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Ujma, J.

Publications and source records attributed to Ujma, J..

6 recordsLinked to original sources

Resolving symmetry-masked allosteric cooperativity in the M. tuberculosis proteasome core particle

The 20S proteasome core particle (CP) is a stacked 7-{beta}7-{beta}7-7 assembly in which the central {beta}-rings host fourteen catalytic active sites responsible for regulated protein degradation. Allosteric coupling between catalytic {beta}-subunits has been characterized in eukaryotic proteasomes, whose heteromeric {beta}-rings permit subunit-specific perturbation. In bacterial proteasomes, however, the {beta}-rings are homomeric, and any allosteric relationships between subunits with identical sequences have remained refractory to conventional ensemble-averaging structural methods, including to hydrogen/deuterium exchange mass spectrometry (HDX-MS). Here we show that orthosteric inhibitors paradoxically activate the Mycobacterium tuberculosis 20S CP at substoichiometric concentrations, revealing positive cooperativity between its {beta}-subunits. To dissect this cooperativity within the {beta}-ring, we co-assemble wild-type and catalytically inactive (T1A) {beta}-subunits into hybrid 20S CPs. We develop a probabilistic model relating bulk mixing ratios to the ensemble of hybrid 20S CP stoichiometries. Differential 15N-labelling of the wild-type subunits then resolves WT and T1A peptide signals by mass during HDX-MS, enabling subunit-resolved measurements within a single complex. Using this approach, we demonstrate that ligand binding at one {beta}-subunit remodels the conformational dynamics of binding-incompetent neighbours. Measuring deuterium uptake against ring composition identifies two allosteric routes: a lateral pathway from switch helix II to the active site of the adjacent intra-ring subunit, and an axial pathway connecting a loop at the {beta}-ring interface to the S pockets of the opposing ring. More broadly, this work establishes a framework for resolving symmetry-masked allostery in multi-subunit assemblies. Significance StatementThe 20S proteasome is essential for the survival and virulence of Mycobacterium tuberculosis, yet how its catalytic sites communicate has been difficult to study because the bacterial enzyme is built from identical subunits whose signals are indistinguishable by conventional methods. Here we find that blocking only a fraction of these sites by inhibitors paradoxically activates the enzyme, revealing positive cooperativity between neighbouring subunits. To trace the communication pathways, we developed an isotopic-coding strategy that enables hydrogen/deuterium exchange mass spectrometry report on individual subunits within a single symmetric complex. This approach maps how ligand binding at one subunit reshapes its neighbours and, more broadly, provides a general framework for dissecting allostery in homomeric molecular machines whose symmetry has long obscured it.

biochemistry↗

A Charge Detection Mass Spectrometer for the Analysis of Megadalton-sized Molecules

Advances in Electrostatic Linear Ion Trap (ELIT) Charge Detection Mass Spectrometry (CDMS) over the past 10 years have revolutionized its use for analyzing very high-molecular-weight species such as protein complexes, viral vectors, vaccines, viruses, and amyloid fibrils. Nonetheless, ELIT-based CDMS has remained confined to a small number of specialized instrumentation groups, predominantly in academia, where large and complex home-built instruments are operated by highly skilled scientists in dedicated facilities. In this report, we discuss the primary challenges addressed in the design of a benchtop ELIT-based CDMS instrument. We highlight key design aspects of the hardware, acquisition modes, and control software, and we present important performance metrics (mass range, resolution, and sensitivity) demonstrated using samples representative of the technologys key application areas.

biophysics↗

Resolving hidden stoichiometries in Bacterial proteasome activator (Bpa)-substrate complexes by cryo-EM and charge detection mass spectrometry

Bpa (Bacterial proteasome activator) is a regulatory particle within the Mycobacterium tuberculosis (Mtb) proteasome system that that facilitates ATP-independent substrate engagement and delivery to the 20S core particle (CP) for degradation. The best characterized Bpa substrate is HspR, a transcriptional repressor of Mtb stress-response genes whose Bpa-dependent degradation is required for pathogen virulence. However, the stoichiometry of the Bpa:HspR complex, the molecular mechanism of substrate engagement, and the heterogeneity of the resulting assemblies remain unclear. Here, we combine charge detection mass spectrometry (CDMS) and single-particle electron cryomicroscopy (cryo-EM) as complementary approaches to characterize both apo and HspR-bound Bpa. CDMS revealed a previously unreported undecameric apo species and defines a Bpa12:HspR2 complex stoichiometry with minimal heterogeneity. Cryo-EM, performed without the employment of cross-linking reagents, independently confirmed the presence of undecameric Bpa in solution and localized substrate-associated density to the C-terminal H4 helix of Bpa. Together, these complementary single-particle approaches inform future efforts to target the Mtb proteasome system and provide new molecular insight into proteasomal substrate recognition in prokaryotes. Table of Content Graphic O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=103 SRC="FIGDIR/small/722288v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@be4bb6org.highwire.dtl.DTLVardef@15ccf73org.highwire.dtl.DTLVardef@379a2eorg.highwire.dtl.DTLVardef@6b7b90_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Applying distinct CDMS strategies to observe non-classical virus capsid assembly

In conventional native mass spectrometry (MS), one faces severe limitations when challenged with heterogenous, high mass samples, commonly failing to resolve clear peak distributions and thus mass determination. Charge detection MS (CDMS) has emerged as a premier method to analyze these samples by determining mass-to-charge ratio (m/z) and charge (z) simultaneously. Here, the two currently available commercialized CDMS systems, the Orbitrap-based Direct Mass Technology (DMT) and the electrostatic linear ion trap (ELIT)-based Xevo CDMS are applied to human norovirus capsids from two different strains, GI.1 Norwalk and GII.17 Kawasaki. The norovirus capsid is highly heterogenous due to N-terminal processing on the repeating subunits that it is built from and commonly forms T = 3 and sometimes T = 4 particles. Both CDMS approaches were able to determine similar masses in both strains. GII.17 Kawasaki exhibits both T = 3 and T = 4 particles, though the Xevo CDMS measurements were closer to the theoretical mass than the DMT instrument. Interestingly, GII.17 Kawasaki also displayed non-classical mass distributions with high abundance in-between T = 3 and T = 4 which was then confirmed by cryogenic electron microscopy (cryo-EM), demonstrating an oval capsid shape. GI.1 Norwalk displays a wide mass distribution in both instruments that exceeds the theoretical T = 3 mass by 8-10 %. Proteomics and native MS experiments suggest possible interactions with a protein from the expression system. This study demonstrates the capabilities of two distinct CDMS methodologies on two viral capsids and presents the first non-classical capsid assembly in a GII.17 noroviral capsid.

biochemistry↗

Assembly and substrate engagement mechanism of the bacterial proteasome activator Boa

The bacterial proteasomal activator Bpa (Rv3780) is an ATP-independent regulatory particle of the Mycobacterium tuberculosis proteasome system. Bpa recruits substrates as a dodecamer and triggers the gate opening of the proteasome 20S core particle; however, the structural basis for its oligomerization and substrate recognition remains unclear. Here, we define the temperature-sensitive oligomerization mechanism of Bpa and elucidate its interaction with a non-native substrate. Using size-exclusion chromatography, charge detection mass spectrometry, and pulsed hydrogen/deuterium exchange mass spectrometry (HDX-MS), we show that Bpa reversibly assembles into a dodecameric ring from dimeric and tetrameric species in a temperature-dependent manner. We used HDX-MS to map the oligomerization interfaces during Bpa assembly. Methyl transverse relaxation optimized spectroscopy (TROSY)-based NMR experiments and site-specific truncations further validate the existence of discrete tetrameric and dodecameric states. To overcome the limitations posed by the poor solubility of the native substrates of Bpa, we establish the DNA-binding domain of hTRF1 as a surrogate substrate. Bpa binds hTRF1 and mediates its degradation in a 20S CP-dependent manner. We quantify the affinity and stoichiometry of the Bpa-hTRF1 interaction using methyl-TROSY NMR, identifying a 12 Bpa subunit : 3 hTRF1 binding ratio with micromolar affinity that is modulated by salt concentration. Our NMR-based mapping experiments pinpoint the interaction surfaces on both Bpa and hTRF1, revealing key hydrophobic residues that mediate substrate engagement. This work uncovers a thermosensitive switch regulating Bpa oligomerization and activity and introduces a tractable substrate for dissecting proteasomal recognition in M. tuberculosis.

biochemistry↗

Ion mobility mass spectrometry unveils global protein conformations in response to conditions that promote and reverse liquid-liquid phase separation

Liquid-liquid phase separation (LLPS) is a process by which biomacromolecules, particularly proteins, condense into a dense phase that resembles liquid droplets. Dysregulation of LLPS is implicated in disease, yet the relationship between protein conformational changes and LLPS remain difficult to discern. This is due to the high flexibility and disordered nature of many proteins that phase separate under physiological conditions, and their tendency to oligomerise. Here we demonstrate that ion mobility mass spectrometry (IM-MS) overcomes these limitations. We used IM-MS to investigate the conformational states of full-length ubiquilin-2 (UBQLN2) protein, LLPS of which is driven by high salt concentration and reversed by noncovalent interactions with ubiquitin (Ub). IM-MS revealed that UBQLN2 exists as a mixture of monomers and dimers, and that increasing salt concentration causes the UBQLN2 dimers to undergo a subtle shift towards extended conformations. UBQLN2 binds to Ub in 2:1 and 2:2 UBQLN2:Ub complexes which have compact geometries compared to free UBQLN2 dimers. Together, these results suggest that extended conformations of UBQLN2 are correlated with UBQLN2s ability to phase separate. Overall, delineating protein conformations that are implicit in LLPS will greatly increase understanding of the phase separation process, both in normal cell physiology and disease states.

biophysics↗