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  • Structure and chemistry of lysinoalanine crosslinking in the spirochaete flagella hook.

Structure and chemistry of lysinoalanine crosslinking in the spirochaete flagella hook.

Nature chemical biology (2019-08-14)
Michael J Lynch, Michael Miller, Milinda James, Sheng Zhang, Kai Zhang, Chunhao Li, Nyles W Charon, Brian R Crane
摘要

The flagellar hook protein FlgE from spirochaete bacteria self-catalyzes the formation of an unusual inter-subunit lysinoalanine (Lal) crosslink that is critical for cell motility. Unlike other known examples of Lal biosynthesis, conserved cysteine and lysine residues in FlgE spontaneously react to form Lal without the involvement of additional enzymes. Oligomerization of FlgE via its D0 and Dc domains drives assembly of the crosslinking site at the D1-D2 domain interface. Structures of the FlgED2 domain, dehydroalanine (DHA) intermediate and Lal crosslinked FlgE subunits reveal successive snapshots of the reaction. Cys178 flips from a buried configuration to release hydrogen sulfide (H2S/HS-) and produce DHA. Interface residues provide hydrogen bonds to anchor the active site, facilitate β-elimination of Cys178 and polarize the peptide backbone to activate DHA for reaction with Lys165. Cysteine-reactive molecules accelerate DHA formation, whereas nucleophiles can intercept the DHA intermediate, thereby indicating a potential for Lal crosslink inhibitors to combat spirochaetal diseases.

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Sigma-Aldrich
5,5′-二硫代双(2-硝基苯甲酸), ≥98%, BioReagent, suitable for determination of sulfhydryl groups
Sigma-Aldrich
N -溴代丁二酰亚胺, ReagentPlus®, 99%
Supelco
5,5-二甲基-1,3-环己二酮, derivatization grade (HPLC), for the determination of aldehyde formaldehyde, ≥99.0%