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Davis, B. T. V.

Publications and source records attributed to Davis, B. T. V..

2 recordsLinked to original sources

A universal buffer system for native LC-MS analysis of antibody-based therapeutics

Liquid chromatography coupled to mass spectrometry (LC-MS) is a powerful analytical technique for analyzing biological macromolecules. A long-standing challenge has been applying LC-MS at physiological pH under native conditions using volatile buffers. The predominant "buffer" used, ammonium acetate (AmAc, pKa 4.75 for acetic acid and 9.25 for ammonium), does not offer sufficient buffering capacity in the physiological pH range of 7.0-7.4. To address this, we evaluated a set of fluorinated ethylamines, 2-fluoroethylamine (MFEA, pKa 8.9), 2,2-difluoroethylamine (DFEA, pKa 7.2), and 2,2,2-trifluoroethylamine (TFEA, pKa 5.5), that together provide buffering across the 4.5-9.8 pH range. We show that protein separations on strong cation- and anion-exchange resins in these volatile mobile phases perform comparably to traditional non-volatile buffers, with similar elution profiles and analyte elution ranking, albeit with slightly broader peaks. Using fully volatile gradients of pH or ionic strength, we chromatographically resolved charge variants of protein analytes such as mAbs and bovine serum albumin. For many of the eluting LC peaks, we obtained high-resolution mass spectra capable of resolving glycoforms of antibodies. Hydrophobic interaction chromatography (HIC) in volatile mobile phases preserved native separation order and further resolved drug-to-antibody ratio (DAR) species of the antibody-drug conjugate brentuximab-vedotin. For each chromatography modality we further compare innovator and biosimilar antibodies, demonstrating the reproducibility of results in the proposed volatile compounds. Together, our results establish fluorinated ethylamines, in combination with ammonium acetate, as a universal volatile buffer system for native LC-MS, broadly applicable across major chromatographic modalities while maintaining compatibility with mass spectrometry.

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↗