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低强度激光生物刺激器的设计与测试

Design and testing of low intensity laser biostimulator.

作者信息

Valchinov Emil S, Pallikarakis Nicolas E

机构信息

Department of Medical Physics, University of Patras, Patras 26500, Greece.

出版信息

Biomed Eng Online. 2005 Jan 13;4:5. doi: 10.1186/1475-925X-4-5.

Abstract

BACKGROUND

The non-invasive nature of laser biostimulation has made lasers an attractive alternative in Medical Acupuncture at the last 25 years. However, there is still an uncertainty as to whether they work or their effect is just placebo. Although a plethora of scientific papers published about the topic showing positive clinical results, there is still a lack of objective scientific proofs about the biostimulation effect of lasers in Medical Acupuncture. The objective of this work was to design and build a low cost portable laser device for stimulation of acupuncture points, considered here as small localized biosources (SLB), without stimulating any sensory nerves via shock or heat and to find out a suitable method for objectively evaluating its stimulating effect. The design is aimed for studying SLB potentials provoked by laser stimulus, in search for objective proofs of the biostimulation effect of lasers used in Medical Acupuncture.

METHODS

The proposed biostimulator features two operational modes: program mode and stimulation mode and two output polarization modes: linearly and circularly polarized laser emission. In program mode, different user-defined stimulation protocols can be created and memorized. The laser output can be either continuous or pulse modulated. Each stimulation session consists of a pre-defined number of successive continuous or square pulse modulated sequences of laser emission. The variable parameters of the laser output are: average output power, pulse width, pulse period, and continuous or pulsed sequence duration and repetition period. In stimulation mode the stimulus is automatically applied according to the pre-programmed protocol. The laser source is 30 mW AlGaInP laser diode with an emission wavelength of 685 nm, driven by a highly integrated driver. The optical system designed for beam collimation and polarization change uses single collimating lens with large numerical aperture, linear polarizer and a quarter-wave retardation plate. The proposed method for testing the device efficiency employs a biofeedback from the subject by recording the biopotentials evoked by the laser stimulus at related distant SLB sites. Therefore measuring of SLB biopotentials caused by the stimulus would indicate that a biopotential has been evoked at the irradiated site and has propagated to the measurement sites, rather than being caused by local changes of the electrical skin conductivity.

RESULTS

A prototype device was built according to the proposed design using relatively inexpensive and commercially available components. The laser output can be pulse modulated from 0.1 to 1000 Hz with a duty factor from 10 to 90%. The average output power density can be adjusted in the range 24-480 mW/cm2, where the total irradiation is limited to 2 Joule per stimulation session. The device is controlled by an 8-bit RISC Flash microcontroller with internal RAM and EEPROM memory, which allows for a wide range of different stimulation protocols to be implemented and memorized. The integrated laser diode driver with its onboard light power control loop provides safe and consistent laser modulation. The prototype was tested on the right Tri-Heater (TH) acupuncture meridian according to the proposed method. Laser evoked potentials were recorded from most of the easily accessible SLB along the meridian under study. They appear like periodical spikes with a repetition rate from 0.05 to 10 Hz and amplitude range 0.1-1 mV.

CONCLUSION

The prototype's specifications were found to be better or comparable to those of other existing devices. It features low component count, small size and low power consumption. Because of the low power levels used the possibility of sensory nerve stimulation via the phenomenon of shock or heat is excluded. Thus senseless optical stimulation is achieved. The optical system presented offers simple and cost effective way for beam collimation and polarization change. The novel method proposed for testing the device efficiency allows for objectively recording of SLB potentials evoked by laser stimulus. Based on the biopotential records obtained with this method, a scientifically based conclusion can be drawn about the effectiveness of the commercially available devices for low-level laser therapy used in Medical Acupuncture. The prototype tests showed that with the biostimulator presented, SLB could be effectively stimulated at low power levels. However more studies are needed to derive a general conclusion about the SLB biostimulation mechanism of lasers and their most effective power and optical settings.

摘要

背景

在过去25年里,激光生物刺激的非侵入性使得激光成为医学针灸中一种有吸引力的替代方法。然而,激光是否起作用,其效果是否只是安慰剂效应,仍然存在不确定性。尽管大量关于该主题的科学论文发表并显示出积极的临床结果,但关于激光在医学针灸中的生物刺激效应仍缺乏客观的科学证据。本研究的目的是设计并制造一种低成本的便携式激光装置,用于刺激穴位,此处将穴位视为小的局部生物源(SLB),且不会通过电击或热刺激任何感觉神经,并找出一种客观评估其刺激效果的合适方法。该设计旨在研究激光刺激引发的SLB电位变化,以寻找激光在医学针灸中生物刺激效应的客观证据。

方法

所提出的生物刺激器具有两种操作模式:编程模式和刺激模式,以及两种输出偏振模式:线性偏振和圆偏振激光发射。在编程模式下,可以创建并存储不同的用户定义刺激方案。激光输出可以是连续的或脉冲调制的。每个刺激疗程由预先定义数量的连续或方波脉冲调制激光发射序列组成。激光输出的可变参数包括:平均输出功率、脉冲宽度、脉冲周期、连续或脉冲序列持续时间以及重复周期。在刺激模式下,刺激会根据预编程协议自动施加。激光源是一个30 mW的AlGaInP激光二极管,发射波长为685 nm,由一个高度集成的驱动器驱动。用于光束准直和偏振变化的光学系统使用具有大数值孔径的单准直透镜、线性偏振器和一个四分之一波片。所提出的测试设备效率的方法通过记录激光刺激在相关远处SLB部位诱发的生物电位,从受试者获取生物反馈。因此测量由刺激引起的SLB生物电位将表明在照射部位诱发了生物电位并传播到了测量部位,而不是由皮肤电导率的局部变化引起的。

结果

根据所提出的设计使用相对便宜且可商购的组件构建了一个原型设备。激光输出可以在0.1至1000 Hz之间进行脉冲调制,占空比为10%至90%。平均输出功率密度可在24 - 480 mW/cm²范围内调节,每次刺激疗程总照射量限制为2焦耳。该设备由一个带有内部RAM和EEPROM存储器的8位RISC闪存微控制器控制,这允许实现并存储广泛的不同刺激方案。集成的激光二极管驱动器及其板载光功率控制回路提供安全且一致的激光调制。根据所提出的方法,在右侧三焦经(TH)针灸经络上对原型进行了测试。沿着所研究的经络,从大多数易于触及的SLB记录到了激光诱发电位。它们看起来像周期性尖峰,重复率为0.05至10 Hz,幅度范围为0.1 - 1 mV。

结论

发现该原型的规格优于或与其他现有设备相当。它具有组件数量少、体积小和功耗低的特点。由于使用的功率水平较低,排除了通过电击或热现象刺激感觉神经的可能性。从而实现了无感觉的光刺激。所呈现的光学系统为光束准直和偏振变化提供了简单且经济高效的方法。所提出的测试设备效率的新方法允许客观记录激光刺激诱发的SLB电位。基于用这种方法获得的生物电位记录,可以就用于医学针灸的市售低强度激光治疗设备的有效性得出基于科学的结论。原型测试表明,使用所呈现的生物刺激器,可以在低功率水平下有效刺激SLB。然而,需要更多研究来得出关于激光对SLB生物刺激机制及其最有效功率和光学设置的一般结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/865e/549208/8bf375223aeb/1475-925X-4-5-1.jpg

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