1.Research status and prospect of tissue engineering technology in treatment of atrophic rhinitis.
Shuting LEI ; Juanjuan HU ; Yingqi TANG ; Weigang GAN ; Yuting SONG ; Yanlin JIANG ; Honghui ZHANG ; Yaya GAO ; Hui YANG ; Huiqi XIE
Chinese Journal of Reparative and Reconstructive Surgery 2023;37(6):727-731
OBJECTIVE:
To review the research progress of the feasibility of a new treatment method for atrophic rhinitis (ATR) based on tissue engineering technology (seed cells, scaffold materials, and growth factors), and provide new ideas for the treatment of ATR.
METHODS:
The literature related to ATR was extensively reviewed. Focusing on the three aspects of seed cells, scaffold materials, and growth factors, the recent research progress of ATR treatment was reviewed, and the future directions of tissue engineering technology to treat ATR were proposed.
RESULTS:
The pathogenesis and etiology of ATR are still unclear, and the effectiveness of the current treatments are still unsatisfactory. The construction of a cell-scaffold complex with sustained and controlled release of exogenous cytokines is expected to reverse the pathological changes of ATR, promoting the regeneration of normal nasal mucosa and reconstructing the atrophic turbinate. In recent years, the research progress of exosomes, three-dimensional printing, and organoids will promote the development of tissue engineering technology for ATR.
CONCLUSION
Tissue engineering technology can provide a new treatment method for ATR.
Humans
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Tissue Engineering/methods*
;
Tissue Scaffolds
;
Rhinitis, Atrophic
;
Printing, Three-Dimensional
;
Cytokines
2.Effect of pH on the chelation between strontium ions and decellularized small intestinal submucosal sponge scaffolds.
Yu Ke LI ; Mei WANG ; Lin TANG ; Yu Hua LIU ; Xiao Ying CHEN
Journal of Peking University(Health Sciences) 2023;55(1):44-51
OBJECTIVE:
To investigate the preparation of decellularized small intestinal submucosa (dSIS) sponge scaffolds with chelated strontium (Sr) ions at different pH values, and to select the appropriate pH values for synthesizing Sr/dSIS scaffolds using the physicochemical properties and biocompatibility of the scaffolds as evaluation indexes.
METHODS:
(1) Sr/dSIS scaffolds preparation and grouping: After mixing dSIS solution and strontium chloride solution in equal volumes, adjusting pH of the solution to 3, 5, 7, and 9 respectively, porous scaffolds were prepared by freeze-drying method after full reaction at 37℃, which were named Sr/dSIS-3, -5, -7, and -9 respectively, and the dSIS scaffolds were used as the control group. (2) Physicochemical property evaluation: The bulk morphology of the scaffolds was observed in each group, the microscopic morphology analyzed by scanning electron microscopy, and the porosity and pore size determined, the surface elements analyzed by energy spectroscopy, the structure of functional groups analyzed by infrared spectroscopy, the chelation rate determined by atomic spectrophotometry, the water absorption rate detected by using specific gravity method, and the compression strength evaluated by universal mechanical testing machine.(3) Biocompatibility evaluation: The cytotoxicity and proliferative effect to bone mesenchymal stem cells (BMSCs) of each group were evaluated by Calcein-AM/PI double staining method.
RESULTS:
Scanning electron microscopy showed that the scaffolds of each group had an interconnected three-dimensional porous structure with no statistical difference in pore size and porosity. Energy spectrum analysis showed that strontium could be detected in Sr/dSIS-5, -7 and -9 groups, and strontium was uniformly distributed in the scaffolds. Functional group analysis further supported the formation of chelates in the Sr/dSIS-5, -7 and -9 groups. Chelation rate analysis showed that the Sr/dSIS-7 group had the highest strontium chelation rate, which was statistically different from the other groups (P < 0.05). The scaffolds in all the groups had good water absorption. The scaffolds in Sr/dSIS-5, -7 and -9 groups showed significantly improved mechanical properties compared with the control group (P < 0.05). The scaffolds in all the groups had good biocompatibility, and the Sr/dSIS-7 group showed the best proliferation of BMSCs.
CONCLUSION
When pH was 7, the Sr/dSIS scaffolds showed the highest strontium chelation rate and the best proliferation effect of BMSCs, which was the ideal pH value for the preparation of the Sr/dSIS scaffolds.
Tissue Scaffolds/chemistry*
;
Biocompatible Materials
;
Strontium/pharmacology*
;
Ions
;
Hydrogen-Ion Concentration
;
Tissue Engineering/methods*
;
Porosity
3.Progress in the application of patch materials in cardiovascular surgery.
Rubing SHAO ; Jiehua LI ; Lunchang WANG ; Xin LI ; Chang SHU
Journal of Central South University(Medical Sciences) 2023;48(2):285-293
The cardiovascular patch, served as artificial graft materials to replace heart or vascular tissue defect, is still playing a key role in cardiovascular surgeries. The defects of traditional cardiovascular patch materials may determine its unsatisfactory long-term effect or fatal complications after surgery. Recent studies on many new materials (such as tissue engineered materials, three-dimensional printed materials, etc) are being developed. Patch materials have been widely used in clinical procedures of cardiovascular surgeries such as angioplasty, cardiac atrioventricular wall or atrioventricular septum repair, and valve replacement. The clinical demand for better cardiovascular patch materials is still urgent. However, the cardiovascular patch materials need to adapt to normal coagulation mechanism and durability, promote short-term endothelialization after surgery, and inhibit long-term postoperative intimal hyperplasia, its research and development process is relatively complicated. Understanding the characteristics of various cardiovascular patch materials and their application in cardiovascular surgeries is important for the selection of new clinical surgical materials and the development of cardiovascular patch materials.
Cardiac Surgical Procedures/methods*
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Tissue Engineering
;
Heart Ventricles
;
Heart Atria
;
Treatment Outcome
4.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*
;
Tissue Scaffolds/chemistry*
;
Surgery, Plastic
;
Regenerative Medicine/methods*
;
Extracellular Matrix
5.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*
;
Microfluidics/methods*
;
Microspheres
;
Regenerative Medicine
;
Tissue Engineering/methods*
6.Research, development and application of collagen: a review.
Tao YE ; Qi XIANG ; Yan YANG ; Yadong HUANG
Chinese Journal of Biotechnology 2023;39(3):942-960
Collagen, which widely exists in skin, bone, muscle and other tissues, is a major structural protein in mammalian extracellular matrix. It participates in cell proliferation, differentiation, migration and signal transmission, plays an important role in tissue support and repair and exerts a protective effect. Collagen is widely used in tissue engineering, clinical medicine, food industry, packaging materials, cosmetics and medical beauty due to its good biological characteristics. This paper reviews the biological characteristics of collagen and its application in bioengineering research and development in recent years. Finally, we prospect the future application of collagen as a biomimetic material.
Animals
;
Collagen/analysis*
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Tissue Engineering/methods*
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Extracellular Matrix/metabolism*
;
Biomimetic Materials/chemistry*
;
Bone and Bones
;
Tissue Scaffolds
;
Mammals/metabolism*
7.Application of gelatin microspheres in bone tissue engineering.
Yuanhang ZHAI ; Jing LI ; Abudukahaer ABUDUAINI ; Zijiao YANG ; Zhiruo YU ; Yixuan CHEN ; Hao LIU ; Xin RONG
Chinese Journal of Biotechnology 2023;39(9):3724-3737
Gelatin microspheres were discussed as a scaffold material for bone tissue engineering, with the advantages of its porosity, biodegradability, biocompatibility, and biosafety highlighted. This review discusses how bone regeneration is aided by the three fundamental components of bone tissue engineering-seed cells, bioactive substances, and scaffold materials-and how gelatin microspheres can be employed for in vitro seed cell cultivation to ensure efficient expansion. This review also points out that gelatin microspheres are advantageous as drug delivery systems because of their multifunctional nature, which slows drug release and improves overall effectiveness. Although gelatin microspheres are useful for bone tissue creation, the scaffolds that take into account their porous structure and mechanical characteristics might be difficult to be created. This review then discusses typical techniques for creating gelatin microspheres, their recent application in bone tissue engineering, as well as possible future research directions.
Tissue Engineering/methods*
;
Tissue Scaffolds/chemistry*
;
Gelatin/chemistry*
;
Microspheres
;
Bone and Bones
;
Porosity
8.4D bioprinting technology and its application in cardiovascular tissue engineering.
Yuxiang HUANG ; Qi LI ; Wu YE ; Ziming HUANG ; Hanxiao QIN ; Ming ZHAO ; Ming LIU
Chinese Journal of Biotechnology 2023;39(10):4046-4056
3D bioprinting technology is a rapidly developing technique that employs bioinks containing biological materials and living cells to construct biomedical products. However, 3D-printed tissues are static, while human tissues are in real-time dynamic states that can change in morphology and performance. To improve the compatibility between in vitro and in vivo environments, an in vitro tissue engineering technique that simulates this dynamic process is required. The concept of 4D printing, which combines "3D printing + time" provides a new approach to achieving this complex technique. 4D printing involves applying one or more smart materials that respond to stimuli, enabling them to change their shape, performance, and function under the corresponding stimulus to meet various needs. This article focuses on the latest research progress and potential application areas of 4D printing technology in the cardiovascular system, providing a theoretical and practical reference for the development of this technology.
Humans
;
Tissue Engineering/methods*
;
Bioprinting/methods*
;
Printing, Three-Dimensional
;
Cardiovascular System
;
Tissue Scaffolds
9.Research progress in influence of microstructure on performance of triply-periodic minimal surface bone scaffolds.
Yadi SUN ; Jianxiong MA ; Yan WANG ; Benchao DONG ; Peichuan YANG ; Yan LI ; Yiyang LI ; Liyun ZHOU ; Jiahui SHEN ; Xinlong MA
Chinese Journal of Reparative and Reconstructive Surgery 2023;37(10):1314-1318
OBJECTIVE:
To summarize the influence of microstructure on performance of triply-periodic minimal surface (TPMS) bone scaffolds.
METHODS:
The relevant literature on the microstructure of TPMS bone scaffolds both domestically and internationally in recent years was widely reviewed, and the research progress in the imfluence of microstructure on the performance of bone scaffolds was summarized.
RESULTS:
The microstructure characteristics of TPMS bone scaffolds, such as pore shape, porosity, pore size, curvature, specific surface area, and tortuosity, exert a profound influence on bone scaffold performance. By finely adjusting the above parameters, it becomes feasible to substantially optimize the structural mechanical characteristics of the scaffold, thereby effectively preempting the occurrence of stress shielding phenomena. Concurrently, the manipulation of these parameters can also optimize the scaffold's biological performance, facilitating cell adhesion, proliferation, and growth, while facilitating the ingrowth and permeation of bone tissue. Ultimately, the ideal bone fusion results will obtain.
CONCLUSION
The microstructure significantly and substantially influences the performance of TPMS bone scaffolds. By deeply exploring the characteristics of these microstructure effects on the performance of bone scaffolds, the design of bone scaffolds can be further optimized to better match specific implantation regions.
Tissue Scaffolds/chemistry*
;
Tissue Engineering/methods*
;
Bone and Bones
;
Porosity
10.Bone/cartilage immunomodulating hydrogels: construction strategies and applications.
Maoyuan LI ; Guoshuang ZHENG ; Jiahui YANG ; Xiaofang CHEN ; Jianfeng XU ; Dewei ZHAO
Chinese Journal of Reparative and Reconstructive Surgery 2023;37(11):1423-1430
OBJECTIVE:
To review the research progress in the construction strategy and application of bone/cartilage immunomodulating hydrogels.
METHODS:
The literature related to bone/cartilage immunomodulating hydrogels at home and abroad in recent years was reviewed and summarized from the immune response mechanism of different immune cells, the construction strategy of immunomodulating hydrogels, and their practical applications.
RESULTS:
According to the immune response mechanism of different immune cells, the biological materials with immunoregulatory effect is designed, which can regulate the immune response of the body and thus promote the regeneration of bone/cartilage tissue. Immunomodulating hydrogels have good biocompatibility, adjustability, and multifunctionality. By regulating the physical and chemical properties of hydrogel and loading factors or cells, the immune system of the body can be purposively regulated, thus forming an immune microenvironment conducive to osteochondral regeneration.
CONCLUSION
Immunomodulating hydrogels can promote osteochondral repair by affecting the immunomodulation process of host organs or cells. It has shown a wide application prospect in the repair of osteochondral defects. However, more data support from basic and clinical experiments is needed for this material to further advance its clinical translation process.
Hydrogels
;
Cartilage
;
Bone and Bones
;
Tissue Engineering/methods*

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