Literature DB >> 28055036

Preparation and implementation of optofluidic neural probes for in vivo wireless pharmacology and optogenetics.

Jordan G McCall1,2,3,4, Raza Qazi5, Gunchul Shin6, Shuo Li6, Muhammad Hamza Ikram7, Kyung-In Jang6,8, Yuhao Liu6, Ream Al-Hasani1,2,3,4, Michael R Bruchas1,2,3,4,9, Jae-Woong Jeong5,7, John A Rogers6,10,11,12.   

Abstract

This Protocol Extension describes the fabrication and technical procedures for implementing ultrathin, flexible optofluidic neural probe systems that provide targeted, wireless delivery of fluids and light into the brains of awake, freely behaving animals. As a Protocol Extension article, this article describes an adaptation of an existing Protocol that offers additional applications. This protocol serves as an extension of an existing Nature Protocol describing optoelectronic devices for studying intact neural systems. Here, we describe additional features of fabricating self-contained platforms that involve flexible microfluidic probes, pumping systems, microscale inorganic LEDs, wireless-control electronics, and power supplies. These small, flexible probes minimize tissue damage and inflammation, making long-term implantation possible. The capabilities include wireless pharmacological and optical intervention for dissecting neural circuitry during behavior. The fabrication can be completed in 1-2 weeks, and the devices can be used for 1-2 weeks of in vivo rodent experiments. To successfully carry out the protocol, researchers should have basic skill sets in photolithography and soft lithography, as well as experience with stereotaxic surgery and behavioral neuroscience practices. These fabrication processes and implementation protocols will increase access to wireless optofluidic neural probes for advanced in vivo pharmacology and optogenetics in freely moving rodents.This protocol is an extension to: Nat. Protoc. 8, 2413-2428 (2013); doi:10.1038/nprot.2013.158; published online 07 November 2013.

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Year:  2017        PMID: 28055036     DOI: 10.1038/nprot.2016.155

Source DB:  PubMed          Journal:  Nat Protoc        ISSN: 1750-2799            Impact factor:   13.491


  75 in total

1.  The temperature stability of mouse retroviruses depends on the cholesterol levels of viral lipid shell and cellular plasma membrane.

Authors:  Christiane Beer; Anika Meyer; Katja Müller; Manfred Wirth
Journal:  Virology       Date:  2003-03-30       Impact factor: 3.616

2.  Silk-based conformal, adhesive, edible food sensors.

Authors:  Hu Tao; Mark A Brenckle; Miaomiao Yang; Jingdi Zhang; Mengkun Liu; Sean M Siebert; Richard D Averitt; Manu S Mannoor; Michael C McAlpine; John A Rogers; David L Kaplan; Fiorenzo G Omenetto
Journal:  Adv Mater       Date:  2012-01-20       Impact factor: 30.849

3.  T-maze alternation in the rodent.

Authors:  Robert M J Deacon; J Nicholas P Rawlins
Journal:  Nat Protoc       Date:  2006       Impact factor: 13.491

4.  A Miniature, Fiber-Coupled, Wireless, Deep-Brain Optogenetic Stimulator.

Authors:  Steven T Lee; Pete A Williams; Catherine E Braine; Da-Ting Lin; Simon W M John; Pedro P Irazoqui
Journal:  IEEE Trans Neural Syst Rehabil Eng       Date:  2015-01-15       Impact factor: 3.802

Review 5.  Optogenetic pharmacology for control of native neuronal signaling proteins.

Authors:  Richard H Kramer; Alexandre Mourot; Hillel Adesnik
Journal:  Nat Neurosci       Date:  2013-06-25       Impact factor: 24.884

6.  Dissolvable films of silk fibroin for ultrathin conformal bio-integrated electronics.

Authors:  Dae-Hyeong Kim; Jonathan Viventi; Jason J Amsden; Jianliang Xiao; Leif Vigeland; Yun-Soung Kim; Justin A Blanco; Bruce Panilaitis; Eric S Frechette; Diego Contreras; David L Kaplan; Fiorenzo G Omenetto; Yonggang Huang; Keh-Chih Hwang; Mitchell R Zakin; Brian Litt; John A Rogers
Journal:  Nat Mater       Date:  2010-04-18       Impact factor: 43.841

7.  Targeted optogenetic stimulation and recording of neurons in vivo using cell-type-specific expression of Channelrhodopsin-2.

Authors:  Jessica A Cardin; Marie Carlén; Konstantinos Meletis; Ulf Knoblich; Feng Zhang; Karl Deisseroth; Li-Huei Tsai; Christopher I Moore
Journal:  Nat Protoc       Date:  2010-01-21       Impact factor: 13.491

8.  Adenovirus helper function for growth of adeno-associated virus: effect of temperature-sensitive mutations in adenovirus early gene region 2.

Authors:  M W Myers; C A Laughlin; F T Jay; B J Carter
Journal:  J Virol       Date:  1980-07       Impact factor: 5.103

9.  Three-dimensional multiwaveguide probe array for light delivery to distributed brain circuits.

Authors:  Anthony N Zorzos; Jorg Scholvin; Edward S Boyden; Clifton G Fonstad
Journal:  Opt Lett       Date:  2012-12-01       Impact factor: 3.776

10.  Overview of brain microdialysis.

Authors:  Vladimir I Chefer; Alexis C Thompson; Agustin Zapata; Toni S Shippenberg
Journal:  Curr Protoc Neurosci       Date:  2009-04
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  19 in total

Review 1.  Wiring the depressed brain: optogenetic and chemogenetic circuit interrogation in animal models of depression.

Authors:  Jessie Muir; Joëlle Lopez; Rosemary C Bagot
Journal:  Neuropsychopharmacology       Date:  2018-12-05       Impact factor: 7.853

2.  Rapidly-customizable, scalable 3D-printed wireless optogenetic probes for versatile applications in neuroscience.

Authors:  Juhyun Lee; Kyle E Parker; Chinatsu Kawakami; Jenny R Kim; Raza Qazi; Junwoo Yea; Shun Zhang; Choong Yeon Kim; John Bilbily; Jianliang Xiao; Kyung-In Jang; Jordan G McCall; Jae-Woong Jeong
Journal:  Adv Funct Mater       Date:  2020-09-18       Impact factor: 18.808

3.  Assembly and operation of an open-source, computer numerical controlled (CNC) robot for performing cranial microsurgical procedures.

Authors:  Leila Ghanbari; Daniel Sousa Schulman; Mathew L Rynes; Samantha Linn; Michael Laroque; Judith Dominguez; Zahra S Navabi; Peter Sherman; Suhasa B Kodandaramaiah
Journal:  Nat Protoc       Date:  2020-05-13       Impact factor: 13.491

Review 4.  Fluorescence imaging of large-scale neural ensemble dynamics.

Authors:  Tony Hyun Kim; Mark J Schnitzer
Journal:  Cell       Date:  2022-01-06       Impact factor: 41.582

5.  Scalable and modular wireless-network infrastructure for large-scale behavioural neuroscience.

Authors:  Raza Qazi; Kyle E Parker; Choong Yeon Kim; Ruediger Rill; Makenzie R Norris; Jaeyoon Chung; John Bilbily; Jenny R Kim; Marie C Walicki; Graydon B Gereau; Hyoyoung Lim; Yanyu Xiong; Jenna R Lee; Melissa A Tapia; Alexxai V Kravitz; Matthew J Will; Sangtae Ha; Jordan G McCall; Jae-Woong Jeong
Journal:  Nat Biomed Eng       Date:  2021-11-25       Impact factor: 29.234

Review 6.  Customizable, wireless and implantable neural probe design and fabrication via 3D printing.

Authors:  Kyle E Parker; Juhyun Lee; Jenny R Kim; Chinatsu Kawakami; Choong Yeon Kim; Raza Qazi; Kyung-In Jang; Jae-Woong Jeong; Jordan G McCall
Journal:  Nat Protoc       Date:  2022-10-21       Impact factor: 17.021

7.  Miniaturized, Battery-Free Optofluidic Systems with Potential for Wireless Pharmacology and Optogenetics.

Authors:  Kyung Nim Noh; Sung Il Park; Raza Qazi; Zhanan Zou; Aaron D Mickle; Jose G Grajales-Reyes; Kyung-In Jang; Robert W Gereau; Jianliang Xiao; John A Rogers; Jae-Woong Jeong
Journal:  Small       Date:  2017-12-07       Impact factor: 13.281

8.  Optofluidic control of rodent learning using cloaked caged glutamate.

Authors:  Romain Durand-de Cuttoli; Pradeep S Chauhan; Adriana Pétriz Reyes; Philippe Faure; Alexandre Mourot; Graham C R Ellis-Davies
Journal:  Proc Natl Acad Sci U S A       Date:  2020-03-09       Impact factor: 11.205

Review 9.  Wireless and battery-free technologies for neuroengineering.

Authors:  Sang Min Won; Le Cai; Philipp Gutruf; John A Rogers
Journal:  Nat Biomed Eng       Date:  2021-03-08       Impact factor: 29.234

Review 10.  Recent advances in neurotechnologies with broad potential for neuroscience research.

Authors:  Abraham Vázquez-Guardado; Yiyuan Yang; Amay J Bandodkar; John A Rogers
Journal:  Nat Neurosci       Date:  2020-11-16       Impact factor: 28.771

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