Literature DB >> 17581652

Agonistic and antagonistic properties of a Rhizobium sin-1 lipid A modified by an ether-linked lipid.

Mahalakshmi Vasan1, Margreet A Wolfert, Geert-Jan Boons.   

Abstract

LPS from Rhizobium sin-1 (R. sin-1) can antagonize the production of tumor necrosis factor alpha (TNF-alpha) by E. coli LPS in human monocytic cells. Therefore these compounds provide interesting leads for the development of therapeutics for the prevention or treatment of septic shock. Detailed structure activity relationship studies have, however, been hampered by the propensity of these compounds to undergo beta-elimination to give biological inactive enone derivatives. To address this problem, we have chemically synthesized in a convergent manner a R. sin-1 lipid A derivative in which the beta-hydroxy ester at C-3 of the proximal sugar unit has been replaced by an ether linked moiety. As expected, this derivative exhibited a much-improved chemical stability. Furthermore, its ability to antagonize TNF-alpha production induced by enteric LPS was only slightly smaller than that of the parent ester modified derivative demonstrating that the ether-linked lipids affect biological activities only marginally. Furthermore, it has been shown for the first time that R. sin-1 LPS and the ether modified lipid A are also able to antagonize the production of the cytokine interferon-inducible protein 10, which arises from the TRIF-dependent pathway. The latter pathway was somewhat more potently inhibited than the MyD88-dependent pathway. Furthermore, it was observed that the natural LPS possesses much greater activity than the synthetic and isolated lipid As, which indicates that di-KDO moiety is important for optimal biological activity. It has also been found that isolated R. sin-1 LPS and lipid A agonize a mouse macrophage cell line to induce the production of TNF-alpha and interferon beta in a Toll-like receptor 4-dependent manner demonstrating species specific properties.

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Year:  2007        PMID: 17581652      PMCID: PMC2830616          DOI: 10.1039/b704427e

Source DB:  PubMed          Journal:  Org Biomol Chem        ISSN: 1477-0520            Impact factor:   3.876


  34 in total

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9.  Characterization of a novel lipid-A from Rhizobium species Sin-1. A unique lipid-A structure that is devoid of phosphate and has a glycosyl backbone consisting of glucosamine and 2-aminogluconic acid.

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  9 in total

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2.  Characterization of TRIF selectivity in the AGP class of lipid A mimetics: role of secondary lipid chains.

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3.  Differential induction of innate immune responses by synthetic lipid a derivatives.

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Review 4.  Modulating LPS signal transduction at the LPS receptor complex with synthetic Lipid A analogues.

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5.  Innate immune responses of synthetic lipid A derivatives of Neisseria meningitidis.

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Review 9.  Aminosugar-based immunomodulator lipid A: synthetic approaches.

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  9 in total

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