J.ophthalmol.(Ukraine).2019;2:55-60.

http://doi.org/10.31288/oftalmolzh201925560

Received: 19 December 2019; Published-online: 24 April 2019


Oxidation and peroxidation in the uvea of the rabbit eyes with experimental uveitis and ocular hypertension

I.M. Mikheitseva, Dr Sc (Biol); N.V. Bondarenko, Postgraduate Student; S.G. Kolomiichuk, Research Fellow; T.I. Siroshtanenko, Junior Research Fellow

Filatov Institute of Eye Diseases and Tissue Therapy, NAMS of Ukraine; Odessa (Ukraine) 

E-mail: filatovbiochem@ukr.net

TO CITE THIS ARTICLE: Mikheitseva IM, Bondarenko NV, Kolomiichuk SG, Siroshtanenko TI. Oxidation and peroxidation in the uvea of the rabbit eyes with experimental uveitis and ocular hypertension. J.ophthalmol.(Ukraine).2019;2:55-60. http://doi.org/10.31288/oftalmolzh201925560


Background. The role of metabolic changes in the anterior eye tissues in the pathogenesis of uveal inflammation in patients with elevated intraocular pressure has been studied poorly. Of particular interest, in this respect, are free radical mechanisms, which can be a trigger of oxidant stress and cause damage to cell membranes in ocular tissues.

Purpose. To study the activity of pro-oxidant enzymes and  levels of lipid peroxidation products in the uvea tissues in the rabbits with experimental anterior non-infectious uveitis against the background of ocular hypertension. 

Material and Methods. Forty-one rabbits were divided into 4 study groups. Group 1: 10 animals with experimental ocular hypertension; group 2: 10 animals with experimental allergic uveitis; group 3: 12 animals with ocular hypertension and allergic uveitis; and group 4: 9 intact animals serving as controls. To simulate ocular hypertension in the groups 1 and 3, the animals were made a single 0.1 ml injection of 0.3% carbomer into the anterior chamber. The tissues of the uvea and the aqueous humour were studied biochemically. We estimated the activity of pro-oxidant enzymes, NADPH oxidase and xanthine oxidase, and the content of lipid peroxides: malonic dialdehyde and diene conjugates. The data of the experimental studies were processed using parametric statistical tests with an SPSS package and Statistica 5.5

Results. The activity of pro-oxidants enzymes was increased in all uvea tissues in all study groups; the maximal NADPH oxidase and xanthine oxidase activity was in the animals with both ocular hypertension and uveitis. The NADPH oxidase and xanthine oxidase activity was increased by 51.1% and 63.9% (р<0.001), respectively, as compared with controls. Lipid peroxidation with accumulation of toxic products in the uvea and aqueous humour was noted both in the ocular hypertension-only and uveitis-only groups; however, the maximal values were in an uveitis model against the background of ocular hypertension, where malonic dialdehyde and diene conjugates were increased, respectively, by 67.0% and 54.3% (р<0.001) in the aqueous humour, and, respectively, by 93.1% and 69.1% (р<0.001) in the uvea tissues, compared with controls. 

Conclusions. Our findings reveal an important link in the pathogenic action of elevated IOP which burdens inflammation in the uveal tissues through the activation of oxidative and peroxidative processes. In addition, our findings support the assumption that primary high-pressure glaucoma can be a factor which worsens inflammation in the anterior eye.

Kewords: ocular hypertension, uveitis, oxidation, lipid peroxidation, malonic dialdehyde, diene conjugates, rabbits

References

1.Erichev VP, Tumanov VP, Panyushkina LA. [Glaucoma and neurodegenerative disease]. Glaukoma. 2012;1:62–68. In Russian. 

2.Zavgorodniaia NG, Pasechnikova NV. [Primary glaucoma: A new look at an old problem]. Zaporizhzhia: Orbita-YUG; 2010. 192 p. In Russian. 

3.Nesterov AP. [Glaucoma]. M.: MIA; 2008. 360p. In Russian. 

4.Pasyechnikova NV, Rykov SA, Naumenko LIu, Kryzhanovskaia TV. [Prevention of Blindness and Visual Impairment in Ukraine (implementation of the WHO’s Vision 2002 program)]. In: [Proceedings of the Conference on Current Issues of Ophthalmology]. 2009, Dnipropetrovsk: 8-11. In Russian.

5.Flammer J, Orgul S, Costa VP. The impact of   ocular blood flow in glaucoma. Ibid. 2002; 21: 359–393.

Crossref  

6.Likhvantseva VG, Gabibov AA, Solomatina MV, Belogurov AA, Korosteleva EV, Vygodin VA. [The role of immune reactions in the pathogenesis of optic neuropathy in normal tension glaucoma]. Natsionalnyi Zhurnal Glaukoma.  2014;13(2):17-28. In Russian. 

7.Sokolov VA, Mkhinini N, Levanova ON. [Autoimmune mechanisms in the pathogenesis of the primary open angle glaucoma]. Rossiiskii meditsinsko-biologicheskii vestnik. 2011;2:154-9. In Russian. 

8.Beishenova GA, Chesnokova NB. [A role of free radical oxidation in the pathogenesis of uveitis]. Rossiiskii oftalmologicheskii zhurnal. 2015;9(2):99-105. In Russian. 

9.Gazizova IR. [The state of the oxidation-reduction system in patients with primary open angle glaucoma]. Kazanskii meditsinskii zhurnal. 2012;3:488-90. In Russian. 

Crossref   

10.Kurysheva NI. [Contribution of free-radical reactions of chamber humor to the development of primary open-angle glaucoma]. Vestn Oftalmol. 1996 Sep-Oct;112(4):3-5. In Russian. 

11. Mikheitseva IN. [Lipid peroxidation in experimental adrenaline-induced glaucoma]. Oftalmol Zh. 1989;(7):427-8. In Russian.

12. Dinh QN, Drummond GR, Sobey ChG, Chrissobolis S. Roles of inflammation, oxidative stress, and vascular dysfunction in hypertension. Biomed. Res. Int. – 2014; 2014:406960. 

Crossref  PubMed 

13.Boland MV, Quigley HA. Risk factors and open-angle glaucoma: classifications and application. J. Glaucoma. 2007;16(4):406-18.

Crossref    PubMed

14.Ko M, Peng P, Ma M. Dinamic changes in reactive oxygen species and antioxidant levels in retinas in experimental glaucoma. Free Radic. Biol. Med. 2005;39:365 – 3.

Crossref   PubMed  

15.Yelskiy VN, Mikheytseva IN. [Disregulatory aspects of glaucoma process (review of literature and own data)]. Zhurnal NAMN Ukrainy. 2011;17(3):235-44. In Russian.   

16.Mikheytseva IN, Yelskiy VN. [Stress-induced dysregulation in glaucoma process and protective infl uence of melatonin]. Patologiia. 2011;8(2):66-8. In Russian.  

17.Wang YY. Experimental study of carbomer glaucoma model in rabbits by injecting different location in anterior chamber. Ophthalmol. 2009;45: 1 - 95.

18.Urvantseva GA, Gracheva EL. [Methods of analysis of living systems: guidance]. Iaroslavl:IarGU; 2013:104p. In Russian. 

19.Fried R, Fried L. Xanthin-Oxydase (Xanthin-Dehydrogenase). In: H. U. Bergmeyer. Methoden der enzymatischen analyse. Berlin: Аcademie Verlag, 1984. B. I.:625 – 629.

20.Orekhovych VN. [Current approaches in biochemistry]. Moscow: Meditsyna; 1977. 392p. In Russian.

21.Nasledov A. [SPSS computer analysis of data in psychology and social studies]. St.-Petersburg: Piter Publ. 2005:416. In Russian.

22.Rebrova ОY. [Statistical analysis of medical data. Usage of the package of application programs STATISTICA]. M.: Media Sphera. 2002:312. In Russian. 

23.Bettin P, Matteo FDi. Glaucoma: present challenges and future trends. Ophthalmic Res. 2013;50:197–208.

Crossref   PubMed 

The authors certify that they have no conflicts of interest in the subject matter or materials discussed in this manuscript.