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Litt, Z. R.

Publications and source records attributed to Litt, Z. R..

2 recordsLinked to original sources

β-strand complementation within tip initiation complexes licenses assembly of diverse type IV filaments

PilC/PilY1 proteins are tip-located adhesins of type IV pili (T4P) that are critical for T4P function in diverse behaviors including twitching motility, DNA uptake, and host cell adhesion. PilC and PilY1 adhesins are proposed to interact with initiation complexes composed of minor pilins (PilIJK family proteins) to aid in initiation of T4P polymerization, but it has been unclear how PilC/PilY1 proteins promote fiber assembly. We combined structural modeling, genetic, and biochemical experiments using Neisseria gonorrhoeae and Acinetobacter baylyi to delineate how PilC/PilY1 control T4P assembly: a short peptide at the C-terminus of PilC/PilY1 initiates T4P assembly via {beta}-strand complementation with PilK-family minor pilins. This {beta}-strand is necessary and partially sufficient to trigger fiber assembly. In a working model, the PilK-PilC/PilY1 complex is recognized by a preformed PilI-PilJ heterodimer to form a quaternary "licensing complex" that then templates and initiates fiber assembly. In type II secretion systems (T2SS) lacking PilC/PilY1, PilK homologs directly incorporate the terminal {beta}-strand provided by PilC/PilY1 in T4P. Moreover, phylogenetically distinct Tad T4P lack a canonical PilK homolog and instead contain a structurally similar minor pilin-like protein called TadG/CpaL that is important for fiber assembly. We show that CpaL of Caulobacter crescentus Tad T4P acts similarly to the T2SS PilK homolog to provide the C-terminal {beta}-strand required for assembly. Our results explain how PilC/PilY1 can be retained on the fiber tip under enormous tensile loads generated during mechanical shear and T4P retraction and demonstrate how diverse T4P systems employ {beta}-strand complementation to license fiber assembly. SIGNIFICANCEProkaryotic type IV filaments are ancient, diverse, and broadly distributed nanomachines that assemble and retract to execute diverse microbial functions. They include type IV pili and type II secretion systems, mediating toxin secretion, motility, surface adhesion, biofilm formation, DNA uptake, and other functions. Here, we show that two widely conserved subunits of the tip, PilI and PilJ, form a module that recognizes the folding of a {beta}-sheet in a third subunit, PilK. The final {beta}-strand in this sheet can be supplied in trans by the last [~]10 aminoacyl residues of large PilC/PilY1 adhesins, or in cis by PilK itself. In a working model, this recognition results in formation of a PilIJK trimer, which then licenses fiber polymerization through a templating mechanism.

microbiology↗

Appendage regeneration requires IMPDH2 and creates a sensitized environment for enzyme filament formation

Regeneration of lost tissue requires biosynthesis of metabolites needed for cell proliferation and growth. Among these are the critical purine nucleotides ATP and GTP. The abundance and balance of these purines is regulated by inosine monophosphate dehydrogenase 2 (IMPDH2), which catalyzes the committing step of GTP synthesis. IMPDH2 assembles into filaments that resist allosteric inhibition under conditions of high GTP demand. Here we asked whether IMPDH2 is required in the highly proliferative context of regeneration, and whether its assembly into filaments takes place in regenerating tissue. We find that inhibition of IMPDH2 leads to impaired tail regeneration and reduced cell proliferation in the tadpole Xenopus tropicalis. We find that both endogenous and fluorescent fusions of IMPDH2 robustly assemble into filaments throughout the tadpole tail, and that the regenerating tail creates a sensitized condition for filament formation. These findings clarify the role of purine biosynthesis in regeneration and reveal that IMPDH2 enzyme filament formation is a biologically relevant mechanism of regulation in vertebrate regeneration. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=123 SRC="FIGDIR/small/605679v2_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1006d64org.highwire.dtl.DTLVardef@10ddf85org.highwire.dtl.DTLVardef@1cdc99eorg.highwire.dtl.DTLVardef@16fc4cb_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗