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Published in: Ophthalmology and Therapy 1/2018

Open Access 01-06-2018 | Original Research

Enhanced Penetration for Axial Length Measurement of Eyes with Dense Cataracts Using Swept Source Optical Coherence Tomography: A Consecutive Observational Study

Authors: Nino Hirnschall, Ralph Varsits, Birgit Doeller, Oliver Findl

Published in: Ophthalmology and Therapy | Issue 1/2018

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Abstract

Introduction

The aim of this study was to find cases in which the axial eye length could not be measured with partial coherence interferometry (PCI) technology and to assess if it could be measured using swept source optical coherence tomography (ss-OCT) technology.

Methods

All patients were measured at their pre-assessment visit 1 week prior to cataract surgery using conventional optical biometry (PCI technology, IOLMaster 500, Carl Zeiss Meditec AG, Jena, Germany). Patients in whom one or both eyes could not be measured using PCI technology were invited to participate in the study and to be measured with the ss-OCT (IOL Master 700, Carl Zeiss Meditec AG, Jena, Germany) device.

Results

Altogether, 1226 eyes of 613 patients were measured consecutively, and 78 eyes were not measured successfully with PCI technology. Among those with unsuccessfully measured eyes, 23 patients were willing to participate in the study, and two of those were also unsuccessfully measured with the ss-OCT device (8.7%, 2/23). However, 91.3% (21/23) of the eyes that were unsuccessfully scanned with PCI technology were measurable with the ss-OCT device. The estimated overall rate of unsuccessful scans with the ss-OCT device was 0.5% (6/1226) (\( p_{{\chi^{2} }} \) < 0.01).

Conclusion

ss-OCT technology significantly improves the rate of attainable axial eye length measurements, especially in eyes with posterior subcapsular cataracts, but also in eyes with dense nuclear cataracts, except for white cataracts.
Literature
1.
go back to reference Drexler W, Findl O, Menapace R, et al. Partial coherence interferometry: a novel approach to biometry in cataract surgery. Am J Ophthalmol. 1998;126(4):524–34.CrossRefPubMed Drexler W, Findl O, Menapace R, et al. Partial coherence interferometry: a novel approach to biometry in cataract surgery. Am J Ophthalmol. 1998;126(4):524–34.CrossRefPubMed
2.
go back to reference Goel S, Chua C, Butcher M, Jones CA, Bagga P, Kotta S. Laser vs ultrasound biometry—a study of intra- and interobserver variability. Eye. 2004;18(5):514–8.CrossRefPubMed Goel S, Chua C, Butcher M, Jones CA, Bagga P, Kotta S. Laser vs ultrasound biometry—a study of intra- and interobserver variability. Eye. 2004;18(5):514–8.CrossRefPubMed
3.
go back to reference Findl O, Kriechbaum K, Sacu S, et al. Influence of operator experience on the performance of ultrasound biometry compared to optical biometry before cataract surgery. J Cataract Refract Surg. 2003;29(10):1950–5.CrossRefPubMed Findl O, Kriechbaum K, Sacu S, et al. Influence of operator experience on the performance of ultrasound biometry compared to optical biometry before cataract surgery. J Cataract Refract Surg. 2003;29(10):1950–5.CrossRefPubMed
4.
go back to reference Findl O, Drexler W, Menapace R, Kiss B, Hitzenberger CK, Fercher AF. Optical biometry in cataract surgery. Dev Ophthalmol. 2002;34:131–40.CrossRefPubMed Findl O, Drexler W, Menapace R, Kiss B, Hitzenberger CK, Fercher AF. Optical biometry in cataract surgery. Dev Ophthalmol. 2002;34:131–40.CrossRefPubMed
5.
go back to reference Rajan MS, Keilhorn I, Bell JA. Partial coherence laser interferometry vs conventional ultrasound biometry in intraocular lens power calculations. Eye. 2002;16(5):552–6.CrossRefPubMed Rajan MS, Keilhorn I, Bell JA. Partial coherence laser interferometry vs conventional ultrasound biometry in intraocular lens power calculations. Eye. 2002;16(5):552–6.CrossRefPubMed
6.
go back to reference Freeman G, Pesudovs K. The impact of cataract severity on measurement acquisition with the IOLMaster. Acta Ophthalmol Scand. 2005;83(4):439–42.CrossRefPubMed Freeman G, Pesudovs K. The impact of cataract severity on measurement acquisition with the IOLMaster. Acta Ophthalmol Scand. 2005;83(4):439–42.CrossRefPubMed
7.
go back to reference Kiss B, Findl O, Menapace R, et al. Biometry of cataractous eyes using partial coherence interferometry: clinical feasibility study of a commercial prototype I. J Cataract Refract Surg. 2002;28(2):224–9.CrossRefPubMed Kiss B, Findl O, Menapace R, et al. Biometry of cataractous eyes using partial coherence interferometry: clinical feasibility study of a commercial prototype I. J Cataract Refract Surg. 2002;28(2):224–9.CrossRefPubMed
8.
go back to reference Hirnschall N, Murphy S, Pimenides D, Maurino V, Findl O. Assessment of a new averaging algorithm to increase the sensitivity of axial eye length measurement with optical biometry in eyes with dense cataract. J Cataract Refract Surg. 2011;37(1):45–9.CrossRefPubMed Hirnschall N, Murphy S, Pimenides D, Maurino V, Findl O. Assessment of a new averaging algorithm to increase the sensitivity of axial eye length measurement with optical biometry in eyes with dense cataract. J Cataract Refract Surg. 2011;37(1):45–9.CrossRefPubMed
9.
go back to reference Fukuda S, Kawana K, Yasuno Y, Oshika T. Repeatability and reproducibility of anterior ocular biometric measurements with 2-dimensional and 3-dimensional optical coherence tomography. J Cataract Refract Surg. 2010;36(11):1867–73.CrossRefPubMed Fukuda S, Kawana K, Yasuno Y, Oshika T. Repeatability and reproducibility of anterior ocular biometric measurements with 2-dimensional and 3-dimensional optical coherence tomography. J Cataract Refract Surg. 2010;36(11):1867–73.CrossRefPubMed
10.
go back to reference Srivannaboon S, Chirapapaisan C, Chonpimai P, Loket S. Clinical comparison of a new swept-source optical coherence tomography-based optical biometer and a time-domain optical coherence tomography-based optical biometer. J Cataract Refract Surg. 2015;41(10):2224–32.CrossRefPubMed Srivannaboon S, Chirapapaisan C, Chonpimai P, Loket S. Clinical comparison of a new swept-source optical coherence tomography-based optical biometer and a time-domain optical coherence tomography-based optical biometer. J Cataract Refract Surg. 2015;41(10):2224–32.CrossRefPubMed
11.
go back to reference Shammas HJ, Ortiz S, Shammas MC, Kim SH, Chong C. Biometry measurements using a new large-coherence-length swept-source optical coherence tomographer. J Cataract Refract Surg. 2016;42(1):50–61.CrossRefPubMed Shammas HJ, Ortiz S, Shammas MC, Kim SH, Chong C. Biometry measurements using a new large-coherence-length swept-source optical coherence tomographer. J Cataract Refract Surg. 2016;42(1):50–61.CrossRefPubMed
12.
go back to reference Kunert KS, Peter M, Blum M, et al. Repeatability and agreement in optical biometry of a new swept-source optical coherence tomography-based biometer versus partial coherence interferometry and optical low-coherence reflectometry. J Cataract Refract Surg. 2016;42(1):76–83.CrossRefPubMed Kunert KS, Peter M, Blum M, et al. Repeatability and agreement in optical biometry of a new swept-source optical coherence tomography-based biometer versus partial coherence interferometry and optical low-coherence reflectometry. J Cataract Refract Surg. 2016;42(1):76–83.CrossRefPubMed
13.
go back to reference Kurian M, Negalur N, Das S, et al. Biometry with a new swept-source optical coherence tomography biometer: repeatability and agreement with an optical low-coherence reflectometry device. J Cataract Refract Surg. 2016;42(4):577–81.CrossRefPubMed Kurian M, Negalur N, Das S, et al. Biometry with a new swept-source optical coherence tomography biometer: repeatability and agreement with an optical low-coherence reflectometry device. J Cataract Refract Surg. 2016;42(4):577–81.CrossRefPubMed
14.
go back to reference Akman A, Asena L, Gungor SG. Evaluation and comparison of the new swept source OCT-based IOLMaster 700 with the IOLMaster 500. Br J Ophthalmol. 2016;100(9):1201–5.CrossRefPubMed Akman A, Asena L, Gungor SG. Evaluation and comparison of the new swept source OCT-based IOLMaster 700 with the IOLMaster 500. Br J Ophthalmol. 2016;100(9):1201–5.CrossRefPubMed
15.
go back to reference Povazay B, Hermann B, Unterhuber A, et al. Three-dimensional optical coherence tomography at 1050 nm versus 800 nm in retinal pathologies: enhanced performance and choroidal penetration in cataract patients. J Biomed Opt. 2007;12(4):041211.CrossRefPubMed Povazay B, Hermann B, Unterhuber A, et al. Three-dimensional optical coherence tomography at 1050 nm versus 800 nm in retinal pathologies: enhanced performance and choroidal penetration in cataract patients. J Biomed Opt. 2007;12(4):041211.CrossRefPubMed
16.
go back to reference Choma M, Sarunic M, Yang C, Izatt J. Sensitivity advantage of swept source and Fourier domain optical coherence tomography. Opt Express. 2003;11(18):2183–9.CrossRefPubMed Choma M, Sarunic M, Yang C, Izatt J. Sensitivity advantage of swept source and Fourier domain optical coherence tomography. Opt Express. 2003;11(18):2183–9.CrossRefPubMed
17.
go back to reference Yasuno Y, Madjarova VD, Makita S, et al. Three-dimensional and high-speed swept-source optical coherence tomography for in vivo investigation of human anterior eye segments. Opt Express. 2005;13(26):10652–64.CrossRefPubMed Yasuno Y, Madjarova VD, Makita S, et al. Three-dimensional and high-speed swept-source optical coherence tomography for in vivo investigation of human anterior eye segments. Opt Express. 2005;13(26):10652–64.CrossRefPubMed
18.
go back to reference Chong C, Suzuki T, Totsuka K, Morosawa A, Sakai T. Large coherence length swept source for axial length measurement of the eye. Appl Opt. 2009;48(10):D144–50.CrossRefPubMed Chong C, Suzuki T, Totsuka K, Morosawa A, Sakai T. Large coherence length swept source for axial length measurement of the eye. Appl Opt. 2009;48(10):D144–50.CrossRefPubMed
19.
go back to reference van den Berg TJ, Coppens JC. Conversion of lens slit lamp photographs into physical light-scattering units. Invest Ophthalmol Vis Sci. 1999;40(9):2151–7.PubMed van den Berg TJ, Coppens JC. Conversion of lens slit lamp photographs into physical light-scattering units. Invest Ophthalmol Vis Sci. 1999;40(9):2151–7.PubMed
Metadata
Title
Enhanced Penetration for Axial Length Measurement of Eyes with Dense Cataracts Using Swept Source Optical Coherence Tomography: A Consecutive Observational Study
Authors
Nino Hirnschall
Ralph Varsits
Birgit Doeller
Oliver Findl
Publication date
01-06-2018
Publisher
Springer Healthcare
Published in
Ophthalmology and Therapy / Issue 1/2018
Print ISSN: 2193-8245
Electronic ISSN: 2193-6528
DOI
https://doi.org/10.1007/s40123-018-0122-1

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