Mutation in Wdr45 leads to early motor dysfunction and widespread aberrant axon terminals in a beta-propeller protein associated neurodegeneration (BPAN) patient-inspired mouse model.

IF 3.2 3区 医学 Q2 NEUROSCIENCES
Frontiers in Neuroscience Pub Date : 2025-02-28 eCollection Date: 2025-01-01 DOI:10.3389/fnins.2025.1545004
Brandon L Meyerink, Krishna S Karia, Mitchell J Rechtzigel, Prithvi R Patthi, Ariana C Edwards, Jessica M Howard, Elizabeth R Aaseng, Shamiq Aftab, Jill M Weimer, Louis-Jan Pilaz
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引用次数: 0

Abstract

Beta-propeller Protein Associated Neurodegeneration (BPAN) is a devastating neurodevelopmental and neurodegenerative disease linked to variants in WDR45. Currently, there is no cure or disease altering treatment for this disease. This is, in part, due to a lack of insight into early phenotypes of BPAN progression and WDR45's role in establishing and maintaining neurological function. Here we generated and characterized a mouse model bearing a c52C > T BPAN patient variant in Wdr45. We show this mutation ablates WDR45 protein expression and alters autophagy in the brain. Behavioral analysis of these mice revealed characteristic signs of BPAN including cognitive impairment, hyperactivity, and motor decline. We show these behaviors coincide with widespread glial activation and early development of axonal spheroids in multiple neuron subclasses throughout the brain. Several lines of evidence suggest these spheroids arise from axon terminals. Transcriptomic analysis uncovered multiple disrupted pathways in the cortex including genes associated with synapses, neurites, endosomes, endoplasmic reticulum, and ferroptosis. This is supported by accumulation of the iron regulating transferrin receptor 1 (TFRC) and the endoplasmic reticulum resident calreticulin (CALR) in the cortex as these animals age. CALR forms spheroid structures similar to the axonal spheroids seen in these animals. Taken together, our data suggest that WDR45 is necessary for healthy brain function and maintenance of axon terminals. This model opens the door to therapeutics targeting BPAN and further exploration of the role of WDR45 in neuronal function.

在β -螺旋桨蛋白相关神经变性(BPAN)患者启发的小鼠模型中,Wdr45突变导致早期运动功能障碍和广泛的轴突末端异常。
β -螺旋桨蛋白相关神经变性(BPAN)是一种与WDR45变异相关的破坏性神经发育和神经退行性疾病。目前,这种疾病没有治愈或改变疾病的治疗方法。这部分是由于缺乏对BPAN进展的早期表型和WDR45在建立和维持神经功能中的作用的了解。在这里,我们建立了一个携带c52C > T BPAN患者Wdr45变异的小鼠模型并对其进行了表征。我们发现这种突变降低了WDR45蛋白的表达并改变了大脑中的自噬。这些小鼠的行为分析揭示了BPAN的特征症状,包括认知障碍、多动和运动能力下降。我们发现这些行为与整个大脑中多个神经元亚类中广泛的神经胶质激活和轴突球体的早期发育相吻合。一些证据表明,这些球体是由轴突终末产生的。转录组学分析揭示了皮层中多个被破坏的通路,包括与突触、神经突、核内体、内质网和铁垂相关的基因。随着这些动物年龄的增长,铁调节转铁蛋白受体1 (TFRC)和内质网常驻钙网蛋白(CALR)在皮质中的积累支持了这一点。CALR形成类似于在这些动物中看到的轴突球体的球状结构。综上所述,我们的数据表明WDR45对于健康的脑功能和轴突末端的维持是必要的。该模型为靶向BPAN的治疗和进一步探索WDR45在神经元功能中的作用打开了大门。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Frontiers in Neuroscience
Frontiers in Neuroscience NEUROSCIENCES-
CiteScore
6.20
自引率
4.70%
发文量
2070
审稿时长
14 weeks
期刊介绍: Neural Technology is devoted to the convergence between neurobiology and quantum-, nano- and micro-sciences. In our vision, this interdisciplinary approach should go beyond the technological development of sophisticated methods and should contribute in generating a genuine change in our discipline.
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