Novel GNE missense variants impair de novo sialylation and cause defective angiogenesis in the developing brain in mice

Author:

Huang Lulu12ORCID,Kondo Yuji3,Cao Lijuan1,Han Jingjing1,Li Tianyi1,Zuo Bin1ORCID,Yang Fei1,Li Yun1ORCID,Ma Zhenni1,Bai Xia124,Jiang Miao1,Ruan Changgeng124,Xia Lijun125ORCID

Affiliation:

1. 1Jiangsu Institute of Hematology, National Clinical Research Center for Hematologic Diseases, NHC Key Laboratory of Thrombosis and Hemostasis, The First Affiliated Hospital of Soochow University, Suzhou, China

2. 2Collaborative Innovation Center of Hematology, Soochow University, Suzhou, China

3. 3Institute for Glyco-core Research, Nagoya University, Nagoya, Japan

4. 4State Key Laboratory of Radiation Medicine and Protection, Soochow University, Suzhou, China

5. 5Cardiovascular Biology Research Program, Oklahoma Medical Research Foundation, Oklahoma City, OK

Abstract

Abstract Glucosamine (UDP-N-acetyl)-2-epimerase and N-acetylmannosamine (ManNAc) kinase (GNE) is a cytosolic enzyme in de novo sialic acid biosynthesis. Congenital deficiency of GNE causes an autosomal recessive genetic disorder associated with hereditary inclusion body myopathy and macrothrombocytopenia. Here, we report a pediatric patient with severe macrothrombocytopenia carrying 2 novel GNE missense variants, c.1781G>A (p.Cys594Tyr, hereafter, C594Y) and c.2204C>G (p.Pro735Arg, hereafter, P735R). To investigate the biological significance of these variants in vivo, we generated a mouse model carrying the P735R mutation. Mice with homozygous P735R mutations exhibited cerebral hemorrhages as early as embryonic day 11 (E11), which subsequently progressed to large hemorrhages in the brain and spinal cord, and died between E11.5 and E12.5. Defective angiogenesis such as distended vascular sprouts were found in neural tissues and embryonic megakaryocytes were abnormally accumulated in the perineural vascular plexus in mutant mouse embryos. Furthermore, our in vitro experiments indicated that both C594Y and P735R are loss-of-function mutations with respect to de novo sialic acid biosynthesis. Overall, this study reveals a novel role for GNE-mediated de novo sialic acid biosynthesis in mouse embryonic angiogenesis.

Publisher

American Society of Hematology

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