TY - JOUR
T1 - Mutations in genes encoding the glycine cleavage system predispose to neural tube defects in mice and humans
AU - Narisawa, Ayumi
AU - Komatsuzaki, Shoko
AU - Kikuchi, Atsuo
AU - Niihori, Tetsuya
AU - Aoki, Yoko
AU - Fujiwara, Kazuko
AU - Tanemura, Mitsuyo
AU - Hata, Akira
AU - Suzuki, Yoichi
AU - Relton, Caroline L.
AU - Grinham, James
AU - Leung, Kit Yi
AU - Partridge, Darren
AU - Robinson, Alexis
AU - Stone, Victoria
AU - Gustavsson, Peter
AU - Stanier, Philip
AU - Copp, Andrew J.
AU - Greene, Nicholas D.E.
AU - Tominaga, Teiji
AU - Matsubara, Yoichi
AU - Kure, Shigeo
PY - 2012/4
Y1 - 2012/4
N2 - Neural tube defects (NTDs), including spina bifida and anencephaly, are common birth defects of the central nervous system. The complex multigenic causation of human NTDs, together with the large number of possible candidate genes, has hampered efforts to delineate their molecular basis. Function of folate one-carbon metabolism (FOCM) has been implicated as a key determinant of susceptibility to NTDs. The glycine cleavage system (GCS) is a multi-enzyme component of mitochondrial folate metabolism, and GCS-encoding genes therefore represent candidates for involvement in NTDs. To investigate this possibility, we sequenced the coding regions of the GCS genes: AMT, GCSH and GLDC in NTD patients and controls. Two unique non-synonymous changes were identified in the AMT gene that were absent from controls. We also identified a splice acceptor site mutation and five different non-synonymous variants in GLDC, which were found to significantly impair enzymatic activity and represent putative causative mutations. In order to functionally test the requirement for GCS activity in neural tube closure, we generated mice that lack GCS activity, through mutation of AMT. Homozygous Amt-/- mice developed NTDs at high frequency. Although these NTDs were not preventable by supplemental folic acid, there was a partial rescue by methionine. Overall, our findings suggest that loss-of-function mutations in GCS genes predispose to NTDs in mice and humans. These data highlight the importance of adequate function of mitochondrial folate metabolism in neural tube closure.
AB - Neural tube defects (NTDs), including spina bifida and anencephaly, are common birth defects of the central nervous system. The complex multigenic causation of human NTDs, together with the large number of possible candidate genes, has hampered efforts to delineate their molecular basis. Function of folate one-carbon metabolism (FOCM) has been implicated as a key determinant of susceptibility to NTDs. The glycine cleavage system (GCS) is a multi-enzyme component of mitochondrial folate metabolism, and GCS-encoding genes therefore represent candidates for involvement in NTDs. To investigate this possibility, we sequenced the coding regions of the GCS genes: AMT, GCSH and GLDC in NTD patients and controls. Two unique non-synonymous changes were identified in the AMT gene that were absent from controls. We also identified a splice acceptor site mutation and five different non-synonymous variants in GLDC, which were found to significantly impair enzymatic activity and represent putative causative mutations. In order to functionally test the requirement for GCS activity in neural tube closure, we generated mice that lack GCS activity, through mutation of AMT. Homozygous Amt-/- mice developed NTDs at high frequency. Although these NTDs were not preventable by supplemental folic acid, there was a partial rescue by methionine. Overall, our findings suggest that loss-of-function mutations in GCS genes predispose to NTDs in mice and humans. These data highlight the importance of adequate function of mitochondrial folate metabolism in neural tube closure.
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U2 - 10.1093/hmg/ddr585
DO - 10.1093/hmg/ddr585
M3 - Article
C2 - 22171071
AN - SCOPUS:84858189393
SN - 0964-6906
VL - 21
SP - 1496
EP - 1503
JO - Human Molecular Genetics
JF - Human Molecular Genetics
IS - 7
M1 - ddr585
ER -