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Updated: Apr 25, 2026

Analysis of the Lipid Composition of Mycobacteria by Thin Layer Chromatography
Published on: April 16, 2021
Biosynthesis and translocation of unsulfated acyltrehaloses in Mycobacterium tuberculosis
Juan Manuel Belardinelli1, Gérald Larrouy-Maumus2, Victoria Jones1
1From the Mycobacteria Research Laboratories, Department of Microbiology, Immunology and Pathology, Colorado State University, Fort Collins, Colorado 80523-1682 and.
Abstract:
A number of species-specific polymethyl-branched fatty acid-containing trehalose esters populate the outer membrane of Mycobacterium tuberculosis. Among them, 2,3-diacyltrehaloses (DAT) and penta-acyltrehaloses (PAT) not only play a structural role in the cell envelope but also contribute to the ability of M. tuberculosis to multiply and persist in the infected host, promoting the intracellular survival of the bacterium and modulating host immune responses. The nature of the machinery, topology, and sequential order of the reactions leading to the biosynthesis, assembly, and export of these complex glycolipids to the cell surface are the object of the present study. Our genetic and biochemical evidence corroborates a model wherein the biosynthesis and translocation of DAT and PAT to the periplasmic space are coupled and topologically split across the plasma membrane. The formation of DAT occurs on the cytosolic face of the plasma membrane through the action of PapA3, FadD21, and Pks3/4; that of PAT occurs on the periplasmic face via transesterification reactions between DAT substrates catalyzed by the acyltransferase Chp2 (Rv1184c). The integral membrane transporter MmpL10 is essential for DAT to reach the cell surface, and its presence in the membrane is required for Chp2 to be active. Disruption of mmpL10 or chp2 leads to an important build-up of DAT inside the cells and to the formation of a novel form of unsulfated acyltrehalose esterified with polymethyl-branched fatty acids normally found in sulfolipids that is translocated to the cell surface.
Insights
Mycobacterium tuberculosis utilizes complex glycolipids like 2,3-diacyltrehaloses (DAT) and penta-acyltrehaloses (PAT) for survival. This study reveals their cell surface assembly pathway, involving membrane-spanning transporters and enzymes.
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Mycobacterium tuberculosis outer membrane contains polymethyl-branched fatty acid-containing trehalose esters.
- 2,3-diacyltrehaloses (DAT) and penta-acyltrehaloses (PAT) are crucial for M. tuberculosis virulence, intracellular survival, and immune modulation.
Purpose of the Study:
- To elucidate the biosynthesis, assembly, and export machinery of DAT and PAT in M. tuberculosis.
- To understand the topological organization and reaction sequence for complex glycolipid cell surface localization.
Main Methods:
- Genetic analysis to identify key enzymes and transporters.
- Biochemical assays to confirm enzymatic activities and substrate interactions.
- Investigating the role of MmpL10 and Chp2 in glycolipid transport and modification.
Main Results:
- A model is proposed where DAT and PAT biosynthesis and translocation are coupled and split across the plasma membrane.
- DAT is synthesized on the cytosolic face (PapA3, FadD21, Pks3/4), and PAT on the periplasmic face (Chp2).
- MmpL10 is essential for DAT export and Chp2 activity; its disruption causes DAT accumulation and novel unsulfated acyltrehalose formation.
Conclusions:
- The study details a novel pathway for complex glycolipid cell surface localization in M. tuberculosis.
- MmpL10 and Chp2 play critical, coordinated roles in DAT/PAT biogenesis and export.
- Disruption of this pathway leads to altered glycolipid profiles, impacting bacterial cell envelope structure and potentially virulence.
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