HMGCS1 variants cause rigid spine syndrome amenable to mevalonic acid treatment in an animal model

IF 10.6 1区 医学 Q1 CLINICAL NEUROLOGY Brain Pub Date : 2024-11-12 DOI:10.1093/brain/awae371
Lein N H Dofash, Lee B Miles, Yoshihiko Saito, Eloy Rivas, Vanessa Calcinotto, Sara Oveissi, Rita J Serrano, Rachel Templin, Georg Ramm, Alison Rodger, Joel Haywood, Evan Ingley, Joshua S Clayton, Rhonda L Taylor, Chiara L Folland, David Groth, Daniella H Hock, David A Stroud, Svetlana Gorokhova, Sandra Donkervoort, Carsten G Bönnemann, Malika Sud, Grace E VanNoy, Brian E Mangilog, Lynn Pais, Anne O'Donnell-Luria, Marcos Madruga-Garrido, Marcello Scala, Chiara Fiorillo, Serena Baratto, Monica Traverso, Edoardo Malfatti, Claudio Bruno, Federico Zara, Carmen Paradas, Katsuhisa Ogata, Ichizo Nishino, Nigel G Laing, Robert J Bryson-Richardson, Macarena Cabrera-Serrano, Gianina Ravenscroft
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Abstract

Rigid spine syndrome is a rare childhood-onset myopathy characterised by slowly progressive or non-progressive scoliosis, neck and spine contractures, hypotonia, and respiratory insufficiency. Biallelic variants in SELENON account for most cases of rigid spine syndrome, however, the underlying genetic cause in some patients remains unexplained. We used exome and genome sequencing to investigate the genetic basis of rigid spine syndrome in patients without a genetic diagnosis. In five patients from four unrelated families, we identified biallelic variants in HMGCS1 (3-hydroxy-3-methylglutaryl-coenzyme A synthase). These included six missense variants and one frameshift variant distributed throughout HMGCS1. All patients presented with spinal rigidity primarily affecting the cervical and dorsolumbar regions, scoliosis, and respiratory insufficiency. Creatine kinase levels were variably elevated. The clinical course worsened with intercurrent disease or certain drugs in some patients; one patient died from respiratory failure following infection. Muscle biopsies revealed irregularities in oxidative enzyme staining with occasional internal nuclei and rimmed vacuoles. HMGCS1 encodes a critical enzyme of the mevalonate pathway and has not yet been associated with disease. Notably, biallelic hypomorphic variants in downstream enzymes including HMGCR and GGPS1 are associated with muscular dystrophy resembling our cohort’s presentation. Analyses of recombinant human HMGCS1 protein and four variants (p.S447P, p.Q29L, p.M70T, p.C268S) showed that all mutants maintained their dimerization state. Three of the four mutants exhibited reduced thermal stability, and two mutants showed subtle changes in enzymatic activity compared to the wildtype. Hmgcs1 mutant zebrafish displayed severe early defects, including immobility at 2 days and death by day 3 post-fertilisation and were rescued by HMGCS1 mRNA. We demonstrate that the four variants tested (S447P, Q29L M70T, and C268S) have reduced function compared to wildtype HMGCS1 in zebrafish rescue assays. Additionally, we demonstrate the potential for mevalonic acid supplementation to reduce phenotypic severity in mutant zebrafish. Overall, our analyses suggest that these missense variants in HMGCS1 act through a hypomorphic mechanism. Here, we report an additional component of the mevalonate pathway associated with disease and suggest biallelic variants in HMGCS1 should be considered in patients presenting with an unresolved rigid spine myopathy phenotype. Additionally, we highlight mevalonoic acid supplementation as a potential treatment for patients with HMGCS1-related disease.
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在动物模型中,HMGCS1 变体导致的脊柱僵硬综合征可接受甲羟戊酸治疗
脊柱僵直综合征是一种罕见的儿童期肌病,以缓慢进行性或非进行性脊柱侧弯、颈部和脊柱挛缩、肌张力低下和呼吸功能不全为特征。大多数脊柱僵直综合征病例都是由 SELENON 的双倍变异引起的,但一些患者的潜在遗传病因仍无法解释。我们利用外显子组和基因组测序技术,对未经基因诊断的患者进行了硬脊柱综合征遗传基础的研究。在来自四个无血缘关系家族的五名患者中,我们发现了 HMGCS1(3-羟基-3-甲基戊二酰辅酶 A 合成酶)的双偶变体。这些变异包括分布在 HMGCS1 中的六个错义变异和一个帧移位变异。所有患者均表现为脊柱僵硬,主要影响颈椎和背腰部、脊柱侧弯和呼吸功能不全。肌酸激酶水平有不同程度的升高。一些患者的临床病程在并发症或服用某些药物后恶化;一名患者在感染后死于呼吸衰竭。肌肉活检显示氧化酶染色不规则,偶见内核和边缘空泡。HMGCS1 编码甲羟戊酸途径中的一个关键酶,但尚未与疾病相关。值得注意的是,包括 HMGCR 和 GGPS1 在内的下游酶的双倍型低常变异与肌肉萎缩症有关,与我们队列中的表现相似。对重组人 HMGCS1 蛋白和四个变体(p.S447P、p.Q29L、p.M70T、p.C268S)的分析表明,所有突变体都保持了二聚化状态。与野生型相比,四个突变体中有三个热稳定性降低,两个突变体的酶活性发生了细微变化。Hmgcs1 突变体斑马鱼表现出严重的早期缺陷,包括受精后 2 天不能活动和受精后第 3 天死亡,而 HMGCS1 mRNA 能挽救这些缺陷。我们证明,在斑马鱼拯救实验中,与野生型 HMGCS1 相比,所测试的四个变体(S447P、Q29L M70T 和 C268S)功能减弱。此外,我们还证明了补充甲羟戊酸可减轻突变斑马鱼表型的严重性。总之,我们的分析表明,HMGCS1 的这些错义变体是通过低态机制起作用的。在此,我们报告了与疾病相关的甲羟戊酸通路的另一个组成部分,并建议在患者出现尚未解决的僵硬脊柱肌病表型时,应考虑 HMGCS1 的双唇变体。此外,我们还强调甲羟戊酸补充剂是治疗 HMGCS1 相关疾病患者的一种潜在方法。
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来源期刊
Brain
Brain 医学-临床神经学
CiteScore
20.30
自引率
4.10%
发文量
458
审稿时长
3-6 weeks
期刊介绍: Brain, a journal focused on clinical neurology and translational neuroscience, has been publishing landmark papers since 1878. The journal aims to expand its scope by including studies that shed light on disease mechanisms and conducting innovative clinical trials for brain disorders. With a wide range of topics covered, the Editorial Board represents the international readership and diverse coverage of the journal. Accepted articles are promptly posted online, typically within a few weeks of acceptance. As of 2022, Brain holds an impressive impact factor of 14.5, according to the Journal Citation Reports.
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