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Biology subjects

Sorin, M.

Publications and source records attributed to Sorin, M..

2 recordsLinked to original sources

The flavivirus protein NS4B recruits the cis-Golgi protein ACBD3 to modify ER-Golgi trafficking for virion release

Flavivirus infection involves extensive remodeling of the endoplasmic reticulum (ER), which is key to both the replication of the viral RNA genome as well as the assembly and release of new virions. Yet, little is known about how viral proteins and host factors cooperatively facilitate such a vast transformation of the ER, and how this influences the different steps of the viral life cycle. In this study, we screened for host proteins that interact with the tick-borne encephalitis virus (TBEV) protein NS4B and found that the top candidates were coupled to trafficking between ER exit sites (ERES) and the Golgi. We characterized the role of ACBD3, one of the identified proteins, in flavivirus infection and show that it interacts with NS4B to promote infection across multiple flavivirus species. Using ACBD3 knockout cells, we found that the depletion of ACBD3 inhibited TBEV replication by preventing the trafficking of virions from the cell. We found that ACBD3 promotes flavivirus infection via a different mechanism than its previously described role in picornavirus infection. ACBD3 was enriched at modified ERES-Golgi contact sites to support virus replication. Therefore, we propose that ACBD3 promotes flavivirus replication by modifying the trafficking between the ERES and the Golgi to enable the release of new virions. Author summaryFlaviviruses including dengue virus and tick-borne encephalitis virus are group of viruses that widely affecting the health of human. During infection, flavivirus particles enter host cells and transform the endoplasmic reticulum (ER), which is the main structure for protein synthesis in cells. New flaviviral particles are produced in the transformed ER and then released to the Golgi apparatus, which is the main structure for protein transport in cells. It is unclear how the particles are transported from the ER to Golgi. Here we screened the factors that interact with viral proteins and identified a Golgi protein called ACBD3 as an important factor supporting flavivirus particles release from ER to Golgi. We showed that ACBD3 is recruited by flavivirus to a modified connection between ER and Golgi for viral particles release from the ER. Our work provides new insights into the fine coordination of virus replication and viral particles transport between organelles inside host cells.

cell biology↗

Structural and functional analysis of natural capsid variants reveals sialic-acid independent entry of BK polyomavirus

BK Polyomavirus (BKPyV) is an opportunistic pathogen that causes nephropathy in kidney transplant recipients. The BKPyV major capsid protein, VP1, engages gangliosides, lipid-linked sialylated glycans at the cell surface, to gain entry into cells. Here, we characterise the influence of VP1 mutations observed in patients with persistent post-transplant BKPyV replication on ganglioside binding, VP1 protein structure, and the tropism of the virus in two renal cell lines: 293TT and immortalised renal tubular epithelial (RS) cells. Infectious entry of single mutants E73Q, E73A and the triple mutant A72V-E73Q-E82Q (VQQ) remained sialic acid-dependent. These three variants acquired binding to a-series gangliosides, including GD1a, although only E73Q was able to infect GD1a-supplemented LNCaP or GM95 cells. Crystal structures of the three mutants showed a clear shift of the BC2 loop in mutants E73A and VQQ that correlated with the inability of these VP1 variants to infect ganglioside complemented cells. On the other hand, the double mutant K69N-E82Q lost the ability to bind sialic acid, with the K69N mutation leading to a steric clash which precludes sialic acid binding. Nevertheless, this mutant retained significant infectivity in 293TT cells that was not dependent on heparan sulphate proteoglycans, implying that an unknown sialic acid-independent entry receptor for BKPyV exists.

microbiology↗