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Author

F. Schmidt

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Open access Aug 2026

Human NLRC4 can act as a direct sensor for cytosolic flagellin

Innate immune cells sense pathogenic bacteria like Legionella pneumophila through patterns such as the protein flagellin, a critical component of the bacterial motility apparatus. Recognition of cytosolic flagellin in mouse immune cells is well understood and mediated by the receptors, neuronal apoptosis inhibitory protein (Naip) 5 or Naip6, which activate the Nlrc4 inflammasome multi-protein complex for initiating cell death or interleukin-1 family cytokine release. However, the role of human NAIP as a cytosolic flagellin sensor remains controversial. Using a multipronged approach, we demonstrate that in a reconstituted cell system human NLRC4 engaged Legionella FlaA flagellin directly (i.e. without the need for hNAIP), whereas human NAIP did not interact with FlaA. Ectopic cytosolic FlaA expression also induced NLRC4 oligomerization, a prerequisite for inflammasome activation, in the absence of NAIP. Unexpectedly, the presence of NAIP diminished the binding of NLRC4 to flagellins and subsequent interleukin-1β release. Interestingly, in resting THP-1 cells, NAIP stably interacted with NLRC4, and during infection or stimulation with FlaA pro-inflammatory responses in THP-1 cells were predominantly NLRC4-dependent. Our data highlight NLRC4 as a putative direct sensor of cytosolic flagellins in the human system and NAIP as a potential negative regulator of flagellin sensing.

Gaopeng Li, Kenyatta Doumanas, Xiao Liu et al. · 0 citations
Open access Jul 2026

A Picomolar MBP-Binding Nanobody for Target Enrichment and Modular Complex Engineering

The variable domains of heavy chain only antibodies, also called nanobodies, have provided powerful new tools for biomedical research. Their rapid development across multiple fields has helped address emerging scientific and clinical challenges, establishing single-domain antibodies (sdAbs) as highly adaptable platforms for a wide range of biotechnological and therapeutic applications. In this study, we identified a nanobody from an alpaca immune library, sdAbCM1, that binds to the maltose-maltodextrin binding protein, MBP, with picomolar affinity. Biophysical investigations showed that sdAbCM1 recognizes a yet unreported epitope and interacts with MBP in its closed conformation when maltose is present. The high affinity, epitope specificity, and ability to tolerate the ligand-bound state render sdAbCM1 a valuable and versatile biotechnological tool with potential applications such as detection, localization, and purification of MBP fusion proteins and protein complex engineering for single-particle microscopy.

M. Chinellato, Elisa Franzin, Filippo Vascon et al. · 0 citations

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