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Updated: Feb 19, 2026

Rapid One-step Enzymatic Synthesis and All-aqueous Purification of Trehalose Analogues
Published on: February 17, 2017
Exquisite specificity of Pks13 defines the essentiality of trehalose in mycobacteria
Yushu Chen1, Justin Dao Tian Lim1, Shu-Sin Chng1,2,3
1Department of Chemistry, National University of Singapore, Singapore 117543, Singapore.
Abstract:
Mycolic acids (MAs) are the major component of the mycobacterial outer membrane, a key contributor to the intrinsic resistance of mycobacteria to external insults including multiple antibiotics. After being synthesized in the cytoplasm and before reaching the outer membrane, MAs are transported across the inner membrane in the form of an acylated sugar, generally believed to be trehalose monomycolates (TMMs). Whether trehalose is the only mycolate carrier during transport is under debate, and why this highly abundant disaccharide is essential for mycobacterial growth is unclear. To address these questions, we leveraged a trehalose auxotrophic Mycobacterium smegmatis strain to investigate the biosynthetic steps affording TMMs. We show that in addition to TMMs, mature MAs are also not produced in the absence of intracellular trehalose. This is likely due to a product inhibition mechanism where unreduced MA precursors accumulate on Pks13, the protein catalyzing the ligation of mycolic acids and the sugar head group. We establish that the unreduced mycolates could only be released by trehalose, revealing exquisite Pks13 specificity, and subsequently reduced by CmrA in vitro. Furthermore, only trehalose and its analogs can reactivate MA biosynthesis in cells. Finally, by replacing trehalose with a 6-deoxy analog in cells, we demonstrate that the cord factor trehalose dimycolate is dispensable for M. smegmatis growth in vitro. Our work gives a clear depiction of how TMMs are formed and provides a compelling reason for the essentiality of trehalose, shedding light on the development of future antimycobacterial strategies.
Insights
Trehalose is essential for mycolic acid (MA) transport and mycobacterial growth, acting as a release factor for MA precursors. Its analogs can restore MA biosynthesis, suggesting new antimycobacterial strategies.
Area of Science:
- Microbiology
- Biochemistry
Background:
- Mycolic acids (MAs) are crucial for mycobacterial outer membrane integrity and antibiotic resistance.
- MAs are transported across the inner membrane, typically as trehalose monomycolates (TMMs), but trehalose's essentiality and role are debated.
Purpose of the Study:
- Investigate the biosynthetic steps of TMMs using a trehalose auxotrophic Mycobacterium smegmatis strain.
- Clarify the essential role of trehalose in MA transport and mycobacterial growth.
Main Methods:
- Utilized a trehalose auxotrophic Mycobacterium smegmatis strain.
- Performed in vitro biochemical assays with purified proteins (Pks13, CmrA).
- Tested trehalose analogs for their ability to restore MA biosynthesis.
Main Results:
- Absence of intracellular trehalose halts mature MA production, likely due to Pks13 product inhibition by unreduced MA precursors.
- Trehalose specifically releases these precursors from Pks13 for subsequent reduction by CmrA.
- Only trehalose and its analogs can reactivate MA biosynthesis in cells.
- Trehalose dimycolate is dispensable for M. smegmatis growth.
Conclusions:
- Trehalose is essential for releasing mycolic acid precursors from Pks13, explaining its necessity for MA biosynthesis and mycobacterial growth.
- This provides a mechanistic understanding of MA transport and trehalose's role.
- Findings offer insights for developing novel antimycobacterial therapies targeting this pathway.
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