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Biology subjects

Ortiz-Mateu, J.

Publications and source records attributed to Ortiz-Mateu, J..

2 recordsLinked to original sources

The sequence and structural integrity of the SARS-CoV-2 Spike protein transmembrane domain is crucial for viral entry

The Spike (S) protein of SARS-CoV-2 is a type I membrane protein that mediates target cell recognition and membrane fusion. While its transmembrane domain (TMD) is traditionally viewed as a passive anchor to the viral envelope, emerging evidence suggests that TMDs often play active roles in the biogenesis and function of membrane proteins. Here, we investigated the functional role of the SARS-CoV-2 S protein TMD during viral entry. To this end, we introduced a series of amino acid substitutions and insertions within the hydrophobic core of the TMD and assessed their impact on S protein activity. Our findings reveal that the SARS-CoV-2 S protein is susceptible to alterations in its TMD. Functional determinants, including sequence features and structural parameters critical for viral entry, are distributed throughout the TMD, with a more pronounced contribution from its N-terminal region. We also demonstrate that the relative orientation of the regions flanking the TMD influences viral entry. Finally, our data suggest that the TMD mediates homo-oligomerization through a motif enriched in small residues, underscoring its functional importance beyond membrane anchoring.

molecular biology↗

Computational design of BclxL inhibitors that target transmembrane domain interactions

Several methods have been developed to explore interactions among water-soluble proteins or regions of proteins. However, techniques to target transmembrane domains have not been examined thoroughly. Here we developed a novel computational approach to design transmembrane sequences that specifically modulate protein-protein interactions in the membrane. To illustrate this method we demonstrated that BclxL can interact with other members of the Bcl2 family through the transmembrane domain and that these interactions are necessary for BclxL control of cell death. Next, we designed sequences that specifically recognize and sequester the transmembrane domain of BclxL. Hence, we were able to prevent BclxL intra-membrane interactions and cancel its anti-apoptotic effect. These results advance our understanding of protein-protein interactions in membranes and provide new means to modulate them. Moreover, the success of our approach may trigger the development of a new generation of inhibitors targeting interactions between transmembrane domains.

biochemistry↗