医学
感觉系统
神经损伤
交感神经切除术
伤害
感觉神经
头颈部鳞状细胞癌
伤害感受器
神经可塑性
旁侵犯
病理
TRPV1型
交感神经系统
自主神经系统
周围神经损伤
转移
自主神经
癌
神经科学
外周神经系统
生物标志物
疼痛
癌症
肾上腺素能的
自主神经节
肿瘤进展
ATF3
神经生长因子
感觉神经元
头颈部癌
神经系统
内科学
外围设备
肾上腺素能受体
背根神经节
慢性疼痛
作者
Andre A. Martel Matos,Lisa A. McIlvried,Nicole L. Horan,Nicole A. Rodriguez,Jared I. Rothberg,Megan A. Atherton,Stephen V. Glass,Marci L. Nilsen,Nicole N. Scheff
标识
DOI:10.1126/scitranslmed.aec3196
摘要
Oral squamous cell carcinoma (OSCC) is one of the most painful cancers, with patients frequently reporting spontaneous, neuropathic-like pain. Sympathetic and sensory nerves have been individually implicated in cancer progression, but whether and how these systems interact to drive pain and tumor growth have remained unclear. Here, we integrated prospective human data with reverse-translational mouse models to reveal that cancer-induced nerve injury unveils cross-talk between sympathetic postganglionic neurons and trigeminal sensory afferents in the tumor microenvironment. In patients, circulating norepinephrine (NE) correlated with spontaneous pain and perineural invasion, identifying a potential sympathetic contribution to disease burden. In mice, aggressive nonimmunogenic OSCC tumors evoked spontaneous nociceptive behaviors, elevated tumoral NE, and sensory nerve injury marked by ATF3 expression and hyperexcitability. Tumor-associated sensory neurons acquired adrenergic sensitivity through α1-adrenergic receptor plasticity, whereas sympathetic neurons exhibited plasticity characterized by sprouting, altered gene expression, and heightened excitability, creating a maladaptive feed-forward loop that amplified nociceptive signaling. Disrupting this sympathetic-sensory communication by sympathectomy or selective ablation of TRPV1 + sensory fibers reduced tumor growth, sympathetic tone, and spontaneous pain-like behaviors, although sensory adrenergic sensitivity persisted. Together, these findings establish that reciprocal sympathetic-sensory plasticity and cross-talk in the tumor may fuel both OSCC progression and neuropathic-like pain. Targeting this peripheral neuroplasticity may offer a translational strategy to limit tumor growth and alleviate pain.
科研通智能强力驱动
Strongly Powered by AbleSci AI