Fiche publication
Date publication
juin 2026
Journal
Journal of the American Society for Mass Spectrometry
Auteurs
Membres identifiés du Cancéropôle Est :
Dr CIANFERANI Sarah
,
Mme SCHAEFFER-REISS Christine
Tous les auteurs :
Letissier L, Beaumal C, Nabiyeva T, Criscuolo F, Bertile F, Schaeffer-Reiss C, Cianférani S, Hernandez-Alba O
Lien Pubmed
Résumé
Hemoglobin is the protein responsible for oxygen transport in many vertebrates, and any structural alteration can lead to health issues. Although well characterized in humans, it is less known for birds. Studies have reported the identification of several α subunits along with the presence of endogenous cofactors in different avian erythrocytes. However, the native structure of avian hemoglobin remains elusive. Native top-down mass spectrometry (nTD-MS) offers powerful insights into biomolecular complexes, providing information on quaternary structure, subunit connectivity, stoichiometry, and subunit sequences. However, most nTD-MS approaches use direct infusion, which can limit the multiprotein complex population characterization. Here, we report on the development of a size-exclusion-chromatography (SEC) nTD-MS approach, including different activation methods to characterize the zebra finch hemoglobin structure. Three different tetramer populations were separated and characterized using optimized pMS (pseudo-MS, complex-up) workflows to induce subunit and endogenous cofactor release previously reported by our group. The analytical strategy was improved with the addition of an extra level of characterization through the implementation of a pMS (pseudo-MS, complex-down) step with controlled pressure, allowing almost complete sequence coverage of all the subunits (>94%), along with the identification of inositol pentaphosphate as a cofactor of the tetramer structure. Altogether, these results pinpoint the key role of SEC-nTD-MS workflows to enable a complete structural characterization of hemoglobin complexes, which could provide crucial information regarding oxygen affinity, bird environment adaptation, or phylogeny.
Mots clés
IP5, avian hemoglobin, native top-down mass spectrometry (nTD-MS), size exclusion chromatography (SEC), subunit binding
Référence
J Am Soc Mass Spectrom. 2026 06 18;: