Literature DB >> 26976577

Optogenetic skeletal muscle-powered adaptive biological machines.

Ritu Raman1, Caroline Cvetkovic2, Sebastien G M Uzel3, Randall J Platt4, Parijat Sengupta5, Roger D Kamm6, Rashid Bashir7.   

Abstract

Complex biological systems sense, process, and respond to their surroundings in real time. The ability of such systems to adapt their behavioral response to suit a range of dynamic environmental signals motivates the use of biological materials for other engineering applications. As a step toward forward engineering biological machines (bio-bots) capable of nonnatural functional behaviors, we created a modular light-controlled skeletal muscle-powered bioactuator that can generate up to 300 µN (0.56 kPa) of active tension force in response to a noninvasive optical stimulus. When coupled to a 3D printed flexible bio-bot skeleton, these actuators drive directional locomotion (310 µm/s or 1.3 body lengths/min) and 2D rotational steering (2°/s) in a precisely targeted and controllable manner. The muscle actuators dynamically adapt to their surroundings by adjusting performance in response to "exercise" training stimuli. This demonstration sets the stage for developing multicellular bio-integrated machines and systems for a range of applications.

Keywords:  bioactuator; soft robotics; stereolithography; tissue engineering

Mesh:

Year:  2016        PMID: 26976577      PMCID: PMC4822586          DOI: 10.1073/pnas.1516139113

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  25 in total

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4.  A novel bioreactor for stimulating skeletal muscle in vitro.

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6.  Mechanical stimulation improves tissue-engineered human skeletal muscle.

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7.  The role of extracellular matrix composition in structure and function of bioengineered skeletal muscle.

Authors:  Sara Hinds; Weining Bian; Robert G Dennis; Nenad Bursac
Journal:  Biomaterials       Date:  2011-02-13       Impact factor: 12.479

Review 8.  Use of flow, electrical, and mechanical stimulation to promote engineering of striated muscles.

Authors:  Swathi Rangarajan; Lauran Madden; Nenad Bursac
Journal:  Ann Biomed Eng       Date:  2013-12-24       Impact factor: 3.934

9.  Optogenetics.

Authors:  Karl Deisseroth
Journal:  Nat Methods       Date:  2010-12-20       Impact factor: 28.547

10.  Optogenetic induction of contractile ability in immature C2C12 myotubes.

Authors:  Toshifumi Asano; Toru Ishizuka; Keisuke Morishima; Hiromu Yawo
Journal:  Sci Rep       Date:  2015-02-09       Impact factor: 4.379

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  58 in total

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3.  Application of Optogenetics for Muscle Cells and Stem Cells.

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Review 4.  Advances in engineering hydrogels.

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5.  Long-Term Cryopreservation and Revival of Tissue-Engineered Skeletal Muscle.

Authors:  Lauren Grant; Ritu Raman; Caroline Cvetkovic; Meghan C Ferrall-Fairbanks; Gelson J Pagan-Diaz; Pierce Hadley; Eunkyung Ko; Manu O Platt; Rashid Bashir
Journal:  Tissue Eng Part A       Date:  2019-01-09       Impact factor: 3.845

6.  A system to monitor statin-induced myopathy in individual engineered skeletal muscle myobundles.

Authors:  Xu Zhang; Sungmin Hong; Ringo Yen; Megan Kondash; Cristina E Fernandez; George A Truskey
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Review 7.  Muscular dystrophy in a dish: engineered human skeletal muscle mimetics for disease modeling and drug discovery.

Authors:  Alec S T Smith; Jennifer Davis; Gabsang Lee; David L Mack; Deok-Ho Kim
Journal:  Drug Discov Today       Date:  2016-04-22       Impact factor: 7.851

8.  Acute Optogenetic Modulation of Cardiac Twitch Dynamics Explored Through Modeling.

Authors:  Yasser Aboelkassem; Stuart G Campbell
Journal:  J Biomech Eng       Date:  2016-11-01       Impact factor: 2.097

Review 9.  A decade of progress in tissue engineering.

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10.  Robust mechanobiological behavior emerges in heterogeneous myosin systems.

Authors:  Paul F Egan; Jeffrey R Moore; Allen J Ehrlicher; David A Weitz; Christian Schunn; Jonathan Cagan; Philip LeDuc
Journal:  Proc Natl Acad Sci U S A       Date:  2017-09-12       Impact factor: 11.205

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