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癌症患者中的身体活动与神经-免疫-筋膜界面:机制、临床证据与治疗整合

英文原题:Physical activity and the Neuro-Immuno-Fascial interface in cancer patients: mechanisms, clinical evidence, and therapeutic integration.

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Physical activity and the Neuro-Immuno-Fascial interface in cancer patients: mechanisms, clinical evidence, and therapeutic integration.

PubMed 2026/07/31(内容时间) Front Oncol Q2 · IF 3.4(JCR 2025)

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中文摘要

体力活动已从支持性照护发展为循证肿瘤学干预措施,大型队列研究显示,在多种肿瘤类型中,其可使全因癌症死亡率呈剂量依赖性降低约20-47%,随机试验证据支持汇总降低约26%。CCTG CO.21 CHALLENGE试验是首个以生存终点为检验效能的随机对照试验,其表明在II-III期结肠癌幸存者中,辅助治疗后结构化运动使疾病复发减少28%,死亡率降低37%,其效应量与辅助化疗相当。本叙述性综述提出神经-免疫-筋膜(NIF)界面作为一个假设性的整合轴,可能有助于解释运动如何影响肿瘤相关生物学。临床试验已证实,体力活动可改善功能、减轻疲乏,并在特定队列中降低复发风险;然而,将机械性筋膜重塑与人体抗肿瘤结局联系起来的多步骤因果链仍属推测。

因此,NIF构念是作为转化研究的概念框架提出,而非临床决策工具。在筋膜-基质界面,临床前数据提示,运动诱导的机械负荷可能激活癌症相关成纤维细胞中的Piezo1/YAP-TGF β1机械转导级联,并通过三种趋同但仍属探索性的机制调节免疫抑制结构:细胞外基质的黏弹性和水合驱动重塑,可能改善顺应性和间质液动力学;Piezo通道介导的机械感知,可能影响肌因子释放(例如、白细胞介素6、鸢尾素、SPARC),并与成纤维细胞行为和NK 细胞运输的下游变化相关;以及自主神经再平衡,反映为心率变异性改善20-50%,这可能减弱促肿瘤的交感神经张力。目前缺乏直接的人体证据表明训练诱导的筋膜动力学变化因果性地驱动抗肿瘤免疫。临床前研究进一步表明,运动诱导的血管正常化可增加肿瘤血管灌注并减少缺氧,尽管这些变化在患者中的幅度和临床相关性需要进一步验证。

在此基础上,我们概述了转化运动肿瘤学的三个优先事项:使用剪切波弹性成像和心率变异性频谱分析进行标准化的筋膜和自主神经表型分析;肿瘤微环境表型特异性的运动剂量算法;以及将有氧和抗阻训练与肌筋膜干预和免疫检查点抑制相结合的前瞻性试验。结构化体育活动应继续作为肿瘤治疗的标准组成部分,而NIF指导的表型分析和剂量策略值得系统研究。

展开英文摘要原文

Physical activity has progressed from supportive care to an evidence-based oncologic intervention, with large cohort studies showing dose-dependent reductions in all-cause cancer mortality of roughly 20-47% across multiple tumor entities, and randomized trial evidence supporting a pooled reduction of approximately 26%. The CCTG CO. 21 CHALLENGE trial, the first randomized controlled trial powered for survival endpoints, demonstrated that structured post-adjuvant exercise reduced disease recurrence by 28% and mortality by 37% in stage II-III colon cancer survivors, with an effect size comparable to adjuvant chemotherapy. This narrative review proposes the Neuro-Immuno-Fascial (NIF) interface as a hypothetical integrative axis that may help explain how exercise influences tumor-related biology. Clinical trials have established that physical activity improves function, mitigates fatigue, and lowers recurrence risk in selected cohorts; however, the multi-step causal chain linking mechanical fascial remodeling to anti-tumor outcomes in humans remains speculative. Accordingly, the NIF construct is presented as a conceptual framework for translational research rather than a clinical decision-making tool.

At the fascial-stromal interface, preclinical data suggest that exercise-induced mechanical loading may activate Piezo1/YAP-TGF β1 mechanotransduction cascades in cancer-associated fibroblasts and modulate immunosuppressive architecture via three convergent, yet exploratory, mechanisms: viscoelastic and hydration-driven remodeling of the extracellular matrix that may improve compliance and interstitial fluid dynamics; Piezo channel-mediated mechanosensing that may influence myokine release (e. g. , interleukin 6, irisin, SPARC) and associate with downstream changes in fibroblast behavior and natural killer cell trafficking; and autonomic rebalancing, reflected in 20-50% improvements in heart rate variability, which may attenuate pro-tumorigenic sympathetic tone. Direct human evidence that training-induced changes in fascial dynamics causally drive anti-tumor immunity is currently lacking.

Preclinical findings further indicate that exercise-induced vascular normalization can increase tumor vessel perfusion and reduce hypoxia, although the magnitude and clinical relevance of these shifts in patients require further validation.

On this basis, we outline three priorities for translational exercise oncology: standardized fascial and autonomic phenotyping using shear-wave elastography and heart rate variability spectral analysis; tumor microenvironment phenotype-specific exercise dosing algorithms; and prospective trials combining aerobic and resistance training with myofascial interventions and immune checkpoint inhibition.

Structured physical activity should remain a standard component of oncologic care, while NIF-informed phenotyping and dosing strategies warrant systematic investigation.

论文信息

作者
Otto S、Ngo-Huang AT、Klingler W
第一作者单位
Comprehensive Cancer Center Ulm (CCCU), Ulm University Hospital, Ulm, Germany.Germany
通讯作者单位
Fascia Research Group, Department of Neurosurgery, Ulm University Hospital, Ulm, Germany.Germany
文献类型
综述
期刊
Frontiers in oncology2026
原文标识
PubMed 42602326 · DOI 10.3389/fonc.2026.1894580