Protein—Ion Charge-State Distributions in Electrospray Ionization Mass Spectrometry: Distinguishing Conformational Contributions from Masking Effects

2002 ◽  
Vol 8 (2) ◽  
pp. 123-129 ◽  
Author(s):  
Dmitry R. Gumerov ◽  
Andras Dobo ◽  
Igor A. Kaltashov

Electrospray ionization mass spectrometry (ESI-MS) is often used to monitor protein conformational dynamics in solution, for example acid unfolding, by following the changes in positive-ion charge-state distributions in response to changes of ambient conditions, for example solution pH. Deconvolution of these charge-state distributions often reveals the presence of multiple protein conformers coexisting in solution in equilibrium. The ion signal corresponding to each conformer depends on its size (which determines the average charge state of the protein ions) and heterogeneity (which determines the spread of the ion signal). In the present work, we seek to explore how the ion signal of individual protein conformers can be influenced by other factors not related to protein shape, with particular attention being paid to contributions from solution acid-base chemistry. The composition of the buffer was found to exert a significant influence on the ion signal by inducing apparent charge reduction of the protein ions. This effect was ascribed to protein-base (anion) complex formation in solution followed by dissociation of the neutral conjugated acid from the complex in the gas-phase. The resulting shift in the charge-state distribution occurs in the pH range from p Ka to approximately (p Ka −1.5) and is induced by the elevated concentration of the anion in solution. On the other hand, intrinsic charges on the protein in solution have been shown to have no effect on the appearance of the charge-state distributions, lending further credibility to the notion that protein shape is the only structural determinant of the ion signal in ESI-MS.

2020 ◽  
Author(s):  
Danye Qiu ◽  
Miranda S. Wilson ◽  
Verena B. Eisenbeis ◽  
Robert K. Harmel ◽  
Esther Riemer ◽  
...  

AbstractThe analysis of myo-inositol phosphates (InsPs) and myo-inositol pyrophosphates (PP-InsPs) is a daunting challenge due to the large number of possible isomers, the absence of a chromophore, the high charge density, the low abundance, and the instability of the esters and anhydrides. Given their importance in biology, an analytical approach to follow and understand this complex signaling hub is highly desirable. Here, capillary electrophoresis (CE) coupled to electrospray ionization mass spectrometry (ESI-MS) is implemented to analyze complex mixtures of InsPs and PP-InsPs with high sensitivity. Stable isotope labeled (SIL) internal standards allow for matrix-independent quantitative assignment. The method is validated in wild-type and knockout mammalian cell lines and in model organisms. SIL-CE-ESI-MS enables for the first time the accurate monitoring of InsPs and PP-InsPs arising from compartmentalized cellular synthesis pathways, by feeding cells with either [13C6]-myo-inositol or [13C6]-D-glucose. In doing so, we uncover that there must be unknown inositol synthesis pathways in mammals, highlighting the unique potential of this method to dissect inositol phosphate metabolism and signalling.


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