Literature DB >> 33398826

Application of Optogenetics for Muscle Cells and Stem Cells.

Toshifumi Asano1, Daniel Boon Loong Teh2, Hiromu Yawo3.   

Abstract

This chapter describes the current progress of basic research, and potential therapeutic applications primarily focused on the optical manipulation of muscle cells and neural stem cells using microbial rhodopsin as a light-sensitive molecule. Since the contractions of skeletal, cardiac, and smooth muscle cells are mainly regulated through their membrane potential, several studies have been demonstrated to up- or downregulate the muscle contraction directly or indirectly using optogenetic actuators or silencers with defined stimulation patterns and intensities. Light-dependent oscillation of membrane potential also facilitates the maturation of myocytes with the development of T tubules and sarcomere structures, tandem arrays of minimum contractile units consists of contractile proteins and cytoskeletal proteins. Optogenetics has been applied to various stem cells and multipotent/pluripotent cells such as embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs) to generate light-sensitive neurons and to facilitate neuroscience. The chronic optical stimulation of the channelrhodopsin-expressing neural stem cells facilitates their neural differentiation. There are potential therapeutic applications of optogenetics in cardiac pacemaking, muscle regeneration/maintenance, locomotion recovery for the treatment of muscle paralysis due to motor neuron diseases such as amyotrophic lateral sclerosis (ALS). Optogenetics would also facilitate maturation, network integration of grafted neurons, and improve the microenvironment around them when applied to stem cells.

Entities:  

Keywords:  ALS; Amyotrophic lateral sclerosis; Ca2+; Cardiac muscle; Cardiac pacemaker; EC coupling; ESC; Microenvironment; Myoblast; Myocyte; NSC; Neural graft; Neurogenesis; Sarcomere; Skeletal muscle; Smooth muscle; Spinal cord injury; Stem cell; T tubule; iPSC

Year:  2021        PMID: 33398826     DOI: 10.1007/978-981-15-8763-4_23

Source DB:  PubMed          Journal:  Adv Exp Med Biol        ISSN: 0065-2598            Impact factor:   2.622


  64 in total

1.  Optogenetic control of cardiac function.

Authors:  Aristides B Arrenberg; Didier Y R Stainier; Herwig Baier; Jan Huisken
Journal:  Science       Date:  2010-11-12       Impact factor: 47.728

Review 2.  Optogenetics: 10 years after ChR2 in neurons--views from the community.

Authors:  Antoine Adamantidis; Silvia Arber; Jaideep S Bains; Ernst Bamberg; Antonello Bonci; György Buzsáki; Jessica A Cardin; Rui M Costa; Yang Dan; Yukiko Goda; Ann M Graybiel; Michael Häusser; Peter Hegemann; John R Huguenard; Thomas R Insel; Patricia H Janak; Daniel Johnston; Sheena A Josselyn; Christof Koch; Anatol C Kreitzer; Christian Lüscher; Robert C Malenka; Gero Miesenböck; Georg Nagel; Botond Roska; Mark J Schnitzer; Krishna V Shenoy; Ivan Soltesz; Scott M Sternson; Richard W Tsien; Roger Y Tsien; Gina G Turrigiano; Kay M Tye; Rachel I Wilson
Journal:  Nat Neurosci       Date:  2015-09       Impact factor: 24.884

3.  An optical neural interface: in vivo control of rodent motor cortex with integrated fiberoptic and optogenetic technology.

Authors:  Alexander M Aravanis; Li-Ping Wang; Feng Zhang; Leslie A Meltzer; Murtaza Z Mogri; M Bret Schneider; Karl Deisseroth
Journal:  J Neural Eng       Date:  2007-05-31       Impact factor: 5.379

4.  Bi-stable neural state switches.

Authors:  André Berndt; Ofer Yizhar; Lisa A Gunaydin; Peter Hegemann; Karl Deisseroth
Journal:  Nat Neurosci       Date:  2008-12-08       Impact factor: 24.884

5.  Optically controlled contraction of photosensitive skeletal muscle cells.

Authors:  Toshifumi Asano; Toru Ishizua; Hiromu Yawo
Journal:  Biotechnol Bioeng       Date:  2011-08-18       Impact factor: 4.530

6.  Multiscale computational models for optogenetic control of cardiac function.

Authors:  Oscar J Abilez; Jonathan Wong; Rohit Prakash; Karl Deisseroth; Christopher K Zarins; Ellen Kuhl
Journal:  Biophys J       Date:  2011-09-20       Impact factor: 4.033

7.  [Relapsing intrapelvic tumors].

Authors:  T Takayanagi
Journal:  Rinsho Byori       Date:  1967-08

8.  Optogenetics reveal delayed afferent synaptogenesis on grafted human-induced pluripotent stem cell-derived neural progenitors.

Authors:  Natalia Avaliani; Andreas Toft Sørensen; Marco Ledri; Johan Bengzon; Philipp Koch; Oliver Brüstle; Karl Deisseroth; My Andersson; Merab Kokaia
Journal:  Stem Cells       Date:  2014-12       Impact factor: 6.277

9.  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

10.  Organelle Optogenetics: Direct Manipulation of Intracellular Ca2+ Dynamics by Light.

Authors:  Toshifumi Asano; Hiroyuki Igarashi; Toru Ishizuka; Hiromu Yawo
Journal:  Front Neurosci       Date:  2018-08-17       Impact factor: 4.677

View more
  1 in total

Review 1.  Insights on gastrointestinal motility through the use of optogenetic sensors and actuators.

Authors:  Bernard T Drumm; Caroline A Cobine; Salah A Baker
Journal:  J Physiol       Date:  2022-06-14       Impact factor: 6.228

  1 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.