Literature DB >> 17286298

Cardiovascular abnormalities in Folr1 knockout mice and folate rescue.

Huiping Zhu1, Bogdan J Wlodarczyk, Melissa Scott, Wei Yu, Michelle Merriweather, Janee Gelineau-van Waes, Robert J Schwartz, Richard H Finnell.   

Abstract

BACKGROUND: Periconceptional folic acid supplementation is widely believed to aid in the prevention of neural tube defects (NTDs), orofacial clefts, and congenital heart defects. Folate-binding proteins or receptors serve to bind folic acid and 5-methyltetrahydrofolate, representing one of the two major mechanisms of cellular folate uptake.
METHODS: We herein describe abnormal cardiovascular development in mouse fetuses lacking a functional folate-binding protein gene (Folr1). We also performed a dose-response study with folinic acid and determined the impact of maternal folate supplementation on Folr1 nullizygous cardiac development.
RESULTS: Partially rescued preterm Folr1(-/-) (formerly referred to as Folbp1) fetuses were found to have outflow tract defects, aortic arch artery abnormalities, and isolated dextracardia. Maternal supplementation with folinic acid rescued the embryonic lethality and the observed cardiovascular phenotypes in a dose-dependant manner. Maternal genotype exhibited significant impact on the rescue efficiency, suggesting an important role of in utero folate status in embryonic development. Abnormal heart looping was observed during early development of Folr1(-/-) embryos partially rescued by maternal folinic acid supplementation. Migration pattern of cardiac neural crest cells, genetic signals in pharyngeal arches, and the secondary heart field were also found to be affected in the mutant embryos.
CONCLUSIONS: Our observations suggest that the beneficial effect of folic acid for congenital heart defects might be mediated via its impact on neural crest cells and by gene regulation of signaling pathways involved in the development of the pharyngeal arches and the secondary heart field.

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Year:  2007        PMID: 17286298     DOI: 10.1002/bdra.20347

Source DB:  PubMed          Journal:  Birth Defects Res A Clin Mol Teratol        ISSN: 1542-0752


  16 in total

1.  Folic acid in early pregnancy: a public health success story.

Authors:  Sarah G Obican; Richard H Finnell; James L Mills; Gary M Shaw; Anthony R Scialli
Journal:  FASEB J       Date:  2010-07-14       Impact factor: 5.191

2.  The effect of cigarette smoke exposure on developing folate binding protein-2 null mice.

Authors:  Kristin H Horn; Emily R Esposito; Robert M Greene; M Michele Pisano
Journal:  Reprod Toxicol       Date:  2008-10-15       Impact factor: 3.143

3.  Lack of association between folate receptor autoantibodies and conotruncal congenital heart defects.

Authors:  Laura B Lewandowski; Darshak Sanghavi
Journal:  Pediatr Cardiol       Date:  2012-08-23       Impact factor: 1.655

Review 4.  Exploiting the folate receptor α in oncology.

Authors:  Mariana Scaranti; Elena Cojocaru; Susana Banerjee; Udai Banerji
Journal:  Nat Rev Clin Oncol       Date:  2020-03-09       Impact factor: 66.675

5.  Folate rescues lithium-, homocysteine- and Wnt3A-induced vertebrate cardiac anomalies.

Authors:  Mingda Han; Maria C Serrano; Rosana Lastra-Vicente; Pilar Brinez; Ganesh Acharya; James C Huhta; Ren Chen; Kersti K Linask
Journal:  Dis Model Mech       Date:  2009-07-28       Impact factor: 5.758

Review 6.  Hard to swallow: Developmental biological insights into pediatric dysphagia.

Authors:  Anthony-Samuel LaMantia; Sally A Moody; Thomas M Maynard; Beverly A Karpinski; Irene E Zohn; David Mendelowitz; Norman H Lee; Anastas Popratiloff
Journal:  Dev Biol       Date:  2015-11-07       Impact factor: 3.582

7.  Gestational folate deficiency alters embryonic gene expression and cell function.

Authors:  R S Seelan; P Mukhopadhyay; J Philipose; R M Greene; M M Pisano
Journal:  Differentiation       Date:  2020-11-27       Impact factor: 3.880

8.  Epigenetic alterations in folate transport genes in placental tissue from fetuses with neural tube defects and in leukocytes from subjects with hyperhomocysteinemia.

Authors:  Sanja A Farkas; Anna K Böttiger; Helena S Isaksson; Richard H Finnell; Aiguo Ren; Torbjörn K Nilsson
Journal:  Epigenetics       Date:  2013-02-15       Impact factor: 4.528

9.  Xenopus reduced folate carrier regulates neural crest development epigenetically.

Authors:  Jiejing Li; Yu Shi; Jian Sun; Yanfeng Zhang; Bingyu Mao
Journal:  PLoS One       Date:  2011-11-09       Impact factor: 3.240

10.  Site-specific glycoproteomic analysis revealing increased core-fucosylation on FOLR1 enhances folate uptake capacity of HCC cells to promote EMT.

Authors:  Li Jia; Jun Li; Pengfei Li; Didi Liu; Jing Li; Jiechen Shen; Bojing Zhu; Chen Ma; Ting Zhao; Rongxia Lan; Liuyi Dang; Wang Li; Shisheng Sun
Journal:  Theranostics       Date:  2021-05-08       Impact factor: 11.556

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