The effect of modulation Piezo2 by IGF-1 on tactile hypersensitivity in BTBR model mice

IF 5.1 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Life sciences Pub Date : 2025-03-01 Epub Date: 2025-02-05 DOI:10.1016/j.lfs.2025.123449
Jinhe Zhai , Haiying Hao , Zihan Xu , Akemi Tomoda , Xinyi Zhang , Xinxin Wang , Yutong Liu , Xuan Cao , Dongxin Li , Yuying Zhang , Xueke Yao , Lili Fan , Jia Wang
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Abstract

Aims

Autism spectrum disorder (ASD) is classified as a neurodevelopmental disorder. Individuals with ASD exhibit a higher incidence of tactile hypersensitivity. However, the underlying mechanisms remain unclear. The dorsal root ganglion (DRG) plays a crucial role in influencing tactile processing. This study aims to integrate RNA sequencing (RNA-seq) and molecular biology experiments to identify key molecules involved in tactile hypersensitivity in ASD, further investigate related mechanisms, and develop effective intervention strategy.

Main methods

Using BTBR as the ASD model mouse and wild-type C57BL/6J as the control mouse, the differences in tactile sensitivity between them was compared. DRG were collected for RNA-seq analysis. Immunofluorescence and Enzyme-linked immunosorbent assay (ELISA) techniques were employed to validate the identified key molecules. And combined western blot to investigate the associated regulatory pathways.

Key findings

BTBR mice exhibit tactile hypersensitivity, which are associated with the upregulation of IGF-1 in the DRG. IGF-1 regulates the expression of Piezo2 ion channels. Inhibition of the IGF-1/Piezo2 pathway can significantly alleviate tactile hypersensitivity and social deficits in BTBR mice. Additionally, gentle touch intervention has been shown to reduce the overexpression of IGF-1/Piezo2 in the DRG, thereby ameliorating ASD symptoms.

Significance

The upregulation of the IGF-1/Piezo2 pathway in DRG may serve as a potential mechanism for tactile hypersensitivity observed in BTBR mice. Restoring the normalization of the IGF-1/Piezo2 is crucial for alleviating tactile hypersensitivity and synergistically rescues social deficits. Gentle touch intervention has the potential to ameliorate these behaviors through regulating IGF-1/Piezo2, positioning it as a promising strategy for ASD.

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IGF-1调节Piezo2对BTBR模型小鼠触觉敏感性的影响
自闭症谱系障碍(ASD)被归类为一种神经发育障碍。患有自闭症谱系障碍的个体表现出更高的触觉过敏发生率。然而,潜在的机制仍不清楚。背根神经节(DRG)在触觉加工中起着至关重要的作用。本研究旨在结合RNA测序(RNA-seq)和分子生物学实验,鉴定ASD触觉超敏反应的关键分子,进一步探讨相关机制,制定有效的干预策略。主要方法以BTBR为ASD模型小鼠,以野生型C57BL/6J为对照小鼠,比较两种小鼠的触觉敏感性差异。收集DRG进行RNA-seq分析。采用免疫荧光和酶联免疫吸附测定(ELISA)技术对鉴定的关键分子进行验证。并结合western blot研究相关调控途径。sbtbr小鼠表现出触觉超敏,这与DRG中IGF-1的上调有关。IGF-1调节Piezo2离子通道的表达。抑制IGF-1/Piezo2通路可显著减轻BTBR小鼠的触觉过敏和社交缺陷。此外,轻柔的触摸干预已被证明可以减少DRG中IGF-1/Piezo2的过度表达,从而改善ASD症状。DRG中IGF-1/Piezo2通路的上调可能是BTBR小鼠触觉超敏反应的潜在机制。恢复IGF-1/Piezo2的正常化对于减轻触觉过敏和协同拯救社会缺陷至关重要。轻柔的触摸干预有可能通过调节IGF-1/Piezo2来改善这些行为,将其定位为ASD的一种有前途的策略。
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来源期刊
Life sciences
Life sciences 医学-药学
CiteScore
12.20
自引率
1.60%
发文量
841
审稿时长
6 months
期刊介绍: Life Sciences is an international journal publishing articles that emphasize the molecular, cellular, and functional basis of therapy. The journal emphasizes the understanding of mechanism that is relevant to all aspects of human disease and translation to patients. All articles are rigorously reviewed. The Journal favors publication of full-length papers where modern scientific technologies are used to explain molecular, cellular and physiological mechanisms. Articles that merely report observations are rarely accepted. Recommendations from the Declaration of Helsinki or NIH guidelines for care and use of laboratory animals must be adhered to. Articles should be written at a level accessible to readers who are non-specialists in the topic of the article themselves, but who are interested in the research. The Journal welcomes reviews on topics of wide interest to investigators in the life sciences. We particularly encourage submission of brief, focused reviews containing high-quality artwork and require the use of mechanistic summary diagrams.
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