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Exploring the Conformational and Binding Dynamics of HMGA2·DNA Complexes Using Trapped Ion Mobility Spectrometry-Mass Spectrometry.
Jeanne Dit Fouque, Kevin; Sipe, Sarah N; Garabedian, Alyssa; Mejia, German; Su, Linjia; Hossen, Md Lokman; Chapagain, Prem P; Leng, Fenfei; Brodbelt, Jennifer S; Fernandez-Lima, Francisco.
Affiliation
  • Jeanne Dit Fouque K; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
  • Sipe SN; Department of Chemistry, University of Texas, Austin, Texas 78712 United States.
  • Garabedian A; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
  • Mejia G; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
  • Su L; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
  • Hossen ML; Department of Physics, Florida International University, Miami, Florida 33199, United States.
  • Chapagain PP; Department of Physics, Florida International University, Miami, Florida 33199, United States.
  • Leng F; Biomolecular Sciences Institute, Florida International University, Miami, Florida 33199, United States.
  • Brodbelt JS; Department of Chemistry and Biochemistry, Florida International University, Miami, Florida 33199, United States.
  • Fernandez-Lima F; Biomolecular Sciences Institute, Florida International University, Miami, Florida 33199, United States.
J Am Soc Mass Spectrom ; 33(7): 1103-1112, 2022 Jul 06.
Article in En | MEDLINE | ID: mdl-35687119
ABSTRACT
The mammalian high mobility group protein AT-hook 2 (HMGA2) is an intrinsically disordered DNA-binding protein expressed during embryogenesis. In the present work, the conformational and binding dynamics of HMGA2 and HMGA2 in complex with a 22-nt (DNA22) and a 50-nt (DNA50) AT-rich DNA hairpin were investigated using trapped ion mobility spectrometry-mass spectrometry (TIMS-MS) under native starting solvent conditions (e.g., 100 mM aqueous NH4Ac) and collision-induced unfolding/dissociation (CIU/CID) as well as solution fluorescence anisotropy to assess the role of the DNA ligand when binding to the HMGA2 protein. CIU-TIMS-CID-MS/MS experiments showed a significant reduction of the conformational space and charge-state distribution accompanied by an energy stability increase of the native HMGA2 upon DNA binding. Fluorescence anisotropy experiments and CIU-TIMS-CID-MS/MS demonstrated for the first time that HMGA2 binds with high affinity to the minor groove of AT-rich DNA oligomers and with lower affinity to the major groove of AT-rich DNA oligomers (minor groove occupied by a minor groove binder Hoechst 33258). The HMGA2·DNA22 complex (18.2 kDa) 11 and 12 stoichiometry suggests that two of the AT-hook sites are accessible for DNA binding, while the other AT-hook site is probably coordinated by the C-terminal motif peptide (CTMP). The HMGA2 transition from disordered to ordered upon DNA binding is driven by the interaction of the three basic AT-hook residues with the minor and/or major grooves of AT-rich DNA oligomers.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: HMGA2 Protein / Ion Mobility Spectrometry Limits: Animals Language: En Journal: J Am Soc Mass Spectrom Year: 2022 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: HMGA2 Protein / Ion Mobility Spectrometry Limits: Animals Language: En Journal: J Am Soc Mass Spectrom Year: 2022 Document type: Article Affiliation country: