Biosynthesis of mycobacterial phosphatidylinositol mannosides

Yasu S Morita1, John H Patterson, Helen Billman-Jacobe

  • 1Department of Biochemistry and Molecular Biology, University of Melbourne, Royal Parade, Parkville, Victoria 3010, Australia.

The Biochemical Journal
|November 25, 2003
PubMed

Insights

Mycobacterial phosphatidylinositol mannosides (PIMs) are crucial for cell viability. This study reveals new insights into PIM biosynthesis pathways in M. smegmatis, revising the overall pathway for these essential glycolipids.

Area of Science:

  • Microbiology
  • Glycobiology
  • Biochemistry

Background:

  • Phosphatidylinositol mannosides (PIMs) are essential glycolipids in mycobacteria, vital for cell wall and membrane integrity.
  • PIMs serve as precursors for other complex cell wall components like lipomannan and lipoarabinomannan.

Purpose of the Study:

  • To elucidate the specific steps and intermediates involved in the biosynthesis of major phosphatidylinositol mannoside (PIM) species.
  • To investigate the regulation and donor substrates utilized in PIM synthesis using a cell-free system.

Main Methods:

  • Utilized a cell-free system from M. smegmatis.
  • Employed GDP-[3H]Man for continuous and pulse-chase labeling.
  • Analyzed PIM intermediates using chemical/enzymic treatments and octyl-Sepharose chromatography to determine glycan and acylation states.

Main Results:

  • Identified at least two distinct pathways for acyl-PIM2 synthesis, differing in acylation timing.
  • Demonstrated that early PIM intermediates can be di-acylated.
  • Confirmed polyprenol phosphate-Man as the mannose donor for polar PIM formation, which is amphomycin-sensitive.
  • Proposed a branch point for polar PIM and lipoarabinomannan synthesis involving acylated PIM4 modification.
  • Observed GDP inhibition of early PIM synthesis and increased polyprenol phosphate-Man turnover.

Conclusions:

  • Revised the pathway for mycobacterial PIM biosynthesis based on experimental findings.
  • Highlighted the complex and regulated nature of PIM synthesis, involving multiple pathways and donor substrates.
  • Provided a foundation for understanding the assembly of essential mycobacterial cell envelope components.

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