Key result
Transmembrane TNF in mice preserves anti-Listerial defenses and suppresses autoimmune demyelination without causing arthritis.
Selective targeting of soluble TNF while preserving transmembrane TNF may offer advantages over complete TNF blockade in treating chronic inflammation and autoimmunity.
Selective soluble TNF blockade may reduce infection and demyelination risks; leaves open human translation from this murine model.
Using targeted mutagenesis in mice, we have blocked shedding of endogenous murine TNF by deleting its cleavage site. Mutant mice produce physiologically regulated levels of transmembrane TNF (tmTNF), which suffice to support thymocyte proliferation but cannot substitute for the hepatotoxic activities of wild-type TNF following LPS/D-galactosamine challenge in vivo and are not sufficient to support secondary lymphoid organ structure and function. Notably, however, tmTNF is capable of exerting anti-Listerial host defenses while remaining inadequate to mediate arthritogenic functions, as tested in the tristetraprolin-deficient model of TNF-dependent arthritis. Most interestingly, in the EAE model of autoimmune demyelination, tmTNF suppresses disease onset and progression and retains the autoimmune suppressive properties of wild-type TNF. Together, these results indicate that tmTNF preserves a subset of the beneficial activities of TNF while lacking detrimental effects. These data support the hypothesis that selective targeting of soluble TNF may offer several advantages over complete blockade of TNF in the treatment of chronic inflammation and autoimmunity.
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Alexopoulou et al. (2006) studied Intracellular bacterial infections, chronic inflammation and autoimmunity. Targeted mutagenesis to block shedding of endogenous murine TNF (tmTNF) vs. Wild-type TNF was evaluated on Response to LPS/D-galactosamine challenge, Listerial infection, TNF-dependent arthritis, and EAE model of autoimmune demyelination. Transmembrane TNF in mutant mice exerted anti-Listerial host defenses, lacked arthritogenic functions, and suppressed disease onset and progression in an autoimmune demyelination model.
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