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Three-dimensional electronic scaffolds for monitoring and regulation of multifunctional hybrid tissues

Three-dimensional electronic scaffolds for monitoring and regulation of multifunctional hybrid tissues
Three-dimensional electronic scaffolds for monitoring and regulation of multifunctional hybrid tissues
Recently, the integration of electronic elements with cellular scaffolds has brought forth the ability to monitor and control tissue function actively by using flexible free-standing two-dimensional (2D) systems. Capabilities for electrically probing complex, physicochemical and biological three-dimensional (3D) microenvironments demand, however, 3D electronic scaffolds with well-controlled geometries and functional-component distributions. This work presents the development of flexible 3D electronic scaffolds with precisely defined dimensions and microelectrode configurations formed using a process that relies on geometric transformation of 2D precursors by compressive buckling. It demonstrates a capability to fabricate these constructs in diverse 3D architectures and/or electrode distributions aimed at achieving an enhanced level of control and regulation of tissue function relatively to that of other approaches. In addition, this work presents the integration of these 3D electronic scaffolds within engineered 3D cardiac tissues, for monitoring of tissue function, controlling tissue contraction through electrical stimulation, and initiating on-demand, local release of drugs, each through well-defined volumetric spaces. These ideas provide opportunities in fields ranging from in vitro drug development to in vivo tissue repair and many others.
3D electronic scaffolds, Cardiac tissue engineering, Drug release, Electronic stimulation, Mechanically-guided assembly
Wang, Xueju
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Feiner, Ron
4d5e12b3-1ec3-4145-85c4-d909d656010a
Luan, Haiwen
8b8a17af-e841-4e21-ac63-3a4af5a113b9
Zhang, Qihui
b4245b9b-13ba-458b-8272-41d04a1efac0
Zhao, Shiwei
edaeb79e-a88a-4951-85cf-75bac408458a
Zhang, Yi
6cc61963-06a5-4599-bf58-97b9d2052b6e
Han, Mengdi
11b06ac2-504c-4757-a6c8-8e9a431f2dac
Li, Yi
4448057b-726a-4ce4-ba68-2915c42ddb14
Sun, Rujie
e3dad16d-6c79-4972-8378-edca28a3babd
Wang, Heling
3b78e216-9afc-4b5a-b2f7-4927843b4761
Liu, Tzu Li
f10e7a53-61de-46f4-9b20-49aed69457f6
Guo, Xiaogang
d5a6da3e-d35d-4b9e-bee5-63ec3e4191d6
Oved, Hadas
7dc1bed1-94eb-41c7-b54c-3f074558a93c
Noor, Nadav
fb04a976-b85c-4780-a8e3-1255f1ccd688
Shapira, Assaf
40cf642c-5447-44cf-852f-2cccba8cf425
Zhang, Yihui
20df80de-0f47-45a7-9384-abb770e98add
Huang, Yonggang
01e03ce9-0388-4274-8c0b-0a7fc4159bb3
Dvir, Tal
2a5a45eb-a80a-4935-8aba-cefe74cd6c7e
Rogers, John A.
512058b1-bc48-4659-b7e5-a5e964c92395
Wang, Xueju
a8267717-59fd-4343-8c6b-0ad072e5d1ae
Feiner, Ron
4d5e12b3-1ec3-4145-85c4-d909d656010a
Luan, Haiwen
8b8a17af-e841-4e21-ac63-3a4af5a113b9
Zhang, Qihui
b4245b9b-13ba-458b-8272-41d04a1efac0
Zhao, Shiwei
edaeb79e-a88a-4951-85cf-75bac408458a
Zhang, Yi
6cc61963-06a5-4599-bf58-97b9d2052b6e
Han, Mengdi
11b06ac2-504c-4757-a6c8-8e9a431f2dac
Li, Yi
4448057b-726a-4ce4-ba68-2915c42ddb14
Sun, Rujie
e3dad16d-6c79-4972-8378-edca28a3babd
Wang, Heling
3b78e216-9afc-4b5a-b2f7-4927843b4761
Liu, Tzu Li
f10e7a53-61de-46f4-9b20-49aed69457f6
Guo, Xiaogang
d5a6da3e-d35d-4b9e-bee5-63ec3e4191d6
Oved, Hadas
7dc1bed1-94eb-41c7-b54c-3f074558a93c
Noor, Nadav
fb04a976-b85c-4780-a8e3-1255f1ccd688
Shapira, Assaf
40cf642c-5447-44cf-852f-2cccba8cf425
Zhang, Yihui
20df80de-0f47-45a7-9384-abb770e98add
Huang, Yonggang
01e03ce9-0388-4274-8c0b-0a7fc4159bb3
Dvir, Tal
2a5a45eb-a80a-4935-8aba-cefe74cd6c7e
Rogers, John A.
512058b1-bc48-4659-b7e5-a5e964c92395

Wang, Xueju, Feiner, Ron, Luan, Haiwen, Zhang, Qihui, Zhao, Shiwei, Zhang, Yi, Han, Mengdi, Li, Yi, Sun, Rujie, Wang, Heling, Liu, Tzu Li, Guo, Xiaogang, Oved, Hadas, Noor, Nadav, Shapira, Assaf, Zhang, Yihui, Huang, Yonggang, Dvir, Tal and Rogers, John A. (2020) Three-dimensional electronic scaffolds for monitoring and regulation of multifunctional hybrid tissues. Extreme Mechanics Letters, 35, [100634]. (doi:10.1016/j.eml.2020.100634).

Record type: Article

Abstract

Recently, the integration of electronic elements with cellular scaffolds has brought forth the ability to monitor and control tissue function actively by using flexible free-standing two-dimensional (2D) systems. Capabilities for electrically probing complex, physicochemical and biological three-dimensional (3D) microenvironments demand, however, 3D electronic scaffolds with well-controlled geometries and functional-component distributions. This work presents the development of flexible 3D electronic scaffolds with precisely defined dimensions and microelectrode configurations formed using a process that relies on geometric transformation of 2D precursors by compressive buckling. It demonstrates a capability to fabricate these constructs in diverse 3D architectures and/or electrode distributions aimed at achieving an enhanced level of control and regulation of tissue function relatively to that of other approaches. In addition, this work presents the integration of these 3D electronic scaffolds within engineered 3D cardiac tissues, for monitoring of tissue function, controlling tissue contraction through electrical stimulation, and initiating on-demand, local release of drugs, each through well-defined volumetric spaces. These ideas provide opportunities in fields ranging from in vitro drug development to in vivo tissue repair and many others.

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More information

Accepted/In Press date: 16 January 2020
e-pub ahead of print date: 28 January 2020
Published date: 16 March 2020
Keywords: 3D electronic scaffolds, Cardiac tissue engineering, Drug release, Electronic stimulation, Mechanically-guided assembly

Identifiers

Local EPrints ID: 486922
URI: http://eprints.soton.ac.uk/id/eprint/486922
PURE UUID: fac3dc5c-86f8-4d21-8414-e5c8186e621c

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Date deposited: 08 Feb 2024 17:41
Last modified: 17 Mar 2024 07:24

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Contributors

Author: Xueju Wang
Author: Ron Feiner
Author: Haiwen Luan
Author: Qihui Zhang
Author: Shiwei Zhao
Author: Yi Zhang
Author: Mengdi Han
Author: Yi Li
Author: Rujie Sun
Author: Heling Wang
Author: Tzu Li Liu
Author: Xiaogang Guo
Author: Hadas Oved
Author: Nadav Noor
Author: Assaf Shapira
Author: Yihui Zhang
Author: Yonggang Huang
Author: Tal Dvir
Author: John A. Rogers

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