Emerging trends in the development of flexible optrode arrays for electrophysiology

被引:4
作者
Almasri, Reem M. [1 ]
Ladouceur, Francois [2 ]
Mawad, Damia [4 ]
Esrafilzadeh, Dorna [1 ]
Firth, Josiah [3 ]
Lehmann, Torsten [2 ]
Poole-Warren, Laura A. [1 ,5 ]
Lovell, Nigel H. [1 ,5 ]
Al Abed, Amr [1 ]
机构
[1] UNSW, Grad Sch Biomed Engn, Sydney, NSW 2052, Australia
[2] UNSW, Sch Elect Engn & Telecommun, Sydney, NSW 2052, Australia
[3] UNSW, Australian Natl Fabricat Facil, Canberra, ACT 2052, Australia
[4] UNSW, Sch Mat Sci & Engn, Sydney, NSW 2052, Australia
[5] UNSW, Tyree Inst Heath Engn, Sydney, NSW 2052, Australia
基金
澳大利亚研究理事会; 英国医学研究理事会;
关键词
INFRARED NEURAL STIMULATION; UP-CONVERSION NANOPARTICLES; LIGHT-EMITTING-DIODES; DEEP BRAIN-STIMULATION; EARLY EMBRYONIC HEARTS; IN-VIVO; OPTICAL STIMULATION; RETINAL PROSTHESIS; LASER STIMULATION; PHOTOVOLTAIC RESTORATION;
D O I
10.1063/5.0153753
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Optical-electrode (optrode) arrays use light to modulate excitable biological tissues and/or transduce bioelectrical signals into the optical domain. Light offers several advantages over electrical wiring, including the ability to encode multiple data channels within a single beam. This approach is at the forefront of innovation aimed at increasing spatial resolution and channel count in multichannel electrophysiology systems. This review presents an overview of devices and material systems that utilize light for electrophysiology recording and stimulation. The work focuses on the current and emerging methods and their applications, and provides a detailed discussion of the design and fabrication of flexible arrayed devices. Optrode arrays feature components non-existent in conventional multi-electrode arrays, such as waveguides, optical circuitry, light-emitting diodes, and optoelectronic and light-sensitive functional materials, packaged in planar, penetrating, or endoscopic forms. Often these are combined with dielectric and conductive structures and, less frequently, with multi-functional sensors. While creating flexible optrode arrays is feasible and necessary to minimize tissue-device mechanical mismatch, key factors must be considered for regulatory approval and clinical use. These include the biocompatibility of optical and photonic components. Additionally, material selection should match the operating wavelength of the specific electrophysiology application, minimizing light scattering and optical losses under physiologically induced stresses and strains. Flexible and soft variants of traditionally rigid photonic circuitry for passive optical multiplexing should be developed to advance the field. We evaluate fabrication techniques against these requirements. We foresee a future whereby established telecommunications techniques are engineered into flexible optrode arrays to enable unprecedented large-scale high-resolution electrophysiology systems.
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页数:28
相关论文
共 360 条
[31]   Photovoltaic Pixels for Neural Stimulation: Circuit Models and Performance [J].
Boinagrov, David ;
Lei, Xin ;
Goetz, Georges ;
Kamins, Theodore I. ;
Mathieson, Keith ;
Galambos, Ludwig ;
Harris, James S., Jr. ;
Palanker, Daniel .
IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2016, 10 (01) :85-97
[32]   Stimulation of water and calcium dynamics in astrocytes with pulsed infrared light [J].
Borrachero-Conejo, Ana, I ;
Adams, Wilson R. ;
Saracino, Emanuela ;
Mola, Maria Grazia ;
Wang, Manqing ;
Posati, Tamara ;
Formaggio, Francesco ;
De Bellis, Manuela ;
Frigeri, Antonio ;
Caprini, Marco ;
Hutchinson, Mark R. ;
Muccini, Michele ;
Zamboni, Roberto ;
Nicchia, Grazia Paola ;
Mahadevan-Jansen, Anita ;
Benfenati, Valentina .
FASEB JOURNAL, 2020, 34 (05) :6539-6553
[33]   In Vivo Photovoltaic Performance of a Silicon Nanowire Photodiode-Based Retinal Prosthesis [J].
Bosse, Brandon ;
Damle, Samir ;
Akinin, Abraham ;
Jing, Yi ;
Bartsch, Dirk-Uwe ;
Cheng, Lingyun ;
Oesch, Nicholas ;
Lo, Yu-Hwa ;
Cauwenberghs, Gert ;
Freeman, William R. .
INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 2018, 59 (15) :5885-5892
[34]   Response of primary auditory neurons to stimulation with infrared light in vitro [J].
Brown, William G. A. ;
Needham, Karina ;
Begeng, James M. ;
Thompson, Alexander C. ;
Nayagam, Bryony A. ;
Kameneva, Tatiana ;
Stoddart, Paul R. .
JOURNAL OF NEURAL ENGINEERING, 2021, 18 (04)
[35]   Thermal damage threshold of neurons during infrared stimulation [J].
Brown, William G. A. ;
Needham, Karina ;
Begeng, James M. ;
Thompson, Alexander C. ;
Nayagam, Bryony A. ;
Kamenenva, Tatiana ;
Stoddart, Paul R. .
BIOMEDICAL OPTICS EXPRESS, 2020, 11 (04) :2224-2234
[36]   Electromechanical properties of transparent conducting substrates for flexible electronic displays [J].
Cairns, DR ;
Crawford, GP .
PROCEEDINGS OF THE IEEE, 2005, 93 (08) :1451-1458
[37]  
Cambiaghi A., 2018, Eurofins Medical Device Testing
[38]   Multifunctional Fibers as Tools for Neuroscience and Neuroengineering [J].
Canales, Andres ;
Park, Seongjun ;
Kilias, Antje ;
Anikeeva, Polina .
ACCOUNTS OF CHEMICAL RESEARCH, 2018, 51 (04) :829-838
[39]   Multifunctional fibers for simultaneous optical, electrical and chemical interrogation of neural circuits in vivo [J].
Canales, Andres ;
Jia, Xiaoting ;
Froriep, Ulrich P. ;
Koppes, Ryan A. ;
Tringides, Christina M. ;
Selvidge, Jennifer ;
Lu, Chi ;
Hou, Chong ;
Wei, Lei ;
Fink, Yoel ;
Anikeeva, Polina .
NATURE BIOTECHNOLOGY, 2015, 33 (03) :277-+
[40]   LIPID ABSORPTION BY SILICONE-RUBBER HEART VALVE POPPETS IN-VIVO AND IN-VITRO RESULTS [J].
CARMEN, R ;
MUTHA, SC .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1972, 6 (05) :327-&