Javascript must be enabled to continue!
Extruded alginate tubes with myogenic potential
View through CrossRef
ABSTRACT
BACKGROUND
There are currently no proven methods to reverse muscle loss in humans, which is caused by trauma (e.g., volumetric muscle loss, VML), genetic neuromuscular diseases (e.g., muscular dystrophies, MDs), and accelerated senescence (e.g., sarcopenia). Since muscle tissue is capable of regeneration through muscle satellite cells (MuSCs), the implantation of autologous (or other) donor MuSCs and MuSC-derived myoblasts into host muscles can promote donor-cell-derived myogenesis. Direct injection or implantation of MuSCs or MuSC-derived myoblasts into host muscles only promotes minimal donor-cell-derived myogenesis, whereas implantation of MuSCs/myoblasts along with associated muscle tissue (muscle fibers, extracellular matrix, neurovascular pathways, etc.) gives better results.
METHODS
We aim to leverage the benefits of constraining donor myogenic cells within a template that resembles muscle tissue. In this paper, we present a workflow for basic and translational studies aimed at promoting donor-cell-derived myogenesis to increase functional muscle mass in mice. Our workflow involves preparing a slurry of 10% sodium alginate mixed with myogenic cells in cell culture media, extruding the cell-containing slurry into 10% calcium lactate to form tubes, and implanting the cellularized alginate tubes into host muscle.
RESULTS
Our data suggest that, the extruded alginate tubes can tolerate a peak stress of 1892 ± 527 mN, that the elastic range is at ~75-125% strain beyond initial length, and that the Young’s modulus (stiffness) is 14.17 ± 1.68 %/mm
2
. Importantly, these mechanical properties render the alginate tubes suitable for a published technique known as minimally-invasive muscle embedding (MIME) that was developed by us to implant myogenic material into host muscle. MIME involves threading donor myogenic tissue into a needle track created within a host muscle. Cellularized alginate tubes implanted into the tibialis anterior muscle of previously euthanized mice had numerous hematoxylin-stained structures similar to nuclear staining, supporting the idea that our alginate tubes can support cell seeding. Alginate tubes that were seeded with MuSCs, incubated in MuSC/myoblast growth (i.e., proliferation) media for two days, incubated in myotube differentiation media for six days, and then minced and reseeded in new dishes, were able to promote in vitro myoblast outgrowth over several days.
DISCUSSION
This pilot study is limited in its translational scope because it was performed in vitro and with previously euthanized mice. Additional studies are needed to confirm that cellularized alginate tubes can promote the de novo development of donor-cell-derived muscle fibers, which can contribute to contractile force production.
CONCLUSION
Alginate tubes with MuSC/myoblasts can be generated by a simple extrusion method. The alginate tubes have sufficient mechanical strength to tolerate insertion into a host muscle, in a minimally-invasive manner, through a needle track. The cellularized alginate tubes demonstrate myogenic potential since they are capable of being maintained in culture conditions for several days, after which they can still facilitate myoblast outgrowth in a dish.
Title: Extruded alginate tubes with myogenic potential
Description:
ABSTRACT
BACKGROUND
There are currently no proven methods to reverse muscle loss in humans, which is caused by trauma (e.
g.
, volumetric muscle loss, VML), genetic neuromuscular diseases (e.
g.
, muscular dystrophies, MDs), and accelerated senescence (e.
g.
, sarcopenia).
Since muscle tissue is capable of regeneration through muscle satellite cells (MuSCs), the implantation of autologous (or other) donor MuSCs and MuSC-derived myoblasts into host muscles can promote donor-cell-derived myogenesis.
Direct injection or implantation of MuSCs or MuSC-derived myoblasts into host muscles only promotes minimal donor-cell-derived myogenesis, whereas implantation of MuSCs/myoblasts along with associated muscle tissue (muscle fibers, extracellular matrix, neurovascular pathways, etc.
) gives better results.
METHODS
We aim to leverage the benefits of constraining donor myogenic cells within a template that resembles muscle tissue.
In this paper, we present a workflow for basic and translational studies aimed at promoting donor-cell-derived myogenesis to increase functional muscle mass in mice.
Our workflow involves preparing a slurry of 10% sodium alginate mixed with myogenic cells in cell culture media, extruding the cell-containing slurry into 10% calcium lactate to form tubes, and implanting the cellularized alginate tubes into host muscle.
RESULTS
Our data suggest that, the extruded alginate tubes can tolerate a peak stress of 1892 ± 527 mN, that the elastic range is at ~75-125% strain beyond initial length, and that the Young’s modulus (stiffness) is 14.
17 ± 1.
68 %/mm
2
.
Importantly, these mechanical properties render the alginate tubes suitable for a published technique known as minimally-invasive muscle embedding (MIME) that was developed by us to implant myogenic material into host muscle.
MIME involves threading donor myogenic tissue into a needle track created within a host muscle.
Cellularized alginate tubes implanted into the tibialis anterior muscle of previously euthanized mice had numerous hematoxylin-stained structures similar to nuclear staining, supporting the idea that our alginate tubes can support cell seeding.
Alginate tubes that were seeded with MuSCs, incubated in MuSC/myoblast growth (i.
e.
, proliferation) media for two days, incubated in myotube differentiation media for six days, and then minced and reseeded in new dishes, were able to promote in vitro myoblast outgrowth over several days.
DISCUSSION
This pilot study is limited in its translational scope because it was performed in vitro and with previously euthanized mice.
Additional studies are needed to confirm that cellularized alginate tubes can promote the de novo development of donor-cell-derived muscle fibers, which can contribute to contractile force production.
CONCLUSION
Alginate tubes with MuSC/myoblasts can be generated by a simple extrusion method.
The alginate tubes have sufficient mechanical strength to tolerate insertion into a host muscle, in a minimally-invasive manner, through a needle track.
The cellularized alginate tubes demonstrate myogenic potential since they are capable of being maintained in culture conditions for several days, after which they can still facilitate myoblast outgrowth in a dish.
Related Results
Hydrogel and Polyester Ventilation Tubes in an Animal Model
Hydrogel and Polyester Ventilation Tubes in an Animal Model
ProblemDetermine the resorption rate and biocompatibility characteristics of novel cross‐linked hydrogel ventilations tubes and varied formulations of polyester ventilation tubes.M...
Characterization of chitosan/alginate/lovastatin nanoparticles and investigation of their toxic effects in vitro and in vivo
Characterization of chitosan/alginate/lovastatin nanoparticles and investigation of their toxic effects in vitro and in vivo
AbstractIn this study, chitosan and alginate were selected to prepare alginate/chitosan nanoparticles to load the drug lovastatin by the ionic gelation method. The synthesized nano...
Bithermal caloric test results and vestibular evoked myogenic potentials in patients with vestibular migraine
Bithermal caloric test results and vestibular evoked myogenic potentials in patients with vestibular migraine
Objectives:
The aim of this study was to study the ocular vestibular evoked myogenic potentials, cervical vestibular evoked myogenic potentials, and bithermal caloric t...
Iron-Regulated Expression of Alginate Production, Mucoid Phenotype, and Biofilm Formation by Pseudomonas aeruginosa
Iron-Regulated Expression of Alginate Production, Mucoid Phenotype, and Biofilm Formation by Pseudomonas aeruginosa
ABSTRACT
Pseudomonas aeruginosa
strains of non-cystic fibrosis (non-CF) origin do not produce significant amounts of extr...
Polylactide-Grafted Metal-Alginate Aerogels
Polylactide-Grafted Metal-Alginate Aerogels
Τhis work describes the synthesis of PLA-grafted M-alginate (g-M-alginate; M: Ca2+, Co2+, Ni2+, Cu2+) aerogels. DL-lactide (LA) was attached on the surface of preformed M-alginate ...
Cysteinyl Leukotriene 1 Receptors as Novel Mechanosensors Mediating Myogenic Tone Together With Angiotensin II Type 1 Receptors—Brief Report
Cysteinyl Leukotriene 1 Receptors as Novel Mechanosensors Mediating Myogenic Tone Together With Angiotensin II Type 1 Receptors—Brief Report
Objective—
Myogenic vasoconstriction is mediated by vascular smooth muscle cells of resistance arteries sensing mechanical stretch. Angiotensin II AT
...
Microwave-Assisted Extraction in A Sequential Biorefinery of Alginate and Fucoidan From Brown Alga Sargassum Cristaefolium
Microwave-Assisted Extraction in A Sequential Biorefinery of Alginate and Fucoidan From Brown Alga Sargassum Cristaefolium
The brown alga has bioactive alginate and fucoidan, a potential for raw materials the biorefinery industry with core processing of fucoidan and alginate extraction. The research on...
Enhancement of Antioxidant and Hydrophobic Properties of Alginate via Aromatic Derivatization: Preparation, Characterization, and Evaluation
Enhancement of Antioxidant and Hydrophobic Properties of Alginate via Aromatic Derivatization: Preparation, Characterization, and Evaluation
The preparation of bioactive polymeric molecules requires the attention of scientists as it has a potential function in biomedical applications. In the current study, functional su...

