Related Experiment Videos
Mice lacking the folic acid-binding protein Folbp1 are defective in early embryonic development
J A Piedrahita1, B Oetama, G D Bennett
1Department of Veterinary Anatomy, Texas A&M University, College Station, Texas 77843-4458, USA.
Abstract:
Periconceptional folic acid supplementation reduces the occurrence of several human congenital malformations, including craniofacial, heart and neural tube defects. Although the underlying mechanism is unknown, there may be a maternal-to-fetal folate-transport defect or an inherent fetal biochemical disorder that is neutralized by supplementation. Previous experiments have identified a folate-binding protein (Folbp1) that functions as a membrane receptor to mediate the high-affinity internalization and delivery of folate to the cytoplasm of the cell. In vitro, this receptor facilitates the accumulation of cellular folate a thousand-fold relative to the media, suggesting that it may be essential in cytoplasmic folate delivery in vivo. The importance of an adequate intracellular folate pool for normal embryogenesis has long been recognized in humans and experimental animals. To determine whether Folbp1 is involved in maternal-to-fetal folate transport, we inactivated Folbp1 in mice. We also produced mice lacking Folbp2, another member of the folate receptor family that is GPI anchored but binds folate poorly. Folbp2-/- embryos developed normally, but Folbp1-/- embryos had severe morphogenetic abnormalities and died in utero by embryonic day (E) 10. Supplementing pregnant Folbp1+/- dams with folinic acid reversed this phenotype in nullizygous pups. Our results suggest that Folbp1 has a critical role in folate homeostasis during development, and that functional defects in the human homologue (FOLR1) of Folbp1 may contribute to similar defects in humans.
Insights
Maternal folic acid (vitamin B9) is crucial for preventing birth defects. A key protein, Folate Receptor 1 (FOLR1), facilitates folate transport, and its absence in mice causes severe developmental abnormalities.
Area of Science:
- Developmental Biology
- Biochemistry
- Genetics
Background:
- Periconceptional folic acid supplementation significantly reduces congenital malformations like neural tube defects.
- The precise mechanism for folate's protective effect, whether maternal transport or fetal metabolism, remains unclear.
- Folate-binding protein 1 (Folbp1) acts as a high-affinity membrane receptor for folate uptake.
Purpose of the Study:
- To investigate the role of Folbp1 in maternal-to-fetal folate transport during embryogenesis.
- To determine if Folbp1 is essential for normal embryonic development and folate homeostasis.
Main Methods:
- Generation of knockout mice lacking Folbp1 (Folbp1-/-) and Folbp2 (Folbp2-/-).
- Phenotypic analysis of embryos from Folbp1+/- dams.
- Rescue experiments involving folinic acid supplementation in pregnant dams.
Main Results:
- Folbp1-/- embryos exhibited severe in utero morphogenetic abnormalities and embryonic lethality by day 10.
- Folbp2-/- embryos developed normally, indicating a specific role for Folbp1.
- Supplementation with folinic acid rescued the developmental defects in Folbp1 nullizygous pups.
Conclusions:
- Folbp1 is critical for maintaining folate homeostasis essential for normal embryonic development.
- Defects in the human homologue of Folbp1 (FOLR1) may underlie similar congenital malformations in humans.
- This study highlights Folbp1's crucial role in maternal-fetal folate transfer.