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Structure-function relationships of 12,13-epoxytrichothecene mycotoxins in cell culture: comparison to whole animal
Abstract:
Nineteen 12,13-epoxytrichothecene mycotoxins were tested for their relative capabilities to inhibit protein synthesis in Vero cells and rat spleen lymphocytes. Although the lymphocytes were generally more sensitive to the mycotoxins, good correlation existed between the relative potencies of the various trichothecenes in the two cell systems. The most potent mycotoxins (T-2, verrucarin A and roridin A) have acetyl side groups on, or a hydrocarbon chain between, carbons 4 and 15 of the basic ring structure. Loss of side groups from either of these positions or an isovaleryl group at carbon 8 resulted in reduced protein synthesis inhibition (T-2 to HT-2, neosolaniol or diacetoxyscirpenol). Any combination of loss from all three positions (T-2 triol, T-2 tetraol, 15-monoacetyl DAS, scirpentriol, fusarenon X and deoxynivalenol) further weakens their effect. Reduction of the hydroxyl groups to hydroxides, forming verrucarol and deoxyverrucarol, reduced their effectiveness by over a thousand-fold compared to the most potent mycotoxins. Addition of side groups resulted in reduced effectiveness only when an acetyl group was added to the carbon 3 position of T-2 (acetyl T-2) and deoxynivalenol (3-acetyl deoxynivalenol) or on substitution of an epoxide across the 9,10 carbons of diacetoxyscirpenol (beta-epoxide DAS). Effects of combining these and other mycotoxins were additive and showed no synergism or competition for binding to the active site. When in vitro effects of the mycotoxins were compared with results from whole animal lethality tests, several of the trichothecenes were weak inhibitors of protein synthesis in vitro but had in vivo toxicities similar to that of T-2 toxin. Thus, the in vitro cell response of a given trichothecene is not always an accurate predictor of toxicity in whole animals.
Insights
The potency of 19 epoxytrichothecene mycotoxins in inhibiting protein synthesis varies with their chemical structure. Structural modifications significantly alter their inhibitory effects, and in vitro cell responses do not always predict whole animal toxicity.
Area of Science:
- Biochemistry
- Toxicology
- Cell Biology
Background:
- Mycotoxins, particularly 12,13-epoxytrichothecenes, are toxic secondary metabolites with diverse biological activities.
- Protein synthesis inhibition is a key mechanism of toxicity for many trichothecene mycotoxins.
- Understanding structure-activity relationships is crucial for predicting mycotoxin toxicity.
Purpose of the Study:
- To investigate the relative protein synthesis inhibitory capabilities of nineteen 12,13-epoxytrichothecene mycotoxins.
- To correlate the chemical structures of these mycotoxins with their inhibitory potency.
- To compare in vitro cell-based findings with in vivo toxicity data.
Main Methods:
- Protein synthesis inhibition assays were performed using Vero cells and rat spleen lymphocytes.
- Nineteen different 12,13-epoxytrichothecene mycotoxins were tested.
- Results were compared with existing whole animal lethality data.
Main Results:
- A good correlation was observed between the relative potencies in Vero cells and rat spleen lymphocytes.
- Mycotoxins with acetyl side groups at carbons 4 and 15, or a hydrocarbon chain between these carbons, were most potent (e.g., T-2, verrucarin A, roridin A).
- Loss or modification of side groups, or reduction of hydroxyl groups, generally decreased protein synthesis inhibition, with some exceptions.
Conclusions:
- The chemical structure of 12,13-epoxytrichothecenes significantly dictates their ability to inhibit protein synthesis.
- In vitro protein synthesis inhibition assays provide a useful, though not perfect, indicator of mycotoxin potency.
- In vitro cell response does not always accurately predict the in vivo toxicity of trichothecene mycotoxins.

