scholarly journals Correction to: Growth and elongation of axons through mechanical tension mediated by fluorescent-magnetic bifunctional Fe3O4·Rhodamine 6G@PDA superparticles

2021 ◽  
Vol 19 (1) ◽  
Author(s):  
Yang Wang ◽  
Binxi Li ◽  
Hao Xu ◽  
Shulin Du ◽  
Ting Liu ◽  
...  

An amendment to this paper has been published and can be accessed via the original article.

2020 ◽  
Author(s):  
Yang Wang ◽  
Binxi Li ◽  
Hao Xu ◽  
Shulin Du ◽  
Ting Liu ◽  
...  

Abstract Background: The primary strategy to repair the peripheral nerve injuries is to bridge the lesions by promoting axon regeneration. Thus, the ability to direct and manipulate neuronal cells axon regeneration has been one of the top priorities in the field of neuroscience. A recent innovative approach for remotely guiding neuronal regeneration is to incorporate magnetic nanoparticles (MNPs) into cells and transfer the MNPs-loaded cells into magnetic sensitive environment to response to external magnetic field. In order to realize this intention, synthesis and preparation of an ideal MNPs appears to be a challenge to overcome. Results: In this study we design and prepare a type of novel Fluorescent-Magnetic bifunctional Fe3O4·Rhodamine 6G@polydopamine Superparticles (FMSPs) for neural regeneration therapeutics. With the help of their excellent biocompatibility and ability to interact with neural cells, our homemade FMSPs can be endocytosed into cells, transported along the axons, and then aggregated in the growth cones. As a result, the mechanical forces generated by FMSPs are capable to promote the growth and elongation of axons and stimulate gene expression associated with neuron growth under the external magnetic fields.Conclusions: Our work demonstrates that FMSPs can be used as a novel stimulator to promote the non-invasive neural regeneration through cell magnetic actuation.


Author(s):  
Yang Wang ◽  
Binxi Li ◽  
Hao Xu ◽  
Shulin Du ◽  
Ting Liu ◽  
...  

Abstract Background: The primary strategy to repair peripheral nerve injuries is to bridge the lesions by promoting axon regeneration. Thus, the ability to direct and manipulate neuronal cell axon regeneration has been one of the top priorities in the field of neuroscience. A recent innovative approach for remotely guiding neuronal regeneration is to incorporate magnetic nanoparticles (MNPs) into cells and transfer the resulting MNP-loaded cells into a magnetically sensitive environment to respond to an external magnetic field. To realize this intention, the synthesis and preparation of ideal MNPs is an important challenge to overcome. Results: In this study, we designed and prepared novel fluorescent-magnetic bifunctional Fe 3 O 4 ·Rhodamine 6G@polydopamine superparticles (FMSPs) as neural regeneration therapeutics. With the help of their excellent biocompatibility and ability to interact with neural cells, our in-house fabricated FMSPs can be endocytosed into cells, transported along the axons, and then aggregated in the growth cones. As a result, the mechanical forces generated by FMSPs can promote the growth and elongation of axons and stimulate gene expression associated with neuron growth under external magnetic fields. Conclusions: Our work demonstrates that FMSPs can be used as a novel stimulator to promote noninvasive neural regeneration through cell magnetic actuation.


2016 ◽  
Vol 75 (11) ◽  
pp. 1001-1008
Author(s):  
S.V. Nikolayev ◽  
V. V. Pozhar ◽  
M. I. Dzyubenko ◽  
K. S. Nikolayev

2021 ◽  
Vol 321 ◽  
pp. 111113
Author(s):  
E. Estrada-Cabrera ◽  
L.R. Torres-Ferrer ◽  
G. Luna-Barcenas ◽  
R. Ramirez-Bon

2021 ◽  
Vol 548 ◽  
pp. 149252
Author(s):  
Sanchaya Pandit ◽  
Sundar Kunwar ◽  
Rakesh Kulkarni ◽  
Rutuja Mandavka ◽  
Shusen Lin ◽  
...  

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