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.

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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