
Laboratory Animal and Comparative Medicine ›› 2023, Vol. 43 ›› Issue (4): 406-414.DOI: 10.12300/j.issn.1674-5817.2023.026
• Animal Models of Human Diseases • Previous Articles Next Articles
Yasheng DENG(
), Jiang LIN, Chiling GAN, Guanfeng ZENG, Jiayin HUANG, Huifang DENG, Yingxian MA, Siyin HAN(
)(
)
Received:2023-02-24
Revised:2023-04-11
Online:2023-08-25
Published:2023-08-25
Correspondence to:
Siyin HAN
CLC Number:
Yasheng DENG,Jiang LIN,Chiling GAN,et al. Literature Analysis of the Preparation Elements of Animal Models of Skin Photoaging and the Data of Subjects[J]. Laboratory Animal and Comparative Medicine, 2023, 43(4): 406-414. DOI: 10.12300/j.issn.1674-5817.2023.026.
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URL: https://www.slarc.org.cn/dwyx/EN/10.12300/j.issn.1674-5817.2023.026
动物种类 Animal species | 品种品系 Breed or strain | 频次(所占百分比) Frequency (percentage/%) |
|---|---|---|
| 小鼠Mouse | SKH-1无毛小鼠 | 60 (23.34) |
| KM小鼠 | 52 (20.23) | |
| BALB/c小鼠 | 23 (8.95) | |
| HR-1无毛小鼠 | 22 (8.56) | |
| ICR小鼠 | 20 (7.78) | |
| C57BL/6小鼠 | 3 (1.17) | |
| Swiss小鼠 | 3 (1.17) | |
| HRM-2无毛小鼠 | 2 (0.78) | |
| 未知种类无毛小鼠 | 2 (0.78) | |
| 大鼠Rat | SD大鼠 | 53 (20.62) |
| Wistar大鼠 | 8 (3.11) | |
| F344大鼠 | 2 (0.78) | |
| HWY/Slc无毛大鼠 | 1 (0.39) | |
| 豚鼠Guinea pig | 未知种类 | 4 (1.56) |
| 猪Pig | 广西巴马小型猪 | 2 (0.78) |
Table 1 Species and frequency distribution of skin photoaging model animals
动物种类 Animal species | 品种品系 Breed or strain | 频次(所占百分比) Frequency (percentage/%) |
|---|---|---|
| 小鼠Mouse | SKH-1无毛小鼠 | 60 (23.34) |
| KM小鼠 | 52 (20.23) | |
| BALB/c小鼠 | 23 (8.95) | |
| HR-1无毛小鼠 | 22 (8.56) | |
| ICR小鼠 | 20 (7.78) | |
| C57BL/6小鼠 | 3 (1.17) | |
| Swiss小鼠 | 3 (1.17) | |
| HRM-2无毛小鼠 | 2 (0.78) | |
| 未知种类无毛小鼠 | 2 (0.78) | |
| 大鼠Rat | SD大鼠 | 53 (20.62) |
| Wistar大鼠 | 8 (3.11) | |
| F344大鼠 | 2 (0.78) | |
| HWY/Slc无毛大鼠 | 1 (0.39) | |
| 豚鼠Guinea pig | 未知种类 | 4 (1.56) |
| 猪Pig | 广西巴马小型猪 | 2 (0.78) |
辐射光源与造模部位距离/cm Distance between the radiation source and the moulding site/cm | 频次(所占百分比/%) Frequency (percentage/%) | 累计照射剂量/(J·cm2) Cumulative exposure dose/ (J·cm2) | 频次(所占百分比/%) Frequency (percentage/%) |
|---|---|---|---|
| 2 | 1 (0.92) | UVA≤50 | 6 (9.09) |
| 6.5 | 1 (0.92) | 50<UVA≤100 | 13 (19.70) |
| 10 | 4 (3.67) | 100<UVA≤150 | 20 (30.30) |
| 15 | 6 (5.50) | 150<UVA≤200 | 13 (19.70) |
| 18 | 2 (1.84) | 200<UVA≤250 | 0 (0.00) |
| 20 | 11 (10.09) | 250<UVA≤300 | 5 (7.58) |
| 22 | 1 (0.92) | UVA>300 | 9 (13.63) |
| 23 | 2 (1.83) | UVB≤5 | 12 (15.58) |
| 25 | 3 (2.75) | 5<UVB≤10 | 24 (31.17) |
| 30 | 36 (33.03) | 10<UVB≤15 | 8 (10.39) |
| 35 | 10 (9.17) | 15<UVB≤20 | 2 (2.60) |
| 40 | 21 (19.27) | 20<UVB≤25 | 10 (12.99) |
| 42 | 2 (1.84) | 25<UVB≤30 | 1 (1.30) |
| 50 | 6 (5.50) | UVB>30 | 20 (25.97) |
| 100 | 3 (2.75) |
Table 4 Distance between the radiation source and the modelling site as well as cumulative UV exposure doses in the animal model of skin photoaging
辐射光源与造模部位距离/cm Distance between the radiation source and the moulding site/cm | 频次(所占百分比/%) Frequency (percentage/%) | 累计照射剂量/(J·cm2) Cumulative exposure dose/ (J·cm2) | 频次(所占百分比/%) Frequency (percentage/%) |
|---|---|---|---|
| 2 | 1 (0.92) | UVA≤50 | 6 (9.09) |
| 6.5 | 1 (0.92) | 50<UVA≤100 | 13 (19.70) |
| 10 | 4 (3.67) | 100<UVA≤150 | 20 (30.30) |
| 15 | 6 (5.50) | 150<UVA≤200 | 13 (19.70) |
| 18 | 2 (1.84) | 200<UVA≤250 | 0 (0.00) |
| 20 | 11 (10.09) | 250<UVA≤300 | 5 (7.58) |
| 22 | 1 (0.92) | UVA>300 | 9 (13.63) |
| 23 | 2 (1.83) | UVB≤5 | 12 (15.58) |
| 25 | 3 (2.75) | 5<UVB≤10 | 24 (31.17) |
| 30 | 36 (33.03) | 10<UVB≤15 | 8 (10.39) |
| 35 | 10 (9.17) | 15<UVB≤20 | 2 (2.60) |
| 40 | 21 (19.27) | 20<UVB≤25 | 10 (12.99) |
| 42 | 2 (1.84) | 25<UVB≤30 | 1 (1.30) |
| 50 | 6 (5.50) | UVB>30 | 20 (25.97) |
| 100 | 3 (2.75) |
分类 Classification | 检测指标 Testing indicators | 频次(所占百分比/%) Frequency(percentage/%) |
|---|---|---|
皮肤外观特征 Skin appearance features | 皮肤外观观察 | 80 (9.06) |
| 皮肤(表皮、真皮)厚度 | 46 (5.21) | |
| 皱纹测定 | 31 (3.51) | |
| 皮肤弹性 | 9 (1.02) | |
皮肤含水量变化 Skin moisture content change | 经皮水分损失 | 41 (4.64) |
| 皮肤(角质层)水合作用测定 | 14 (1.58) | |
| 皮肤含水量测定 | 5 (0.57) | |
皮肤病理检查 Dermatologic examination | 皮肤组织病理检查 | 173 (19.59) |
| 纤维染色 | 99 (11.21) | |
| 免疫组化 | 64 (7.26) | |
| 免疫荧光 | 9 (1.02) | |
皮肤组织匀浆检测 Skin tissue homogenisation | 丙二醛、羟脯氨酸、过氧化氢酶活性、透明质酸、超氧化物歧化酶活性、谷胱甘肽过氧化酶活性、皮肤组织总抗氧化能力 | 108 (12.23) |
免疫检测 Immunity testing | 免疫印迹 | 81 (9.17) |
| 酶联免疫吸附试验 | 26 (2.94) | |
PCR分析 PCR analysis | 反转录PCR | 30 (3.40) |
| 实时荧光PCR | 19 (2.15) | |
血液检查 Blood examination | 血清 | 19 (2.15) |
| 全血或血浆 | 6 (0.68) | |
其他 Others | β-半乳糖苷酶染色 | 8 (0.91) |
| 体重变化 | 9 (1.02) | |
| 活性氧定量分析/髓过氧化物酶活性测定 | 6 (0.68) |
Table 3 Testing indicators and classification of skin photoaging animal models
分类 Classification | 检测指标 Testing indicators | 频次(所占百分比/%) Frequency(percentage/%) |
|---|---|---|
皮肤外观特征 Skin appearance features | 皮肤外观观察 | 80 (9.06) |
| 皮肤(表皮、真皮)厚度 | 46 (5.21) | |
| 皱纹测定 | 31 (3.51) | |
| 皮肤弹性 | 9 (1.02) | |
皮肤含水量变化 Skin moisture content change | 经皮水分损失 | 41 (4.64) |
| 皮肤(角质层)水合作用测定 | 14 (1.58) | |
| 皮肤含水量测定 | 5 (0.57) | |
皮肤病理检查 Dermatologic examination | 皮肤组织病理检查 | 173 (19.59) |
| 纤维染色 | 99 (11.21) | |
| 免疫组化 | 64 (7.26) | |
| 免疫荧光 | 9 (1.02) | |
皮肤组织匀浆检测 Skin tissue homogenisation | 丙二醛、羟脯氨酸、过氧化氢酶活性、透明质酸、超氧化物歧化酶活性、谷胱甘肽过氧化酶活性、皮肤组织总抗氧化能力 | 108 (12.23) |
免疫检测 Immunity testing | 免疫印迹 | 81 (9.17) |
| 酶联免疫吸附试验 | 26 (2.94) | |
PCR分析 PCR analysis | 反转录PCR | 30 (3.40) |
| 实时荧光PCR | 19 (2.15) | |
血液检查 Blood examination | 血清 | 19 (2.15) |
| 全血或血浆 | 6 (0.68) | |
其他 Others | β-半乳糖苷酶染色 | 8 (0.91) |
| 体重变化 | 9 (1.02) | |
| 活性氧定量分析/髓过氧化物酶活性测定 | 6 (0.68) |
| 1 | CHEN X, YANG C S, JIANG G. Research progress on skin photoaging and oxidative stress[J]. Postepy Dermatol Alergol, 2021, 38(6):931-936. DOI: 10.5114/ada.2021.112275 . |
| 2 | BOCHEVA G, SLOMINSKI R M, JANJETOVIC Z, et al. Protective role of melatonin and its metabolites in skin aging[J]. Int J Mol Sci, 2022, 23(3):1238. DOI: 10.3390/ijms23031238 . |
| 3 | PARRADO C, MERCADO-SAENZ S, PEREZ-DAVO A, et al. Environmental stressors on skin aging. mechanistic insights[J]. Front Pharmacol, 2019, 10:759. DOI: 10.3389/fphar.2019.00759 . |
| 4 | SALMINEN A, KAARNIRANTA K, KAUPPINEN A. Photoaging: UV radiation-induced inflammation and immunosuppression accelerate the aging process in the skin[J]. Inflamm Res, 2022, 71(7):817-831. DOI: 10.1007/s00011-022-01598-8 . |
| 5 | SWIADER A, CAMARÉ C, GUERBY P, et al. 4-hydroxynonenal contributes to fibroblast senescence in skin photoaging evoked by UV-A radiation[J]. Antioxidants (Basel), 2021, 10(3):365. DOI: 10.3390/antiox10030365 . |
| 6 | KANG M K, KIM D Y, OH H, et al. Dietary collagen hydrolysates ameliorate furrowed and parched skin caused by photoaging in hairless mice[J]. Int J Mol Sci, 2021, 22(11):6137. DOI: 10.3390/ijms22116137 . |
| 7 | JIN X X, ZHANG X D, LI Y B, et al. Long-acting microneedle patch loaded with adipose collagen fragment for preventing the skin photoaging in mice[J]. Biomater Adv, 2022, 135:212744. DOI: 10.1016/j.bioadv.2022.212744 . |
| 8 | CHEN Q Y, ZHANG H Y, YANG Y M, et al. Metformin attenuates UVA-induced skin photoaging by suppressing mitophagy and the PI3K/AKT/mTOR pathway[J]. Int J Mol Sci, 2022, 23(13):6960. DOI: 10.3390/ijms23136960 . |
| 9 | GUAN L L, LIM H W, MOHAMMAD T F. Sunscreens and Photoaging: A Review of Current Literature[J]. Am J Clin Dermatol, 2021, 22(6): 819-828. DOI: 10.1007/s40257-021-00632-5 . |
| 10 | POON F, KANG S, CHIEN A L. Mechanisms and treatments of photoaging[J]. Photodermatol Photoimmunol Photomed, 2015, 31(2): 65-74. DOI: 10.1111/phpp.12145 . |
| 11 | LIANG Y, SIMAITI A, XU M, et al. Antagonistic Skin Toxicity of Co-Exposure to Physical Sunscreen Ingredients Zinc Oxide and Titanium Dioxide Nanoparticles[J]. Nanomaterials (Basel), 2022, 12(16). DOI: 10.3390/nano12162769 . |
| 12 | 丁苗苗, 魏玲, 陈春宇, 等. 中药有效成分抗皮肤光老化作用及其机制研究进展[J]. 中国中药杂志, 2022, 47(14): 3709-3717. DOI: 10.19540/j.cnki.cjcmm.20220415.601 . |
| DING M M, WEI L, CHEN C Y, et al. Anti-photoaging effects and mechanisms of active ingredients of Chinese medicine: a review[J]. China J Chin Mater Med, 2022, 47(14): 3709-3717. DOI: 10.19540/j.cnki.cjcmm.20220415.601 . | |
| 13 | 朱姗, 赵志月, 王子静, 等. 皮肤老化分子机制及中药防治皮肤老化研究进展[J]. 天津中医药大学学报, 2021, 40(4): 431-439. DOI: 10.11656/j.issn.1673-9043.2021.04.06 . |
| ZHU S, ZHAO Z Y, WANG Z J, et al. Research progress of molecular mechanism of skin aging and prevention of skin aging with traditional Chinese medicine[J]. J Tianjin Univ Tradit Chin Med, 2021, 40(4): 431-439. DOI: 10.11656/j.issn.1673-9043.2021.04.06 . | |
| 14 | 王璐, 李中平, 曹艳亚, 等. 沙参麦冬汤对皮肤光老化模型小鼠的保护作用[J]. 中国老年学杂志, 2015, 35(6): 1628-1631. DOI: 10.3969/j.issn.1005-9202.2015.06.091 . |
| WANG L, LI Z P, CAO Y Y, et al. Protective effect of Shashen Maidong Decoction on skin photoaging model mice[J]. Chin J Gerontol, 2015, 35(6): 1628-1631. DOI: 10.3969/j.issn.1005-9202.2015.06.091 . | |
| 15 | 张宇, 曹南开, 张小卿, 等. 桃红四物汤对光老化小鼠皮肤组织中MMP-1、MMP-3 mRNA及血清中TNF-α、IL-1含量表达的影响[J]. 中华中医药学刊, 2015, 33(4): 919-921, 后插8. DOI: 10.13193/j.issn.1673-7717.2015.04.048 . |
| ZHANG Y, CAO N K, ZHANG X Q, et al. Effect of Taohongsiwu Decoction on expressions of MMP-1, MMP-3 mRNA in skin tissue and TNF-a, IL-1 in blood serum of photoaged mice[J]. Chin Arch Tradit Chin Med, 2015, 33(4): 919-921, 10008. DOI: 10.13193/j.issn.1673-7717.2015.04.048 . | |
| 16 | SHAMLOUL N, HASHIM P W, NIA J J, et al. The role of vitamins and supplements on skin appearance[J]. Cutis, 2019, 104(4): 220-224. |
| 17 | 邓映, 杜宇, 刘萍, 等. 氧化应激在皮肤光老化中的作用[J]. 中国医疗美容, 2020, 10(8): 117-122. DOI: 10.19593/j.issn.2095-0721.2020.08.030 . |
| DENG Y, DU Y, LIU P, et al. The role of oxidative stress in skin photoaging[J]. Chin Med Cosmetol, 2020, 10(8): 117-122. DOI: 10.19593/j.issn.2095-0721.2020.08.030 . | |
| 18 | CHENOUARD V, REMY S, TESSON L, et al. Advances in genome editing and application to the generation of genetically modified rat models[J]. Front Genet, 2021, 12:615491. DOI: 10.3389/fgene.2021.615491 . |
| 19 | MEEK S, MASHIMO T, BURDON T. From engineering to editing the rat genome[J]. Mamm Genome, 2017, 28(7):302-314. DOI: 10.1007/s00335-017-9705-8 . |
| 20 | 王诗萌, 李甜, 杨田野, 等. 紫外线照射实验动物的皮肤光老化模型研究进展[J]. 中国美容医学, 2018, 27(7):146-150. DOI: 10.14163/j.cnki.11-5547/r.2016.30.160 . |
| WANG S M, LI T, YANG T Y, et al. Progressof skin photoaging models of ultraviolet irradiated experimental animals[J]. Chin J Aesthetic Med, 2018, 27(7):146-150. DOI: 10.14163/j.cnki.11-5547/r.2016.30.160 . | |
| 21 | RUIZ-LARREA M B, MARTÍN C, MARTÍNEZ R, et al. Antioxidant activities of estrogens against aqueous and lipophilic radicals; differences between phenol and catechol estrogens[J]. Chem Phys Lipids, 2000, 105(2):179-188. DOI: 10.1016/S0009-3084(00)00120-1 . |
| 22 | LEPHART E D. Skin aging and oxidative stress: Equol's anti-aging effects via biochemical and molecular mechanisms[J]. Ageing Res Rev, 2016, 31:36-54. DOI: 10.1016/j.arr.2016.08.001 . |
| 23 | LEPHART E D, NAFTOLIN F. Menopause and the skin: old Favorites and new innovations in cosmeceuticals for estrogen-deficient skin[J]. Dermatol Ther (Heidelb), 2021, 11(1):53-69. DOI: 10.1007/s13555-020-00468-7 . |
| 24 | PARK H M, CHO M H, CHO Y, et al. Royal jelly increases collagen production in rat skin after ovariectomy[J]. J Med Food, 2012, 15(6):568-575. DOI: 10.1089/jmf.2011.1888 . |
| 25 | LEPHART E D. A review of the role of estrogen in dermal aging and facial attractiveness in women[J]. J Cosmet Dermatol, 2018, 17(3):282-288. DOI: 10.1111/jocd.12508 . |
| 26 | LEPHART E D, NAFTOLIN F. Factors influencing skin aging and the important role of estrogens and selective estrogen receptor modulators (SERMs)[J]. Clin Cosmet Investig Dermatol, 2022, 15:1695-1709. DOI: 10.2147/CCID.S333663 . |
| 27 | LI W G, LUO X Y. An invariant-based damage model for human and animal skins[J]. Ann Biomed Eng, 2016, 44(10):3109-3122. DOI: 10.1007/s10439-016-1603-9 . |
| 28 | 陶丛敏, 马文宇. 光老化的动物模型研究进展[J]. 临床皮肤科杂志, 2018, 47(6):386-388. DOI: 10.16761/j.cnki.1000-4963.2018.06.017 . |
| TAO C M, MA W Y. Research progress of animal model of skin photoaging[J]. J Clin Dermatol, 2018, 47(6):386-388. DOI: 10.16761/j.cnki.1000-4963.2018.06.017 . | |
| 29 | GUO K K, LIU R, JING R R, et al. Cryptotanshinone protects skin cells from ultraviolet radiation-induced photoaging via its antioxidant effect and by reducing mitochondrial dysfunction and inhibiting apoptosis[J]. Front Pharmacol, 2022, 13:1036013. DOI: 10.3389/fphar.2022.1036013 . |
| 30 | 孔悦, 郭砚. 皮肤光老化小鼠模型的构建及效果评估[J]. 实验动物与比较医学, 2021, 41(2):116-121. DOI: 10.12300/j.issn.1674-5817.2020.191 |
| KONG Y, GUO Y. Construction and evaluation of skin photoaging mouse model[J]. Lab Animal Comp Med, 2021, 41(2):116-121. DOI: 10.12300/j.issn.1674-5817.2020.191 . | |
| 31 | GENDRISCH F, ESSER P R, SCHEMPP C M, et al. Luteolin as a modulator of skin aging and inflammation[J]. Biofactors, 2021, 47(2):170-180. DOI: 10.1002/biof.1699 . |
| 32 | ZAMARRÓN A, LORRIO S, GONZÁLEZ S, et al. Fernblock prevents dermal cell damage induced by visible and infrared A radiation[J]. Int J Mol Sci, 2018, 19(8):2250. DOI: 10.3390/ijms19082250 . |
| 33 | CHOI K S, KUNDU J K, CHUN K S, et al. Rutin inhibits UVB radiation-induced expression of COX-2 and iNOS in hairless mouse skin: p38 MAP kinase and JNK as potential targets[J]. Arch Biochem Biophys, 2014, 559:38-45. DOI: 10.1016/j.abb.2014.05.016 . |
| 34 | KUNDU J K, CHANG E J, FUJII H, et al. Oligonol inhibits UVB-induced COX-2 expression in HR-1 hairless mouse skin: AP-1 and C/EBP as potential upstream targets[J]. Photochem Photobiol, 2008, 84(2):399-406. DOI: 10.1111/j.1751-1097.2007.00277.x . |
| 35 | PAL H C, ATHAR M, ELMETS C A, et al. Fisetin inhibits UVB-induced cutaneous inflammation and activation of PI3K/AKT/NFκB signaling pathways in SKH-1 hairless mice[J]. Photochem Photobiol, 2015, 91(1):225-234. DOI: 10.1111/php.12337 . |
| 36 | MOON N R, KANG S, PARK S. Consumption of ellagic acid and dihydromyricetin synergistically protects against UV-B induced photoaging, possibly by activating both TGF-β1 and Wnt signaling pathways[J]. J Photochem Photobiol B Biol, 2018, 178:92-100. DOI: 10.1016/j.jphotobiol.2017.11.004 . |
| 37 | TSUKAHARA K, MORIWAKI S, FUJIMURA T, et al. Inhibitory effect of an extract of Sanguisorba officinalis L. on ultraviolet-B-induced photodamage of rat skin[J]. Biol Pharm Bull, 2001, 24(9):998-1003. DOI: 10.1248/bpb.24.998 . |
| 38 | TANG Z T, TONG X L, HUANG J H, et al. Research progress of keratinocyte-programmed cell death in UV-induced Skin photodamage[J]. Photodermatol Photoimmunol Photomed, 2021, 37(5):442-448. DOI: 10.1111/phpp.12679 . |
| 39 | Oh J H, KARADENIZ F, LEE J I, et al. Antiphotoaging Effect of (2'S)-Columbianetin from Corydalis heterocarpa in UVA-Irradiated Human Dermal Fibroblasts[J]. App Sci, 2020, 10(7): 2568. DOI:10.3390/app10072568 . |
| 40 | VATS K, KRUGLOV O, MIZES A, et al. Keratinocyte death by ferroptosis initiates skin inflammation after UVB exposure[J]. Redox Biol, 2021, 47:102143. DOI: 10.1016/j.redox.2021.102143 . |
| 41 | RANA S, FATIMA N, YAQOOB S, et al. Probing photoprotection properties of lipophilic chain conjugated thiourea-aryl group molecules to attenuate ultraviolet-A induced cellular and DNA damages[J]. Sci Rep, 2022, 12(1):20907. DOI: 10.1038/s41598-022-25515-5 . |
| 42 | ZAMARRÓN A, MOREL E, LUCENA S R, et al. Extract of Deschampsia antarctica (EDA) prevents dermal cell damage induced by UV radiation and 2, 3, 7, 8-tetrachlorodibenzo-p-dioxin[J]. Int J Mol Sci, 2019, 20(6):1356. DOI: 10.3390/ijms20061356 . |
| 43 | ATALAY S, GĘGOTEK A, WROŃSKI A, et al. Therapeutic application of cannabidiol on UVA and UVB irradiated rat skin. A proteomic study[J]. J Pharm Biomed Anal, 2021, 192:113656. DOI: 10.1016/j.jpba.2020.113656 . |
| 44 | KHAN A Q, TRAVERS J B, KEMP M G. Roles of UVA radiation and DNA damage responses in melanoma pathogenesis[J]. Environ Mol Mutagen, 2018, 59(5):438-460. DOI: 10.1002/em.22176 . |
| 45 | KHAN A, BAI H L, KHAN A, et al. Neferine prevents ultraviolet radiation-induced skin photoaging[J]. Exp Ther Med, 2020, 19(5):3189-3196. DOI: 10.3892/etm.2020.8587 . |
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