FKBP8 variants are risk factors for spina bifida

Author:

Tian Tian12,Cao Xuanye2,Kim Sung-Eun3,Lin Ying Linda2,Steele John W2,Cabrera Robert M2,Karki Menuka2,Yang Wei4,Marini Nicholas J5,Hoffman Ethan N2,Han Xiao2,Hu Cindy3,Wang Linlin1ORCID,Wlodarczyk Bogdan J2,Shaw Gary M4,Ren Aiguo1ORCID,Finnell Richard H26,Lei Yunping2ORCID

Affiliation:

1. Institute of Reproductive and Child Health, National Health Commission Key Laboratory of Reproductive Health, Peking University, Beijing 100191, China

2. Center for Precision Environmental Health, Department of Molecular and Cellular Biology, Baylor College of Medicine, Houston, TX 77031, USA

3. Department of Pediatrics, The University of Texas at Austin Dell Medical School, Austin, TX 78723, USA

4. Department of Pediatrics, Stanford University School of Medicine, Stanford, CA 94305, USA

5. Department of Molecular and Cellular Biology, California Institute for Quantitative Biosciences, University of California, Berkeley, CA 94720, USA

6. Departments of Molecular and Human Genetics and Medicine, Baylor College of Medicine, Houston, TX 77031, USA

Abstract

Abstract Neural tube defects (NTDs) are a group of severe congenital malformations caused by a failure of neural tube closure during early embryonic development. Although extensively investigated, the genetic etiology of NTDs remains poorly understood. FKBP8 is critical for proper mammalian neural tube closure. Fkbp8−/− mouse embryos showed posterior NTDs consistent with a diagnosis of spina bifida (SB). To date, no publication has reported any association between FKBP8 and human NTDs. Using Sanger sequencing on genomic DNA samples from 472 SB and 565 control samples, we identified five rare (MAF ≤ 0.001) deleterious variants in SB patients, while no rare deleterious variant was identified in the controls (P = 0.0191). p.Glu140* affected FKBP8 localization to the mitochondria and created a truncated form of the FKBP8 protein, thus impairing its interaction with BCL2 and ultimately leading to an increase in cellular apoptosis. p.Ser3Leu, p.Lys315Asn and p.Ala292Ser variants decreased FKBP8 protein level. p.Lys315Asn further increased the cellular apoptosis. RNA sequencing on anterior and posterior tissues isolated from Fkbp8−/− and wildtype mice at E9.5 and E10.5 showed that Fkbp8−/− embryos have an abnormal expression profile within tissues harvested at posterior sites, thus leading to a posterior NTD. Moreover, we found that Fkbp8 knockout mouse embryos have abnormal expression of Wnt3a and Nkx2.9 during the early stage of neural tube development, perhaps also contributing to caudal specific NTDs. These findings provide evidence that functional variants of FKBP8 are risk factors for SB, which may involve a novel mechanism by which Fkbp8 mutations specifically cause SB in mice.

Funder

NIH

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology,General Medicine

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