TY - JOUR
T1 - Targeting Reactive Carbonyls for Identifying Natural Products and Their Biosynthetic Origins
AU - Maxson, Tucker
AU - Tietz, Jonathan I.
AU - Hudson, Graham A.
AU - Guo, Xiao Rui
AU - Tai, Hua Chia
AU - Mitchell, Douglas A.
N1 - This research was supported in part by the NIH Director's New Innovator Award Program (DP2 OD008463, to D.A.M.) and the David and Lucile Packard Fellowship for Science and Engineering (to D.A.M.). T.M. was supported in part by fellowships from the Department of Chemistry at the University of Illinois at Urbana-Champaign and the NIH Chemical Biology Interface Training Program (T32 GM070421).
PY - 2016/11/23
Y1 - 2016/11/23
N2 - Natural products (NPs) serve important roles as drug candidates and as tools for chemical biology. However, traditional NP discovery, largely based on bioassay-guided approaches, is biased toward abundant compounds and rediscovery rates are high. Orthogonal methods to facilitate discovery of new NPs are thus needed, and herein we describe an isotope tag-based expansion of reactivity-based NP screening to address these shortcomings. Reactivity-based screening is a directed discovery approach in which a specific reactive handle on the NP is targeted by a chemoselective probe to enable its detection by mass spectrometry. In this study, we have developed an aminooxy-containing probe to guide the discovery of aldehyde- and ketone-containing NPs. To facilitate the detection of labeling events, the probe was dibrominated, imparting a unique isotopic signature to distinguish labeled metabolites from spectral noise. As a proof of concept, the probe was then utilized to screen a collection of bacterial extracts, leading to the identification of a new analogue of antipain, deimino-antipain. The bacterial producer of deimino-antipain was sequenced and the responsible biosynthetic gene cluster was identified by bioinformatic analysis and heterologous expression. These data reveal the previously undetermined genetic basis for a well-known family of aldehyde-containing, peptidic protease inhibitors, including antipain, chymostatin, leupeptin, elastatinal, and microbial alkaline protease inhibitor, which have been widely used for over 40 years.
AB - Natural products (NPs) serve important roles as drug candidates and as tools for chemical biology. However, traditional NP discovery, largely based on bioassay-guided approaches, is biased toward abundant compounds and rediscovery rates are high. Orthogonal methods to facilitate discovery of new NPs are thus needed, and herein we describe an isotope tag-based expansion of reactivity-based NP screening to address these shortcomings. Reactivity-based screening is a directed discovery approach in which a specific reactive handle on the NP is targeted by a chemoselective probe to enable its detection by mass spectrometry. In this study, we have developed an aminooxy-containing probe to guide the discovery of aldehyde- and ketone-containing NPs. To facilitate the detection of labeling events, the probe was dibrominated, imparting a unique isotopic signature to distinguish labeled metabolites from spectral noise. As a proof of concept, the probe was then utilized to screen a collection of bacterial extracts, leading to the identification of a new analogue of antipain, deimino-antipain. The bacterial producer of deimino-antipain was sequenced and the responsible biosynthetic gene cluster was identified by bioinformatic analysis and heterologous expression. These data reveal the previously undetermined genetic basis for a well-known family of aldehyde-containing, peptidic protease inhibitors, including antipain, chymostatin, leupeptin, elastatinal, and microbial alkaline protease inhibitor, which have been widely used for over 40 years.
UR - https://www.scopus.com/pages/publications/84999219563
UR - https://www.scopus.com/pages/publications/84999219563#tab=citedBy
U2 - 10.1021/jacs.6b06848
DO - 10.1021/jacs.6b06848
M3 - Article
C2 - 27797509
AN - SCOPUS:84999219563
SN - 0002-7863
VL - 138
SP - 15157
EP - 15166
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 46
ER -