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Kleefstra 综合征中 EHMT1 错义突变的生化验证。

Biochemical validation of EHMT1 missense mutations in Kleefstra syndrome.

机构信息

Cellular Memory Laboratory, RIKEN, 2-1 Hirosawa, Wako, Saitama, 351-0198, Japan.

出版信息

J Hum Genet. 2018 May;63(5):555-562. doi: 10.1038/s10038-018-0413-3. Epub 2018 Feb 19.

Abstract

Kleefstra syndrome (KS) (9q34 deletion syndrome) is a rare autosomal dominant disorder characterized by intellectual disability, frequently coupled with a spectrum of complex physical and clinical manifestations. As the euchromatic histone methyltransferase-1 gene (EHMT1, GLP, or KMT1D) within the 9q34 region is deleted or mutated in most of the individuals with KS, its absence or defect in one allele is speculated to cause the major symptoms of the syndrome. Most of the EHMT1 mutations are frameshift or nonsense mutations, but two individuals with KS were reported to possess EHMT1 missense mutations. These two mutations have been predicted to cause a defective enzymatic function, but precise biochemical validation was not conducted. Therefore, we validated these two mutations by performing in vitro histone methyltransferase (HMT) activity assay and found that C1073Y and R1197W mutations severely affected the HMT activity. Additionally, the same amino-acid substitutions in mouse GLP induced impairment of in vivo GLP function. Furthermore, these two EHMT1 mutants showed defective heterocomplex formation with G9a (partner HMT) which is essential for their in vivo HMT function. Conclusively, our biochemical characterization clearly demonstrates that the previously reported two missense mutations of EHMT1 deteriorate HMT activity and GLP function, which presumably cause KS.

摘要

克莱夫斯特拉综合征(KS)(9q34 缺失综合征)是一种罕见的常染色体显性疾病,其特征为智力障碍,常伴有一系列复杂的身体和临床症状。由于 9q34 区域的 euchromatic histone methyltransferase-1 基因(EHMT1、GLP 或 KMT1D)在大多数 KS 患者中缺失或突变,因此推测其一个等位基因的缺失或缺陷导致了该综合征的主要症状。大多数 EHMT1 突变是移码或无义突变,但有两名 KS 患者被报道存在 EHMT1 错义突变。这两种突变被预测会导致酶功能缺陷,但并未进行精确的生化验证。因此,我们通过进行体外组蛋白甲基转移酶(HMT)活性测定来验证这两种突变,发现 C1073Y 和 R1197W 突变严重影响了 HMT 活性。此外,在小鼠 GLP 中相同的氨基酸取代也会导致体内 GLP 功能受损。此外,这两种 EHMT1 突变体与 G9a(伴侣 HMT)的异源复合物形成缺陷,这对于其体内 HMT 功能至关重要。总之,我们的生化特征清楚地表明,先前报道的 EHMT1 的两种错义突变会降低 HMT 活性和 GLP 功能,这可能导致 KS。

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