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Martins, M. L.

Publications and source records attributed to Martins, M. L..

2 recordsLinked to original sources

Hierarchical cross-linking of a bacterial spore coat Hub protein

Hub proteins are highly connected nodes in protein-protein interaction networks and are often intrinsically disordered proteins (IDPs) or contain intrinsically disordered regions. In Bacillus subtilis, the morphogenesis of the spore surface is orchestrated by a set of so-called morphogenetic proteins that guide the assembly of distinct layers. Formation of the inner coat is directed by SafAFL and its shorter isoform, C30. Both are expressed early in sporulation under the control of {sigma}E and localize at the interface between the developing inner coat and the underlying cortex peptidoglycan. From this site, they act as organizational hubs, recruiting client proteins essential for coat maturation. Among these is Tgl, a transglutaminase synthesized later in development following activation of {sigma}K after engulfment completion. We show that the C30 domain exhibits IDP-like features yet self-assembles into >1200 kDa complexes stabilized by disulfide bonds and that these bonds are required for subsequent proper Tgl-mediated "spotwelding" cross-linking. Small-angle X-ray scattering (SAXS) and photobleaching show that Tgl immobilizes but does not drastically alter these assemblies. These findings support a hierarchical, biphasic model for inner coat assembly: initial self-assembly and disulfide stabilization, followed by Tgl-mediated cross-linking and structural stabilization. According to this model, the forms of SafAFL/C30 that dominate the two stages recruit different client proteins in register with the course of morphogenesis.

microbiology↗

Dynamic ensembles of SARS-CoV-2 N-protein reveal head-to-head coiled-coil-driven oligomerization and phase separation

The SARS-CoV-2 nucleocapsid (N) protein is essential for the viral lifecycle, facilitating RNA packaging, replication, and host-cell interactions. Its ability to self-assemble and undergo liquid-liquid phase separation (LLPS) is critical for these functions but remains poorly understood. Using an integrated approach combining small-angle X-ray scattering (SAXS), nuclear magnetic resonance (NMR) spectroscopy, computational modeling, and biophysical assays, we uncover key mechanisms underpinning N-proteins dynamic self-assembly. We show that the N-proteins interdomain linker (IDL) contains a conserved coiled-coil (CC) motif that drives transient interactions between protein subunits, enabling the formation of progressively larger complexes at higher concentrations. SAXS analysis and ensemble modeling reveal that the IDL exists in a concentration-dependent equilibrium between monomeric, dimeric, and trimeric states. The CC motif facilitates parallel, head-to-head oligomerization of N-protein dimers, transitioning between compact (closed) and extended (open) configurations depending on the interaction network within the IDL. This linker-driven assembly modulates LLPS, impacting the size, stability, and dynamics of biomolecular condensates. Here, we present the most comprehensive conformational landscape analysis of the N-protein to date, providing a detailed model of its self-assembly and LLPS. Our findings highlight how the structural plasticity of the IDL and CC-mediated interactions are pivotal to its roles in the SARS-CoV-2 lifecycle.

biophysics↗