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Alnami, A.

Publications and source records attributed to Alnami, A..

2 recordsLinked to original sources

Cytomotive actins and tubulins share a polymerisation switch mechanism conferring robust dynamics

Protein filaments are used in myriads of ways to organise other molecules in space and time within cells. Some filament-forming proteins couple the hydrolysis of nucleotides to their polymerisation cycle, thus powering the directed movement of other molecules. These filaments are termed cytomotive. Only members of the actin and tubulin protein superfamilies are known to form cytomotive filaments. We sought to examine the basis of cytomotivity via structural studies of the polymerisation cycles of actin and tubulin homologues from across the tree of life. We analysed published data and performed new structural experiments designed to disentangle functional components of these complex filament systems. In sum, our analysis demonstrates the existence of shared subunit polymerisation switches amongst both cytomotive actins and tubulins, i.e. the conformation of subunits switches upon assembly into filaments. Such cytomotive switches explain filament robustness, by enabling the coupling of kinetic and structural polarities required for useful cytomotive behaviours, and by ensuring that single cytomotive filaments do not fall apart.

molecular biology↗

Conformational flexibility Of A Highly Conserved Helix Controls Cryptic Pocket Formation In FtsZ

Mycobacterium tuberculosis is responsible for more than 1.6 million deaths per year. Overcoming failure from established therapies owing to multidrug resistance requires the identification of novel targets. One potential antibacterial target is filamentous temperature sensitive protein Z (FtsZ), which is the bacterial homologue of mammalian tubulin, a validated cancer target. M. tuberculosis FtsZ function is essential, with its inhibition leading to arrest of cell division, elongation of the bacterial cell and eventual cell death. However, the development of potent inhibitors against FtsZ has been a challenge due to the lack of structural information. Here we have solved multiple crystal structures of M. tuberculosis FtsZ in complex with coumarin analogues. Coumarins bind exclusively to two novel cryptic pockets in nucleotide-free FtsZ but not to the binary FtsZ-GTP or GDP complexes. Our findings provide a detailed understanding of the molecular basis for cryptic pocket formation, controlled by the conformational flexibility of the H7 helix, and thus reveal an important structural and mechanistic rationale for coumarins antibacterial activity.

microbiology↗