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Relationship: 2695
Title
Reduced complex sphingolipids leads to Affected folate transporter
Upstream event
Downstream event
Key Event Relationship Overview
AOPs Referencing Relationship
| AOP Name | Adjacency | Weight of Evidence | Quantitative Understanding | Point of Contact | Author Status | OECD Status |
|---|---|---|---|---|---|---|
| Ceramide synthase inhibition leading to neural tube defects | adjacent | Moderate | Lola Bajard (send email) | Open for citation & comment |
Taxonomic Applicability
Sex Applicability
Life Stage Applicability
Key Event Relationship Description
Evidence Collection Strategy
Evidence Supporting this KER
Folate transporter Folbp1 is a GPI-anchored protein, and sphingolipids were shown to be involved in endocytic trafficking of GPI-anchored proteins (Chatterjee et al., 2001). Marasas and colleagues proposed that a depletion of sphingolipids (due to the inhibition of ceramide synthases) could alter membrane microdomains enriched in cholesterol and sphingolipids, also called lipid rafts, thereby affecting the folate transporter Folbp1 trafficking and folate amounts available in maternal blood as well as in embryonic tissues (Gelineau-Van Waes et al., 2005; Marasas et al., 2004).
Biological Plausibility
Empirical Evidence
Uncertainties and Inconsistencies
Known modulating factors
Quantitative Understanding of the Linkage
Response-response Relationship
Time-scale
Known Feedforward/Feedback loops influencing this KER
Domain of Applicability
References
Chatterjee, S., Smith, E.R., Hanada, K., Stevens, V.L., Mayor, S., 2001. GPI anchoring leads to sphingolipid-dependent retention of endocytosed proteins in the recycling endosomal compartment. EMBO J. 20, 1583–1592. https://doi.org/10.1093/emboj/20.7.1583
Gelineau-Van Waes, J., Starr, L., Maddox, J., Aleman, F., Voss, K.A., Wilberding, J., Riley, R.T., 2005. Maternal fumonisin exposure and risk for neural tube defects: Mechanisms in an in vivo mouse model. Birth Defects Res. Part A - Clin. Mol. Teratol. 73, 487–497. https://doi.org/10.1002/bdra.20148
Marasas, W.F.O., Riley, R.T., Hendricks, K.A., Stevens, V.L., Sadler, T.W., Gelineau-van Waes, J., Missmer, S.A., Cabrera, J., Torres, O., Gelderblom, W.C.A., Allegood, J., Martínez, C., Maddox, J., Miller, J.D., Starr, L., Sullards, M.C., Roman, A.V., Voss, K.A., Wang, E., Merrill, A.H., 2004. Fumonisins Disrupt Sphingolipid Metabolism, Folate Transport, and Neural Tube Development in Embryo Culture and In Vivo: A Potential Risk Factor for Human Neural Tube Defects among Populations Consuming Fumonisin-Contaminated Maize. J. Nutr. 134, 711–716. https://doi.org/10.1093/jn/134.4.711