ZapC crosslinks FtsZ filaments through a dual-binding mechanism modulated by the intrinsically disordered linker of FtsZ
Du, S.; Li, Y.; Gong, H.; Zhang, R.; Cui, Y.; Chen, X.; Lutkenhaus, J.
Show abstract
Most bacteria divide through binary fission, which is mediated by a large protein complex called the divisome. Assembly of the divisome is initiated by formation a Z ring at midcell consisting of polymers of the bacterial tubulin FtsZ. A series of FtsZ-associated proteins (Zaps), which crosslink FtsZ filaments, promote Z ring formation in Escherichia coli. However, how these proteins interact with FtsZ is still unclear. In this study, we discover that ZapC binds to both FtsZs globular domain and its conserved C-terminal peptide (CCTP) to crosslink FtsZ filaments. An AlphaFold 3 structural model of the FtsZ-ZapC complex indicates that ZapC binds to the globular domain of FtsZ via a loop region connecting its N-terminal and C-terminal domains and to the CCTP of FtsZ via a hydrophobic pocket in the N-terminal domain. Substitutions in these regions of ZapC disrupt its binding to FtsZ, validating the dual binding mode. Strikingly, we find that the intrinsically disordered C-terminal linker (CTL) of FtsZ affects the interaction of FtsZ with ZapC as well as other partners, indicating an important role of the CTL in FtsZ functionality. Taken together, these results indicate that ZapC, although it exists as a monomer, can crosslink FtsZ filaments by a two-pronged mechanism, binding to the globular domain of FtsZ in one filament and to the CCTP of FtsZ in another filament. Furthermore, the CTL plays an important role in regulating FtsZ interaction with its partners. ImportanceBacterial cytokinesis requires the Z ring, a highly dynamic cytoskeletal element consisting of polymers of the bacterial tubulin FtsZ. Formation of a coherent and functional Z ring is facilitated by FtsZ-associated proteins (Zap), which can crosslink FtsZ polymers, but how these proteins work is still incompletely understood. In this study, we find that ZapC, one of the FtsZ crosslinkers, binds to both FtsZs globular domain and its conserved C-terminal peptide to crosslink FtsZ filaments. Moreover, the intrinsically disordered C-terminal linker (CTL) of FtsZ modulates its binding to ZapC and many other FtsZ binding proteins. These findings reveal a novel mechanism to crosslink FtsZ filaments and reveal an important and highly conserved role of the CTL in FtsZ functionality.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- The Cell Division Protein FzlA Performs a Conserved Function in Diverse Alphaproteobacteria 97%
- Comparative study of bacterial SPOR domains identifies functionally important differences in glycan binding affinity 95%
- The division defect of a Bacillus subtilis minD noc double mutant can be suppressed by Spx-dependent and Spx-independent mechanisms 95%
Similar papers in this journal
Similar papers in this journal
- YhcB (DUF1043), a novel cell division protein conserved across gamma-proteobacteria 96%
- Cyclic AMP competitively inhibits periplasmic phosphatases to coordinate nutritional growth with competence development of Haemophilus influenzae 94%
- NMR study of the interaction between MinC and FtsZ and modeling of the FtsZ:MinC complex. 94%
Similar papers in this journal
- Guanidine hydrochloride reactivates an ancient septin hetero-oligomer assembly pathway in budding yeast 95%
- Inhibitory proteins block substrate access by occupying the active site cleft of Bacillus subtilis intramembrane metalloprotease SpoIVFB 95%
- A unique cell division protein critical for the assembly of the bacterial divisome 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.