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<article article-type="research-article" dtd-version="1.3" xml:lang="en">
  <front>
    <journal-meta>
      <journal-title-group>
        <journal-title>Czech and Slovak Ophthalmology</journal-title>
      </journal-title-group>
    </journal-meta>
    <article-meta>
      <article-id pub-id-type="publisher-id">412</article-id>
      <article-id pub-id-type="doi">10.31348/2026/5</article-id>
      <article-categories>
        <subj-group>
          <subject>Original article</subject>
        </subj-group>
      </article-categories>
      <title-group>
        <article-title>Retinal Nerve Fiber Layer and Ganglion Cell Complex Thickness Analysis in Treatment – Naive Glaucoma Patients</article-title>
      </title-group>
      <contrib-group>
        <contrib contrib-type="author">
          <name>
            <surname>Kumar</surname>
            <given-names>Sushil</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0009-0000-6338-0731</contrib-id>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Kumar</surname>
            <given-names>Ashok</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0003-0853-3744</contrib-id>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Singh</surname>
            <given-names>Ankita</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-8136-6375</contrib-id>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Bhatkoti</surname>
            <given-names>Bhupesh</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-8561-9464</contrib-id>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Sharma</surname>
            <given-names>Vijay Kumar</given-names>
          </name>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Ambiya</surname>
            <given-names>Vikas</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0001-9439-2268</contrib-id>
        </contrib>
        <contrib contrib-type="author">
          <name>
            <surname>Rana</surname>
            <given-names>Vipin</given-names>
          </name>
          <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-1382-256X</contrib-id>
        </contrib>
      </contrib-group>
      <pub-date date-type="pub" publication-format="electronic">
        <day>29</day>
        <month>1</month>
        <year>2026</year>
      </pub-date>
      <issue>5</issue>
      <elocation-id>3</elocation-id>
      <abstract>
        <p>Aim: To evaluate RNFL (Retinal Nerve Fiber Layer) and GCC (Ganglion Cell Complex) thickness, using SD-OCT in treatment-naive patients of primary open-angle glaucoma (POAG), primary angle-closure glaucoma (PACG) and normal-tension glaucoma (NTG) and to compare these findings with healthy controls. Material and Methods: The study included 150 eyes of 75 glaucoma patients (25 each of POAG, PACG, NTG) and 200 eyes of 100 controls. In this cross-sectional observational study, patients meeting the inclusion criteria underwent comprehensive ophthalmic examinations, including best-corrected visual acuity, intraocular pressure (IOP) by Goldmann applanation tonometry (GAT), gonioscopy to differentiate between open and closed angle and visual field analysis (VFA). GCC-IPL and RNFL thickness were measured using SD-OCT. Results: Significant thinning of RNFL was noted in all glaucoma subtypes, especially in inferior and superior quadrants (p &lt; 0.0001). GCC also showed thinning, notably in inferior and superior sectors, although the average GCC reduction was not statistically significant overall (p = 0.0611). Visual field mean deviation (MD) was worse in glaucoma eyes (-2.69 dB) compared to controls (-0.89 dB, p = 0.041), reflecting functional loss. POAG and NTG showed more prominent GCC, RNFL, VF correlations than PACG. Conclusion: The study highlights that RNFL remains a robust early biomarker of glaucomatous damage, while inferior and superior GCC thickness may enhance sensitivity in detecting early structural changes, especially in treatment-naive patients. Combining RNFL and GCC analysis with VFA strengthens early diagnosis and subtype differentiation in treatment-naive primary glaucoma.</p>
      </abstract>
      <kwd-group>
        <kwd>glaucoma</kwd>
        <kwd>optical coherence tomography</kwd>
        <kwd>retinal nerve fiber layer</kwd>
        <kwd>ganglion cell complex</kwd>
        <kwd>visual field analysis</kwd>
      </kwd-group>
    </article-meta>
  </front>
  <back>
    <ref-list>
      <title>References</title>
      <ref id="R686">
        <mixed-citation>Kastner A, King AJ. Advanced glaucoma at diagnosis: current perspectives. Eye. 2020 Jan;34(1):116-128.</mixed-citation>
      </ref>
      <ref id="R687">
        <mixed-citation>Borrás T. Gene expression in the trabecular meshwork and the influence of intraocular pressure. Progress in retinal and eye research. 2003 Jul 1;22(4):435-463.</mixed-citation>
      </ref>
      <ref id="R688">
        <mixed-citation>Nunes HF, Ananina G, Costa VP, Zanchin NI, de Vasconcellos JP, de Melo MB. Investigation of CAV1/CAV2 rs4236601 and CDKN2B-AS1 rs2157719 in primary open-angle glaucoma patients from Brazil. Ophthalmic genetics. 2018 Mar 4;39(2):194-199.</mixed-citation>
      </ref>
      <ref id="R689">
        <mixed-citation>Devalla SK, Liang Z, Pham TH, et al. Glaucoma management in the era of artificial intelligence. British Journal of Ophthalmology. 2020 Mar 1;104(3):301-311.</mixed-citation>
      </ref>
      <ref id="R690">
        <mixed-citation>Kansal V, Armstrong JJ, Pintwala R, Hutnik C. Optical coherence tomography for glaucoma diagnosis: an evidence based meta-analysis. PloS one. 2018 Jan 4;13(1):e0190621.</mixed-citation>
      </ref>
      <ref id="R691">
        <mixed-citation>Tan O, Chopra V, Lu AT, et al. Detection of macular ganglion cell loss in glaucoma by Fourier-domain optical coherence tomography. Ophthalmology. 2009 Dec 1;116(12):2305-2314.</mixed-citation>
      </ref>
      <ref id="R692">
        <mixed-citation>Feng L, Zhao Y, Yoshida M, et al. Sustained Ocular Hypertension Induces Dendritic Degeneration of Mouse Retinal Ganglion Cells That Depends on Cell Type and Location. Investig. Ophthalmol. Vis. Sci. 2013;54:1106-1117.</mixed-citation>
      </ref>
      <ref id="R693">
        <mixed-citation>Dascalescu D, Corbu C, Coviltir V, et al. The ganglion cell complex is an useful tool in glaucoma assessment. Romanian Journal of Ophthalmology. 2018 Oct;62(4):300.</mixed-citation>
      </ref>
      <ref id="R694">
        <mixed-citation>Feng L, Zhao Y, Yoshida M, et al. Sustained ocular hypertension induces dendritic degeneration of mouse retinal ganglion cells that depend on cell type and location. Investigative ophthalmology &amp; visual science. 2013 Feb 1;54(2):1106-1117.</mixed-citation>
      </ref>
      <ref id="R695">
        <mixed-citation>Collaborative Normal-Tension Glaucoma Study Group. Comparison of glaucomatous progression between untreated patients with normal-tension glaucoma and patients with therapeutically reduced intraocular pressures. Am J Ophthalmol. 1998;126(4):487-497.</mixed-citation>
      </ref>
      <ref id="R696">
        <mixed-citation>Medeiros FA. Biomarkers and surrogate endpoints in glaucoma clinical trials. Br J Ophthalmol. 2015;99(5):599-603. doi:10.1136/bjophthalmol-2014-305550<pub-id pub-id-type="doi">10.1136/bjophthalmol-2014-305550</pub-id></mixed-citation>
      </ref>
      <ref id="R697">
        <mixed-citation>Bussel II, Wollstein G, Schuman JS. OCT for glaucoma diagnosis, screening and detection of glaucoma progression. Br J Ophthalmol. 2014;98 Suppl 2(Suppl 2):15-19.</mixed-citation>
      </ref>
      <ref id="R698">
        <mixed-citation>Oddone F, Lucenteforte E, Michelessi M, et al. Macular versus Retinal Nerve Fiber Layer Parameters for Diagnosing Manifest Glaucoma: A Systematic Review of Diagnostic Accuracy Studies. Ophthalmology. 2016;123(5):939-949.</mixed-citation>
      </ref>
      <ref id="R699">
        <mixed-citation>Sung KR, Wollstein G, Kim NR, et al. Macular assessment using optical coherence tomography for glaucoma diagnosis. Br J Ophthalmol. 2012;96(12):1452-1455.</mixed-citation>
      </ref>
      <ref id="R700">
        <mixed-citation>Begum VU, Addepalli UK, Yadav RK, et al. Ganglion cell-inner plexiform layer thickness of high definition optical coherence tomography in perimetric and preperimetric glaucoma. Invest Ophthalmol Vis Sci. 2014;55(8):4768-4775.</mixed-citation>
      </ref>
      <ref id="R701">
        <mixed-citation>Mwanza JC, Durbin MK, Budenz DL, et al. Glaucoma diagnostic accuracy of ganglion cell-inner plexiform layer thickness: comparison with nerve fiber layer and optic nerve head. Ophthalmology. 2012;119(6):1151-1158.</mixed-citation>
      </ref>
      <ref id="R702">
        <mixed-citation>Quigley HA, Addicks EM, Green WR. Optic nerve damage in human glaucoma. III. Quantitative correlation of nerve fiber loss and visual field defect in glaucoma, ischemic neuropathy, papilledema, and toxic neuropathy. Arch Ophthalmol. 1982;100(1):135-146.</mixed-citation>
      </ref>
      <ref id="R703">
        <mixed-citation>Harwerth RS, Wheat JL, Fredette MJ, Anderson DR. Linking structure and function in glaucoma. Prog Retin Eye Res. 2010;29(4):249-271.</mixed-citation>
      </ref>
      <ref id="R704">
        <mixed-citation>Quigley HA, Miller NR, George T. Clinical evaluation of nerve fiber layer atrophy as an indicator of glaucomatous optic nerve damage. Arch Ophthalmol. 1980;98(9):1564-1571.</mixed-citation>
      </ref>
      <ref id="R705">
        <mixed-citation>Sommer A, Katz J, Quigley HA, et al. Clinically detectable nerve fiber atrophy precedes the onset of glaucomatous field loss. Arch Ophthalmol. 1991;109(1):77-83.</mixed-citation>
      </ref>
      <ref id="R706">
        <mixed-citation>Schuman JS, Hee MR, Puliafito CA, et al. Quantification of nerve fiber layer thickness in normal and glaucomatous eyes using optical coherence tomography. Arch Ophthalmol. 1995;113(5):586-596.</mixed-citation>
      </ref>
      <ref id="R707">
        <mixed-citation>Leung CK, Cheung CY, Weinreb RN, et al. Retinal nerve fiber layer imaging with spectral-domain optical coherence tomography: a variability and diagnostic performance study. Ophthalmology. 2009;116(7):1257-1263.e1-2.</mixed-citation>
      </ref>
      <ref id="R708">
        <mixed-citation>Leite MT, Rao HL, Weinreb RN, et al. Agreement among spectral-domain optical coherence tomography instruments for assessing retinal nerve fiber layer thickness. Am J Ophthalmol. 2011;151(1):85-92.</mixed-citation>
      </ref>
      <ref id="R709">
        <mixed-citation>Curcio CA, Allen KA. Topography of ganglion cells in human retina. J Comp Neurol. 1990;300(1):5-25.</mixed-citation>
      </ref>
      <ref id="R710">
        <mixed-citation>Leung CK, Yu M, Weinreb RN, et al. Retinal nerve fiber layer imaging with spectral-domain optical coherence tomography: a prospective analysis of age-related loss. Ophthalmology. 2012;119(4):731-</mixed-citation>
      </ref>
      <ref id="R711">
        <mixed-citation>Mondal LK, Baidya KP, Bhattacharya B, Giri P, Goswami S. Optical coherence tomography in glaucoma-I: Principle, technique and interpretation. J Clin Ophthalmol Res 2018; 6:153-157.</mixed-citation>
      </ref>
      <ref id="R712">
        <mixed-citation>Leung CK, Choi N, Weinreb RN, et al. Retinal nerve fiber layer imaging with spectral-domain optical coherence tomography: pattern of RNFL defects in glaucoma. Ophthalmology. 2010;117(12):2337- 2344.</mixed-citation>
      </ref>
      <ref id="R713">
        <mixed-citation>Um TW, Sung KR, Wollstein G, Yun SC, Na JH, Schuman JS. Asymmetry in hemifield macular thickness as an early indicator of glaucomatous change. Invest Ophthalmol Vis Sci. 2012;53(3):1139-1144.</mixed-citation>
      </ref>
      <ref id="R714">
        <mixed-citation>Asrani S, Rosdahl JA, Allingham RR. Novel software strategy for glaucoma diagnosis: asymmetry analysis of retinal thickness. Arch Ophthalmol. 2011;129(9):1205-1211.</mixed-citation>
      </ref>
      <ref id="R715">
        <mixed-citation>Nakano N, Hangai M, Nakanishi H, et al. Macular ganglion cell layer imaging in preperimetric glaucoma with speckle noise-reduced spectral domain optical coherence tomography. Ophthalmology. 2011;118(12):2414-2426.</mixed-citation>
      </ref>
      <ref id="R716">
        <mixed-citation>Tan O, Chopra V, Lu AT, et al. Detection of macular ganglion cell loss in glaucoma by Fourier-domain optical coherence tomography. Ophthalmology. 2009;116(12):2305-2314.e1-2.</mixed-citation>
      </ref>
      <ref id="R717">
        <mixed-citation>Budenz DL, Michael A, Chang RT, McSoley J, Katz J. Sensitivity and specificity of the Stratus OCT for perimetric glaucoma. Ophthalmology. 2005;112(1):3-9.</mixed-citation>
      </ref>
      <ref id="R718">
        <mixed-citation>Schulze A, Lamparter J, Pfeiffer N, Berisha F, Schmidtmann I, Hoffmann EM. Diagnostic ability of retinal ganglion cell complex, retinal nerve fiber layer, and optic nerve head measurements by Fourier-domain optical coherence tomography. Graefes Arch Clin Exp Ophthalmol. 2011;249(7):1039-1045.</mixed-citation>
      </ref>
      <ref id="R719">
        <mixed-citation>Kotowski J, Folio LS, Wollstein G, et al. Glaucoma discrimination of segmented cirrus spectral domain optical coherence tomography (SD-OCT) macular scans. Br J Ophthalmol. 2012;96(11):1420-1425.</mixed-citation>
      </ref>
      <ref id="R720">
        <mixed-citation>Nakatani Y, Higashide T, Ohkubo S, Takeda H, Sugiyama K. Evaluation of macular thickness and peripapillary retinal nerve fiber layer thickness for detection of early glaucoma using spectral domain optical coherence tomography. J Glaucoma. 2011;20(4):252-259.</mixed-citation>
      </ref>
      <ref id="R721">
        <mixed-citation>Garway-Heath DF, Holder GE, Fitzke FW, Hitchings RA. Relationship between electrophysiological, psychophysical, and anatomical measurements in glaucoma. Invest Ophthalmol Vis Sci. 2002;43(7):2213-2220.</mixed-citation>
      </ref>
    </ref-list>
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</article>
