Bone morphogenetic protein signaling pathway– Ethanol interactions disrupt palate formation independent of gata3

IF 3.3 4区 医学 Q2 REPRODUCTIVE BIOLOGY Reproductive toxicology Pub Date : 2024-11-23 DOI:10.1016/j.reprotox.2024.108754
C. Ben Lovely
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引用次数: 0

Abstract

Fetal Alcohol Spectrum Disorders (FASD) describes a wide array of neurological defects and craniofacial malformations, associated with ethanol teratogenicity. While there is growing evidence for a genetic component to FASD, little is known of the genes underlying these ethanol-induced defects. Along with timing and dosage, genetic predispositions may help explain the variability within FASD. From a screen for gene-ethanol interactions, we found that mutants for Bmp signaling components are ethanol-sensitive leading to defects in the zebrafish palate. Loss of Bmp signaling results in reductions in gata3 expression in the maxillary domain of the neural crest in the 1st pharyngeal arch, leading to palate defects while upregulation of human GATA3 rescues these defects. Here, we show that ethanol-treated Bmp mutants exhibit misshaped and/or broken trabeculae. Surprisingly, up regulation of GATA3 does not rescue ethanol-induced palate defects and gata3 expression was not altered in ethanol-treated Bmp mutants or dorsomorphin-treated larvae. Timing of ethanol sensitivity shows that Bmp mutants are ethanol sensitive from 10 to 18 hours post-fertilization (hpf), prior to Bmp’s regulation of gata3 in palate formation. This is consistent with our previous work with dorsomorphin-dependent knock down of Bmp signaling from 10 to 18 hpf disrupting endoderm formation and subsequent jaw development. Overall, this suggests that ethanol disrupts Bmp-dependent palate development independent of and earlier than the role of gata3 in palate formation by disrupting epithelial development. Ultimately, these data demonstrate that zebrafish is a useful model to identify and characterize gene-ethanol interactions and this work will directly inform our understanding of FASD.
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骨形态发生蛋白信号通路与乙醇的相互作用会破坏腭的形成,而与 gata3 无关。
胎儿酒精紊乱症(FASD)是指与乙醇致畸有关的一系列神经系统缺陷和颅面畸形。虽然越来越多的证据表明 FASD 与遗传因素有关,但人们对这些由乙醇引起的缺陷的潜在基因却知之甚少。除了发病时间和剂量,遗传倾向可能有助于解释 FASD 的差异性。通过基因与乙醇相互作用的筛选,我们发现 Bmp 信号转导元件的突变体对乙醇敏感,从而导致斑马鱼腭部缺陷。Bmp信号的缺失会导致咽第一弓神经嵴上颌域的gata3表达减少,从而导致腭部缺陷,而人类GATA3的上调则能挽救这些缺陷。在这里,我们发现经乙醇处理的Bmp突变体表现出小梁错形和/或断裂。令人惊讶的是,GATA3的上调并不能挽救乙醇诱导的腭部缺陷,乙醇处理的Bmp突变体或多索吗啡处理的幼体中gata3的表达没有发生改变。乙醇敏感性的时间显示,Bmp突变体从受精后10-18小时(hpf)开始对乙醇敏感,此时Bmp对gata3在腭形成过程中的调控作用还没有开始。这与我们之前的研究结果一致,即在受精后 10-18 hpf,依赖多索吗啡(dorsomorphin)的 Bmp 信号传导会破坏内胚层的形成和随后的颌骨发育。总之,这表明乙醇通过破坏上皮细胞的发育,破坏了 Bmp 依赖性腭部发育,独立于 gata3 在腭部形成中的作用,并早于 gata3 在腭部形成中的作用。最终,这些数据证明斑马鱼是鉴定和描述基因与乙醇相互作用的有用模型,这项工作将直接帮助我们了解 FASD。
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来源期刊
Reproductive toxicology
Reproductive toxicology 生物-毒理学
CiteScore
6.50
自引率
3.00%
发文量
131
审稿时长
45 days
期刊介绍: Drawing from a large number of disciplines, Reproductive Toxicology publishes timely, original research on the influence of chemical and physical agents on reproduction. Written by and for obstetricians, pediatricians, embryologists, teratologists, geneticists, toxicologists, andrologists, and others interested in detecting potential reproductive hazards, the journal is a forum for communication among researchers and practitioners. Articles focus on the application of in vitro, animal and clinical research to the practice of clinical medicine. All aspects of reproduction are within the scope of Reproductive Toxicology, including the formation and maturation of male and female gametes, sexual function, the events surrounding the fusion of gametes and the development of the fertilized ovum, nourishment and transport of the conceptus within the genital tract, implantation, embryogenesis, intrauterine growth, placentation and placental function, parturition, lactation and neonatal survival. Adverse reproductive effects in males will be considered as significant as adverse effects occurring in females. To provide a balanced presentation of approaches, equal emphasis will be given to clinical and animal or in vitro work. Typical end points that will be studied by contributors include infertility, sexual dysfunction, spontaneous abortion, malformations, abnormal histogenesis, stillbirth, intrauterine growth retardation, prematurity, behavioral abnormalities, and perinatal mortality.
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