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Bilgin, N.

Publications and source records attributed to Bilgin, N..

2 recordsLinked to original sources

Top-down Sequencing of Intact Proteoforms using the timsOmni mass spectrometer: Accurate Determination of Co-occurring Histone Modifications

Deep characterization of intact proteoforms remains an analytical challenge in functional proteomics, particularly for heterogenous multi-site post-translational modifications at distinct amino acid residues. Histones are among the most dynamically and diversely post-translationally modified proteins in eukaryote cells, carrying multiple, co-occurring and reversible modifications that can give rise to isomeric proteoform species. Tandem mass spectrometry with multimodal fragmentation capabilities is a promising approach for deep characterization of intact proteoforms, such as modified histones. We applied the novel timsOmni mass spectrometer, which incorporates the Omnitrap platform enabling multimodal MS workflows, for residue-level mapping of histone modifications, including acetylation and methylation. Recombinant histones H3.1 and H4 were in vitro acetylated by enzymes GCN5, PCAF and p300 to generate mono- and multi-acetylated proteoforms. Complementary MS2 electron- and collision-based dissociation (ECD, EID, RCID and ECciD), together with MS3 strategies, produced complete or near-complete backbone fragmentation of intact protein ions (>92% amino acid sequence coverage). For monoacetylated species generated by the more site-selective lysine acetyltransferases, the dominant proteoform matched the known catalytic preferences of the enzymes (H3.1K14ac for GCN5 and PCAF, and H4K8ac for PCAF), while minor positional isomers were also identified and their relative abundance estimated. In contrast, the broader substrate specificity of p300 produced a wide distribution of H4 proteoforms bearing up to seven acetylated lysine residues. Species carrying six and seven acetylations were characterized by multimodal MS2/MS3 experiments, enabling localization of individual acetylation sites and discrimination of positional isomers. Finally, endogenous histone proteoforms from liver extracts were analyzed, yielding sequence coverages of 92-93% for the most abundant species and enabling confident localization of multiple PTMs (acetylation and methylation). These results illustrate that multimodal MSn fragmentation of intact proteins supports residue-level assignment of combinatorial histone marks and coexisting positional isomers. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=165 HEIGHT=200 SRC="FIGDIR/small/722147v1_ufig1.gif" ALT="Figure 1"> View larger version (34K): org.highwire.dtl.DTLVardef@387ab5org.highwire.dtl.DTLVardef@2410org.highwire.dtl.DTLVardef@13fc392org.highwire.dtl.DTLVardef@140e054_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIMultimodal MS{superscript 2}/MS3 maps histone PTMs on intact proteins. C_LIO_LIECD, EID, RCID, and ECciD provide complete or near-complete sequence coverage. C_LIO_LIMS3 localizes acetylation sites, distinguishes positional isomers. C_LIO_LIEndogenous H4 proteoforms are assigned with site-specific PTM mapping. C_LI

biochemistry↗

Ion Mobility Separation of Isomeric Acyl-lysine Marks in Peptides

Isomeric post-translational modifications (PTMs) on proteins challenge proteomic analyses due to their identical mass and fragmentation patterns. We evaluate high-resolution ion mobility spectrometry (IMS) for separating three naturally occurring acyl-lysine isomer pairs on histones: crotonyl/methacryl, butyryl/isobutyryl and L-/D-lactyl. These PTMs were chemically installed on lysine residues 9 and 18 (K9, K18) of synthetic histone H3 peptides (residues 3-15 and 3-25). Using trapped IMS (TIMS) we observe half-height separation of H3[3-15] peptides possessing crotonyl/methacryl and L/D-lactyl marks, and the lactyl isomers of H3[3-25] can be distinguished. In contrast, multi-pass cyclic IMS (cIM) achieves baseline or near-baseline resolution for every pair, except the longest butyryl/isobutyryl peptide isomers, despite their collision-cross-section differences of {approx}1%. We show that resolution increased with the square root of cIM pass number, allowing baseline separation within 300 ms. Beyond separation, structure-mobility relationships emerge: branched modifications (isobutyryl, methacryl) yield more compact gas-phase conformations than their linear analogs (butyryl, crotonyl). For the doubly crotonylated/methacrylated peptides studied, both PTM identity and site determine the mobility. These results demonstrate IMS as a sensitive method for elucidation of acyl-modified histone peptide fine structure by resolving isomeric PTM ambiguity. This addresses a persistent analytical bottleneck and should be included in routine proteomics MS-based workflows

biochemistry↗