Advances in retinal prosthesis systems

被引:104
作者
Bloch, Edward [1 ,2 ]
Luo, Yvonne [1 ,3 ]
da Cruz, Lyndon [1 ,2 ]
机构
[1] Moorfields Eye Hosp NHS Fdn Trust, NIHR Biomed Res Ctr, 162 City Rd, London EC1V 2PD, England
[2] UCL, Wellcome EPSRC Ctr Intervent & Surg Sci, London, England
[3] East Kent Hosp Univ NHS Fdn Trust, Kent, England
来源
THERAPEUTIC ADVANCES IN OPHTHALMOLOGY | 2019年 / 11卷
关键词
microelectrode; photovoltaic; retinal prosthesis; tissue electronics; SUPRACHOROIDAL-TRANSRETINAL STIMULATION; BLIND SUBJECTS; ELECTRICAL-STIMULATION; EPIRETINAL PROSTHESIS; ARTIFICIAL VISION; VISUAL FUNCTION; GENE-THERAPY; PERFORMANCE; LOCALIZATION; IMPLANTATION;
D O I
10.1177/2515841418817501
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
Retinal prosthesis systems have undergone significant advances in the past quarter century, resulting in the development of several different novel surgical and engineering approaches. Encouraging results have demonstrated partial visual restoration, with improvement in both coarse objective function and performance of everyday tasks. To date, four systems have received marketing approval for use in Europe or the United States, with numerous others undergoing preclinical and clinical evaluation, reflecting the established safety profile of these devices for chronic implantation. This progress represents the first notion that the field of visual restorative medicine could offer blind patients a hope of real and measurable benefit. However, there are numerous complex engineering and biophysical obstacles still to be overcome, to reconcile the gap that remains between artificial and natural vision. Current developments in the form of enhanced image processing algorithms and data transfer approaches, combined with emerging nanofabrication and conductive polymerization techniques, herald an exciting and innovative future for retinal prosthetics. This review provides an update of retinal prosthetic systems currently undergoing development and clinical trials while also addressing future challenges in the field, such as the assessment of functional outcomes in ultra-low vision and strategies for tackling existing hardware and software constraints.
引用
收藏
页数:16
相关论文
共 117 条
  • [1] Safety Studies for a 44-Channel Suprachoroidal Retinal Prosthesis: A Chronic Passive Study
    Abbott, Carla J.
    Nayagam, David A. X.
    Luu, Chi D.
    Epp, Stephanie B.
    Williams, Richard A.
    Salinas-LaRosa, Cesar M.
    Villalobos, Joel
    McGowan, Ceara
    Shivdasani, Mohit N.
    Burns, Owen
    Leavens, Jason
    Yeoh, Jonathan
    Brandli, Alice A.
    Thien, Patrick C.
    Zhou, Jenny
    Feng, Helen
    Williams, Chris E.
    Shepherd, Robert K.
    Allen, Penelope J.
    [J]. INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2018, 59 (03) : 1410 - 1424
  • [2] Blind subjects implanted with the Argus II retinal prosthesis are able to improve performance in a spatial-motor task
    Ahuja, A. K.
    Dorn, J. D.
    Caspi, A.
    McMahon, M. J.
    Dagnelie, G.
    daCruz, L.
    Stanga, P.
    Humayun, M. S.
    Greenberg, R. J.
    [J]. BRITISH JOURNAL OF OPHTHALMOLOGY, 2011, 95 (04) : 539 - 543
  • [3] ALLEN PJ, 2015, INVEST OPHTH VIS SCI, V56
  • [4] [Anonymous], 2012, Investigative Ophthalmology Visual Science, V53, P6952
  • [5] Image processing for a high-resolution optoelectronic retinal prosthesis
    Asher, Alon
    Segal, William A.
    Baccus, Stephen A.
    Yaroslavsky, Leonid P.
    Palanker, Daniel V.
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2007, 54 (06) : 993 - 1004
  • [6] First-in-Human Trial of a Novel Suprachoroidal Retinal Prosthesis
    Ayton, Lauren N.
    Blamey, Peter J.
    Guymer, Robyn H.
    Luu, Chi D.
    Nayagam, David A. X.
    Sinclair, Nicholas C.
    Shivdasani, Mohit N.
    Yeoh, Jonathan
    McCombe, Mark F.
    Briggs, Robert J.
    Opie, Nicholas L.
    Villalobos, Joel
    Dimitrov, Peter N.
    Varsamidis, Mary
    Petoe, Matthew A.
    McCarthy, Chris D.
    Walker, Janine G.
    Barnes, Nick
    Burkitt, Anthony N.
    Williams, Chris E.
    Shepherd, Robert K.
    Allen, Penelope J.
    [J]. PLOS ONE, 2014, 9 (12):
  • [7] Ayton LN, 2016, ARTIFICIAL VISION, P125
  • [8] Basic Quantitative Assessment of Visual Performance in Patients with Very Low Vision
    Bach, Michael
    Wilke, Michaela
    Wilhelm, Barbara
    Zrenner, Eberhart
    Wilke, Robert
    [J]. INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2010, 51 (02) : 1255 - 1260
  • [9] New technologies for developing second generation retinal prostheses
    Benfenati, Fabio
    Lanzani, Guglielmo
    [J]. LAB ANIMAL, 2018, 47 (03) : 71 - 75
  • [10] Learning to see again: biological constraints on cortical plasticity and the implications for sight restoration technologies
    Beyeler, Michael
    Rokem, Ariel
    Boynton, Geoffrey M.
    Fine, Ione
    [J]. JOURNAL OF NEURAL ENGINEERING, 2017, 14 (05)