Magrinelli Francesca, Tesson Christelle, Angelova Plamena R, Salazar-Villacorta Ainara, Rodriguez Jose A, Scardamaglia Annarita, Chung Brian Hon-Yin, Jaconelli Matthew, Vona Barbara, Esteras Noemi, Kwong Anna Ka-Yee, Courtin Thomas, Maroofian Reza, Alavi Shahryar, Nirujogi Raja, Severino Mariasavina, Lewis Patrick A, Efthymiou Stephanie, O'Callaghan Benjamin, Buchert Rebecca, Sofan Linda, Lis Pawel, Pinon Chloé, Breedveld Guido J, Chui Martin Man-Chun, Murphy David, Pitz Vanessa, Makarious Mary B, Cassar Marlene, Hassan Bassem A, Iftikhar Sana, Rocca Clarissa, Bauer Peter, Tinazzi Michele, Svetel Marina, Samanci Bedia, Hanağası Haşmet A, Bilgiç Basar, Obeso José A, Kurtis Monica M, Cogan Guillaume, Başak Ayşe Nazlı, Kiziltan Güneş, Gül Tuğçe, Yalçın Gül, Elibol Bülent, Barišić Nina, Ng Earny Wei-Sen, Fan Sze-Shing, Hershkovitz Tova, Weiss Karin, Raza Alvi Javeria, Sultan Tipu, Azmi Alkhawaja Issam, Froukh Tawfiq, E Alrukban Hadeel Abdollah, Fauth Christine, Schatz Ulrich A, Zöggeler Thomas, Zech Michael, Stals Karen, Varghese Vinod, Gandhi Sonia, Blauwendraat Cornelis, Hardy John A, Lesage Suzanne, Bonifati Vincenzo, Haack Tobias B, Bertoli-Avella Aida M, Steinfeld Robert, Alessi Dario R, Steller Hermann, Brice Alexis, Abramov Andrey Y, Bhatia Kailash P, Houlden Henry
Department of Clinical and Movement Neurosciences, UCL Queen Square Institute of Neurology, University College London, London, United Kingdom.
Institut du Cerveau et de la Moelle épinière, ICM, Inserm, CNRS, Sorbonne Université, Paris, France.
medRxiv. 2024 Jun 20:2024.06.19.24308302. doi: 10.1101/2024.06.19.24308302.
Dissecting biological pathways highlighted by Mendelian gene discovery has provided critical insights into the pathogenesis of Parkinson's disease (PD) and neurodegeneration. This approach ultimately catalyzes the identification of potential biomarkers and therapeutic targets. Here, we identify as a new gene implicated in PD and childhood neurodegeneration. We find that biallelic missense and loss-of-function variants co-segregate with phenotypes from early-onset PD and parkinsonism to perinatal lethality with neurological manifestations across 15 unrelated pedigrees with 22 affected subjects, showing clear genotype-phenotype correlation. encodes the proteasome regulator PSMF1/PI31, a highly conserved, ubiquitously expressed partner of the 20S proteasome and neurodegeneration-associated F-box-O 7 and valosin-containing proteins. We demonstrate that variants impair mitochondrial membrane potential, dynamics and mitophagy in patient-derived fibroblasts. Additionally, we develop models of knockdown and conditional knockout mouse exhibiting age-dependent motor impairment, with diffuse gliosis in mice. These findings unequivocally link defective PSMF1 to early-onset PD and neurodegeneration and suggest mitochondrial dysfunction as a mechanistic contributor.
剖析孟德尔基因发现所突出的生物学途径,为深入了解帕金森病(PD)的发病机制和神经退行性变提供了关键见解。这种方法最终促进了潜在生物标志物和治疗靶点的识别。在此,我们鉴定出一个与PD和儿童神经退行性变相关的新基因。我们发现,双等位基因错义突变和功能丧失变异与15个无关家系中22名受影响个体从早发性PD和帕金森综合征到伴有神经学表现的围产期致死性的表型共分离,显示出明确的基因型-表型相关性。该基因编码蛋白酶体调节因子PSMF1/PI31,它是20S蛋白酶体以及与神经退行性变相关的F-box-O 7和含缬酪肽蛋白的一个高度保守、广泛表达的伴侣。我们证明,该基因变异会损害患者来源成纤维细胞的线粒体膜电位、动力学和线粒体自噬。此外,我们构建了该基因敲低和条件性敲除小鼠模型,这些小鼠表现出年龄依赖性运动障碍,并伴有弥漫性胶质细胞增生。这些发现明确地将有缺陷的PSMF1与早发性PD和神经退行性变联系起来,并提示线粒体功能障碍是一个机制性因素。
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