Modern approaches and perspectives on the prevention and treatment of high-intensity noise damage in military personnel
- 作者: Dvoryanchikov V.V.1, Kuznetsov M.S.2, Golovanov А.E.2, Glasnikov L.A.2, Pastushenkov A.L.3
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隶属关系:
- Saint Petersburg Research Institute of Ear, Throat, Nose and Speech
- Military Medical Academy
- North-Western State Medical University
- 期: 卷 41, 编号 1 (2022)
- 页面: 43-48
- 栏目: Reviews
- URL: https://bakhtiniada.ru/RMMArep/article/view/83176
- DOI: https://doi.org/10.17816/rmmar83176
- ID: 83176
如何引用文章
详细
The specifics of military labor, the effect of harmful, and sometimes dangerous factors in the form of impulse noise, shock waves, constant high-level noise, leads to the risk of developing acutraumatic damage to the hearing organ in military personnel. The urgency of the problem is caused by the lack of a unified theory of the pathogenesis of the disease, the low efficiency of currently existing treatment approaches and the insufficient implementation of a system of preventive measures aimed at hearing preservation and health improvement of people working in conditions of increased noise load. The effect of high-intensity noise causes a disorder of microcirculation in the inner ear resulting in the development of hypoxia. As a result of the above-mentioned processes, there are changes in bioenergetics of cells, accumulation of reactive oxygen and nitrogen forms, leading to oxidative stress, and then to their programmed and/or necrotic death. In addition to hair cell damage, irreversible damage to spiral ganglion neurons also occurs. According to current studies, it has been established that the key role in the regulation of oxygen homeostasis under hypoxia is played by a molecule of the factor induced by it. This undoubtedly stimulates the search for drugs acting on it as a target molecule for the treatment of hearing loss of noise etiology. The paper presents data on the incidence of acutraumatic damage to the hearing organ due to noise of high intensity in military personnel, as well as the current views on the pathogenesis of the disease. Particular attention is paid to the analysis of approaches to the treatment of acute sensorineural hearing loss and the prospects for preventive and therapeutic use of antihypoxants.
作者简介
Vladimir Dvoryanchikov
Saint Petersburg Research Institute of Ear, Throat, Nose and Speech
Email: vmedalor@mail.ru
ORCID iD: 0000-0002-0925-7596
Scopus 作者 ID: 55543501700
M.D., D.Sc. (Medicine), Professor, the Head
俄罗斯联邦, Saint PetersburgMaxim Kuznetsov
Military Medical Academy
编辑信件的主要联系方式.
Email: mskuznecov2@mail.ru
ORCID iD: 0000-0002-5057-3486
SPIN 代码: 7146-3659
Scopus 作者 ID: 57219744469
M.D., Ph.D. (Medicine), Doctoral Candidate Otorhinolaryngology Department
俄罗斯联邦, 6, Akademika Lebedeva str., Saint Petersburg, 194044Аndrei Golovanov
Military Medical Academy
Email: lor_vma@mail.ru
ORCID iD: 0000-0001-7277-103X
SPIN 代码: 4674-3318
M.D., Ph.D. (Medicine), Associate Professor, Deputy Head of the Otorhinolaryngology Department
俄罗斯联邦, Saint PetersburgLev Glasnikov
Military Medical Academy
Email: glaznikov@mail.ru
ORCID iD: 0000-0002-7895-0765
M.D., D.Sc. (Medicine), Professor, Professor at the Otorhinolaryngology Department
俄罗斯联邦, Saint PetersburgAlexander Pastushenkov
North-Western State Medical University
Email: palunov@mail.ru
ORCID iD: 0000-0003-1151-9900
SPIN 代码: 2959-3820
Scopus 作者 ID: 25628566800
Researcher ID: G-5656-2015
M.D., Ph.D. (Medicine), Associate Professor of the Pharmacology and Pharmacy Department
俄罗斯联邦, Saint Petersburg参考
- Pankova VB, Fedina IN. Occupational diseases of ENT organs. Moscow: GEOTAR-Media Publisher; 2021. 544 p. (In Russ.)
- Izmerov NF, ed. Occupational pathology. Moscow: GEOTAR-Media Publisher; 2011. 784 p. (In Russ.)
- Adeninskaya ЕЕ, Gorblyansky YuYu, Khoruzhaya ОG. Comparative analysis of features professional employees sensorineural hearing loss in a variety of sectors. Acta Biomedica Scientifica (East Siberian Biomedical Journal). 2013;6(94):87–91. (In Russ.)
- Yehudai N., Fink N., Shpriz M., Marom T. Acute Acoustic Trauma among Soldiers during an Intense Combat. J Am Acad Audiol. 2017;28(5):436–443. doi: 10.3766/jaaa.16043
- Akhmetzyanov IМ, Zinkin VN, Logatkin SМ, et al. Impulse noise at shooting from small arms and close combat weapon as the factor of military work. Military Medical Journal. 2012;333(6):52–58. (In Russ.)
- Logatkin SМ, Kuznetsov SM, Terentyev LP, et al. Hygienic competence of military personnel of the artillery detachments in the sphere of application of hearing protective equipment. Bulletin of the Russian Military Medical Academy. 2016;3(55):94–98. (In Russ.)
- Khasiev ND, Myachin DV. Professional pathology of military service due to noise exposure. Russian Military Medical Academy Reports. 2020;39(S1):263–265. (In Russ.) doi: 10.17816/rmmar43451
- Labarère J, Lemardeley P, Vincey P, et al. Traumatismes sonores aigus en population militaire. Bilan d’une année de surveillance épidémiologique. Presse médicale. 2000;29(24):1341–1344.
- Medina-Garin DR, Dia A, Bedubourg G, et al. Acute acoustic trauma in the French armed forces during 2007–2014. Noise Health. 2016;18(85):297–302. doi: 10.4103/1463-1741.195802
- Marshall L, Lapsley Miller JA, Heller LM, et al. Detecting incipient inner-ear damage from impulse noise with otoacoustic emissions. J Acoust Soc Am. 2009;125(2):995–1013. doi: 10.1121/1.3050304
- Dvoryanchikov VV, Mironov VG, GRIGOREV SG, et al. Description of the modern combat acoustic trauma. Military Medical Journal. 2020;341(6):16–20. (In Russ.)
- Babaev SY, Kozarenko ЕА, Mitrofanova NN, et al. Treatment of gunfire-induced acoustic injury in a multidisciplinary hospital. University proceedings. Volga region. Humanities. 2018;2(46):120–130. (In Russ.)
- Ding T, Yan A, Liu K. What is noise-induced hearing loss? Br J Hosp Med (Lond). 2019;80(9):525–529. doi: 10.12968/hmed.2019.80.9.525
- Moser T. Molecular Understanding of Hearing – How Does This Matter to the Hearing Impaired? Laryngorhinootologie. 2018;97: 214–230. doi: 10.1055/s-0043-121595
- Sensorineural hearing loss in adults. Clinical recommendations. Moscow; 2016. 27 p. (In Russ.)
- Wilson WR, Byl FM, Laird N. The efficacy of steroids in the treatment of idiopathic sudden hearing loss. A double-blind clinical study. Arch Otolaryngol. 1980;106(12):772–776. doi: 10.1001/archotol.1980.00790360050013
- Chang YS, Bang KH, Jeong B, et al. Effects of early intratympanic steroid injection in patients with acoustic trauma caused by gunshot noise. Acta Otolaryngol. 2017;137(7):716–719. doi: 10.1080/00016489.2017.1280850
- Choi N, Kim JS, Chang YS. Comparison of oral steroid regimens for acute acoustic trauma caused by gunshot noise exposure. J Laryngol Otol. 2019;133(7):566–570. doi: 10.1017/S002221511900121X
- Conlin AE, Parnes LS. Treatment of sudden sensorineural hearing loss: I. A systematic review. Arch Otolaryngol Head Neck Surg. 2007;133(6):573–581. doi: 10.1001/archotol.133.6.573
- Pogson JM, Taylor RL, Young AS, et al. Vertigo with sudden hearing loss: audio-vestibular characteristics. J Neurol. 2016;263(10):2086–2096. doi: 10.1007/s00415-016-8214-0
- Mardassi A, Turki S, Mbarek H, et al. Acute acoustic trauma: how to manage and how to prevent? Tunis Med. 2016;94(11):664.
- Zivić L, Zivić D, Stojanović S. Sudden hearing loss our experience in treatment with vasoactive therapy. Srp Arh Celok Lek. 2008;136(3–4): 91–94. doi: 10.2298/sarh0804091z
- Kurabi A, Keithley EM, Housley GD, et al. Cellular mechanisms of noise-induced hearing loss. Hear Res. 2017;349:129–137. doi: 10.1016/j.heares.2016.11.013
- Fetoni AR, Paciello F, Rolesi R, et al. Targeting dysregulation of redox homeostasis in noise-induced hearing loss: Oxidative stress and ROS signaling. Free Radic Biol Med. 2019;135:46–59. doi: 10.1016/j.freeradbiomed.2019.02.022
- Rosenhall U, Skoog B, Muhr P. Treatment of military acoustic accidents with N-Acetyl-L-cysteine (NAC). Int J Audiol. 2019;58(3): 151–157. doi: 10.1080/14992027.2018.154396126
- Altschuler RA, Halsey K, Kanicki A, et al. Small arms fire-like noise: effects on hearing loss, gap detection and the influence of preventive treatment. Neuroscience. 2019;407:32–40. doi: 10.1016/j.neuroscience.2018.07.027
- Vinogradov VM. Some results and prospects of the study of gutimine – one of the first antihypoxic drugs. In: Pharmacology of amidine compounds. Kishinev: Shtiintsa Publisher; 1972. P. 106–114. (In Russ.)
- Semenza GL. Pharmacologic Targeting of Hypoxia-Inducible Factors. Annu Rev Pharmacol Toxicol. 2019;59:379–403. doi: 10.1146/annurev-pharmtox-010818-021637
- Karagiota A, Kourti M, Simos G, et al. HIF-1α-derived cell-penetrating peptides inhibit ERK-dependent activation of HIF-1 and trigger apoptosis of cancer cells under hypoxia. Cell Mol Life Sci. 2019;76(4):809–825. doi: 10.1007/s00018-018-2985-7
- Pak JH, Yi J, Ryu S, et al. Induction of Redox-Active Gene Expression by CoCl2 Ameliorates Oxidative Stress-Mediated Injury of Murine Auditory Cells. Antioxidants (Basel). 2019;8(9):399. doi: 10.3390/antiox8090399
- Pastushenkov VL, Buynov LG, Kuznetsov MS, et al. HIF-1α as a Target Molecule in the Use of Triazino-Indole Derivative on the Acoustic Trauma Model. Audiol Res. 2021;11(3):365–372. doi: 10.3390/audiolres11030034
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