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February 26, 2026Analytical Chemistry1 citationsOpen Access

Bead-Ejection Scenario in Electrospray Ionization of Multidomain Nucleic Acids

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DGDebasmita GhoshFRFrédéric RosuVGValérie Gabelica

Key Points

  • The research aims to investigate how nucleic acids acquire charge during electrospray ionization and maintain their structure.
  • Examined nucleic acid constructs with G-quadruplex beads linked by unstructured regions.
  • Conducted experiments under varying ionic strength conditions.
  • Utilized native mass spectrometry to observe charge-state distribution and conformational changes.
  • Nucleic acid constructs displayed a multimodal charge-state distribution.
  • Observations indicated multiple conformational ensembles, contrasting shorter oligonucleotide profiles.
  • Findings support the bead-ejection scenario for ion production at specific charge states.

Abstract

Understanding how biomolecules acquire their charge and retain their solution conformation during electrospray ionization (ESI) is crucial for native mass spectrometry (native MS) interpretation. Here, we examine the charging and gas phase conformation of nucleic acid constructs comprising folded G-quadruplex “beads” linked by unstructured polythymine regions. Under physiological ionic strength, these oligonucleotides exhibit a multimodal charge-state and collision cross section distribution, revealing multiple conformational ensembles, in contrast to the unimodal profiles typically observed for shorter oligonucleotides. Native MS observations for intermediate charge states are compatible with ion production via the recently proposed bead-ejection scenario, in addition to the charge residue scenario for low charge states and chain ejection for the highest charge states or for sequences with thymine overhangs on both ends. The preservation of the local structures in ions charged above the Rayleigh limit helps to infer the presence of folded subunits. The position of the G-quadruplex subunit and ionic strength govern the charging and retention of G-quadruplex folded regions. Our findings broaden the existing conceptual framework underpinning nucleic acid ionization.

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Cite This Study

Ghosh et al. (2026) studied this question.

synapsesocial.com/papers/699fe2eb95ddcd3a253e6714https://doi.org/10.1021/acs.analchem.5c04790
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