Dysregulated Pathways During Pregnancy Predict Drug Candidates in Neurodevelopmental Disorders.

IF 5.9 2区 医学 Q1 NEUROSCIENCES
Neuroscience bulletin Pub Date : 2025-06-01 Epub Date: 2025-02-06 DOI:10.1007/s12264-025-01360-0
Huamin Yin, Zhendong Wang, Wenhang Wang, Jiaxin Liu, Yirui Xue, Li Liu, Jingling Shen, Lian Duan
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引用次数: 0

Abstract

Maternal health during pregnancy has a direct impact on the risk and severity of neurodevelopmental disorders (NDDs) in the offspring, especially in the case of drug exposure. However, little progress has been made to assess the risk of drug exposure during pregnancy due to ethical constraints and drug use factors. We collected and manually curated sub-pathways and pathways (sub-/pathways) and drug information to propose an analytical framework for predicting drug candidates. This framework linked sub-/pathway activity and drug response scores derived from gene transcription data and was applied to human fetal brain development and six NDDs. Further, specific and pleiotropic sub-/pathways/drugs were identified using entropy, and sex bias was analyzed in conjunction with logistic regression and random forest models. We identified 19 disorder-associated and 256 regionally pleiotropic and specific candidate drugs that targeted risk sub-/pathways in NDDs, showing temporal or spatial changes across fetal development. Moreover, 5443 differential drug-sub-/pathways exhibited sex-biased differences after filling in the gender labels. A user-friendly NDDP visualization website ( https://ndd-lab.shinyapps.io/NDDP ) was developed to allow researchers and clinicians to access and retrieve data easily. Our framework overcame data gaps and identified numerous pleiotropic and specific candidates across six disorders and fetal developmental trajectories. This could significantly contribute to drug discovery during pregnancy and can be applied to a wide range of traits.

妊娠期间通路失调预测神经发育障碍的候选药物。
怀孕期间的孕产妇健康直接影响到后代患神经发育障碍(ndd)的风险和严重程度,特别是在接触药物的情况下。然而,由于伦理约束和药物使用因素,在评估怀孕期间药物暴露风险方面进展甚微。我们收集并人工整理了子通路和通路(sub-/pathways)以及药物信息,提出了预测候选药物的分析框架。该框架将亚/通路活性和药物反应评分联系起来,这些评分来自基因转录数据,并应用于人类胎儿大脑发育和6种ndd。此外,利用熵识别特异性和多效性亚/途径/药物,并结合逻辑回归和随机森林模型分析性别偏差。我们确定了19种疾病相关药物和256种区域多效性和特异性候选药物,这些药物针对ndd的风险亚/途径,显示出胎儿发育过程中的时间或空间变化。此外,在填写性别标签后,5443种不同的药物亚/途径表现出性别偏倚的差异。开发了一个用户友好的NDDP可视化网站(https://ndd-lab.shinyapps.io/NDDP),使研究人员和临床医生能够轻松访问和检索数据。我们的框架克服了数据缺口,并在六种疾病和胎儿发育轨迹中确定了许多多益性和特异性候选。这将极大地促进怀孕期间的药物发现,并可应用于广泛的特征。
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
Neuroscience bulletin
Neuroscience bulletin NEUROSCIENCES-
CiteScore
7.20
自引率
16.10%
发文量
163
审稿时长
6-12 weeks
期刊介绍: Neuroscience Bulletin (NB), the official journal of the Chinese Neuroscience Society, is published monthly by Shanghai Institutes for Biological Sciences (SIBS), Chinese Academy of Sciences (CAS) and Springer. NB aims to publish research advances in the field of neuroscience and promote exchange of scientific ideas within the community. The journal publishes original papers on various topics in neuroscience and focuses on potential disease implications on the nervous system. NB welcomes research contributions on molecular, cellular, or developmental neuroscience using multidisciplinary approaches and functional strategies. We feature full-length original articles, reviews, methods, letters to the editor, insights, and research highlights. As the official journal of the Chinese Neuroscience Society, which currently has more than 12,000 members in China, NB is devoted to facilitating communications between Chinese neuroscientists and their international colleagues. The journal is recognized as the most influential publication in neuroscience research in China.
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