Piezo2+ mechanosensory neurons orchestrate postnatal development through mechano-chemo-transduction of PDGFA signaling.

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Lin Meng,Jifan Feng,Tingwei Guo,Mingyi Zhang,Sa Cha,Peng Chen,Heliya Ziaei,Aaron Harouni,Thach-Vu Ho,Yang Chai
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Abstract

Mechanical forces are ubiquitous and essential during vertebrate development, yet how these forces are translated into biochemical signals and regulate development during postnatal organogenesis remains poorly understood. While early embryogenesis relies on cell-autonomous mechanotransduction, the role of sensory innervation-abundant in postnatal stages-has been overlooked. Here, using the postnatal mouse molar development model, a system experiencing sustained mechanical forces and extensive innervation during tooth root formation, we first identify a subpopulation of Piezo2+ mechanosensory neurons in the trigeminal ganglia and reveal these neurons specifically detect tooth root-associated mechanical forces and orchestrate tooth root development via paracrine signaling. Critically, we show that Piezo2 in neurons-not in dental cells-is essential for tooth root morphogenesis, revealing sensory neurons as unexpected master regulators of mesenchymal cell fate. Mechanistically, Piezo2 activation triggers the calcium-dependent secretion of platelet-derived growth factor A, defining the neuronal mechanotransduction pathway that directly converts force into biochemical signals to drive organogenesis. Taken together, our findings demonstrate that Piezo2+ mechanosensory neurons primarily orchestrate mechanical-force-regulated processes during postnatal development. The identification of the PIEZO2-calcium-PDGF axis provides important insight into mechanotransduction by introducing sensory neurons as active architects of tissue development. This work establishes a paradigm in developmental biology, revealing how mechanosensation bridges biomechanics and neurobiology to regulate postnatal organogenesis, with implications for tissue regeneration strategies.
Piezo2+机械感觉神经元通过PDGFA信号的机械化学转导来协调出生后的发育。
机械力在脊椎动物发育过程中无处不在,也是必不可少的,然而这些力是如何转化为生化信号并在出生后器官发生过程中调节发育的,人们仍然知之甚少。虽然早期胚胎发生依赖于细胞自主的机械转导,但在出生后阶段丰富的感觉神经的作用一直被忽视。在这里,利用出生后小鼠磨牙发育模型,一个在牙根形成过程中经历持续机械力和广泛神经支配的系统,我们首先在三叉神经节中确定了一个Piezo2+机械感觉神经元亚群,并揭示了这些神经元特异性地检测牙根相关的机械力,并通过旁分泌信号协调牙根发育。关键的是,我们发现神经元中的Piezo2对牙根形态发生至关重要,而不是在牙细胞中,揭示了感觉神经元是间充质细胞命运的意想不到的主要调节剂。在机制上,Piezo2激活触发血小板衍生生长因子A的钙依赖性分泌,定义神经元机械转导途径,直接将力转化为生化信号以驱动器官发生。综上所述,我们的研究结果表明,Piezo2+机械感觉神经元在出生后发育过程中主要协调机械力调节过程。piezo2 -钙- pdgf轴的鉴定通过引入感觉神经元作为组织发育的活跃建筑师,为机械转导提供了重要的见解。这项工作在发育生物学中建立了一个范例,揭示了机械感觉如何连接生物力学和神经生物学来调节出生后的器官发生,并对组织再生策略产生影响。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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