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Biology subjects

Kanada, R.

Publications and source records attributed to Kanada, R..

2 recordsLinked to original sources

Conversion of an agonistic anti-TNFR2 biparatopic antibody into an antagonist by insertion of peptide linkers into the hinge region

Biparatopic antibodies (BpAbs) bind two different antigen epitopes to form characteristic immunocomplexes. Many BpAbs have been developed for enhanced cross-linking to induce signal transduction or cell internalization, whereas few were reported with smaller immunocomplexes to suppress unwanted signaling. Here, we developed a strategy to induce 1:1 immunocomplex formation to maximize antagonistic function. Various peptide linkers were introduced into the hinge regions of IgG-like agonist BpAbs against tumor necrosis factor receptor 2. Loss of crosslinking activity was observed for one BpAb, allowing the conversion of its function from an agonist to an antagonist. However, cross-linking activity was retained for another agonist BpAb, which binds to a different epitope pair. In a combined analysis of cryo-electron microscopy and coarse-grained molecular dynamics simulations, effect of epitope combination on the stability of 1:1 complexes was observed. These results lead to an understanding of the mechanism and design of BpAbs to adopt a 1:1-binding mode.

biochemistry↗

Tension-induced suppression of allosteric conformational changes explains coordinated stepping of kinesin-1

The dimeric motor protein kinesin-1 walks along microtubules by alternating ATP hydrolysis and movement of its two motor domains ("head"). The detached head preferentially binds to the forward tubulin-binding site after ATP binds to the microtubule-bound head, but the mechanism preventing premature binding to the microtubule while the partner head awaits ATP remains unknown. Here, we examined the role of the neck linker, the segment connecting the two heads, in this mechanism. High-resolution structural analyses of the nucleotide-free head revealed a bulge just ahead of the neck linkers base that creates an asymmetric constraint on its mobility. While the neck linker can stretch freely backward, it must navigate around this bulge to extend forward. Based on this finding, we hypothesized that premature binding of the tethered head is suppressed by an intolerable increase in neck linker tension. Molecular dynamic simulations and single-molecule fluorescent assays supported this model. These findings demonstrate a tension-based regulation mechanism where off-pathway conformational transitions are thermodynamically suppressed through entropy loss associated with neck linker stretching, suggesting that neck linker tension influences the allosteric conformational transition rather than directly affecting the nucleotide state.

biophysics↗