Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data
The data presented here are related and supplementary data to the research article “Implantation and long-term assessment of the stability and biocompatibility of a novel 98 channel suprachoroidal visual prosthesis in sheep” [1]. In Eggenberger et al., nine sheep of the Suffolk (N=2) and Dorper (N=7...
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Elsevier
2021
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oai:doaj.org-article:63829d9e51c44b09b0e506d4d9a1d8d72021-11-28T04:33:28ZSafety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data2352-340910.1016/j.dib.2021.107634https://doaj.org/article/63829d9e51c44b09b0e506d4d9a1d8d72021-12-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S2352340921009094https://doaj.org/toc/2352-3409The data presented here are related and supplementary data to the research article “Implantation and long-term assessment of the stability and biocompatibility of a novel 98 channel suprachoroidal visual prosthesis in sheep” [1]. In Eggenberger et al., nine sheep of the Suffolk (N=2) and Dorper (N=7) breeds were implanted in the left eye with an electrically inactive, suprachoroidal retinal stimulator (Bionic Eye) for durations of up to 100 days. The surgical safety, implant stability and device biocompatibility were assessed. Intraocular pressure measurements, indirect and infrared ophthalmoscopy and optical coherence tomography were performed at fixed time points to evaluate the clinical effects of the surgery and device implantation. Post-mortem eye tissue collection and histology was performed to measure the effects of the intervention at the cellular level. The data, including a comprehensive collection of fundus, infrared, optical coherence tomography and histology images can be used as a reference for comparison with other research, for example, active retinal stimulators. Furthermore, these data can be used to evaluate the suitability of the sheep model, in particular Dorper sheep, for future research.Samuel C. EggenbergerNatalie L. JamesCherry HoSteven S. EamegdoolVeronika TatarinoffNaomi A. CraigBarry S. GowSusan WanChristopher W.D. DoddsDonna La HoodAaron GilmourShannon L. DonahoeMark KrockenbergerKrishna TumuluriMelville J. da CruzJohn R. GriggPeter McCluskeyNigel H. LovellMichele C. MadiganAdrian T. FungGregg J. SuaningElsevierarticleVisual prosthesisIntraocular pressureOpthalmoscopyBiocompatibilityHistopathologyRetinaComputer applications to medicine. Medical informaticsR858-859.7Science (General)Q1-390ENData in Brief, Vol 39, Iss , Pp 107634- (2021) |
institution |
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DOAJ |
language |
EN |
topic |
Visual prosthesis Intraocular pressure Opthalmoscopy Biocompatibility Histopathology Retina Computer applications to medicine. Medical informatics R858-859.7 Science (General) Q1-390 |
spellingShingle |
Visual prosthesis Intraocular pressure Opthalmoscopy Biocompatibility Histopathology Retina Computer applications to medicine. Medical informatics R858-859.7 Science (General) Q1-390 Samuel C. Eggenberger Natalie L. James Cherry Ho Steven S. Eamegdool Veronika Tatarinoff Naomi A. Craig Barry S. Gow Susan Wan Christopher W.D. Dodds Donna La Hood Aaron Gilmour Shannon L. Donahoe Mark Krockenberger Krishna Tumuluri Melville J. da Cruz John R. Grigg Peter McCluskey Nigel H. Lovell Michele C. Madigan Adrian T. Fung Gregg J. Suaning Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
description |
The data presented here are related and supplementary data to the research article “Implantation and long-term assessment of the stability and biocompatibility of a novel 98 channel suprachoroidal visual prosthesis in sheep” [1]. In Eggenberger et al., nine sheep of the Suffolk (N=2) and Dorper (N=7) breeds were implanted in the left eye with an electrically inactive, suprachoroidal retinal stimulator (Bionic Eye) for durations of up to 100 days. The surgical safety, implant stability and device biocompatibility were assessed. Intraocular pressure measurements, indirect and infrared ophthalmoscopy and optical coherence tomography were performed at fixed time points to evaluate the clinical effects of the surgery and device implantation. Post-mortem eye tissue collection and histology was performed to measure the effects of the intervention at the cellular level. The data, including a comprehensive collection of fundus, infrared, optical coherence tomography and histology images can be used as a reference for comparison with other research, for example, active retinal stimulators. Furthermore, these data can be used to evaluate the suitability of the sheep model, in particular Dorper sheep, for future research. |
format |
article |
author |
Samuel C. Eggenberger Natalie L. James Cherry Ho Steven S. Eamegdool Veronika Tatarinoff Naomi A. Craig Barry S. Gow Susan Wan Christopher W.D. Dodds Donna La Hood Aaron Gilmour Shannon L. Donahoe Mark Krockenberger Krishna Tumuluri Melville J. da Cruz John R. Grigg Peter McCluskey Nigel H. Lovell Michele C. Madigan Adrian T. Fung Gregg J. Suaning |
author_facet |
Samuel C. Eggenberger Natalie L. James Cherry Ho Steven S. Eamegdool Veronika Tatarinoff Naomi A. Craig Barry S. Gow Susan Wan Christopher W.D. Dodds Donna La Hood Aaron Gilmour Shannon L. Donahoe Mark Krockenberger Krishna Tumuluri Melville J. da Cruz John R. Grigg Peter McCluskey Nigel H. Lovell Michele C. Madigan Adrian T. Fung Gregg J. Suaning |
author_sort |
Samuel C. Eggenberger |
title |
Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
title_short |
Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
title_full |
Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
title_fullStr |
Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
title_full_unstemmed |
Safety and biocompatibility of a bionic eye: Imaging, intraocular pressure, and histology data |
title_sort |
safety and biocompatibility of a bionic eye: imaging, intraocular pressure, and histology data |
publisher |
Elsevier |
publishDate |
2021 |
url |
https://doaj.org/article/63829d9e51c44b09b0e506d4d9a1d8d7 |
work_keys_str_mv |
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