Gas therapy: an innovative application for intervertebral disc degeneration.

IF 2.9 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Medical Gas Research Pub Date : 2026-09-01 Epub Date: 2026-01-06 DOI:10.4103/mgr.MEDGASRES-D-25-00191
Lu Cai, Bin Ru, Haijiang Ren, Fang Cai, Lingyuan Zeng, Jiayu Yang, Shibo Wang, Han Zhang, Yao Li, Long Zhang
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引用次数: 0

Abstract

FactsGas therapy represents a novel and promising therapeutic paradigm for intervertebral disc degeneration, utilizing bioactive gases to modulate oxidative stress, inflammation, and extracellular matrix metabolism.Certain gas therapies, such as medical ozone and hyperbaric oxygen, have already been translated into clinical use for intervertebral disc degeneration, demonstrating efficacy in pain alleviation, disinfection, and improving functional outcomes through minimally invasive delivery.The core mechanisms of gas therapeutics involve the restoration of disc microenvironment homeostasis via specific actions, including reactive oxygen species scavenging, suppression of inflammatory cytokines, inhibition of inflammasome activity, and enhancement of collagen synthesis.Combination strategies integrating gas therapy with other regenerative approaches-such as stem cell transplantation, bioactive scaffolds, or drug delivery systems-exhibit synergistic potential for amplifying anti-inflammatory, antioxidant, and anabolic effects in disc repair.Open questionsWhat are the precise molecular mechanisms and signaling pathways (e.g., hydrogen-mediated nuclear factor erythroid 2-related factor 2 activation, hydrogen sulfide-dependent extracellular matrix regulation) through which gaseous mediators exert their therapeutic effects in human disc cells under pathological microenvironments?How can physiologically relevant disease models-such as human disc organoids or large animal models under biomechanical loading-be developed and utilized to better recapitulate human intervertebral disc degeneration pathophysiology and improve the translational validity of preclinical gas therapy research?What is the clinical efficacy and safety of gas therapeutic protocols in large-scale, multicenter randomized controlled trials? How can standardized treatment parameters and personalized regimens be established for different subtypes and etiologies of intervertebral disc degeneration? Environmental gaseous molecules extensively participate in human physiological and pathological regulation through differential biological effects. Gas transmitter-based therapeutic strategies, as emerging intervention modalities, have demonstrated significant translational value in intervertebral disc degeneration management. The intervertebral disc degeneration susceptibility to progressive degenerative pathology stems from its unique avascular nature and complex biomechanical microenvironment, while conventional therapies face limitations in efficacy and carry invasive risks. This review systematically delineates innovative applications of gaseous therapeutics for intervertebral disc degeneration, encompassing clinically established ozone and hyperbaric oxygen therapies alongside preclinical-stage hydrogen, hydrogen sulfide, and nitric oxide interventions. Comprehensive analyses address molecular properties, biological functions, and mechanistic actions. Current evidence indicates that gas therapies significantly alleviate pain and improve functional impairment through targeted modulation of oxidative stress-inflammation-apoptosis cascades and extracellular matrix metabolic dysregulation. Their minimally invasive precision delivery capabilities and multimodal bio-regulatory advantages offer groundbreaking diagnostic and therapeutic strategies for intervertebral disc degeneration, exhibiting well-defined clinical translation potential.

气体疗法:椎间盘退变的创新应用。
事实:气体疗法代表了一种新的、有前途的椎间盘退变治疗模式,利用生物活性气体来调节氧化应激、炎症和细胞外基质代谢。某些气体疗法,如医用臭氧和高压氧,已经转化为椎间盘退变的临床应用,证明了减轻疼痛、消毒和通过微创分娩改善功能结局的疗效。气体疗法的核心机制涉及通过特定作用恢复椎间盘微环境稳态,包括活性氧清除、抑制炎症细胞因子、抑制炎性小体活性和增强胶原合成。将气体治疗与其他再生方法(如干细胞移植、生物活性支架或药物输送系统)相结合的联合策略,在椎间盘修复中显示出增强抗炎、抗氧化和合成代谢作用的协同潜力。在病理微环境下,气体介质在人椎间盘细胞中发挥其治疗作用的确切分子机制和信号通路(如氢介导的核因子2相关因子2激活,硫化氢依赖的细胞外基质调节)是什么?如何开发和利用生理相关的疾病模型,如人类椎间盘类器官或生物力学载荷下的大型动物模型,以更好地概括人类椎间盘退变的病理生理,提高临床前气体治疗研究的转化有效性?在大规模、多中心随机对照试验中,气体治疗方案的临床疗效和安全性如何?如何针对不同的椎间盘退变亚型和病因建立标准化的治疗参数和个性化的治疗方案?环境气体分子通过差异生物效应广泛参与人体生理病理调节。基于气体传输体的治疗策略,作为新兴的干预方式,已经在椎间盘退变管理中显示出显著的转化价值。椎间盘退变因其独特的无血管性质和复杂的生物力学微环境,易发生进行性退行性病理,而传统治疗方法疗效有限,且存在侵入性风险。这篇综述系统地描述了气体治疗椎间盘退变的创新应用,包括临床建立的臭氧和高压氧治疗以及临床前阶段的氢、硫化氢和一氧化氮干预。综合分析涉及分子特性、生物功能和机制作用。目前的证据表明,气体疗法通过靶向调节氧化应激-炎症-凋亡级联反应和细胞外基质代谢失调,显著减轻疼痛和改善功能障碍。它们的微创精准输送能力和多模式生物调控优势为椎间盘退变提供了开创性的诊断和治疗策略,显示出明确的临床转化潜力。
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来源期刊
Medical Gas Research
Medical Gas Research MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
5.10
自引率
13.80%
发文量
35
期刊介绍: Medical Gas Research is an open access journal which publishes basic, translational, and clinical research focusing on the neurobiology as well as multidisciplinary aspects of medical gas research and their applications to related disorders. The journal covers all areas of medical gas research, but also has several special sections. Authors can submit directly to these sections, whose peer-review process is overseen by our distinguished Section Editors: Inert gases - Edited by Xuejun Sun and Mark Coburn, Gasotransmitters - Edited by Atsunori Nakao and John Calvert, Oxygen and diving medicine - Edited by Daniel Rossignol and Ke Jian Liu, Anesthetic gases - Edited by Richard Applegate and Zhongcong Xie, Medical gas in other fields of biology - Edited by John Zhang. Medical gas is a large family including oxygen, hydrogen, carbon monoxide, carbon dioxide, nitrogen, xenon, hydrogen sulfide, nitrous oxide, carbon disulfide, argon, helium and other noble gases. These medical gases are used in multiple fields of clinical practice and basic science research including anesthesiology, hyperbaric oxygen medicine, diving medicine, internal medicine, emergency medicine, surgery, and many basic sciences disciplines such as physiology, pharmacology, biochemistry, microbiology and neurosciences. Due to the unique nature of medical gas practice, Medical Gas Research will serve as an information platform for educational and technological advances in the field of medical gas.
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