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Cornejo Pontelli, M.

Publications and source records attributed to Cornejo Pontelli, M..

2 recordsLinked to original sources

CD164 is an endolysosomal host factor for entry of Clade A New World Arenaviruses

Arenaviruses are divided into Old World (OW) and New World (NW) groups. OW arenaviruses enter cells through a pH-dependent receptor switch from a plasma-membrane factor to an endolysosomal receptor for subsequent membrane fusion, whereas clade B NW arenaviruses use transferrin receptor 1 without a secondary receptor. Using a vesicular stomatitis virus (VSV) chimera expressing the glycoprotein complex (GPC) of the clade A NW arenavirus Pichinde virus, we performed a genome-wide CRISPR loss-of-function screen and identified the endolysosomal sialomucin CD164 as an essential host factor. CD164 knockout cells were resistant to VSV chimeras bearing the GPCs of Pichinde, Parana, and Flexal viruses, and to authentic Pichinde and Parana virus, with susceptibility restored by complementation. The requirement mapped to the cysteine-rich domain of CD164, which bound GP1 in a pH-dependent manner through main-chain interactions. These findings define CD164 as an endolysosomal receptor for clade A NW arenaviruses expanding the receptor switching paradigm.

microbiology↗

TMEM106B mediates ACE2-independent replication of the SARS-CoV-2 S-E484D variant in airway-derived cell models

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) continues to cause significant respiratory disease, particularly in vulnerable populations. Although ACE2 is the primary receptor for viral entry, previous studies have identified a naturally occurring, ACE2-independent entry pathway in certain airway-derived cell lines. Utilization of this pathway depends on surface heparan sulfates and requires the E484D substitution within the receptor-binding domain of the viral Spike (S) protein. In this study, we expand the panel of airway-derived cell lines that support ACE2-independent, S-E484D-dependent replication and identify the host lysosomal transmembrane protein TMEM106B as a critical host factor for infection. Knockout of TMEM106B completely abolishes infection by SARS-CoV-2 SE484D in NCI-H522 and NCI-H661 cells. Moreover, ectopic expression of the luminal C-terminal domain (CTD) of TMEM106B-either alone or redirected to the plasma membrane - is sufficient to enable viral entry and infection in otherwise non-permissive cells. We further show that Fc-TMEM106B-CTD decoy protein blocks infection by SARS-CoV-2 SE484D, supporting a direct interaction between the S-E484D protein and TMEM106B-CTD. Finally, passaging experiments with a chimeric VSV-SARS-CoV-2 SE484D identify additional mutations within the heptad repeat 1 that enhance TMEM106B utilization and viral spread in the ACE2-independent cell models. Together, these findings demonstrate that TMEM106B is a key mediator of a naturally occurring ACE2-independent pathway in multiple airway-derived cells lines and suggest that variation in the Spike protein can expand receptor usage by SARS-CoV-2. IMPORTANCESevere acute respiratory syndrome coronavirus 2 (SARS-CoV-2) continues to acquire mutations in the viral spike (S) protein as it circulates in humans. How these mutations influence the cell and tissue tropism of SARS-CoV-2 remains poorly understood. While ACE2 is the canonical host cell receptor for SARS-CoV-2, previous studies revealed the presence of a naturally occurring ACE2-independent entry pathway in multiple airway-derived cell lines that can be utilized only by a SARS-CoV-2 variant bearing the E484D substitution within the viral S protein. Here we expand the airway-derived cell line models that support ACE2-independent and S-E484D-dependent entry and show that the host lysosomal transmembrane protein, TMEM106B, is an essential viral entry factor. Although the E484D substitution is currently rare in human isolates, our findings raise the possibility that small mutations in SARS-CoV-2 S can allow the utilization of alternative entry pathways that broadens its cell and tissue tropism.

microbiology↗