Recent advances in composite hydrogels: synthesis, classification, and application in the treatment of bone defects

Literature Information

Publication Date 2023-12-18
DOI 10.1039/D3BM01795H
Impact Factor 6.843
Authors

Pengfei Zhang, Jin Qi, Ran Zhang, Yifan Zhao, Jingyu Yan, Yajuan Gong, Xiaoming Liu, Binbin Zhang, Xiao Wu, Xiuping Wu, Cheng Zhang, Bing Zhao, Bing Li


View Original

Abstract

Bone defects are often difficult to treat due to their complexity and specificity, and therefore pose a serious threat to human life and health. Currently, the clinical treatment of bone defects is mainly surgical. However, this treatment is often more harmful to patients and there is a potential risk of rejection and infection. Hydrogels have a unique three-dimensional structure that can accommodate a variety of materials, including particles, polymers and small molecules, making them ideal for treating bone defects. Therefore, emerging composite hydrogels are considered one of the most promising candidates for the treatment of bone defects. This review describes the use of different types of composite hydrogel in the treatment of bone defects. We present the basic concepts of hydrogels, different preparation techniques (including chemical and physical crosslinking), and the clinical requirements for hydrogels used to treat bone defects. In addition, a review of numerous promising designs of different types of hydrogel doped with different materials (e.g., nanoparticles, polymers, carbon materials, drugs, and active factors) is also highlighted. Finally, the current challenges and prospects of composite hydrogels for the treatment of bone defects are presented. This review will stimulate research efforts in this field and promote the application of new methods and innovative ideas in the clinical field of composite hydrogels.

Related Literature

Energy loss analysis in photoelectrochemical water splitting: a case study of hematite photoanodes

Zhiliang Wang, Miaoqiang Lyu, Peng Chen, Songcan Wang, Lianzhou Wang

2018-08-16 Paper

DOI: 10.1039/C8CP04021D

Silicene-supported TiO2 nanostructures: a theoretical study of electronic and optical properties

Yesukhei Jagvaral, Qing Guo, Haiying He, Ravindra Pandey

2019-04-04 Paper

DOI: 10.1039/C9CP00894B

Polarized absorbance and Davydov splitting in bulk and thin-film pentacene polymorphs

Caterina Cocchi, Tobias Breuer, Gregor Witte, Claudia Draxl

2018-11-14 Paper

DOI: 10.1039/C8CP06384B

Strain controlled electronic and transport anisotropies in two-dimensional borophene sheets

Vivekanand Shukla, Anton Grigoriev, Naresh K. Jena

2018-08-14 Paper

DOI: 10.1039/C8CP03815E

Elucidating the morphological aspects and proton dynamics in a hybrid perfluorosulfonic acid membrane for medium-temperature fuel cell applications

Saeed Akbari, Mohammad Taghi Hamed Mosavian, Fatemeh Moosavi, Ali Ahmadpour

2018-11-05 Paper

DOI: 10.1039/C8CP05377D

Understanding the differences between iron and palladium in cross-coupling reactions

Xiaobo Sun, Trevor A. Hamlin

2019-02-25 Paper

DOI: 10.1039/C8CP07671E

Interface induced magnetic properties of Gd/Co heterostructures

C. L. Prajapat, M. Gupta, Harsh Bhatt, Yogesh Kumar, V. Karki

2018-07-26 Paper

DOI: 10.1039/C8CP02909A

Total electron scattering cross sections from para-benzoquinone in the energy range 1–200 eV

A. I. Lozano, J. C. Oller, D. B. Jones, M. T. do N. Varella, M. H. F. Bettega, F. Ferreira da Silva, P. Limão-Vieira, M. A. P. Lima, R. D. White, M. J. Brunger, F. Blanco, A. Muñoz, G. García

2018-08-13 Paper

DOI: 10.1039/C8CP03297A

Structural analysis of the initial lithiation of NiO thin film electrodes

Guennadi Evmenenko, Timothy T. Fister, Fernando C. Castro, Byeongdu Lee, D. Bruce Buchholz, Vinayak P. Dravid, Paul Fenter

2019-04-05 Paper

DOI: 10.1039/C9CP01527B

You might also like

Compound Q&A

What are the main uses of 4-Nitrophenyl phosphate disodium salt hexahydrate (CAS: 333338-18-4)?

4-Nitrophenyl phosphate disodium salt hexahydrate is primarily used as a substra...

333338-18-44-Nitrophenyl phosph...
Compound Q&A

What are the main uses of 2-(Trifluoromethyl)-1,3-oxazole-4-carboxylic Acid (CAS: 1060816-01-4)?

2-(Trifluoromethyl)-1,3-oxazole-4-carboxylic Acid (CAS: 1060816-01-4) is widely ...

1060816-01-42-(Trifluoromethyl)-...
Compound Q&A

How should 2-Fluoro-4-biphenylcarboxylic acid (CAS: 137045-30-8) be stored?

2-Fluoro-4-biphenylcarboxylic acid should be stored in a cool, dry place at room...

137045-30-82-Fluoro-4-biphenylc...
Compound Q&A

What industries use Prednisolone-21-Carboxylic Acid (CAS: 61549-70-0)?

Prednisolone-21-Carboxylic Acid is primarily used in the pharmaceutical industry...

61549-70-0Prednisolone-21-Carb...
Compound Q&A

How should 4-(Hydrazinomethyl)-1,2,3-benzenetriol (CAS: 3614-72-0) be stored?

4-(Hydrazinomethyl)-1,2,3-benzenetriol (CAS: 3614-72-0) should be stored in a co...

3614-72-04-(Hydrazinomethyl)-...
Compound Q&A

What industries use 4-Amino-1-methyl-1H-pyrazole-5-carboxylic acid hydrochloride (CAS: 92534-70-8)?

4-Amino-1-methyl-1H-pyrazole-5-carboxylic acid hydrochloride (CAS: 92534-70-8) i...

92534-70-84-Amino-1-methyl-1H-...
Compound Q&A

What regulatory guidelines apply to dehydropachymic acid (CAS: 77012-31-8)?

Dehydropachymic acid (CAS: 77012-31-8) is regulated by various agencies. It fall...

77012-31-8Dehydropachymic acid
Compound Q&A

What is the market or research trend for 6-[(2,2-Dimethylpropanoyl)amino]nicotinic acid (CAS: 898561-66-5)?

The market and research trends for 6-[(2,2-Dimethylpropanoyl)amino]nicotinic aci...

898561-66-56-[(2,2-Dimethylprop...
Compound Q&A

How should 1,10-Phenanthroline-2,9-dicarbaldehyde (CAS: 57709-62-3) be stored?

1,10-Phenanthroline-2,9-dicarbaldehyde should be stored in a cool, dry place awa...

57709-62-31,10-Phenanthroline-...
Compound Q&A

How is 5-Carbamoyl-11-oxo-10,11-dihydro-5H-dibenzo[b,f]azepin-10-yl acetate (CAS: 113952-21-9) typically synthesized?

5-Carbamoyl-11-oxo-10,11-dihydro-5H-dibenzo[b,f]azepin-10-yl acetate can be synt...

113952-21-95-Carbamoyl-11-oxo-1...

Source Journal

Biomaterials Science

Biomaterials Science
CiteScore: 11.5
Self-citation Rate: 3.4%
Articles per Year: 492

Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions. Papers do not necessarily need to report a new biomaterial but should provide novel insight into the biological applications of the biomaterial. Articles that primarily focus on demonstrating novel materials chemistry and bring a molecular picture to bear on a given material’s suitability as a biomaterial are more suited to our companion journal, Journal of Materials Chemistry B. Biomaterials Science publishes primary research and review-type articles in the following areas: molecular design of biomaterials, including translation of emerging chemistries to biomaterials science of cells and materials at the nanoscale and microscale materials as model systems for stem cell and human biology materials for tissue engineering and regenerative medicine (Nano)materials and (nano)systems for therapeutic delivery interactions at the biointerface biologically inspired and biomimetic materials, including bio-inspired self-assembly systems and cell-inspired synthetic tools next-generation biomaterials tools and methods

Recommended Compounds

Recommended Suppliers

Disclaimer
This page provides academic journal information for reference and research purposes only. We are not affiliated with any journal publishers and do not handle publication submissions. For publication-related inquiries, please contact the respective journal publishers directly.
If you notice any inaccuracies in the information displayed, please contact us at support@chemtradehub.com. We will promptly review and address your concerns.