Upconversion optogenetics-driven biohybrid sensor for infrared sensing and imaging

被引:8
作者
Yang, Jia [1 ,2 ,3 ]
Zu, Lipeng [1 ,2 ,3 ]
Li, Gongxin [4 ]
Zhang, Chuang [1 ,2 ]
Ge, Zhixing [1 ,2 ,3 ]
Wang, Wenxue [1 ,2 ]
Wang, Xiaoduo [1 ,2 ]
Liu, Bin [1 ,2 ]
Xi, Ning [5 ]
Liu, Lianqing [1 ,2 ]
机构
[1] Chinese Acad Sci, Shenyang Inst Automat, State Key Lab Robot, Shenyang 110016, Peoples R China
[2] Chinese Acad Sci, Inst Robot & Intelligent Mfg, Shenyang 110169, Peoples R China
[3] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[4] Jiangnan Univ, Inst Automat, Key Lab Adv Proc Control Light Ind, Minist Educ, Wuxi 214122, Peoples R China
[5] Univ Hong Kong, Emerging Technol Inst, Dept Ind & Mfg Syst Engn, Pokfulam, Hong Kong, Peoples R China
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
Biohybrid; Upconversion optogenetics; Graphene transistor; Infrared imaging; Transient receptor potential; BROAD-BAND; GRAPHENE; NANOPARTICLES; STIMULATION; LUMINESCENCE; CELLS;
D O I
10.1016/j.actbio.2023.01.017
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Living organisms are far superior to state-of-the-art devices in visual perception as they have evolved a wide number of capabilities that encompass our most advanced technologies. By leveraging the per-formance of living organisms and directly interfacing them with artificial components, it can use the intricacy and metabolic efficiency of biological visual sensing within artificial machines. Inspired by the molecular basis (transient receptor potential, TRP) for infrared detection of pit-bearing organisms, we propose a TRP-like biohybrid sensor by integrating upconversion nanoparticles (UCNP) and optogeneti-cally engineered cells on a graphene transistor for infrared sensing and imaging. The UCNP converts in-frared light irradiation into blue light, the blue light activates the cells expressed with channelrhodopsin-2 (ChR2) and induces transmembrane photocurrent, and the photocurrent is detected by a biocompatible graphene transistor. Stepwise and overall experimental results show that, upon infrared light irradiation, the UCNP can rapidly mediate cellular photocurrents, which further translates into the extra output cur-rent of the graphene transistor. More notably, the response speed of the biohybrid sensor is 1-3 orders of magnitude faster than those of TRPs heterologously expressed in cell lines in the literature, which con-firms the response time advantage of the combination of UCNP and ChR2 within the sensor in place of TRPs. The biohybrid sensor can successfully image infrared targets, proving the feasibility of developing bionic infrared sensing devices by biohybrid integration of nonliving nanomaterials and biological com-ponents. This work opens up an avenue for biohybrid sensors to develop the bionic infrared vision that promisingly reproduces the functional superiority of natural organisms.Statement of significance Infrared sensing and imaging have a wide range of military and civilian applications. Organisms have evolved excellent infrared vision with the molecular basis, transient receptor potential (TRP), and the performance is superior to existing state-of-the-art infrared devices. Inspired by this, a TRP-like biohybrid sensor based on upconversion optogenetics and a 2D material-based device is developed for infrared sensing and imaging. The biohybrid sensor has a relatively fast response speed that is 1-3 orders of magnitude faster than that of the heterologously expressed TRPs, which enables its capability of infrared imaging with a single pixel-based method. This work broadens the spectrum of biohybrid sensing based on engineered cells to infrared, advancing the process of reproducing the excellent infrared detection of organisms.(c) 2023 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:747 / 758
页数:12
相关论文
共 66 条
[1]   NIR/blue light emission optimization of NaY1-(x plus y)YbxF4:Tmy upconversion nanoparticles via Yb3+/Tm3+ dopant balancing [J].
Bagheri, Ali ;
Li, Zheye ;
Boyer, Cyrille ;
Lim, May .
DALTON TRANSACTIONS, 2018, 47 (26) :8629-8637
[2]   The imaging properties and sensitivity of the facial pits of pitvipers as determined by optical and heat-transfer analysis [J].
Bakken, George S. ;
Krochmal, Aaron R. .
JOURNAL OF EXPERIMENTAL BIOLOGY, 2007, 210 (16) :2801-2810
[3]   TRP Channel Cooperation for Nociception: Therapeutic Opportunities [J].
Bamps, Dorien ;
Vriens, Joris ;
de Hoon, Jan ;
Voets, Thomas .
ANNUAL REVIEW OF PHARMACOLOGY AND TOXICOLOGY, VOL 61, 2021, 2021, 61 :655-677
[4]   Optogenetics and thermogenetics: technologies for controlling the activity of targeted cells within intact neural circuits [J].
Bernstein, Jacob G. ;
Garrity, Paul A. ;
Boyden, Edward S. .
CURRENT OPINION IN NEUROBIOLOGY, 2012, 22 (01) :61-71
[5]   Image processing module for high speed thermal camera with cooled detector [J].
Bieszczad, Grzegorz ;
Sosnowski, Tomasz ;
Madura, Henryk ;
Kastek, Mariusz ;
Barela, Jaroslaw .
INFRARED TECHNOLOGY AND APPLICATIONS XXXVII, 2011, 8012
[6]   Upconverting nanoparticle micro-lightbulbs designed for deep tissue optical stimulation and imaging [J].
Chamanzar, Maysamreza ;
Garfield, David J. ;
Iafrati, Jillian ;
Chan, Emory M. ;
Sohal, Vikaas ;
Cohen, Bruce E. ;
Schuck, P. James ;
Maharbiz, Michel M. .
BIOMEDICAL OPTICS EXPRESS, 2018, 9 (09) :4359-4371
[7]   Rationally Designed Energy Transfer in Upconverting Nanoparticles [J].
Chan, Emory M. ;
Levy, Elizabeth S. ;
Cohen, Bruce E. .
ADVANCED MATERIALS, 2015, 27 (38) :5753-5761
[8]   Local raster scanning for high-speed imaging of biopolymers in atomic force microscopy [J].
Chang, Peter I. ;
Huang, Peng ;
Maeng, Jungyeoul ;
Andersson, Sean B. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2011, 82 (06)
[9]   Near-infrared deep brain stimulation via upconversion nanoparticle-mediated optogenetics [J].
Chen, Shuo ;
Weitemier, Adam Z. ;
Zeng, Xiao ;
He, Linmeng ;
Wang, Xiyu ;
Tao, Yanqiu ;
Huang, Arthur J. Y. ;
Hashimotodani, Yuki ;
Kano, Masanobu ;
Iwasaki, Hirohide ;
Parajuli, Laxmi Kumar ;
Okabe, Shigeo ;
Teh, Daniel B. Loong ;
All, Angelo H. ;
Tsutsui-Kimura, Iku ;
Tanaka, Kenji F. ;
Liu, Xiaogang ;
McHugh, Thomas J. .
SCIENCE, 2018, 359 (6376) :679-683
[10]   2D Material-Based Photodetectors for Infrared Imaging [J].
Cheng, Zhongzhou ;
Zhao, Tong ;
Zeng, Haibo .
SMALL SCIENCE, 2022, 2 (01)