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Biology subjects

Fisher, N. P.

Publications and source records attributed to Fisher, N. P..

2 recordsLinked to original sources

Deep Proteoform Sequencing with Top-Down Direct Mass Technology

Individual Ion Mass Spectrometry (I2MS) using Direct Mass Technology mode on an Orbitrap mass spectrometer (DMTm) increases sensitivity, resolution, and mass range for protein analysis. Here, we present an end-to-end workflow for deep proteoform sequencing using top-down mass spectrometry with DMTm. By assigning the charge of individual fragment ions and converting spectra from the m/z to the mass domain, DMTm resolves overlapping isotopic distributions that have limited conventional top-down mass spectrometry. Across different fragmentation modes on Orbitrap mass spectrometers, top-down DMTm significantly outperformed conventional top-down mass spectrometry methods. For a glycosylated 50.8 kDa antibody heavy chain, sequence coverage was greatly increased, from 27.5% to 83.3%, in 10 minutes of acquisition using a single fragmentation mode. Coverage of the middle 350 residues improved from 0% to >95%, demonstrating near-complete coverage of the difficult-to-characterize internal region of a large protein. The fragmentation patterns of DMTm were found to be complementary to conventional top-down, with higher internal coverage for DMTm and higher terminal coverage for conventional. Accordingly, aggregation of the data from the two modes further increased heavy chain sequence coverage to 90.2%. A new software platform, Proteoform Studio, provided optimized ion processing for improved sequence coverage and enabled real-time experimental monitoring as individual ions were accumulated. The platform automatically integrates conventional and DMTm data to provide the most comprehensive sequence coverage possible. Together, these advances enable substantially deeper proteoform sequencing and establish a straightforward, complete top-down DMTm workflow to confidently define proteoforms in biological systems and biotherapeutic development.

bioinformatics↗

Direct Readout of Multivalent Chromatin Reader-Nucleosome Interactions by Nucleosome Mass Spectrometry

Histone post-translational modifications (PTMs) often serve as distinct recognition sites for the recruitment of chromatin-associated proteins (CAPs) for epigenome regulation. While CAP-PTM interactions have been extensively studied using histone peptides, this cannot consider the regulatory potential of multi-site binding on intact nucleosomes. To overcome this limitation, we applied Nucleosome Mass Spectrometry (Nuc-MS), a native Top-Down MS approach that enables controlled disassembly of intact CAP:nucleosome (CAP:nuc) complexes to provide a direct readout of the contained histone proteoforms. As proof of principle, we show the BPTF PHD-BD native tandem reader requires coincident H3K4me3K9acK14acK18ac for effective nucleosome engagement. We extend our approach to explore how the BRD4 (native BD1-BD2), DNMT3A-MPP8 (chimeric PWWP-CD), and PtSHL (native BAH-BD) tandem readers interact with endogenous nucleosomes. Each reveals distinct enrichment profiles: BRD4 favoring di- and tri-acetylated histone H4 proteoforms, whereas DNMT3A-MPP8 and PtSHL preferentially interact with hypermethylated H3 proteoforms. Of note the latter enriches combinatorial {H3K4me3K27me3} on the same histone tail in HeLa chromatin, and thus expands the potential biology of this widely studied bivalent signature. By directly characterizing CAP:nuc complex composition with combinatorial PTM information in a single readout, Nuc-MS serves as a new approach to discover the modifications driving binding, and therefore primary candidates to explore for structural biology and genomic studies. O_FIG O_LINKSMALLFIG WIDTH=199 HEIGHT=200 SRC="FIGDIR/small/651740v1_ufig1.gif" ALT="Figure 1"> View larger version (32K): org.highwire.dtl.DTLVardef@8815e9org.highwire.dtl.DTLVardef@5685b5org.highwire.dtl.DTLVardef@643881org.highwire.dtl.DTLVardef@1b9bc20_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOFor TOC only.C_FLOATNO Synopsis. Nuc-MS provides the ability to control the disassembly of chromatin-associated protein-nucleosome complexes (CAP-nuc) and delineate the histone proteoforms driving tandem reader domain binding. C_FIG

biochemistry↗