Skip to main content
Erschienen in: Lasers in Medical Science 4/2020

17.12.2019 | Review Article

Laser photobiomodulation for cartilage defect in animal models of knee osteoarthritis: a systematic review and meta-analysis

verfasst von: Anfeng Xiang, Hongyong Deng, Ke Cheng, Hui Liu, Lin Lin, Xiaoyi Qu, Sheng Liu, Xueyong Shen

Erschienen in: Lasers in Medical Science | Ausgabe 4/2020

Einloggen, um Zugang zu erhalten

Abstract

To review and assess the efficacy of laser photobiomodulation for cartilage defect in animal models of knee osteoarthritis (KOA). Medline, Web of Science, and EMBASE were searched. Studies were considered if the global quality score of cartilage were parallelly reported between laser and untreated control groups. The methodological quality of each study was assessed using a modified 10-item checklist. The effect size was estimated by standardized mean difference (SMD) and pooled based on the random-effects model. Stratified analysis and regression analysis were conducted to partition potential heterogeneity. An adjusted significant level of 0.01 was acceptable. Five hundred eight initial search recordings were identified, of which 14 studies (including 274 animals) were included for quantitative analysis. The global quality scores mostly weighted by the structural integrity and chondrocyte distribution were measured by different four scales including Histologic Histochemical Grading System (HHGS), Osteoarthritis Research Society International (OARSI), Pineda, and Huang. There were considerable variances on laser parameters and irradiation time among those included studies. Overall, a moderate level of methodological qualities was determined. The synthesis results indicated that the SMD effect size was significantly larger in HHGS (z = 2.61, P = 0.01) and Huang (z = 4.90, P < 0.01) groups. Stratified by irradiance, SMD of low (< 1 W/cm2) but not high (≥ 1 W/cm2) level estimated significant difference (z = 5.62, P < 0.01). Meta-regression identified a significant association for SMDs and irradiation time (P < 0.01). Yet, Egger’s test detected small study effect (P < 0.01). No individual study with significant variance was found in homogeneity tests. The results demonstrated the positive effect of laser photobiomodulation for cartilage defect in animal models of KOA under proper irradiance and adequate irradiation time.
Anhänge
Nur mit Berechtigung zugänglich
Literatur
1.
Zurück zum Zitat Ding C, Garnero P, Cicuttini F et al (2005) Knee cartilage defects: association with early radiographic osteoarthritis, decreased cartilage volume, increased joint surface area and type II collagen breakdown 1. Osteoarthr Cartil 13:198–205CrossRef Ding C, Garnero P, Cicuttini F et al (2005) Knee cartilage defects: association with early radiographic osteoarthritis, decreased cartilage volume, increased joint surface area and type II collagen breakdown 1. Osteoarthr Cartil 13:198–205CrossRef
2.
Zurück zum Zitat Wluka A, Ding C, Jones G, Cicuttini F (2005) The clinical correlates of articular cartilage defects in symptomatic knee osteoarthritis: a prospective study. Rheumatology (Oxford, England) 44:1311—1316PubMedCrossRef Wluka A, Ding C, Jones G, Cicuttini F (2005) The clinical correlates of articular cartilage defects in symptomatic knee osteoarthritis: a prospective study. Rheumatology (Oxford, England) 44:1311—1316PubMedCrossRef
3.
Zurück zum Zitat Kumar D, Wyatt CR, Lee S et al (2013) Association of cartilage defects, and other MRI findings with pain and function in individuals with mild-moderate radiographic hip osteoarthritis and controls ☆. Osteoarthr Cartil 21:1685–1692CrossRef Kumar D, Wyatt CR, Lee S et al (2013) Association of cartilage defects, and other MRI findings with pain and function in individuals with mild-moderate radiographic hip osteoarthritis and controls ☆. Osteoarthr Cartil 21:1685–1692CrossRef
4.
Zurück zum Zitat Makris EA, Gomoll AH, Malizos KN et al (2015) Repair and tissue engineering techniques for articular cartilage. Nat Rev Rheumatol 11:21–34PubMedCrossRef Makris EA, Gomoll AH, Malizos KN et al (2015) Repair and tissue engineering techniques for articular cartilage. Nat Rev Rheumatol 11:21–34PubMedCrossRef
5.
Zurück zum Zitat Li MH, Xiao R, Li JB, Zhu Q (2017) Regenerative approaches for cartilage repair in the treatment of osteoarthritis. Osteoarthr Cartil 25:1577–1587CrossRef Li MH, Xiao R, Li JB, Zhu Q (2017) Regenerative approaches for cartilage repair in the treatment of osteoarthritis. Osteoarthr Cartil 25:1577–1587CrossRef
6.
Zurück zum Zitat Hamblin MR (2013) Can osteoarthritis be treated with light? Arthritis Research & Therapy 15:120CrossRef Hamblin MR (2013) Can osteoarthritis be treated with light? Arthritis Research & Therapy 15:120CrossRef
8.
Zurück zum Zitat De Freitas LF, Hamblin MR (2016) Proposed mechanisms of Photobiomodulation or low-level light therapy. IEEE Journal of Selected Topics in Quantum Electronics 22:348–364CrossRef De Freitas LF, Hamblin MR (2016) Proposed mechanisms of Photobiomodulation or low-level light therapy. IEEE Journal of Selected Topics in Quantum Electronics 22:348–364CrossRef
9.
Zurück zum Zitat Wang X, Tian F, Soni S et al (2016) Interplay between up-regulation of cytochrome-c-oxidase and hemoglobin oxygenation induced by near-infrared laser. Sci Rep 6:30540–30540PubMedPubMedCentralCrossRef Wang X, Tian F, Soni S et al (2016) Interplay between up-regulation of cytochrome-c-oxidase and hemoglobin oxygenation induced by near-infrared laser. Sci Rep 6:30540–30540PubMedPubMedCentralCrossRef
10.
Zurück zum Zitat Emil S, Anatoly S, Anna G et al (2011) Laser-induced regeneration of cartilage. J Biomed Opt 16:080902CrossRef Emil S, Anatoly S, Anna G et al (2011) Laser-induced regeneration of cartilage. J Biomed Opt 16:080902CrossRef
11.
Zurück zum Zitat Sobol E, Baum O, Shekhter A et al (2017) Laser-induced micropore formation and modification of cartilage structure in osteoarthritis healing. J Biomed Opt 22:91515PubMedCrossRef Sobol E, Baum O, Shekhter A et al (2017) Laser-induced micropore formation and modification of cartilage structure in osteoarthritis healing. J Biomed Opt 22:91515PubMedCrossRef
12.
Zurück zum Zitat Bernard M, Grothues-Spork M, Hertel P, Moazami-Goudarzi Y (1996) Reactions of meniscal tissue after arthroscopic laser application: an in vivo study using five different laser systems. Arthroscopy: the journal of arthroscopic & related surgery: official publication of the Arthroscopy Association of North America and the International Arthroscopy Association 12:441–451CrossRef Bernard M, Grothues-Spork M, Hertel P, Moazami-Goudarzi Y (1996) Reactions of meniscal tissue after arthroscopic laser application: an in vivo study using five different laser systems. Arthroscopy: the journal of arthroscopic & related surgery: official publication of the Arthroscopy Association of North America and the International Arthroscopy Association 12:441–451CrossRef
13.
Zurück zum Zitat Mainil-Varlet P, Monin D, Weiler C et al (2001) Quantification of laser-induced cartilage injury by confocal microscopy in an ex vivo model. J Bone Joint Surg Am 83-A:566–571CrossRef Mainil-Varlet P, Monin D, Weiler C et al (2001) Quantification of laser-induced cartilage injury by confocal microscopy in an ex vivo model. J Bone Joint Surg Am 83-A:566–571CrossRef
14.
Zurück zum Zitat Schultz R, Krishnamurthy S, Thelmo W et al (1985) Effects of varying intensities of laser energy on articular cartilage: a preliminary study. Lasers Surg Med 5:577–588PubMedCrossRef Schultz R, Krishnamurthy S, Thelmo W et al (1985) Effects of varying intensities of laser energy on articular cartilage: a preliminary study. Lasers Surg Med 5:577–588PubMedCrossRef
15.
Zurück zum Zitat Rutgers M, van Pelt MJ, Dhert WJ et al (2010) Evaluation of histological scoring systems for tissue-engineered, repaired and osteoarthritic cartilage. Osteoarthr Cartil 18:12–23CrossRef Rutgers M, van Pelt MJ, Dhert WJ et al (2010) Evaluation of histological scoring systems for tissue-engineered, repaired and osteoarthritic cartilage. Osteoarthr Cartil 18:12–23CrossRef
16.
Zurück zum Zitat Macleod MR, O’Collins T, Howells DW, Donnan GA (2004) Pooling of animal experimental data reveals influence of study design and publication bias. Stroke 35:1203–1208PubMedCrossRef Macleod MR, O’Collins T, Howells DW, Donnan GA (2004) Pooling of animal experimental data reveals influence of study design and publication bias. Stroke 35:1203–1208PubMedCrossRef
17.
Zurück zum Zitat Higgins JPT, Thompson SG, Deeks JJ, Altman DG (2003) Measuring inconsistency in meta-analyses. BMJ (Clinical research ed) 327:557–560CrossRef Higgins JPT, Thompson SG, Deeks JJ, Altman DG (2003) Measuring inconsistency in meta-analyses. BMJ (Clinical research ed) 327:557–560CrossRef
18.
Zurück zum Zitat Jenkins PA, Carroll JD (2011) How to report low-level laser therapy (LLLT)/photomedicine dose and beam parameters in clinical and laboratory studies. Photomed Laser Surg 29:785PubMedCrossRef Jenkins PA, Carroll JD (2011) How to report low-level laser therapy (LLLT)/photomedicine dose and beam parameters in clinical and laboratory studies. Photomed Laser Surg 29:785PubMedCrossRef
19.
Zurück zum Zitat Vesterinen H, Sena E, Egan K et al (2014) Meta-analysis of data from animal studies: a practical guide. J Neurosci Methods 221:92–102PubMedCrossRef Vesterinen H, Sena E, Egan K et al (2014) Meta-analysis of data from animal studies: a practical guide. J Neurosci Methods 221:92–102PubMedCrossRef
20.
Zurück zum Zitat Egger M, Davey Smith G, Schneider M, Minder C (1997) Bias in meta-analysis detected by a simple, graphical test. BMJ (Clinical research ed) 315:629–634CrossRef Egger M, Davey Smith G, Schneider M, Minder C (1997) Bias in meta-analysis detected by a simple, graphical test. BMJ (Clinical research ed) 315:629–634CrossRef
21.
Zurück zum Zitat Assis L, Milares L, Almeida T et al (2016) Aerobic exercise training and low-level laser therapy modulate inflammatory response and degenerative process in an experimental model of knee osteoarthritis in rats. Osteoarthr Cartil 24:169–177CrossRef Assis L, Milares L, Almeida T et al (2016) Aerobic exercise training and low-level laser therapy modulate inflammatory response and degenerative process in an experimental model of knee osteoarthritis in rats. Osteoarthr Cartil 24:169–177CrossRef
22.
Zurück zum Zitat Bayat M, Javadieh F, Dadpay M (2009) Effect of He-Ne laser radiation on healing of osteochondral defect in rabbit: a histological study. J Rehabil Res Dev 46:1135PubMedCrossRef Bayat M, Javadieh F, Dadpay M (2009) Effect of He-Ne laser radiation on healing of osteochondral defect in rabbit: a histological study. J Rehabil Res Dev 46:1135PubMedCrossRef
23.
Zurück zum Zitat Bayat M, Kamali F, Dadpay M (2009) Effect of low-level infrared laser therapy on large surgical osteochondral defect in rabbit: a histological study. Photomed Laser Surg 27:25–30PubMedCrossRef Bayat M, Kamali F, Dadpay M (2009) Effect of low-level infrared laser therapy on large surgical osteochondral defect in rabbit: a histological study. Photomed Laser Surg 27:25–30PubMedCrossRef
24.
Zurück zum Zitat Guo H, Luo Q, Zhang J et al (2011) Comparing different physical factors on serum TNF-α levels, chondrocyte apoptosis, caspase-3 and caspase-8 expression in osteoarthritis of the knee in rabbits. Joint, bone, spine: revue du rhumatisme 78:604–610CrossRef Guo H, Luo Q, Zhang J et al (2011) Comparing different physical factors on serum TNF-α levels, chondrocyte apoptosis, caspase-3 and caspase-8 expression in osteoarthritis of the knee in rabbits. Joint, bone, spine: revue du rhumatisme 78:604–610CrossRef
25.
Zurück zum Zitat Lee JY, Lee SU, Lim T, Choi SH (2014) Healing effects and superoxide dismutase activity of diode/Ga-As lasers in a rabbit model of osteoarthritis. Vivo 28:1101–1106 Lee JY, Lee SU, Lim T, Choi SH (2014) Healing effects and superoxide dismutase activity of diode/Ga-As lasers in a rabbit model of osteoarthritis. Vivo 28:1101–1106
26.
Zurück zum Zitat Lin Y-S, Huang M-H, Chai C-Y, Yang R-C (2004) Effects of helium-neon laser on levels of stress protein and arthritic histopathology in experimental osteoarthritis. Am J Phys Med Rehabil 83:758–765PubMedCrossRef Lin Y-S, Huang M-H, Chai C-Y, Yang R-C (2004) Effects of helium-neon laser on levels of stress protein and arthritic histopathology in experimental osteoarthritis. Am J Phys Med Rehabil 83:758–765PubMedCrossRef
27.
Zurück zum Zitat Lin Y, Huang MH, Chai C (2006) Effects of helium–neon laser on the mucopolysaccharide induction in experimental osteoarthritic cartilage. Osteoarthr Cartil 14:377–383CrossRef Lin Y, Huang MH, Chai C (2006) Effects of helium–neon laser on the mucopolysaccharide induction in experimental osteoarthritic cartilage. Osteoarthr Cartil 14:377–383CrossRef
28.
Zurück zum Zitat Lin HD, He CQ, Luo QL et al (2012) The effect of low-level laser to apoptosis of chondrocyte and caspases expression, including caspase-8 and caspase-3 in rabbit surgery-induced model of knee osteoarthritis. Rheumatol Int 32:759–766PubMedCrossRef Lin HD, He CQ, Luo QL et al (2012) The effect of low-level laser to apoptosis of chondrocyte and caspases expression, including caspase-8 and caspase-3 in rabbit surgery-induced model of knee osteoarthritis. Rheumatol Int 32:759–766PubMedCrossRef
29.
Zurück zum Zitat Mahmoud GS, Elbedewey M, Abdelkader AM et al (2017) Effects of ultrasound versus low level laser therapy in levofloxacin-induced rat model of knee osteoarthritis. Iosr Journal of Dental & Medical Sciences 16:78–85CrossRef Mahmoud GS, Elbedewey M, Abdelkader AM et al (2017) Effects of ultrasound versus low level laser therapy in levofloxacin-induced rat model of knee osteoarthritis. Iosr Journal of Dental & Medical Sciences 16:78–85CrossRef
30.
Zurück zum Zitat Moon CH, Kwon O, Woo C-H et al (2014) Therapeutic effect of irradiation of magnetic infrared laser on osteoarthritis rat model. Photochem Photobiol 90:1150–1159PubMed Moon CH, Kwon O, Woo C-H et al (2014) Therapeutic effect of irradiation of magnetic infrared laser on osteoarthritis rat model. Photochem Photobiol 90:1150–1159PubMed
31.
Zurück zum Zitat Oliveira P, Santos AA, Rodrigues T et al (2013) Effects of phototherapy on cartilage structure and inflammatory markers in an experimental model of osteoarthritis. J Biomed Opt 18:128004PubMedCrossRef Oliveira P, Santos AA, Rodrigues T et al (2013) Effects of phototherapy on cartilage structure and inflammatory markers in an experimental model of osteoarthritis. J Biomed Opt 18:128004PubMedCrossRef
32.
Zurück zum Zitat Park S, Minar M, Hwang Y et al (2013) Influence of diode laser (808 nm) on a rat anterior cruciate ligament transection model of osteoarthritis. Journal of Veterinary Clinics 30:346–352 Park S, Minar M, Hwang Y et al (2013) Influence of diode laser (808 nm) on a rat anterior cruciate ligament transection model of osteoarthritis. Journal of Veterinary Clinics 30:346–352
33.
Zurück zum Zitat Sanches M, Assis L, Criniti C et al (2018) Chondroitin sulfate and glucosamine sulfate associated to photobiomodulation prevents degenerative morphological changes in an experimental model of osteoarthritis in rats. Lasers Med Sci 33:1–9CrossRef Sanches M, Assis L, Criniti C et al (2018) Chondroitin sulfate and glucosamine sulfate associated to photobiomodulation prevents degenerative morphological changes in an experimental model of osteoarthritis in rats. Lasers Med Sci 33:1–9CrossRef
34.
Zurück zum Zitat Wang P, Liu C, Yang X et al (2014) Effects of low-level laser therapy on joint pain, synovitis, anabolic, and catabolic factors in a progressive osteoarthritis rabbit model. Lasers Med Sci 29:1875–1885PubMedCrossRef Wang P, Liu C, Yang X et al (2014) Effects of low-level laser therapy on joint pain, synovitis, anabolic, and catabolic factors in a progressive osteoarthritis rabbit model. Lasers Med Sci 29:1875–1885PubMedCrossRef
35.
Zurück zum Zitat Custers RJ, Creemers LB, Verbout AJ et al (2007) Reliability, reproducibility and variability of the traditional Histologic/Histochemical Grading System vs the new OARSI Osteoarthritis Cartilage Histopathology Assessment System. Osteoarthr Cartil 15:1241–1248CrossRef Custers RJ, Creemers LB, Verbout AJ et al (2007) Reliability, reproducibility and variability of the traditional Histologic/Histochemical Grading System vs the new OARSI Osteoarthritis Cartilage Histopathology Assessment System. Osteoarthr Cartil 15:1241–1248CrossRef
36.
Zurück zum Zitat Spivak JM, Grande DA, Benyishay A et al (1992) The effect of low-level Nd:YAG laser energy on adult articular cartilage in vitro. Arthroscopy 8:36–43PubMedCrossRef Spivak JM, Grande DA, Benyishay A et al (1992) The effect of low-level Nd:YAG laser energy on adult articular cartilage in vitro. Arthroscopy 8:36–43PubMedCrossRef
37.
Zurück zum Zitat Mo JH, Kim JS, Lee JW et al (2013) Viability and regeneration of chondrocytes after laser cartilage reshaping using 1,460 nm diode laser. Clinical & Experimental Otorhinolaryngology 6:82–89CrossRef Mo JH, Kim JS, Lee JW et al (2013) Viability and regeneration of chondrocytes after laser cartilage reshaping using 1,460 nm diode laser. Clinical & Experimental Otorhinolaryngology 6:82–89CrossRef
38.
39.
Zurück zum Zitat Sobol EN, Milner TE, Shekhter AB et al (2010) Laser reshaping and regeneration of cartilage. Laser Phys Lett 4:488–502CrossRef Sobol EN, Milner TE, Shekhter AB et al (2010) Laser reshaping and regeneration of cartilage. Laser Phys Lett 4:488–502CrossRef
40.
Zurück zum Zitat Yip KK, Leung CPM, Cheung WHL, Lai YM (2016) Effects of low level laser therapy: a study of status of cartilage, subchondral bone and gait adaptation in the rat anterior cruciate ligament transection model of osteoarthritis. Osteoarthr Cartil 24:S487–S488CrossRef Yip KK, Leung CPM, Cheung WHL, Lai YM (2016) Effects of low level laser therapy: a study of status of cartilage, subchondral bone and gait adaptation in the rat anterior cruciate ligament transection model of osteoarthritis. Osteoarthr Cartil 24:S487–S488CrossRef
41.
Zurück zum Zitat Tomazoni SS, Leal-Junior EC, Pallotta RC et al (2017) Effects of photobiomodulation therapy, pharmacological therapy, and physical exercise as single and/or combined treatment on the inflammatory response induced by experimental osteoarthritis. Lasers Med Sci 32:101–108PubMedCrossRef Tomazoni SS, Leal-Junior EC, Pallotta RC et al (2017) Effects of photobiomodulation therapy, pharmacological therapy, and physical exercise as single and/or combined treatment on the inflammatory response induced by experimental osteoarthritis. Lasers Med Sci 32:101–108PubMedCrossRef
42.
Zurück zum Zitat Alves AC, Vieira R, Lealjunior E et al (2013) Effect of low-level laser therapy on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Arthritis Research & Therapy 15:R116CrossRef Alves AC, Vieira R, Lealjunior E et al (2013) Effect of low-level laser therapy on the expression of inflammatory mediators and on neutrophils and macrophages in acute joint inflammation. Arthritis Research & Therapy 15:R116CrossRef
44.
45.
Zurück zum Zitat Angelova A, Ilieva EM (2016) Effectiveness of high intensity laser therapy for reduction of pain in knee osteoarthritis: Pain Research & Management 2016:9163618 Angelova A, Ilieva EM (2016) Effectiveness of high intensity laser therapy for reduction of pain in knee osteoarthritis: Pain Research & Management 2016:9163618
46.
Zurück zum Zitat Kheshie AR, Alayat MSM, Ali MME (2014) High-intensity versus low-level laser therapy in the treatment of patients with knee osteoarthritis: a randomized controlled trial. Lasers Med Sci 29:1371–1376PubMedCrossRef Kheshie AR, Alayat MSM, Ali MME (2014) High-intensity versus low-level laser therapy in the treatment of patients with knee osteoarthritis: a randomized controlled trial. Lasers Med Sci 29:1371–1376PubMedCrossRef
Metadaten
Titel
Laser photobiomodulation for cartilage defect in animal models of knee osteoarthritis: a systematic review and meta-analysis
verfasst von
Anfeng Xiang
Hongyong Deng
Ke Cheng
Hui Liu
Lin Lin
Xiaoyi Qu
Sheng Liu
Xueyong Shen
Publikationsdatum
17.12.2019
Verlag
Springer London
Erschienen in
Lasers in Medical Science / Ausgabe 4/2020
Print ISSN: 0268-8921
Elektronische ISSN: 1435-604X
DOI
https://doi.org/10.1007/s10103-019-02937-8

Weitere Artikel der Ausgabe 4/2020

Lasers in Medical Science 4/2020 Zur Ausgabe