Understanding PACS2 syndrome's pathomechanism by studying E209K and E211K mutations.

IF 2.7 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Mammalian Genome Pub Date : 2024-12-30 DOI:10.1007/s00335-024-10098-5
Arkadiusz Zbikowski, Tomasz Kowalczyk, Petr Kasparek, Jan Prohazka, Radislav Sedlacek, Michał Ciborowski, Dominik Cysewski, Kacper Łukasiewicz
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Abstract

Phosphofurin acidic cluster sorting protein 2 (PACS2) plays a vital role in maintaining cellular homeostasis by regulating protein trafficking between cellular membranes. This function impacts crucial processes like apoptosis, mitochondria-endoplasmic reticulum interaction, and subsequently Ca2+ flux, lipid biosynthesis, and autophagy. Missense mutations, particularly E209K and E211K, are linked to developmental and epileptic encephalopathy-66 (DEE66), known as PACS2 syndrome. Individuals with this syndrome exhibit neurodevelopmental delay, seizures, facial dysmorphism, hypotonia, and delayed motor skills.Understanding the impact of these missense mutations on molecular processes is crucial. Studies suggest that E209K mutation decreases phosphorylation, increases the survival time of protein, and modifies protein-protein interaction, consequently leading to disruption of calcium flux and lower resistance to apoptosis induction. Unfortunately, to date, only a limited number of research groups have investigated the effects of mutations in the PACS2 gene. Current research on PACS2 syndrome is hampered by the lack of suitable models. While in vitro models using transfected cell lines offer insights, they cannot fully capture the disease's complexity.To address this, utilizing cells from individuals with PACS2 syndrome, specifically induced pluripotent stem cells (iPSCs), holds promise for understanding phenotypic diversity and developing personalized therapies. However, iPSC models may not fully capture tissue-specific effects of the E209K/E211K mutation. In vivo studies using animal models, particularly mice, could overcome these limitations.This review summarizes current knowledge about PACS2 structure and functions, explores the cellular consequences of E209K and E211K mutations, and highlights the potential of iPSC and mouse models in advancing our understanding of PACS2 syndrome.

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通过研究E209K和E211K突变了解PACS2综合征的发病机制。
磷酸氢呋喃酸性簇分选蛋白2 (PACS2)通过调节细胞膜间的蛋白质转运,在维持细胞稳态中起着至关重要的作用。这种功能影响细胞凋亡、线粒体-内质网相互作用以及随后的Ca2+通量、脂质生物合成和自噬等关键过程。错义突变,特别是E209K和E211K,与发育性和癫痫性脑病-66 (DEE66),即PACS2综合征有关。患有该综合征的个体表现为神经发育迟缓、癫痫发作、面部畸形、张力低下和运动技能延迟。了解这些错义突变对分子过程的影响是至关重要的。研究表明,E209K突变降低了磷酸化,增加了蛋白的存活时间,改变了蛋白-蛋白相互作用,从而导致钙通量被破坏,对诱导凋亡的抵抗力降低。不幸的是,到目前为止,只有少数研究小组研究了PACS2基因突变的影响。目前对PACS2综合征的研究由于缺乏合适的模型而受到阻碍。虽然使用转染细胞系的体外模型提供了一些见解,但它们不能完全捕捉这种疾病的复杂性。为了解决这个问题,利用来自PACS2综合征个体的细胞,特异性诱导多能干细胞(iPSCs),有望了解表型多样性并开发个性化治疗。然而,iPSC模型可能无法完全捕获E209K/E211K突变的组织特异性效应。使用动物模型,特别是小鼠进行体内研究,可以克服这些限制。本文综述了目前关于PACS2结构和功能的知识,探讨了E209K和E211K突变的细胞后果,并强调了iPSC和小鼠模型在促进我们对PACS2综合征的理解方面的潜力。
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来源期刊
Mammalian Genome
Mammalian Genome 生物-生化与分子生物学
CiteScore
4.00
自引率
0.00%
发文量
33
审稿时长
6-12 weeks
期刊介绍: Mammalian Genome focuses on the experimental, theoretical and technical aspects of genetics, genomics, epigenetics and systems biology in mouse, human and other mammalian species, with an emphasis on the relationship between genotype and phenotype, elucidation of biological and disease pathways as well as experimental aspects of interventions, therapeutics, and precision medicine. The journal aims to publish high quality original papers that present novel findings in all areas of mammalian genetic research as well as review articles on areas of topical interest. The journal will also feature commentaries and editorials to inform readers of breakthrough discoveries as well as issues of research standards, policies and ethics.
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