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Mechanisms and energetics of free radical initiated disulfide bond cleavage in model peptides and insulin by mass spectrometry

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Abstract
We investigate the mechanism of disulfide bond cleavage in gaseous peptide and protein ions initiated by a covalently-attached regiospecific acetyl radical using mass spectrometry (MS). Highly selective S-S bond cleavages with some minor C-S bond cleavages are observed by a single step of collisional activation. We show that even multiple disulfide bonds in intact bovine insulin are fragmented in the MS2 stage, releasing the A-and B-chains with a high yield, which has been challenging to achieve by other ion activation methods. Yet, regardless of the previous reaction mechanism studies, it has remained unclear why (1) disulfide bond cleavage is preferred to peptide backbone fragmentation, and why (2) the S-S bond that requires the higher activation energy conjectured in previously suggested mechanisms is more prone to be cleaved than the C-S bond by hydrogen-deficient radicals. To probe the mechanism of these processes, model peptides possessing deuterated beta-carbon(s) at the disulfide bond are employed. It is suggested that the favored pathway of S-S bond cleavage is triggered by direct acetyl radical attack at sulfur with concomitant cleavage of the S-S bond (S(H)2). The activation energy for this process is substantially lower by similar to 9-10 kcal mol(-1) than those of peptide backbone cleavage processes determined by density functional quantum chemical calculations. Minor reaction pathways are initiated by hydrogen abstraction from the alpha-carbon or the beta-carbon of a disulfide, followed by beta-cleavages yielding C-S or S-S bond scissions. The current mechanistic findings should be generally applicable to other radical-driven disulfide bond cleavages with different radical species such as the benzyl and methyl pyridyl radicals.
Author(s)
Sohn, Chang HoGao, JinshanThomas, Daniel A.Kim, Tae-YoungGoddard, William A., IIIBeauchamp, J.L.
Issued Date
2015-08
Type
Article
DOI
10.1039/c5sc01305d
URI
https://scholar.gist.ac.kr/handle/local/14620
Publisher
ROYAL SOC CHEMISTRY
Citation
Chemical Science, v.6, no.8, pp.4550 - 4560
ISSN
2041-6520
Appears in Collections:
Department of Environment and Energy Engineering > 1. Journal Articles
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