Rationally Designed Nucleoside Antibiotics That Inhibit Siderophore Biosynthesis of Mycobacterium tuberculosis
摘要:
A rationally designed nucleoside inhibitor of Mycobacterium tuberculosis growth (MIC99 = 0.19 mu M) that disrupts siderophore biosynthesis was identified. The activity is due to inhibition of the adenylate-forming enzyme MbtA which is involved in biosynthesis of the mycobactins.
Rationally Designed Nucleoside Antibiotics That Inhibit Siderophore Biosynthesis of Mycobacterium tuberculosis
摘要:
A rationally designed nucleoside inhibitor of Mycobacterium tuberculosis growth (MIC99 = 0.19 mu M) that disrupts siderophore biosynthesis was identified. The activity is due to inhibition of the adenylate-forming enzyme MbtA which is involved in biosynthesis of the mycobactins.
The invention provides compounds of formula (I) and salts thereof: R
1
-L-R
2
—B wherein R
1
, L, R
2
, and B have any of the values defined herein, as well as compositions comprising such compounds, and therapeutic methods comprising the administration of such compounds or salts. The compounds block siderophore production in bacteria and are useful as antibacterial agents.
QUATERNARY AMINE CONTAINING ISOBARIC TAG FOR QUANTITATIVE GLYCAN PROFILING
申请人:University of Maryland, College Park
公开号:US20160252518A1
公开(公告)日:2016-09-01
The disclosure provides quaternary amine containing isobaric tag reagents useful in the analysis of biomolecules and methods of making and using the quaternary amine containing isobaric tag reagents. The quaternary amine containing isobaric tag reagents are particularly useful for glycan analysis, especially quantitative glycan profiling such as glycan quantitation by tandem mass spectrometry.
Rationally Designed Nucleoside Antibiotics That Inhibit Siderophore Biosynthesis of <i>Mycobacterium </i><i>t</i><i>uberculosis</i>
作者:Ravindranadh V. Somu、Helena Boshoff、Chunhua Qiao、Eric M. Bennett、Clifton E. Barry、Courtney C. Aldrich
DOI:10.1021/jm051060o
日期:2006.1.1
A rationally designed nucleoside inhibitor of Mycobacterium tuberculosis growth (MIC99 = 0.19 mu M) that disrupts siderophore biosynthesis was identified. The activity is due to inhibition of the adenylate-forming enzyme MbtA which is involved in biosynthesis of the mycobactins.