Key result
Enterovirus 2B protein regulates calcium signaling, cell death, and immune evasion via membrane stress sensing.
Why the study?
The classic viroporin model does not fully explain enterovirus 2B protein's diverse interactions and functional divergence among enteroviruses.
Proposes a novel membrane stress sensor hypothesis for Enterovirus 2B protein to better understand its versatile roles in multi-pathway regulation and to guide anti-enteroviral drug design.
No practice change for enteroviral disease; challenges viroporin model and leaves open 2B membrane sensing as antiviral target.
Enterovirus 2B is a highly conserved, functionally versatile, nonstructural protein. The classic viroporin model, which restricts its role to ion channel formation, cannot account for its interactions with host factors such as Bcl-2-associated X protein, interleukin enhancer-binding factor 2, and karyopherin subunit alpha 1, nor its functional divergence among enteroviruses. We propose a novel, testable membrane stress sensor hypothesis: the transmembrane helices of 2B sense lipid composition and pH changes, and through conformational dynamics, spatiotemporally coordinate calcium signaling, cell death pathway selection, including apoptosis, pyroptosis, autophagy, and ferroptosis, and immune evasion. We elaborate on this framework across six dimensions: structure–function mapping, calcium signaling, cell death pathways, immune evasion, evolutionary footprint, and antiviral targeting, along with cross-virus comparisons. We highlight key evidence gaps and limitations, and propose several future research directions. This framework establishes a mechanistic foundation for understanding 2B function and guiding rational anti-enteroviral drug designs.
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Ji et al. (2026) conducted a review in Enterovirus infection. Enterovirus 2B protein was evaluated. Enterovirus 2B protein is proposed to act as a membrane stress sensor that spatiotemporally coordinates calcium signaling, cell death pathways, and immune evasion through conformational dynamics.
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