Literature DB >> 31601737

Battery-free, lightweight, injectable microsystem for in vivo wireless pharmacology and optogenetics.

Yi Zhang1,2, Daniel C Castro3, Yuan Han4,5,6, Yixin Wu2, Hexia Guo2, Zhengyan Weng1, Yeguang Xue2,7,8, Jokubas Ausra9, Xueju Wang10, Rui Li11,12, Guangfu Wu1, Abraham Vázquez-Guardado13, Yiwen Xie2, Zhaoqian Xie7,8,11, Diana Ostojich2, Dongsheng Peng14, Rujie Sun15, Binbin Wang16, Yongjoon Yu17, John P Leshock2, Subing Qu18, Chun-Ju Su2, Wen Shen19, Tao Hang20, Anthony Banks2, Yonggang Huang2,7,8,13, Jelena Radulovic4, Philipp Gutruf21, Michael R Bruchas22,23,24, John A Rogers25,13,26,27,28,29.   

Abstract

Pharmacology and optogenetics are widely used in neuroscience research to study the central and peripheral nervous systems. While both approaches allow for sophisticated studies of neural circuitry, continued advances are, in part, hampered by technology limitations associated with requirements for physical tethers that connect external equipment to rigid probes inserted into delicate regions of the brain. The results can lead to tissue damage and alterations in behavioral tasks and natural movements, with additional difficulties in use for studies that involve social interactions and/or motions in complex 3-dimensional environments. These disadvantages are particularly pronounced in research that demands combined optogenetic and pharmacological functions in a single experiment. Here, we present a lightweight, wireless, battery-free injectable microsystem that combines soft microfluidic and microscale inorganic light-emitting diode probes for programmable pharmacology and optogenetics, designed to offer the features of drug refillability and adjustable flow rates, together with programmable control over the temporal profiles. The technology has potential for large-scale manufacturing and broad distribution to the neuroscience community, with capabilities in targeting specific neuronal populations in freely moving animals. In addition, the same platform can easily be adapted for a wide range of other types of passive or active electronic functions, including electrical stimulation.

Entities:  

Keywords:  neuroscience; optogenetics; pharmacology

Mesh:

Substances:

Year:  2019        PMID: 31601737      PMCID: PMC6815115          DOI: 10.1073/pnas.1909850116

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   12.779


  56 in total

1.  An implantable MEMS micropump system for drug delivery in small animals.

Authors:  Heidi Gensler; Roya Sheybani; Po-Ying Li; Ronalee Lo Mann; Ellis Meng
Journal:  Biomed Microdevices       Date:  2012-06       Impact factor: 2.838

2.  Brain micromotion around implants in the rodent somatosensory cortex.

Authors:  Aaron Gilletti; Jit Muthuswamy
Journal:  J Neural Eng       Date:  2006-06-07       Impact factor: 5.379

3.  Multifunctional fibers for simultaneous optical, electrical and chemical interrogation of neural circuits in vivo.

Authors:  Andres Canales; Xiaoting Jia; Ulrich P Froriep; Ryan A Koppes; Christina M Tringides; Jennifer Selvidge; Chi Lu; Chong Hou; Lei Wei; Yoel Fink; Polina Anikeeva
Journal:  Nat Biotechnol       Date:  2015-01-19       Impact factor: 54.908

Review 4.  MEMS: Enabled Drug Delivery Systems.

Authors:  Angelica Cobo; Roya Sheybani; Ellis Meng
Journal:  Adv Healthc Mater       Date:  2015-02-20       Impact factor: 9.933

5.  Neurotoxic reactive astrocytes are induced by activated microglia.

Authors:  Shane A Liddelow; Kevin A Guttenplan; Laura E Clarke; Frederick C Bennett; Christopher J Bohlen; Lucas Schirmer; Mariko L Bennett; Alexandra E Münch; Won-Suk Chung; Todd C Peterson; Daniel K Wilton; Arnaud Frouin; Brooke A Napier; Nikhil Panicker; Manoj Kumar; Marion S Buckwalter; David H Rowitch; Valina L Dawson; Ted M Dawson; Beth Stevens; Ben A Barres
Journal:  Nature       Date:  2017-01-18       Impact factor: 49.962

Review 6.  Diffusion of macromolecules in the brain: implications for drug delivery.

Authors:  Daniel J Wolak; Robert G Thorne
Journal:  Mol Pharm       Date:  2013-01-31       Impact factor: 4.939

7.  Orexin in Rostral Hotspot of Nucleus Accumbens Enhances Sucrose 'Liking' and Intake but Scopolamine in Caudal Shell Shifts 'Liking' Toward 'Disgust' and 'Fear'.

Authors:  Daniel C Castro; Rachel A Terry; Kent C Berridge
Journal:  Neuropsychopharmacology       Date:  2016-01-20       Impact factor: 7.853

8.  Photoactivatable drugs for nicotinic optopharmacology.

Authors:  Sambashiva Banala; Matthew C Arvin; Nicholas M Bannon; Xiao-Tao Jin; John J Macklin; Yong Wang; Can Peng; Guiqing Zhao; John J Marshall; Kyle R Gee; David L Wokosin; Veronica J Kim; J Michael McIntosh; Anis Contractor; Henry A Lester; Yevgenia Kozorovitskiy; Ryan M Drenan; Luke D Lavis
Journal:  Nat Methods       Date:  2018-03-26       Impact factor: 28.547

9.  A wireless closed-loop system for optogenetic peripheral neuromodulation.

Authors:  Aaron D Mickle; Sang Min Won; Kyung Nim Noh; Jangyeol Yoon; Kathleen W Meacham; Yeguang Xue; Lisa A McIlvried; Bryan A Copits; Vijay K Samineni; Kaitlyn E Crawford; Do Hoon Kim; Paulome Srivastava; Bong Hoon Kim; Seunghwan Min; Young Shiuan; Yeojeong Yun; Maria A Payne; Jianpeng Zhang; Hokyung Jang; Yuhang Li; H Henry Lai; Yonggang Huang; Sung-Il Park; Robert W Gereau; John A Rogers
Journal:  Nature       Date:  2019-01-02       Impact factor: 49.962

10.  Natural neural projection dynamics underlying social behavior.

Authors:  Lisa A Gunaydin; Logan Grosenick; Joel C Finkelstein; Isaac V Kauvar; Lief E Fenno; Avishek Adhikari; Stephan Lammel; Julie J Mirzabekov; Raag D Airan; Kelly A Zalocusky; Kay M Tye; Polina Anikeeva; Robert C Malenka; Karl Deisseroth
Journal:  Cell       Date:  2014-06-19       Impact factor: 41.582

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  32 in total

1.  Modeling programmable drug delivery in bioelectronics with electrochemical actuation.

Authors:  Raudel Avila; Chenhang Li; Yeguang Xue; John A Rogers; Yonggang Huang
Journal:  Proc Natl Acad Sci U S A       Date:  2021-03-16       Impact factor: 11.205

2.  Soft-Hard Composites for Bioelectric Interfaces.

Authors:  Yiliang Lin; Yin Fang; Jiping Yue; Bozhi Tian
Journal:  Trends Chem       Date:  2020-04-23

Review 3.  Optophysiology: Illuminating cell physiology with optogenetics.

Authors:  Peng Tan; Lian He; Yun Huang; Yubin Zhou
Journal:  Physiol Rev       Date:  2022-01-24       Impact factor: 37.312

Review 4.  Orthogonal Control of Neuronal Circuits and Behavior Using Photopharmacology.

Authors:  Rossella Castagna; Dušan Kolarski; Romain Durand-de Cuttoli; Galyna Maleeva
Journal:  J Mol Neurosci       Date:  2022-06-23       Impact factor: 2.866

Review 5.  Illuminating subcortical GABAergic and glutamatergic circuits for reward and aversion.

Authors:  Adam Gordon-Fennell; Garret D Stuber
Journal:  Neuropharmacology       Date:  2021-08-08       Impact factor: 5.273

Review 6.  Enlightening the frontiers of neurogastroenterology through optogenetics.

Authors:  Anthony C Johnson; Tijs Louwies; Casey O Ligon; Beverley Greenwood-Van Meerveld
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2020-08-05       Impact factor: 4.052

Review 7.  Steering Molecular Activity with Optogenetics: Recent Advances and Perspectives.

Authors:  Teak-Jung Oh; Huaxun Fan; Savanna S Skeeters; Kai Zhang
Journal:  Adv Biol (Weinh)       Date:  2021-01-14

Review 8.  How is flexible electronics advancing neuroscience research?

Authors:  Yihang Chen; Nicholas J Rommelfanger; Ali I Mahdi; Xiang Wu; Scott T Keene; Abdulmalik Obaid; Alberto Salleo; Huiliang Wang; Guosong Hong
Journal:  Biomaterials       Date:  2020-12-02       Impact factor: 12.479

9.  What is physiologging? Introduction to the theme issue, part 2.

Authors:  L A Hawkes; A Fahlman; K Sato
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2021-06-28       Impact factor: 6.671

10.  Future trends in measuring physiology in free-living animals.

Authors:  H J Williams; J Ryan Shipley; C Rutz; M Wikelski; M Wilkes; L A Hawkes
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2021-06-28       Impact factor: 6.671

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