Skip to main content
Top
Published in: Graefe's Archive for Clinical and Experimental Ophthalmology 7/2016

01-07-2016 | Retinal Disorders

An evaluation of two heavier-than-water internal limiting membrane-specific dyes during macular hole surgery

Authors: David H. W. Steel, Ayesha A. Karimi, Kathryn White

Published in: Graefe's Archive for Clinical and Experimental Ophthalmology | Issue 7/2016

Login to get access

Abstract

Purpose

To evaluate the staining characteristics and effect on internal limiting membrane (ILM) histology of two heavier-than-water ILM-specific dyes during macular hole surgery: acid violet 17 combined with 5 % mannitol (AV17-M) and brilliant blue G with 4 % polyethylene glycol (BBG-P).

Methods

Single-centre observational comparative cohort study. The ILM of consecutive patients undergoing surgery for idiopathic macular hole were stained with BBG-P and AV17-M for 10 s each. The ILMs were retrieved and examined with electron microscopy. The extent of retinal and vitreous side debris was scored. Surgical videos were used to assess the staining contrast effect by measuring the Euclidean distance in the CIELAB colour space between stained and unstained retinas after peeling.

Results

51 consecutive patients were studied with 25 in the AV17-M group and 26 in the BBG-P group. The mean age was 71 years with no significant difference between the groups. The amount of retinal side tissue was greater on the BBG-P-stained ILMs compared to the AV17-M-stained ILMs (30.2 versus 19.6 %, p < 0.001). There was a difference in the CIELAB colour space separation distance between stained and peeled retinas (5.89 versus 3.97, p = 0.01) in favour of BBG-P. Visual outcomes between the two groups were similar (logMAR visual acuity 0.40 versus 0.38, p = 0.74).

Conclusion

Both stains were successfully used to peel the ILM with comparable outcomes. AV17-M resulted in less retinal debris than BBG-P, suggesting an altered and potentially beneficial ILM cleavage plane from the retina but with lowered staining contrast than BBG-PEG.
Literature
1.
go back to reference Nakamura T, Murata T, Hisatomi T et al (2003) Ultrastructure of the vitreoretinal interface following the removal of the internal limiting membrane using indocyanine green. Curr Eye Res 27:395–399CrossRefPubMed Nakamura T, Murata T, Hisatomi T et al (2003) Ultrastructure of the vitreoretinal interface following the removal of the internal limiting membrane using indocyanine green. Curr Eye Res 27:395–399CrossRefPubMed
2.
go back to reference Schumann RG, Gandorfer A, Priglinger SG et al (2009) Vital dyes for macular surgery: a comparative electron microscopy study of the internal limiting membrane. Retina 29:669–676CrossRefPubMed Schumann RG, Gandorfer A, Priglinger SG et al (2009) Vital dyes for macular surgery: a comparative electron microscopy study of the internal limiting membrane. Retina 29:669–676CrossRefPubMed
3.
go back to reference Haritoglou C, Schumann R, Reiniger I et al (2006) Evaluation of the internal limiting membrane after conventional peeling during macular hole surgery. Retina 26:21–24CrossRefPubMed Haritoglou C, Schumann R, Reiniger I et al (2006) Evaluation of the internal limiting membrane after conventional peeling during macular hole surgery. Retina 26:21–24CrossRefPubMed
4.
go back to reference Konstantinidis L, Uffer S, Bovey EH (2009) Ultrastructural changes of the internal limiting membrane removed during indocyanine green assisted peeling versus conventional surgery for idiopathic macular epiretinal membrane. Retina 29:380–386CrossRefPubMed Konstantinidis L, Uffer S, Bovey EH (2009) Ultrastructural changes of the internal limiting membrane removed during indocyanine green assisted peeling versus conventional surgery for idiopathic macular epiretinal membrane. Retina 29:380–386CrossRefPubMed
5.
go back to reference Haritoglou C, Gandorfer A, Gass CA et al (2004) Histology of the vitreoretinal interface after staining of the internal limiting membrane using glucose 5% diluted indocyanine and infracyanine green. Am J Ophthalmol 137:345–348CrossRefPubMed Haritoglou C, Gandorfer A, Gass CA et al (2004) Histology of the vitreoretinal interface after staining of the internal limiting membrane using glucose 5% diluted indocyanine and infracyanine green. Am J Ophthalmol 137:345–348CrossRefPubMed
6.
go back to reference Haritoglou C, Gandorfer A, Gass CA et al (2002) Indocyanine green-assisted peeling of the internal limiting membrane in macular hole surgery affects visual outcome: a clinicopathologic correlation. Am J Ophthalmol 134:836–841CrossRefPubMed Haritoglou C, Gandorfer A, Gass CA et al (2002) Indocyanine green-assisted peeling of the internal limiting membrane in macular hole surgery affects visual outcome: a clinicopathologic correlation. Am J Ophthalmol 134:836–841CrossRefPubMed
7.
go back to reference Gerding H, Timmermann M, Thelen U (2011) Intravital staining of the internal limiting membrane with a novel heavy solution of brilliant blue G. Klin Monatsbl Augenheilkd 228:298–301CrossRefPubMed Gerding H, Timmermann M, Thelen U (2011) Intravital staining of the internal limiting membrane with a novel heavy solution of brilliant blue G. Klin Monatsbl Augenheilkd 228:298–301CrossRefPubMed
8.
go back to reference Januschowski K, Mueller S, Spitzer MS et al (2012) Investigating the biocompatibility of two new heavy intraocular dyes for vitreoretinal surgery with an isolated perfused vertebrate retina organ culture model and a retinal ganglion cell line. Graefes Arch Clin Exp Ophthalmol 250:533–545CrossRefPubMed Januschowski K, Mueller S, Spitzer MS et al (2012) Investigating the biocompatibility of two new heavy intraocular dyes for vitreoretinal surgery with an isolated perfused vertebrate retina organ culture model and a retinal ganglion cell line. Graefes Arch Clin Exp Ophthalmol 250:533–545CrossRefPubMed
9.
go back to reference Tura A, Alt A, Haritoglou C et al (2014) Testing the effects of the dye acid violet-17 on retinal function for an intraocular application in vitreo-retinal surgery. Graefes Arch Clin Exp Ophthalmol 252:1927–1937CrossRefPubMed Tura A, Alt A, Haritoglou C et al (2014) Testing the effects of the dye acid violet-17 on retinal function for an intraocular application in vitreo-retinal surgery. Graefes Arch Clin Exp Ophthalmol 252:1927–1937CrossRefPubMed
10.
go back to reference Cardoso EB, Moraes-Filho M, Rodrigues EB et al (2013) Investigation of the retinal biocompatibility of acid violet for chromovitrectomy. Graefes Arch Clin Exp Ophthalmol 251:1115–1121CrossRefPubMed Cardoso EB, Moraes-Filho M, Rodrigues EB et al (2013) Investigation of the retinal biocompatibility of acid violet for chromovitrectomy. Graefes Arch Clin Exp Ophthalmol 251:1115–1121CrossRefPubMed
11.
go back to reference Steel DH, Dinah C, Magdi H et al (2014) The staining pattern of brilliant blue G during macular hole surgery: a clinicopathologic study. Invest Ophthalmol Vis Sci 55:5924–5931CrossRefPubMed Steel DH, Dinah C, Magdi H et al (2014) The staining pattern of brilliant blue G during macular hole surgery: a clinicopathologic study. Invest Ophthalmol Vis Sci 55:5924–5931CrossRefPubMed
15.
go back to reference Broadbent AD (2004) A critical review of the development of the CIE1931 RGB color-matching functions. Color Res Appl 29:267–272CrossRef Broadbent AD (2004) A critical review of the development of the CIE1931 RGB color-matching functions. Color Res Appl 29:267–272CrossRef
17.
go back to reference Henrich PB, Priglinger SG, Haritoglou C et al (2011) Quantification of contrast recognizability during brilliant blue G- and indocyanine green-assisted chromovitrectomy. Invest Ophthalmol Vis Sci 52:4345–4349CrossRefPubMed Henrich PB, Priglinger SG, Haritoglou C et al (2011) Quantification of contrast recognizability during brilliant blue G- and indocyanine green-assisted chromovitrectomy. Invest Ophthalmol Vis Sci 52:4345–4349CrossRefPubMed
19.
go back to reference Henrich PB, Valmaggia C, Lang C et al (2014) The price for reduced light toxicity: do endoilluminator spectral filters decrease color contrast during brilliant blue G-assisted chromovitrectomy? Graefes Arch Clin Exp Ophthalmol 252:367–374CrossRefPubMed Henrich PB, Valmaggia C, Lang C et al (2014) The price for reduced light toxicity: do endoilluminator spectral filters decrease color contrast during brilliant blue G-assisted chromovitrectomy? Graefes Arch Clin Exp Ophthalmol 252:367–374CrossRefPubMed
20.
go back to reference Henrich PB, Valmaggia C, Lang C et al (2013) Contrast recognizability during brilliant blue G – and heavier-than-water brilliant blue G-assisted chromovitrectomy: a quantitative analysis. Acta Ophthalmol 91:120–124CrossRef Henrich PB, Valmaggia C, Lang C et al (2013) Contrast recognizability during brilliant blue G – and heavier-than-water brilliant blue G-assisted chromovitrectomy: a quantitative analysis. Acta Ophthalmol 91:120–124CrossRef
21.
go back to reference Totan Y, Güler E, Gürağaç FB et al (2015) Brilliant blue G assisted macular surgery: the effect of air infusion on contrast recognisability in internal limiting membrane peeling. Br J Ophthalmol 99:75–80CrossRefPubMed Totan Y, Güler E, Gürağaç FB et al (2015) Brilliant blue G assisted macular surgery: the effect of air infusion on contrast recognisability in internal limiting membrane peeling. Br J Ophthalmol 99:75–80CrossRefPubMed
22.
go back to reference Rodrigues EB, Maia M, Penha FM et al (2013) Staining properties of brilliant blue depending on different incubation times and solvents in humans. Ophthalmologica 230(Suppl 2):68–72CrossRefPubMed Rodrigues EB, Maia M, Penha FM et al (2013) Staining properties of brilliant blue depending on different incubation times and solvents in humans. Ophthalmologica 230(Suppl 2):68–72CrossRefPubMed
23.
go back to reference Henrich PB, Priglinger SG, Haritoglou C et al (2013) Quantification of contrast recognizability in sequential epiretinal membrane removal and internal limiting membrane peeling in trypan blue-assisted macular surgery. Retina 33:818–824CrossRefPubMed Henrich PB, Priglinger SG, Haritoglou C et al (2013) Quantification of contrast recognizability in sequential epiretinal membrane removal and internal limiting membrane peeling in trypan blue-assisted macular surgery. Retina 33:818–824CrossRefPubMed
24.
go back to reference Haritoglou C, Mauell S, Benoit M et al (2013) Vital dyes increase the rigidity of the internal limiting membrane. Eye (Lond) 27:1308–1315CrossRefPubMedCentral Haritoglou C, Mauell S, Benoit M et al (2013) Vital dyes increase the rigidity of the internal limiting membrane. Eye (Lond) 27:1308–1315CrossRefPubMedCentral
25.
go back to reference Haritoglou C, Mauell S, Schumann RG et al (2013) Increase in lens capsule stiffness caused by vital dyes. J Cataract Refract Surg 39:1749–1752CrossRefPubMed Haritoglou C, Mauell S, Schumann RG et al (2013) Increase in lens capsule stiffness caused by vital dyes. J Cataract Refract Surg 39:1749–1752CrossRefPubMed
26.
go back to reference Kenawy N, Wong D, Stappler T et al (2010) Does the presence of an epiretinal membrane alter the cleavage plane during internal limiting membrane peeling? Ophthalmology 117:320–323CrossRefPubMed Kenawy N, Wong D, Stappler T et al (2010) Does the presence of an epiretinal membrane alter the cleavage plane during internal limiting membrane peeling? Ophthalmology 117:320–323CrossRefPubMed
27.
go back to reference Liu JH, Chen MM, Huang JW et al (2010) Therapeutic effects and mechanisms of action of mannitol during H2O2-induced oxidative stress in human retinal pigment epithelium cells. J Ocul Pharmacol Ther 26:249–257CrossRefPubMed Liu JH, Chen MM, Huang JW et al (2010) Therapeutic effects and mechanisms of action of mannitol during H2O2-induced oxidative stress in human retinal pigment epithelium cells. J Ocul Pharmacol Ther 26:249–257CrossRefPubMed
28.
go back to reference Awad D, Schrader I, Bartok M et al (2011) Comparative toxicology of trypan blue, brilliant blue G, and their combination together with polyethylene glycol on human pigment epithelial cells. Invest Ophthalmol Vis Sci 52:4085–4090CrossRefPubMed Awad D, Schrader I, Bartok M et al (2011) Comparative toxicology of trypan blue, brilliant blue G, and their combination together with polyethylene glycol on human pigment epithelial cells. Invest Ophthalmol Vis Sci 52:4085–4090CrossRefPubMed
29.
go back to reference Costa EF, Barros NM, Coppini LP et al (2013) Effects of light exposure, pH, osmolarity, and solvent on the retinal pigment epithelial toxicity of vital dyes. Am J Ophthalmol 155:705–712CrossRefPubMed Costa EF, Barros NM, Coppini LP et al (2013) Effects of light exposure, pH, osmolarity, and solvent on the retinal pigment epithelial toxicity of vital dyes. Am J Ophthalmol 155:705–712CrossRefPubMed
Metadata
Title
An evaluation of two heavier-than-water internal limiting membrane-specific dyes during macular hole surgery
Authors
David H. W. Steel
Ayesha A. Karimi
Kathryn White
Publication date
01-07-2016
Publisher
Springer Berlin Heidelberg
Published in
Graefe's Archive for Clinical and Experimental Ophthalmology / Issue 7/2016
Print ISSN: 0721-832X
Electronic ISSN: 1435-702X
DOI
https://doi.org/10.1007/s00417-015-3193-x

Other articles of this Issue 7/2016

Graefe's Archive for Clinical and Experimental Ophthalmology 7/2016 Go to the issue