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The surface glycopeptidolipids of mycobacteria: structures and biological properties
1Department of Microbiology, Colorado State University, Fort Collins 80523, USA. delphi@lamar.colostate.edu
Abstract:
One of the most important opportunistic pathogens associated with acquired immunodeficiency syndrome (AIDS) is the M. avium complex. M. avium infections are found in up to 70% of individuals in advanced stages of AIDS. It is apparent that M. avium can replicate in host macrophages and persist for long periods. This group of mycobacteria are distinguished by the presence of unique, highly antigenic, surface-located lipids known as the glycopeptidolipids (GPLs). The GPLs are the chemical basis of the 31 distinct serovars of the M. avium complex, and have also been identified in some other species. The M. avium lipids are immunosuppressive and can induce a variety of cytokines that affect general host responses. Despite extensive chemical characterization of the structures of these GPLs, much work is needed to elucidate the molecular mechanism involved in this complex glycosylation pathway and its genetic basis. The challenges for the future lie in explaining the roles of these copious products in the intracellular life and infectivity of mycobacteria. The intention of our review is to offer a concise account of the structures of the M. avium lipids, their putative roles in the host responses, bacterial physiology and pathogenesis, particularly in immunocompromised patients such as those infected with human immunodeficiency virus (HIV). Advances in chemical synthesis of the various haptenic oligosaccharides are also given to demonstrate how these have helped to define the immunogenic determinants. We believe that future research should involve the creation of conditional mutants defective in these lipids for both functional and biosynthesis studies which will complement biological assays using chemically defined or modified neoglycoconjugates.
Insights
The M. avium complex, a pathogen in acquired immunodeficiency syndrome (AIDS), utilizes unique surface lipids called glycopeptidolipids (GPLs). Understanding GPLs is crucial for explaining M. avium pathogenesis in immunocompromised patients.
Area of Science:
- Microbiology
- Immunology
- Biochemistry
Background:
- Mycobacterium avium complex (MAC) is a significant opportunistic pathogen in acquired immunodeficiency syndrome (AIDS) patients.
- MAC infections occur in up to 70% of individuals with advanced AIDS, replicating within host macrophages.
- MAC is characterized by unique, highly antigenic surface lipids, glycopeptidolipids (GPLs), which define its serovars and are immunosuppressive.
Purpose of the Study:
- To review the structures of M. avium lipids (GPLs).
- To discuss the putative roles of GPLs in host responses, bacterial physiology, and pathogenesis, especially in HIV-infected individuals.
- To highlight advances in chemical synthesis of oligosaccharides for defining immunogenic determinants.
Main Methods:
- Review of existing literature on M. avium lipid structures and functions.
- Analysis of chemical synthesis methods for oligosaccharides.
- Discussion of future research directions, including conditional mutants and neoglycoconjugate assays.
Main Results:
- GPLs are the basis for M. avium serovars and possess immunosuppressive properties, inducing various cytokines.
- Extensive chemical characterization of GPL structures exists, but molecular mechanisms of glycosylation and genetic basis require further elucidation.
- Chemical synthesis of oligosaccharides has aided in defining immunogenic determinants.
Conclusions:
- Further research is needed to understand the molecular mechanisms and genetic basis of the complex GPL glycosylation pathway.
- Elucidating the roles of GPLs in intracellular survival and infectivity of M. avium is critical.
- Future studies should focus on creating conditional mutants and utilizing chemically defined neoglycoconjugates to complement biological assays.
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