Please use this identifier to cite or link to this item: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/6206
Title: Leveraging an Enzyme/ Artificial Substrate System to Enhance Cellular Persulfides and Mitigate Neuroinflammation
Authors: BORA, PRERONA
MANNA, SUMAN
NAIR, MRUTYUNJAY
SATHE, RUPALI R. M.
SINGH, SHUBHAM
ADURY, VENKATA SAI SREYAS
Gupta, Kavya
MUKHERJEE, ARNAB
Saini, Deepak K.
KAMAT, SIDDHESH S.
HAZRA, AMRITA B.
CHAKRAPANI, HARINATH
Dept. of Biology
Dept. of Chemistry
Keywords: Chemistry
Biology
2021-AUG-WEEK4
TOC-AUG-2021
2021
Issue Date: Oct-2021
Publisher: Royal Society of Chemistry
Citation: Chemical Science, 12(29), 12939-12949.
Abstract: Persulfides and polysulfides, collectively known as the sulfane sulfur pool along with hydrogen sulfide (H2S), play a central role in cellular physiology and disease. Exogenously enhancing these species in cells is an emerging therapeutic paradigm for mitigating oxidative stress and inflammation that are associated with several diseases. In this study, we present a unique approach of using the cell’s own enzyme machinery coupled with an array of artificial substrates to enhance the cellular sulfane sulfur pool. We report the synthesis and validation of artificial/ unnatural substrates specific for 3-mercaptopyruvate sulfurtransferase (3-MST), an important enzyme that contributes to sulfur trafficking in cells. We demonstrate that these artificial substrates generate persulfides in vitro as well as mediate sulfur transfer to low molecular weight thiols and to cysteine-containing proteins. A nearly 100-fold difference in the rates of H2S production for the various substrates is observed supporting the tunability of persulfide generation by the 3-MST enzyme/ artificial substrate system. Next, we show that the substrate 1a permeates cells and is selectively turned over by 3-MST to generate 3-MST-persulfide, which protects against reactive oxygen species-induced lethality. Lastly, in a mouse model, 1a is found to significantly mitigate neuroinflammation in the brain tissue. Together, the approach that we have developed allows for the on-demand generation of persulfides in vitro and in vivo using a range of shelf-stable, artificial substrates of 3-MST, while opening up possibilities of harnessing these molecules for therapeutic applications.
URI: http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/6206
https://doi.org/10.1039/D1SC03828A
ISSN: 2041-6520
2041-6539
Appears in Collections:JOURNAL ARTICLES

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