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Portasikova, J. M.

Publications and source records attributed to Portasikova, J. M..

3 recordsLinked to original sources

Molecular mechanism of exchange coupling in CLC chloride/proton antiporters

The ubiquitous CLC membrane transporters are unique in their ability to exchange anions for cations. Despite extensive study, there is no mechanistic model that fully explains their 2:1 Cl-/H+ stoichiometric exchange mechanism. Here, we provide such a model. Using differential hydrogen-deuterium exchange mass spectrometry, cryo-EM structure determination, and molecular dynamics simulations, we uncovered conformational dynamics in CLC-ec1, a bacterial CLC homolog that has served as a paradigm for this family of transporters. Simulations based on a cryo-EM structure at pH 3 revealed critical steps in the transport mechanism, including release of Cl- ions to the extracellular side, opening of the inner gate, and water wires that facilitate H+ transport. Surprisingly, these water wires occurred independently of Cl-binding, prompting us to reassess the relationship between Cl- binding and Cl-/H+ coupling. Using isothermal titration calorimetry and quantitative flux assays on mutants with reduced Cl- binding affinity, we conclude that, while Cl- binding is necessary for coupling, even weak binding can support Cl-/H+ coupling. By integrating our findings with existing literature, we establish a complete and efficient CLC 2:1 Cl-/H+ exchange mechanism.

biophysics↗

A somatic multiple myeloma mutation unravels a mechanism of oligomerization-mediated product inhibition in GGPPS

Protein prenylation regulates the cellular localization of small GTPases and is pivotal for multiple myeloma (MM) pathology. Geranylgeranyl diphosphate synthase (GGPPS), synthesizing a prenylation moiety, exhibits dimeric or hexameric stoichiometry in different species. However, the functional significance of this divergence remains elusive. Focusing on the hexameric human paralog, formed by trimer-of-dimers, we uncover that GGPPSR235C, expressed in an MM cell line, localizes to the active site lid region at the inter-dimeric interface. Using crystallography and mass spectrometry (MS), we show that GGPPSR235C retains its hexameric stoichiometry but exhibits destabilized inter-dimer interactions. Unexpectedly, this results in increased apparent substrate affinity and product release kinetics. These functional effects are further enhanced in a dimeric mutant, GGPPSY246D. Combining MS and fluorescence spectroscopy, we exposed that reduced lid dynamics and increased active site occupancy by the product are intertwined. Together, our results expose product inhibition as a regulatory mechanism in GGPPS, driven by hexamerization.

biochemistry↗

Post-proline cleaving enzymes also show specificity to reduced cysteine.

In proteomics, post-proline cleaving enzymes (PPCEs) like Aspergillus niger prolyl endopeptidase and neprosin complement proteolytic tools because proline is a stop site for many proteases. However, our systematic analysis of cleavage preferences showed that both PPCEs also display specificity to reduced cysteine. Post-cysteine cleavage was blocked by Cys alkylation, explaining why this activity has remained undetected. Our findings redefine their applicability and how we study and interpret their cleavage mechanism.

biochemistry↗