1.Application of decellularization-recellularization technique in plastic and reconstructive surgery.
Yujia SHANG ; Guanhuier WANG ; Yonghuan ZHEN ; Na LIU ; Fangfei NIE ; Zhenmin ZHAO ; Hua LI ; Yang AN
Chinese Medical Journal 2023;136(17):2017-2027
In the field of plastic and reconstructive surgery, the loss of organs or tissues caused by diseases or injuries has resulted in challenges, such as donor shortage and immunosuppression. In recent years, with the development of regenerative medicine, the decellularization-recellularization strategy seems to be a promising and attractive method to resolve these difficulties. The decellularized extracellular matrix contains no cells and genetic materials, while retaining the complex ultrastructure, and it can be used as a scaffold for cell seeding and subsequent transplantation, thereby promoting the regeneration of diseased or damaged tissues and organs. This review provided an overview of decellularization-recellularization technique, and mainly concentrated on the application of decellularization-recellularization technique in the field of plastic and reconstructive surgery, including the remodeling of skin, nose, ears, face, and limbs. Finally, we proposed the challenges in and the direction of future development of decellularization-recellularization technique in plastic surgery.
Tissue Engineering/methods*
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Tissue Scaffolds/chemistry*
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Surgery, Plastic
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Regenerative Medicine/methods*
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Extracellular Matrix
2.Cell-loaded hydrogel microspheres based on droplet microfluidics: a review.
Caiyun ZHANG ; Yi ZENG ; Na XU ; Zhiling ZHANG
Chinese Journal of Biotechnology 2023;39(1):74-85
Droplet microfluidics technology offers refined control over the flows of multiple fluids in micro/nano-scale, enabling fabrication of micro/nano-droplets with precisely adjustable structures and compositions in a high-throughput manner. With the combination of proper hydrogel materials and preparation methods, single or multiple cells can be efficiently encapsulated into hydrogels to produce cell-loaded hydrogel microspheres. The cell-loaded hydrogel microspheres can provide a three-dimensional, relatively independent and controllable microenvironment for cell proliferation and differentiation, which is of great value for three-dimensional cell culture, tissue engineering and regenerative medicine, stem cell research, single cell study and many other biological science fields. In this review, the preparation methods of cell-loaded hydrogel microspheres based on droplet microfluidics and its applications in biomedical field are summarized and future prospects are proposed.
Hydrogels/chemistry*
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Microfluidics/methods*
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Microspheres
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Regenerative Medicine
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Tissue Engineering/methods*
3.Dynamic cell transition and immune response landscapes of axolotl limb regeneration revealed by single-cell analysis.
Hanbo LI ; Xiaoyu WEI ; Li ZHOU ; Weiqi ZHANG ; Chen WANG ; Yang GUO ; Denghui LI ; Jianyang CHEN ; Tianbin LIU ; Yingying ZHANG ; Shuai MA ; Congyan WANG ; Fujian TAN ; Jiangshan XU ; Yang LIU ; Yue YUAN ; Liang CHEN ; Qiaoran WANG ; Jing QU ; Yue SHEN ; Shanshan LIU ; Guangyi FAN ; Longqi LIU ; Xin LIU ; Yong HOU ; Guang-Hui LIU ; Ying GU ; Xun XU
Protein & Cell 2021;12(1):57-66
Ambystoma mexicanum/immunology*
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Amputation
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Animals
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Biomarkers/metabolism*
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Blastomeres/immunology*
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Cell Lineage/immunology*
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Connective Tissue Cells/immunology*
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Epithelial Cells/immunology*
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Forelimb
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Gene Expression
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High-Throughput Nucleotide Sequencing
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Humans
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Immunity
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Peroxiredoxins/immunology*
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Regeneration/immunology*
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Regenerative Medicine/methods*
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Single-Cell Analysis/methods*
4.Generation of Organotypic Multicellular Spheres by Magnetic Levitation: Model for the Study of Human Hematopoietic Stem Cells Microenvironment
Claudia Camila MEJÍA-CRUZ ; Emilia BARRETO-DURÁN ; María Alejandra PARDO-PÉREZ ; María Camila JIMENEZ ; Julieth RINCÓN ; Karen VANEGAS ; Jorge Luis RODRÍGUEZ ; Luis Fernando JARAMILLO-GARCIA ; Juan Carlos ULLOA ; Rodolfo Martínez DÍAZ ; Efrain LEAL-GARCÍA ; Rafael PÉREZ-NÚÑEZ ; Alfonso BARRETO ; Viviana M RODRÍGUEZ-PARDO
International Journal of Stem Cells 2019;12(1):51-62
BACKGROUND AND OBJECTIVE: The characteristics of human hematopoietic stem cells are conditioned by the microenvironment of the bone marrow, where they interact with other cell populations, such as mesenchymal stem cells and endothelial cells; however, the study of this microenvironment is complex. The objective of this work was to develop a 3D culture system by magnetic levitation that imitates the microenvironment of human HSC. METHODS AND RESULTS: Human bone marrow-mesenchymal stem cells, umbilical cord blood-hematopoietic stem cells and a non-tumoral endothelial cell line (CC2811, Lonza®) were used to develop organotypic multicellular spheres by the magnetic levitation method. We obtained viable structures with an average sphericity index greater than 0.6, an average volume of 0.5 mm3 and a percentage of aggregation greater than 70%. Histological studies of the organotypic multicellular spheres used hematoxylin and eosin stains, and an evaluation of vimentin expression by means of immunohistochemistry demonstrated an organized internal structure without picnotic cells and a high expression of vimentin. The functional capacity of human hematopoietic stem cells after organotypic multicellular spheres culture was evaluated by multipotency tests, and it was demonstrated that 3D structures without exogenous Flt3L are autonomous in the maintenance of multipotency of human hematopoietic stem cells. CONCLUSIONS: We developed organotypic multicellular spheres from normal human cells that mimic the microenvironment of the human hematopoietic stem cells. These structures are the prototype for the development of complex organoids that allow the further study of the biology of normal human stem cells and their potential in regenerative medicine.
Biology
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Bone Marrow
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Coloring Agents
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Endothelial Cells
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Eosine Yellowish-(YS)
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Hematopoietic Stem Cells
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Hematoxylin
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Humans
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Immunohistochemistry
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Mesenchymal Stromal Cells
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Methods
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Organoids
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Regenerative Medicine
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Stem Cells
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Umbilical Cord
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Vimentin
5.Differentiation Capacity of Monocyte-Derived Multipotential Cells on Nanocomposite Poly(e-caprolactone)-Based Thin Films
Iro KOLIAKOU ; Eleni GOUNARI ; Maria NERANTZAKI ; Eleni PAVLIDOU ; Dimitrios BIKIARIS ; Martha KALOYIANNI ; George KOLIAKOS
Tissue Engineering and Regenerative Medicine 2019;16(2):161-175
BACKGROUND: Lonocyte-derived multipotential cells (MOMCs) include progenitors capable of differentiation into multiple cell lineages and thus represent an ideal autologous transplantable cell source for regenerative medicine. In this study, we cultured MOMCs, generated from mononuclear cells of peripheral blood, on the surface of nanocomposite thin films. METHODS: For this purpose, nanocomposite Poly(e-caprolactone) (PCL)-based thin films containing either 2.5 wt% silica nanotubes (SiO2ntbs) or strontium hydroxyapatite nanorods (SrHAnrds), were prepared using the spin-coating method. The induced differentiation capacity of MOMCs, towards bone and endothelium, was estimated using flow cytometry, real-time polymerase chain reaction, scanning electron microscopy and fluorescence microscopy after cells' genetic modification using the Sleeping Beauty Transposon System aiming their observation onto the scaffolds. Moreover, Wharton's Jelly Mesenchymal Stromal Cells were cultivated as a control cell line, while Human Umbilical Vein Endothelial Cells were used to strengthen and accelerate the differentiation procedure in semi-permeable culture systems. Finally, the cytotoxicity of the studied materials was checked with MTT assay. RESULTS: The highest differentiation capacity of MOMCs was observed on PCL/SiO2ntbs 2.5 wt% nanocomposite film, as they progressively lost their native markers and gained endothelial lineage, in both protein and transcriptional level. In addition, the presence of SrHAnrds in the PCL matrix triggered processes related to osteoblast bone formation. CONCLUSION: To conclude, the differentiation of MOMCs was selectively guided by incorporating SiO2ntbs or SrHAnrds into a polymeric matrix, for the first time.
Autografts
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Beauty
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Cell Line
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Cell Lineage
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Durapatite
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Endothelium
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Flow Cytometry
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Human Umbilical Vein Endothelial Cells
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Mesenchymal Stromal Cells
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Methods
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Microscopy, Electron, Scanning
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Microscopy, Fluorescence
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Nanocomposites
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Nanotubes
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Osteoblasts
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Osteogenesis
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Polymers
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Real-Time Polymerase Chain Reaction
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Regenerative Medicine
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Silicon Dioxide
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Strontium
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Wharton Jelly
6.Comprehensive therapeutics targeting the corticospinal tract following spinal cord injury.
An-Kai XU ; Zhe GONG ; Yu-Zhe HE ; Kai-Shun XIA ; Hui-Min TAO
Journal of Zhejiang University. Science. B 2019;20(3):205-218
Spinal cord injury (SCI), which is much in the public eye, is still a refractory disease compromising the well-being of both patients and society. In spite of there being many methods dealing with the lesion, there is still a deficiency in comprehensive strategies covering all facets of this damage. Further, we should also mention the structure called the corticospinal tract (CST) which plays a crucial role in the motor responses of organisms, and it will be the focal point of our attention. In this review, we discuss a variety of strategies targeting different dimensions following SCI and some treatments that are especially efficacious to the CST are emphasized. Over recent decades, researchers have developed many effective tactics involving five approaches: (1) tackle more extensive regions; (2) provide a regenerative microenvironment; (3) provide a glial microenvironment; (4) transplantation; and (5) other auxiliary methods, for instance, rehabilitation training and electrical stimulation. We review the basic knowledge on this disease and correlative treatments. In addition, some well-formulated perspectives and hypotheses have been delineated. We emphasize that such a multifaceted problem needs combinatorial approaches, and we analyze some discrepancies in past studies. Finally, for the future, we present numerous brand-new latent tactics which have great promise for curbing SCI.
Animals
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Astrocytes/cytology*
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Axons/physiology*
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Cell Transplantation
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Disease Models, Animal
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Electric Stimulation
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Humans
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Microglia/cytology*
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Motor Neurons/cytology*
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Nerve Regeneration
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Neuroglia/cytology*
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Neuronal Plasticity
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Neurons/cytology*
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Oligodendroglia/cytology*
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Pyramidal Tracts/pathology*
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Recovery of Function
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Regenerative Medicine/methods*
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Spinal Cord Injuries/therapy*
7.Is Human-induced Pluripotent Stem Cell the Best Optimal?
Feng WANG ; ; Jie KONG ; Yi-Yao CUI ; Peng LIU ; ; Jian-Yan WEN ;
Chinese Medical Journal 2018;131(7):852-856
ObjectiveSince the advent of induced pluripotent stem cell (iPSC) technology a decade ago, enormous progress has been made in stem cell biology and regenerative medicine. Human iPSCs have been widely used for disease modeling, drug discovery, and cell therapy development. In this review, we discuss the progress in applications of iPSC technology that are particularly relevant to drug discovery and regenerative medicine, and consider the remaining challenges and the emerging opportunities in the field.
Data SourcesArticles in this review were searched from PubMed database from January 2014 to December 2017.
Study SelectionOriginal articles about iPSCs and cardiovascular diseases were included and analyzed.
ResultsiPSC holds great promises for human disease modeling, drug discovery, and stem cell-based therapy, and this potential is only beginning to be realized. However, several important issues remain to be addressed.
ConclusionsThe recent availability of human cardiomyocytes derived from iPSCs opens new opportunities to build in vitro models of cardiac disease, screening for new drugs and patient-specific cardiac therapy.
Cardiovascular Diseases ; therapy ; Embryonic Stem Cells ; physiology ; Humans ; Induced Pluripotent Stem Cells ; physiology ; Regenerative Medicine ; methods
8.Trans-differentiation via Epigenetics: A New Paradigm in the Bone Regeneration
Journal of Bone Metabolism 2018;25(1):9-13
In regenerative medicine, growing cells or tissues in the laboratory is necessary when damaged cells can not heal by themselves. Acquisition of the required cells from the patient's own cells or tissues is an ideal option without additive side effects. In this context, cell reprogramming methods, including the use of induced pluripotent stem cells (iPSCs) and trans-differentiation, have been widely studied in regenerative research. Both approaches have advantages and disadvantages, and the possibility of de-differentiation because of the epigenetic memory of iPSCs has strengthened the need for controlling the epigenetic background for successful cell reprogramming. Therefore, interest in epigenetics has increased in the field of regenerative medicine. Herein, we outline in detail the cell trans-differentiation method using epigenetic modification for bone regeneration in comparison to the use of iPSCs.
Bone Regeneration
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Cell Transdifferentiation
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Cellular Reprogramming
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Epigenomics
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Induced Pluripotent Stem Cells
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Memory
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Methods
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Regenerative Medicine
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Tissue Engineering
9.First stem cell transplantation to regenerate human lung.
Si WANG ; Jun WU ; Guang-Hui LIU
Protein & Cell 2018;9(3):244-245
10.Direct Conversion of Human Umbilical Cord Blood into Induced Neural Stem Cells with SOX2 and HMGA2.
Jae Jun KIM ; Ji Hee SHIN ; Kyung Rok YU ; Byung Chul LEE ; Insung KANG ; Jin Young LEE ; Da Hyun KIM ; Yoojin SEO ; Hyung Sik KIM ; Soon Won CHOI ; Kyung Sun KANG
International Journal of Stem Cells 2017;10(2):227-234
Recent advances have shown the direct reprogramming of mouse and human fibroblasts into induced neural stem cells (iNSCs) without passing through an intermediate pluripotent state. Thus, direct reprogramming strategy possibly provides a safe and homogeneous cellular platform. However, the applications of iNSCs for regenerative medicine are limited by the restricted availability of cell sources. Human umbilical cord blood (hUCB) cells hold great potential in that immunotyped hUCB units can be immediately obtained from public banks. Moreover, hUCB samples do not require invasive procedures during collection or an extensive culture period prior to reprogramming. We recently reported that somatic cells can be directly converted into iNSCs with high efficiency and a short turnaround time. Here, we describe the detailed method for the generation of iNSCs derived from hUCB (hUCB iNSCs) using the lineage-specific transcription factors SOX2 and HMGA2. The protocol for deriving iNSC-like colonies takes 1~2 weeks and establishment of homogenous hUCB iNSCs takes additional 2 weeks. Established hUCB iNSCs are clonally expandable and multipotent producing neurons and glia. Our study provides an accessible method for generating hUCB iNSCs, contributing development of in vitro neuropathological model systems.
Animals
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Fetal Blood*
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Fibroblasts
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Humans*
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In Vitro Techniques
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Methods
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Mice
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Neural Stem Cells*
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Neuroglia
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Neurons
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Regenerative Medicine
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Transcription Factors
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Umbilical Cord*

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