畜牧兽医学报 ›› 2022, Vol. 53 ›› Issue (1): 1-10.doi: 10.11843/j.issn.0366-6964.2022.01.001
李雅琦, 王鲜忠, 张姣姣*
收稿日期:
2021-07-14
出版日期:
2022-01-23
发布日期:
2022-01-26
通讯作者:
张姣姣,主要从事动物生殖生理与生物技术以及动物生殖内分泌研究,E-mail:zhangjjff@126.com
作者简介:
李雅琦(1998-),女,四川攀枝花人,硕士生,主要从事动物生殖与生物技术研究,E-mail:LYQ9812lyq@163.com
基金资助:
LI Yaqi, WANG Xianzhong, ZHANG Jiaojiao*
Received:
2021-07-14
Online:
2022-01-23
Published:
2022-01-26
摘要: 低温等离子体(non-thermal plasma,NTP)是轻度电离的等离子体,其离子和中性粒子温度远低于电子温度,使得整个放电体系呈现低温状态,目前广泛应用于灭菌消毒、疫苗生产、口腔治疗、伤口愈合和癌症治疗等生物医学领域。NTP产生的活性氧(reactive oxygen species,ROS)及活性氮(reactive nitrogen species,RNS)对于细胞增殖和凋亡的调控作用具有剂量依赖性,在低强度和短时间时,NTP产生较低水平的ROS和RNS可以诱导细胞增殖和血管生成,从而加速伤口愈合;高强度和长时间的NTP处理则会抑制细胞增殖甚至诱发细胞凋亡,但NTP调控细胞增殖和凋亡的机制及其在畜牧业的潜在应用目前还不清楚。因此本文综述了NTP对内皮细胞、角质形成细胞、成纤维细胞、干细胞和恶性肿瘤细胞的影响及可能机制,为NTP应用于伤口愈合和癌症治疗提供理论依据;并且本文还总结了NTP在畜禽动物的饲养环境与健康、生长与繁殖性能以及动物食品加工与保存方面的潜在应用,为促进我国畜牧业生产和保障动物食品安全奠定基础。
中图分类号:
李雅琦, 王鲜忠, 张姣姣. 低温等离子体调控细胞增殖和凋亡的研究进展及其在畜牧业的应用[J]. 畜牧兽医学报, 2022, 53(1): 1-10.
LI Yaqi, WANG Xianzhong, ZHANG Jiaojiao. Research Progress of Cell Proliferation and Apoptosis Regulated by Non-thermal Plasma and Its Application in Animal Husbandry[J]. Acta Veterinaria et Zootechnica Sinica, 2022, 53(1): 1-10.
[1] | CONRADS H,SCHMIDT M.Plasma generation and plasma sources[J].Plasma Sources Sci Technol,2000,9(4):441. |
[2] | KÜÇÜK D,SAVRAN L,ERCAN U K,et al.Evaluation of efficacy of non-thermal atmospheric pressure plasma in treatment of periodontitis:a randomized controlled clinical trial[J].Clin Oral Invest,2020,24(9):3133-3145. |
[3] | CÁMARA-TORRES M,SINHA R,SCOPECE P,et al.Tuning cell behavior on 3D scaffolds fabricated by atmospheric plasma-assisted additive manufacturing[J].ACS Appl Mater Interfaces,2021,13(3):3631-3644. |
[4] | GAN L,JIANG J,DUAN J W,et al.Cold atmospheric plasma applications in dermatology:A systematic review[J].J Biophotonics, 2021,14(3):e202000415. |
[5] | PLATTFAUT I,BESSER M,SEVERING A L,et al.Plasma medicine and wound management:Evaluation of the antibacterial efficacy of a medically certified cold atmospheric argon plasma jet[J].Int J Antimicrob Agents,2021,57(5):106319. |
[6] | LIN L,WANG L L,LIU Y D,et al.Non-thermal plasma inhibits tumor growth and proliferation and enhances the sensitivity to radiation in vitro and in vivo[J].Oncol Rep,2018,40(6):3405-3415. |
[7] | AKTER M,LIM J S,CHOI E H,et al.Non-thermal biocompatible plasma jet induction of apoptosis in brain cancer cells[J]. Cells, 2021,10(2):236. |
[8] | ALIMOHAMMADI M,GOLPOUR M,SOHBATZADEH F,et al.Cold atmospheric plasma is a potent tool to improve chemotherapy in melanoma in vitro and in vivo[J].Biomolecules,2020,10(7):1011. |
[9] | ZHU J J,THOMPSON C B.Metabolic regulation of cell growth and proliferation[J].Nat Rev Mol Cell Biol,2019,20(7): 436-450. |
[10] | STEFANATOS R,SANZ A.The role of mitochondrial ROS in the aging brain[J].FEBS Lett,2018,592(5):743-758. |
[11] | KALGHATGI S,FRIEDMAN G,FRIDMAN A,et al.Endothelial cell proliferation is enhanced by low dose non-thermal plasma through fibroblast growth factor-2 release[J].Ann Biomed Eng,2010,38(3):748-757. |
[12] | WENDE K,STRAßENBURG S,HAERTEL B,et al.Atmospheric pressure plasma jet treatment evokes transient oxidative stress in HaCaT keratinocytes and influences cell physiology[J].Cell Biol Int,2014,38(4):412-425. |
[13] | BALZER J,HEUER K,DEMIR E,et al.Non-thermal dielectric barrier discharge (DBD) effects on proliferation and differentiation of human fibroblasts are primary mediated by hydrogen peroxide[J].PLoS One,2015,10(12):e0144968. |
[14] | YAHAYA A G,OKUYAMA T,KRISTOF J,et al.Direct and indirect bactericidal effects of cold atmospheric-pressure microplasma and plasma jet[J].Molecules,2021,26(9):2523. |
[15] | KWON T,CHANDIMALI N,LEE D H,et al.Potential applications of non-thermal plasma in animal husbandry to improve infrastructure[J].In Vivo,2019,33(4):999-1010. |
[16] | WANG G M,ZHU R H,YANG L C,et al.Non-thermal plasma for inactivated-vaccine preparation[J].Vaccine, 2016,34(8): 1126-1132. |
[17] | JO K,LEE J,LEE S,et al.Curing of ground ham by remote infusion of atmospheric non-thermal plasma[J].Food Chem,2020, 309:125643. |
[18] | ZHANG J J,JO J O,HUYNH D L,et al.Lethality of inappropriate plasma exposure on chicken embryonic development[J]. Oncotarget,2017,8(49):85642-85654. |
[19] | ZHANG J J,WANG X Z,KWON T,et al.Innovative approach of non-thermal plasma application for improving the growth rate in chickens[J].Int J Mol Sci,2018,19(8):2301. |
[20] | ZHANG J J,CHANDIMALI N,KIM N,et al.Demethylation and microRNA differential expression regulate plasma-induced improvement of chicken sperm quality[J].Sci Rep,2019,9(1):8865. |
[21] | ZHANG J J,DO H L,CHANDIMALI N,et al.Non-thermal plasma treatment improves chicken sperm motility via the regulation of demethylation levels[J].Sci Rep,2018,8(1):7576. |
[22] | ZHANG J J,HUYNH D L,CHANDIMALI N,et al.Growth and male reproduction improvement of non-thermal dielectric barrier discharge plasma treatment on chickens[J].J Phys D:Appl Phys,2018,51(20):205201. |
[23] | ZHANG J J,WANG X Z,DO H L,et al.MicroRNA-7450 regulates non-thermal plasma-induced chicken Sertoli cell apoptosis via adenosine monophosphate-activated protein kinase activation[J].Sci Rep,2018,8(1):8761. |
[24] | OKAZAKI Y,TANAKA H,MATSUMOTO K I,et al.Non-thermal plasma-induced DMPO-OH yields hydrogen peroxide[J]. Arch Biochem Biophys,2021,705:108901. |
[25] | EMMERT S,VAN WELZEN A,MASUR K,et al.Cold atmospheric pressure plasma for the treatment of acute and chronic wounds[J].Hautarzt,2020,71(11):855-862. |
[26] | ARNDT S,UNGER P,BERNEBURG M,et al.Cold atmospheric plasma (CAP) activates angiogenesis-related molecules in skin keratinocytes,fibroblasts and endothelial cells and improves wound angiogenesis in an autocrine and paracrine mode[J].J Dermatol Sci, 2018,89(2):181-190. |
[27] | AKTER M,YADAV D K,KI S H,et al.Inactivation of infectious bacteria using nonthermal biocompatible plasma cabinet sterilizer[J].Int J Mol Sci,2020,21(21):8321. |
[28] | OKAZAKI Y,ISHIDZU Y,ITO F,et al.L-Dehydroascorbate efficiently degrades non-thermal plasma-induced hydrogen peroxide[J].Arch Biochem Biophys,2021,700:108762. |
[29] | SHI X M,XU G M,ZHANG G J,et al.Low-temperature plasma promotes fibroblast proliferation in wound healing by ROS-activated NF-κB signaling pathway[J].Curr Med Sci,2018,38(1):107-114. |
[30] | TAN F,FANG Y,ZHU L W,et al.Controlling stem cell fate using cold atmospheric plasma[J].Stem Cell Res Ther,2020,11(1): 368. |
[31] | NOSRATI H,ARAMIDEH KHOUY R,NOSRATI A,et al.Nanocomposite scaffolds for accelerating chronic wound healing by enhancing angiogenesis[J].J Nanobiotechnol,2021,19(1):1. |
[32] | LABERGE A,ARIF S,MOULIN V J.Microvesicles:Intercellular messengers in cutaneous wound healing[J].J Cell Physiol,2018, 233(8): 5550-5563. |
[33] | DUARTE S,PANARIELLO B H D.Comprehensive biomedical applications of low temperature plasmas[J].Arch Biochem Biophys,2020,693:108560. |
[34] | BRANY D,DVORSKÝ D,HALAÁOVŠ E,et al.Cold atmospheric Plasma:a powerful tool for modern medicine[J].Int J Mol Sci,2020,21(8):2932. |
[35] | ARJUNAN K P,FRIEDMAN G,FRIDMAN A,et al.Non-thermal dielectric barrier discharge plasma induces angiogenesis through reactive oxygen species[J].J R Soc Interface,2012,9(66):147-157. |
[36] | VELNAR T,GRADISNIK L.Tissue augmentation in wound healing:the role of endothelial and epithelial cells[J].Med Arch,2018,72(6):444-448. |
[37] | BENINGTON L,RAJAN G,LOCHER C,et al.Fibroblast growth factor 2-a review of stabilisation approaches for clinical applications[J].Pharmaceutics,2020,12(6):508. |
[38] | SIMONS M,GORDON E,CLAESSON-WELSH L.Mechanisms and regulation of endothelial VEGF receptor signalling[J]. Nat Rev Mol Cell Biol,2016,17(10):611-625. |
[39] | PIIPPONEN M,LI D Q,LANDÉN N X.The immune functions of keratinocytes in skin wound healing[J].Int J Mol Sci, 2020, 21(22):8790. |
[40] | PELAIA G,CUDA G,VATRELLA A,et al.Effects of hydrogen peroxide on MAPK activation,IL-8 production and cell viability in primary cultures of human bronchial epithelial cells[J].J Cell Biochem,2004,93(1):142-152. |
[41] | GUO Y J,PAN W W,LIU S B,et al.ERK/MAPK signalling pathway and tumorigenesis[J].Exp Ther Med,2020,19(3): 1997-2007. |
[42] | LOU B S,HSIEH J H,CHEN C M,et al.Helium/argon-generated cold atmospheric plasma facilitates cutaneous wound healing[J].Front Bioeng Biotechnol,2020,8:683. |
[43] | CABEZAS S,HO S,ROS U,et al.Damage of eukaryotic cells by the pore-forming toxin sticholysin II:Consequences of the potassium efflux[J].Biochim Biophys Acta Biomembr,2017,1859(5):982-992. |
[44] | HOTTA E,HARA H,KAMIYA T,et al.Non-thermal atmospheric pressure plasma-induced IL-8 expression is regulated via intracellular K+ loss and subsequent ERK activation in human keratinocyte HaCaT cells[J].Arch Biochem Biophys,2018,644:64-71. |
[45] | URABE H,AKIMOTO R,KAMIYA S,et al.Effects of pulsed electrical stimulation on growth factor gene expression and proliferation in human dermal fibroblasts[J].Mol Cell Biochem,2021,476(1):361-368. |
[46] | OECKINGHAUS A,GHOSH S.The NF-κB family of transcription factors and its regulation[J].Cold Spring Harb Perspect Biol,2009,1(4):a000034. |
[47] | XU G M,SHI X M,CAI J F,et al.Dual effects of atmospheric pressure plasma jet on skin wound healing of mice[J].Wound Repair Regen,2015,23(6):878-884. |
[48] | PARK J,LEE H,LEE H J,et al.Non-thermal atmospheric pressure plasma is an excellent tool to activate proliferation in various mesoderm-derived human adult stem cells[J].Free Radic Biol Med,2019,134:374-384. |
[49] | MOZAFFARI A,GASHTI M P,MIRJALILI M,et al.Argon and argon-oxygen plasma surface modification of gelatin nanofibers for tissue engineering applications[J].Membranes (Basel),2021,11(1):31. |
[50] | BIAZAR E,HEIDARI M,ASEFNEJAD A,et al.The relationship between cellular adhesion and surface roughness in polystyrene modified by microwave plasma radiation[J].Int J Nanomedicine,2011,6(3):631-639. |
[51] | PRASERTSUNG I,KANOKPANONT S,MONGKOLNAVIN R,et al.Comparison of the behavior of fibroblast and bone marrow-derived mesenchymal stem cell on nitrogen plasma-treated gelatin films[J].Mater Sci Eng C Mater Biol Appl,2013,33(7): 4475-4479. |
[52] | MARTÍNEZ-RUIZ A,CADENAS S,LAMAS S.Nitric oxide signaling:classical,less classical,and nonclassical mechanisms[J]. Free Radic Biol Med,2011,51(1):17-29. |
[53] | PARK J,LEE H,LEE H J,et al.Non-thermal atmospheric pressure plasma efficiently promotes the proliferation of adipose tissue-derived stem cells by activating NO-response pathways[J].Sci Rep,2016,6(1):39298. |
[54] | PARK J,SUH D,TANG T Y,et al.Non-thermal atmospheric pressure plasma induces epigenetic modifications that activate the expression of various cytokines and growth factors in human mesoderm-derived stem cells[J].Free Radic Biol Med,2020,148: 108-122. |
[55] | CAO W,CHEN H D,YU Y W,et al.Changing profiles of cancer burden worldwide and in China:a secondary analysis of the global cancer statistics 2020[J].Chin Med J (Engl),2021,134(7):783-791. |
[56] | KEIDAR M,WALK R,SHASHURIN A,et al.Cold plasma selectivity and the possibility of a paradigm shift in cancer therapy[J].Br J Cancer,2011,105(9):1295-1301. |
[57] | WANG L Y,YANG X Y,YANG C J,et al.The inhibition effect of cold atmospheric plasma-activated media in cutaneous squamous carcinoma cells[J].Future Oncol,2019,15(5):495-505. |
[58] | WU H,LIN J,LIU P D,et al.Reactive oxygen species acts as executor in radiation enhancement and autophagy inducing by AgNPs[J].Biomaterials,2016,101:1-9. |
[59] | CHANG J W,KANG S U,SHIN Y S,et al.Non-thermal atmospheric pressure plasma induces apoptosis in oral cavity squamous cell carcinoma:Involvement of DNA-damage-triggering sub-G1 arrest via the ATM/p53 pathway[J].Arch Biochem Biophys,2014,545:133-140. |
[60] | ISHAQ M,KUMAR S,VARINLI H,et al.Atmospheric gas plasma-induced ROS production activates TNF-ASK1 pathway for the induction of melanoma cancer cell apoptosis[J].Mol Biol Cell,2014,25(9):1523-1531. |
[61] | KNAUS U G.Oxidants in physiological processes[J].Handb Exp Pharmacol,2021,264:27-47. |
[62] | ISHAQ M,EVANS M D M,OSTRIKOV K K.Atmospheric pressure gas plasma-induced colorectal cancer cell death is mediated by Nox2-ASK1 apoptosis pathways and oxidative stress is mitigated by Srx-Nrf2 anti-oxidant system[J].Biochim Biophys Acta,2014,1843(12):2827-2837. |
[63] | MOSCA F,ZANIBONI L,ABDEL SAYED A,et al.Effect of dimethylacetamide and N-methylacetamide on the quality and fertility of frozen/thawed chicken semen[J].Poult Sci,2019,98(11):6071-6077. |
[64] | MONTJEAN D,ZINI A,RAVEL C,et al.Sperm global DNA methylation level:association with semen parameters and genome integrity[J].Andrology,2015,3(2):235-240. |
[65] | QIU L Q,ZHANG M,TANG J M,et al.Innovative technologies for producing and preserving intermediate moisture foods:A review[J].Food Res Int,2019,116:90-102. |
[66] | PARTHASARATHY D K,BRYAN N S.Sodium nitrite:the "cure" for nitric oxide insufficiency[J].Meat Sci,2012, 92(3):274-279. |
[67] | WANG J M,ZHUANG H,LAWRENCE K,et al.Disinfection of chicken fillets in packages with atmospheric cold plasma: effects of treatment voltage and time[J].J Appl Microbiol,2018,124(5):1212-1219. |
[68] | DIRKS B P,DOBRYNIN D,FRIDMAN G,et al.Treatment of raw poultry with nonthermal dielectric barrier discharge plasma to reduce Campylobacter jejuni and Salmonella enterica[J].J Food Prot,2012,75(1):22-28. |
[69] | JAYASENA D D,KIM H J,YONG H I,et al.Flexible thin-layer dielectric barrier discharge plasma treatment of pork butt and beef loin:effects on pathogen inactivation and meat-quality attributes[J].Food Microbiol,2015,46:51-57. |
[70] | LEE E S,JEON Y J,MIN S C.Microbial inactivation and quality preservation of chicken breast salad using atmospheric dielectric barrier discharge cold plasma treatment[J].Foods,2021,10(6):1214. |
[71] | GUROL C,EKINCI F Y,ASLAN N,et al.Low temperature plasma for decontamination of E. coli in milk[J].Int J Food Microbiol, 2012,157(1):1-5. |
[72] | RAGNI L,BERARDINELLI A,VANNINI L,et al.Non-thermal atmospheric gas plasma device for surface decontamination of shell eggs[J].J Food Eng,2010,100(1):125-132. |
[73] | ZIUZINA D,PATIL S,CULLEN P J,et al.Atmospheric cold plasma inactivation of Escherichia coli in liquid media inside a sealed package[J].J Appl Microbiol,2013,114(3):778-787. |
[1] | 李秋云, 田芯源, 廖文圣, 张焕容, 任玉鹏, 杨发龙, 朱江江, 向华. SOCS2对山羊鼻甲骨细胞增殖、周期及凋亡的影响[J]. 畜牧兽医学报, 2024, 55(5): 2226-2240. |
[2] | 霍元楠, 邱美佳, 张姣姣, 杨炜蓉, 王鲜忠. 精氨酸及其代谢物抑制热应激诱导仔猪支持细胞凋亡的机制[J]. 畜牧兽医学报, 2024, 55(2): 587-597. |
[3] | 苗舒, 安济山, 王祚, 肖定福, 兰欣怡, 刘磊, 沈维军, 万发春. 亮氨酸通过PI3K-AKT信号通路促进牛成肌细胞的增殖[J]. 畜牧兽医学报, 2024, 55(1): 142-152. |
[4] | 张万锋, 赵天枝, 李娇, 尤紫薇, 杨阳, 蔡春波, 高鹏飞, 曹果清, 郭晓红, 李步高. NR2F2基因调控猪PK15细胞增殖和凋亡的研究[J]. 畜牧兽医学报, 2023, 54(8): 3242-3251. |
[5] | 王婉洁, 陈南珠, 邹惠影, 周心仪, 郝海生, 庞云渭, 朱化彬, 赵学明, 余大为, 杜卫华. 过表达组蛋白甲基转移酶ASH1L对牛卵丘细胞增殖和凋亡的影响[J]. 畜牧兽医学报, 2023, 54(8): 3358-3368. |
[6] | 张鹏, 王明秀, 敬科民, 彭巍, 田园, 李雨谦, 付长其, 舒适, 钟金城, 蔡欣. FGFs/FGFRs及其介导信号通路基因的异常表达影响犏牛未分化精原细胞增殖活性[J]. 畜牧兽医学报, 2023, 54(7): 2886-2897. |
[7] | 安琪, 于嘉霖, 吴晓玲, 邓光存. 谷氨酰胺对BCG诱导小鼠传代巨噬细胞凋亡的调控作用[J]. 畜牧兽医学报, 2023, 54(7): 3054-3063. |
[8] | 许甜甜, 张彤彤, 王蒙, 王昕. 转录因子Foxq1通过WNT/β-catenin信号通路影响绒山羊毛囊干细胞增殖的研究[J]. 畜牧兽医学报, 2023, 54(6): 2653-2661. |
[9] | 但一昕, 杨璐, 向华, 张焕容, 任玉鹏, 杨发龙, 何翃闳, 朱江江. BIRC5对山羊睾丸细胞周期、凋亡的影响[J]. 畜牧兽医学报, 2023, 54(4): 1511-1524. |
[10] | 任晓丽, 范玉营, 皇甫和平, 刘云, 石冬梅. GSK126对犬乳腺肿瘤细胞上皮间质转化的影响[J]. 畜牧兽医学报, 2023, 54(4): 1721-1729. |
[11] | 陈永平, 寇玉红, 焦文静, 侯晓昱, 范宏刚. 辅酶Q10改善LPS诱导小鼠急性肺损伤的效应分析[J]. 畜牧兽医学报, 2023, 54(4): 1730-1741. |
[12] | 杨光, 徐景, 李新, 胡德宝, 郭益文, 丁向彬, 郭宏, 张林林. 干扰lncbMD对牛骨骼肌卫星细胞增殖分化的影响[J]. 畜牧兽医学报, 2023, 54(3): 1015-1025. |
[13] | 杨晓伟, 赵自亮, 付雨, 于子肖, 赵永聚. TET1基因对小鼠uNK细胞增殖及IFN-γ、VEGF-C和TGF-β1转录水平的影响[J]. 畜牧兽医学报, 2023, 54(3): 1221-1228. |
[14] | 孙雯叶, 李建基, 王亨, 董俊升, 李俊, 崔璐莹. 甲硫脑啡肽通过阿片受体促进脂多糖作用下奶牛子宫内膜基质细胞的增殖[J]. 畜牧兽医学报, 2023, 54(3): 1229-1239. |
[15] | 孙金魁, 许厚强, 石鹏飞, 阮涌. 关岭牛MEF2A基因干扰载体构建及其转染对成肌细胞的影响[J]. 畜牧兽医学报, 2023, 54(2): 584-595. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||