Literature DB >> 23299470

High-resolution images of retinal structure in patients with choroideremia.

Reema Syed1, Sanna M Sundquist, Kavitha Ratnam, Shiri Zayit-Soudry, Yuhua Zhang, J Brooks Crawford, Ian M MacDonald, Pooja Godara, Jungtae Rha, Joseph Carroll, Austin Roorda, Kimberly E Stepien, Jacque L Duncan.   

Abstract

PURPOSE: To study retinal structure in choroideremia patients and carriers using high-resolution imaging techniques.
METHODS: Subjects from four families (six female carriers and five affected males) with choroideremia (CHM) were characterized with best-corrected visual acuity (BCVA), kinetic and static perimetry, full-field electroretinography, and fundus autofluorescence (FAF). High-resolution macular images were obtained with adaptive optics scanning laser ophthalmoscopy (AOSLO) and spectral domain optical coherence tomography (SD-OCT). Coding regions of the CHM gene were sequenced.
RESULTS: Molecular analysis of the CHM gene identified a deletion of exons 9 to 15 in family A, a splice site mutation at position 79+1 of exon 1 in family B, deletion of exons 6 to 8 in family C, and a substitution at position 106 causing a premature stop in family D. BCVA ranged from 20/16 to 20/63 in carriers and from 20/25 to 5/63 in affected males. FAF showed abnormalities in all subjects. SD-OCT showed outer retinal layer loss, outer retinal tubulations at the margin of outer retinal loss, and inner retinal microcysts. Patchy cone loss was present in two symptomatic carriers. In two affected males, cone mosaics were disrupted with increased cone spacing near the fovea but more normal cone spacing near the edge of atrophy.
CONCLUSIONS: High-resolution retinal images in CHM carriers and affected males demonstrated RPE and photoreceptor cell degeneration. As both RPE and photoreceptor cells were affected, these cell types may degenerate simultaneously in CHM. These findings provide insight into the effect of CHM mutations on macular retinal structure, with implications for the development of treatments for CHM. (ClinicalTrials.gov number, NCT00254605.).

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Year:  2013        PMID: 23299470      PMCID: PMC3564452          DOI: 10.1167/iovs.12-10707

Source DB:  PubMed          Journal:  Invest Ophthalmol Vis Sci        ISSN: 0146-0404            Impact factor:   4.799


  61 in total

1.  Clinical and functional findings in choroideremia due to complete deletion of the CHM gene.

Authors:  Marco Mura; Christina Sereda; Monica M Jablonski; Ian M MacDonald; Alessandro Iannaccone
Journal:  Arch Ophthalmol       Date:  2007-08

2.  Detection and characterization of point mutations in the choroideremia candidate gene by PCR-SSCP analysis and direct DNA sequencing.

Authors:  J A van den Hurk; T J van de Pol; C M Molloy; F Brunsmann; K Rüther; E Zrenner; A J Pinckers; I H Pawlowitzki; E M Bleeker-Wagemakers; B Wieringa
Journal:  Am J Hum Genet       Date:  1992-06       Impact factor: 11.025

3.  Deletions in patients with classical choroideremia vary in size from 45 kb to several megabases.

Authors:  F P Cremers; E M Sankila; F Brunsmann; M Jay; B Jay; A Wright; A J Pinckers; M Schwartz; D J van de Pol; B Wieringa
Journal:  Am J Hum Genet       Date:  1990-10       Impact factor: 11.025

4.  Morphometric analysis of human retinal pigment epithelium: correlation with age and location.

Authors:  R C Watzke; J D Soldevilla; D R Trune
Journal:  Curr Eye Res       Date:  1993-02       Impact factor: 2.424

5.  Photoreceptor structure and function in patients with congenital achromatopsia.

Authors:  Mohamed A Genead; Gerald A Fishman; Jungtae Rha; Adam M Dubis; Daniela Maria O Bonci; Alfredo Dubra; Edwin M Stone; Maureen Neitz; Joseph Carroll
Journal:  Invest Ophthalmol Vis Sci       Date:  2011-09-21       Impact factor: 4.799

6.  REP-2, a Rab escort protein encoded by the choroideremia-like gene.

Authors:  F P Cremers; S A Armstrong; M C Seabra; M S Brown; J L Goldstein
Journal:  J Biol Chem       Date:  1994-01-21       Impact factor: 5.157

7.  Aberrant splicing of the CHM gene is a significant cause of choroideremia.

Authors:  E M Sankila; R Tolvanen; J A van den Hurk; F P Cremers; A de la Chapelle
Journal:  Nat Genet       Date:  1992-05       Impact factor: 38.330

8.  Cellular resolution volumetric in vivo retinal imaging with adaptive optics-optical coherence tomography.

Authors:  Robert J Zawadzki; Stacey S Choi; Alfred R Fuller; Julia W Evans; Bernd Hamann; John S Werner
Journal:  Opt Express       Date:  2009-03-02       Impact factor: 3.894

9.  Integrated adaptive optics optical coherence tomography and adaptive optics scanning laser ophthalmoscope system for simultaneous cellular resolution in vivo retinal imaging.

Authors:  Robert J Zawadzki; Steven M Jones; Suman Pilli; Sandra Balderas-Mata; Dae Yu Kim; Scot S Olivier; John S Werner
Journal:  Biomed Opt Express       Date:  2011-05-24       Impact factor: 3.732

10.  Noninvasive imaging of the human rod photoreceptor mosaic using a confocal adaptive optics scanning ophthalmoscope.

Authors:  Alfredo Dubra; Yusufu Sulai; Jennifer L Norris; Robert F Cooper; Adam M Dubis; David R Williams; Joseph Carroll
Journal:  Biomed Opt Express       Date:  2011-06-08       Impact factor: 3.732

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  49 in total

1.  Assessment of Different Sampling Methods for Measuring and Representing Macular Cone Density Using Flood-Illuminated Adaptive Optics.

Authors:  Shu Feng; Michael J Gale; Jonathan D Fay; Ambar Faridi; Hope E Titus; Anupam K Garg; Keith V Michaels; Laura R Erker; Dawn Peters; Travis B Smith; Mark E Pennesi
Journal:  Invest Ophthalmol Vis Sci       Date:  2015-09       Impact factor: 4.799

2.  Visual Function at the Atrophic Border in Choroideremia Assessed with Adaptive Optics Microperimetry.

Authors:  William S Tuten; Grace K Vergilio; Gloria J Young; Jean Bennett; Albert M Maguire; Tomas S Aleman; David H Brainard; Jessica I W Morgan
Journal:  Ophthalmol Retina       Date:  2019-05-08

3.  Relationship between foveal cone structure and clinical measures of visual function in patients with inherited retinal degenerations.

Authors:  Kavitha Ratnam; Joseph Carroll; Travis C Porco; Jacque L Duncan; Austin Roorda
Journal:  Invest Ophthalmol Vis Sci       Date:  2013-08-28       Impact factor: 4.799

4.  Normal Perceptual Sensitivity Arising From Weakly Reflective Cone Photoreceptors.

Authors:  Kady S Bruce; Wolf M Harmening; Bradley R Langston; William S Tuten; Austin Roorda; Lawrence C Sincich
Journal:  Invest Ophthalmol Vis Sci       Date:  2015-07       Impact factor: 4.799

5.  Retinal dystrophy and subretinal drusenoid deposits in female choroideremia carriers.

Authors:  Vittoria Murro; Dario Pasquale Mucciolo; Ilaria Passerini; Simona Palchetti; Andrea Sodi; Gianni Virgili; Stanislao Rizzo
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2017-07-27       Impact factor: 3.117

Review 6.  [Histology of the living eye : Noninvasive microscopic structure and functional analysis of the retina with adaptive optics].

Authors:  N Domdei; J L Reiniger; M Pfau; P Charbel Issa; F G Holz; W M Harmening
Journal:  Ophthalmologe       Date:  2017-03       Impact factor: 1.059

Review 7.  Adaptive optics retinal imaging--clinical opportunities and challenges.

Authors:  Joseph Carroll; David B Kay; Drew Scoles; Alfredo Dubra; Marco Lombardo
Journal:  Curr Eye Res       Date:  2013-04-26       Impact factor: 2.424

8.  High-resolution adaptive optics retinal imaging of cellular structure in choroideremia.

Authors:  Jessica I W Morgan; Grace Han; Eva Klinman; William M Maguire; Daniel C Chung; Albert M Maguire; Jean Bennett
Journal:  Invest Ophthalmol Vis Sci       Date:  2014-09-04       Impact factor: 4.799

9.  Retinal imaging using adaptive optics technology.

Authors:  Igor Kozak
Journal:  Saudi J Ophthalmol       Date:  2014-02-26

10.  EXPLORING PHOTORECEPTOR REFLECTIVITY THROUGH MULTIMODAL IMAGING OF OUTER RETINAL TUBULATION IN ADVANCED AGE-RELATED MACULAR DEGENERATION.

Authors:  Katie M Litts; Xiaolin Wang; Mark E Clark; Cynthia Owsley; K Bailey Freund; Christine A Curcio; Yuhua Zhang
Journal:  Retina       Date:  2017-05       Impact factor: 4.256

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