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Parallel Analysis of Acidic and Basic Proteoforms in Cell Lysates via Native Cation and Anion Exchange
Ziran Zhai1,2, Hafsa Zakri1,2, Matteo Damian1
1Analytical Chemistry Group and Biocatalysis Group, Van't Hoff Institute For Molecular Sciences (HIMS), University of Amsterdam, Amsterdam, The Netherlands.
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Comprehensive characterization of proteoforms in complex biological systems remains a significant challenge. While native ion-exchange chromatography (IEC) hyphenated with native mass spectrometry (nMS) is a powerful tool for resolving proteoforms, three critical limitations persist: restricted volatile buffers causing nonlinear pH gradients; insufficient coverage of the proteome's broad isoelectric point (pI) range; and inadequate sensitivity for low-abundance proteins. To bridge this gap, we developed an online nanoflow dual IEC-nMS platform. Volatile salt systems for strong anion (SAX) and cation exchange (SCX) were optimized to achieve exceptionally wide and linear pH ranges (2.6-5.0 for SAX and 5.0-8.5 for SCX). These methods were implemented on self-packed 100 µm ID capillary columns at 500 nL/min to enhance sensitivity. To enable simultaneous analysis of acidic and basic species, we introduced a double-barrel column configuration that integrates nanoSAX and nanoSCX in a noninterfering, parallel manner. This platform was applied to an E. coli cell lysate, identifying 301 unique proteoform masses (D-score > 40) ranging from 10 to 150 kDa (with about 120> 50 kDa). Notably, the two modes were highly complementary, with only 10 overlapping species. The double-barrel nanoflow IEC-nMS platform provides a robust, sensitive, and high-resolution strategy for native top-down proteomics, enabling in-depth study of complex proteomes.

