Assessment of the influence of 660 and 808-nm PBM treatments on mitochondrial oxygen consumption of MG-63 osteoblast: a 3D cell culture study.

IF 2.4 4区 医学 Q3 ENGINEERING, BIOMEDICAL Lasers in Medical Science Pub Date : 2025-02-12 DOI:10.1007/s10103-025-04349-3
Simone Sleep, Deanne Hryciw, Jennifer Gunter, Praveen Arany, Nifty Tomy, Roy George
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Abstract

This study explores the dose-dependent effects of 660-nm and 808-nm photobiomodulation (PBM) on mitochondrial oxygen respiration rate activity in MG-63 osteoblast cells using an innovative 3D in vitro spheroid model. MG-63 osteoblast cells were grown to 80% confluence and seeded in fish gelatin hydrogel (LunaGel™) to form 3D spheroids within 3-7 days. Spheroids were seeded on Seahorse microplates and incubated in a LunacrossLinker™ (visible light crosslinking system) for 2 min to give hydrogel a mid-stiffness of 3.5 kPa. Cells were exposed to PBM either 660-nm or 808-nm at panel setting of 5 J/cm2 and 15 J/cm2 and then assessed immediate (15 min before analysing) and 24 h time points. Mitochondrial activity was determined using an XFe96 Seahorse analyzer. Data distribution was assessed, and parametric or non-parametric tests and compared the mitochondrial respiratory capacity across different experimental conditions. The study indicated that 660-nm and 808-nm PBM could modulate mitochondrial functions in osteoblasts. The maximal respiratory rate for the fluency assessed at 808-nm wavelength was increased when cells were assessed immediate post. Interestingly, the 660-nm PBM-treated cells showed a decrease in oxygen consumption rate (OCR) at the basal and maximal bioenergetic state at all time points (immediate and 24 h.) and fluency compared to the untreated control. The effects of 660-nm and 808-nm wavelengths on osteoblast mitochondrial function suggest that PBM demonstrates differential modulation of osteoblast metabolism and bioenergetics depending on the wavelength. These findings have practical implications in both research and clinical settings, offering insights into selecting specific wavelengths for therapeutic applications.

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评估660和808纳米PBM处理对MG-63成骨细胞线粒体耗氧量的影响:3D细胞培养研究。
本研究利用创新的3D体外球体模型,探讨了660-nm和808-nm光生物调节(PBM)对MG-63成骨细胞线粒体氧呼吸速率活性的剂量依赖性影响。MG-63成骨细胞培养至80%的合流度,在3-7天内接种于鱼明胶水凝胶(LunaGel™)中形成3D球体。将球体接种在海马微孔板上,在LunacrossLinker™(可见光交联系统)中培养2分钟,使水凝胶的中刚度为3.5 kPa。将细胞暴露在5j /cm2和15j /cm2的660nm或808 nm的PBM中,然后立即(分析前15分钟)和24小时时间点进行评估。采用XFe96海马分析仪测定线粒体活性。评估数据分布,进行参数或非参数检验,并比较不同实验条件下的线粒体呼吸能力。研究表明,660-nm和808-nm的PBM可调节成骨细胞线粒体功能。在808 nm波长下评估的最大呼吸频率在细胞立即评估后增加。有趣的是,与未处理的对照组相比,660 nm pbm处理的细胞在所有时间点(即时和24小时)的基础和最大生物能量状态下的耗氧量(OCR)和流畅性都有所下降。660-nm和808-nm波长对成骨细胞线粒体功能的影响表明,PBM对成骨细胞代谢和生物能量学具有不同的调节作用。这些发现在研究和临床环境中都具有实际意义,为治疗应用选择特定波长提供了见解。
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来源期刊
Lasers in Medical Science
Lasers in Medical Science 医学-工程:生物医学
CiteScore
4.50
自引率
4.80%
发文量
192
审稿时长
3-8 weeks
期刊介绍: Lasers in Medical Science (LIMS) has established itself as the leading international journal in the rapidly expanding field of medical and dental applications of lasers and light. It provides a forum for the publication of papers on the technical, experimental, and clinical aspects of the use of medical lasers, including lasers in surgery, endoscopy, angioplasty, hyperthermia of tumors, and photodynamic therapy. In addition to medical laser applications, LIMS presents high-quality manuscripts on a wide range of dental topics, including aesthetic dentistry, endodontics, orthodontics, and prosthodontics. The journal publishes articles on the medical and dental applications of novel laser technologies, light delivery systems, sensors to monitor laser effects, basic laser-tissue interactions, and the modeling of laser-tissue interactions. Beyond laser applications, LIMS features articles relating to the use of non-laser light-tissue interactions.
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