mimicry, and also uses clathrin-mediated endocytosis (CME). These findings provide the first evidence that SG33 has evolved a flexible cell entry strategy, which could enhance its efficacy in the heterogeneous context of PDAC. Understanding the molecular determinants of viral entry is essential for the rational design of improved oncolytic virotherapies. Our study is aligned with this objective and highlights SG33 as a promising candidate to expand the toolbox of virotherapeutic agents against aggressive cancers.

cancer biology↗

Biological evaluation and molecular docking study of Ferrociphenol as an anti-melanogenic agent

Cutaneous hyperpigmentation disorders are associated with abnormal accumulation of melanin pigments, which can be treated using depigmenting agents. In the present study, we investigated the effect of ferrociphenol (Fc-diOH), an organometallic intermediate used for the synthesis of hydroxy-ferrocifen derivatives, which has previously been shown as an inhibitor of Sepia tyrosinase activity, on the inhibition of melanogenesis in B16F10 melanoma cells. Cell viability, melanin quantification and tyrosinase activity assay demonstrated that Fc-diOH treatment reduced the amount of intracellular melanin and tyrosinase activity by 32 and by 25%, respectively, in B16F10 melanoma cells at 25 nM without significant cellular toxicity. Furthermore, the biological activity of Fc-diOH against melanogenesis was confirmed in in vivo experiments using zebrafish Danio rerio embryos. We found that Fc-diOH inhibited melanin production and tyrosinase activity of zebrafish embryos treated with 0.5 and 2 {micro}M respectively, without affecting embryonic development or viability. In addition and interestingly, molecular docking analysis demonstrates that the p-hydroxyphenyl groups of Fc-diOH make close contacts with the active site of tyrosinase, compared to arbutin and phenylthiourea, which could be due to its structural homology with the tyrosinase substrate. Therefore, these results strongly suggest that Fc-diOH decreases tyrosinase activity, thereby negatively regulating melanogenesis in B16F10 cells and zebrafish embryos. Thus, Fc-diOH could be used as a depigmentation agent for the treatment of various hyper-pigmentation disorders.

cell biology↗

In vitro and in vivo Antiviral Activity of the Acyclic Nucleoside Phosphonate Prodrug LAVR-289 against Poxvirus and African Swine Fever Virus Replication

Poxviruses are double-stranded DNA viruses including relevant zoonotic pathogens with high morbidity. Although African swine fever virus (ASFV) belongs to the Asfarviridae family and is not strictly classified as a member of the Poxviridae, both fall within the same class of Pokkesviricetes that replicate in the cytoplasm, and some poxviruses pose potential biological warfare threats. Among compounds targeting these viruses, acyclic nucleoside phosphonate prodrugs are nucleoside analogues inhibitors of viral DNA polymerases that have been identified as promising agents. However, some limitations related to their toxicity and the rapid emergence of resistance highlight the need for new antiviral molecules. In this study, the new nucleoside analogue LAVR-289 was shown to effectively inhibit the viral replication by intervening early in the viral replication step, targeting a specific domain of the poxvirus DNA polymerase. Using monkeypox virus models, the subcutaneous or oral administration of LAVR-289 demonstrates protective efficacy in infected animal models without toxicity or behavioral modification. The stability in vivo, long shelf-life and efficacy make LAVR-289 a promising candidate for further development and stockpiling as a medical countermeasure against dsDNA virus outbreaks. Its broad-spectrum efficacy is a real asset in a context of recurrent viral epidemics, risk of bioterrorism and emergence of resistance strains in the population. HighlightsO_LILAVR-289 is a unique acyclic nucleoside phosphonate prodrug targeting viral DNA polymerases. C_LIO_LILAVR-289 displays antiviral activity against dsDNA viruses, ASFV and poxviruses. C_LIO_LIFirst report of in vivo evaluation of LAVR-289 against MPXV by subcutaneous and oral administration. C_LIO_LILAVR-289 reduces clinical signs and increase survival in animal models. C_LI

microbiology↗