The THE ANALYSIS OF a-CRYSTALLINE PROTEIN IN WHITE AND BRUNESCENT CATARACT

Authors

  • MUHAMMAD HIDAYAT Department of Ophthalmology, Medical Faculty, Andalas University, Padang, West Sumatra, Indonesia
  • ELLYZA NASRUL Department of Clinical Pathology, Medical Faculty, Andalas University, Padang, West Sumatra, Indonesia
  • TJAHJONO GONDHOWIHARJO Department Ophthalmology, Medical Faculty, Indonesia University, Jakarta, Indonesia
  • ANDANI EKA PUTRA Department of Microbiology, Medical Faculty, Andalas University, Padang, West Sumatra, Indonesia

DOI:

https://doi.org/10.22159/ajpcr.2021.v14i9.42012

Keywords:

α-Crystalline protein, White cataract, Brunescent cataract

Abstract

Objectives: The objectives of the study were to determine the difference of concentration and expression of α-crystalline protein in white and brunescent cataract lenses.

Methods: The design of this study is cross-sectional comparative. The subject was cataract patients who underwent cataract surgery in Puskesmas Pariaman, West Sumatra, Indonesia. Lens examination was carried out at the Microbiology Laboratory of FK Unand from July 2019 to February 2020. The samples consisted of 36 subjects who met the inclusion criteria. ELISA examination was used to determine the concentration of α-crystalline protein and Western Blot examination was performed to see the expression of the α-crystalline protein in all subjects.

Results: The difference in the concentration of α-crystalline protein in white cataract and brunescent cataract was not statistically significant, with p=0.129 (p>0.05). The result of Western blot examination was normal expression of α-crystalline protein in white cataract and under expression of α-crystalline protein in brunescent cataracts.

Conclusion: The expression of α-crystalline protein appeared to be different between white and brunescent cataract lenses. In brunescent cataract, under expression of α-crystalline proteins was related to the decrease of chaperone activity. This change occurred allegedly because of photochemical reaction that happened inside the lens.

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References

1. Liu YC, Wilkins M, Kim T, Malyugin B, Mehta JS. Cataracts. Lancet. 2017;390(10094):600–12.
2. Thiagarajan G, Shirao E, Ando K, Inoue A, Balasubramanian D. Role Of Xanthurenic Acid 8-O-?-D-Glucoside, A Novel Fluorophore That Accumulates In The Brunescent Human Eye Lens¶. Photochem Photobiol. 2002;76(3):368.
3. Praveen MR, Vasavada AR, Jani UD, Trivedi RH, Choudhary PK. Prevalence Of Cataract Type In Relation To Axial Length In Subjects With High Myopia And Emmetropia In An Indian Population. Am J Ophthalmol. 2008;145(1):176–82.
4. Crispim J, Jung LS, Paz L, Allemann N, Schor P. The Surgical Challenges Dense Brunescent Cataracts Present. Expert Rev Ophthalmol. 2015;10(1):13–22.
5. Michael R, Bron AJ. The Ageing Lens And Cataract: A Model Of Normal And Pathological Ageing. Philos Trans R Soc B Biol Sci. 2011;366(1568):1278–92.
6. Roberts JE. Ultraviolet Radiation As A Risk Factor For Cataract And Macular Degeneration. Eye Contact Lens. 2011;37(4):246–9.
7. Alamri M, Alsammahi A, Alharbi M, Alshammari H, Alshehri M, Saeedi I, et al. Pathophysiology Of Cataracts. Int J Community Med Public Heal. 2018;5(9):3668.
8. Sreelakshmi V, Abraham A. Age Related Or Senile Cataract: Pathology, Mechanism And Management. Austin J Clin Ophthalmol. 2016;3(2):1067.
9. Wang K, Spector A. ?-Crystallin Can Act As A Chaperone Under Conditions Of Oxidative Stress. Investig Ophthalmol Vis Sci. 1995;36(2):311–21.
10. Yang J, Zhou S, Guo M, Li Y, Gu J. Different Alpha Crystallin Expression In Human Age-Related And Congenital Cataract Lens Epithelium. BMC Ophthalmol. 2016;16(1):1–6.
11. Horwitz J. Alpha-Crystallin. Exp Eye Res. 2003;76(2):145–53.
12. Augusteyn RC. ?-Crystallin: A Review Of Its Structure And Function. Clin Exp Optom. 2004;87(6):356–66.
13. Sharma KK, Santhoshkumar P. Lens Aging: Effects Of Crystallins. Biochim Biophys Acta - Gen Subj. 2009;1790(10):1095–108.
14. Roberts JE, Finley EL, Patat SA, Schey KL. Photooxidation Of Lens Proteins With Xanthurenic Acid: A Putative Chromophore For Cataractogenesis¶. Photochem Photobiol. 2001;74(5):740.
15. Padayatti PS, Ng AS, Ucbida K, Glomb MA, Nagaraj RH. Argpyrimidine, A Blue Fluorophore In Human Lens Proteins: High Levels In Brunescent Cataractous Lenses. Investig Ophthalmol Vis Sci. 2001;42(6):1299–304.
16. Cheng R, Lin B, Ortwerth BJ. Separation Of The Yellow Chromophores In Individual Brunescent Cataracts. Exp Eye Res. 2003;77(3):313–25.
17. Hiller R, Sperduto RD, Ederer F. Epidemiologic Associations With Nuclear, Cortical, And Posterior Subcapsular Cataracts. Am J Epidemiol. 1986;124(6):916–25.
18. Linetsky M, Shipova E, Cheng R, Ortwerth BJ. Glycation By Ascorbic Acid Oxidation Products Leads To The Aggregation Of Lens Proteins. Biochim Biophys Acta - Mol Basis Dis. 2008;1782(1):22–34.
19. Li L, Chang B, Cheng C, Chang D, Hawes NL, Xia CH, et al. Dense Nuclear Cataract Caused By The ?B-Crystallin S11R Point Mutation. Investig Ophthalmol Vis Sci. 2008;49(1):304–9.

Published

07-09-2021

How to Cite

MUHAMMAD HIDAYAT, ELLYZA NASRUL, TJAHJONO GONDHOWIHARJO, and ANDANI EKA PUTRA. “The THE ANALYSIS OF a-CRYSTALLINE PROTEIN IN WHITE AND BRUNESCENT CATARACT”. Asian Journal of Pharmaceutical and Clinical Research, vol. 14, no. 9, Sept. 2021, pp. 65-68, doi:10.22159/ajpcr.2021.v14i9.42012.

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