Smart alginate inks for tissue engineering applications

被引:10
作者
Keshavarz, Mozhgan [1 ,2 ]
Jahanshahi, Mohammadjavad [3 ]
Hasany, Masoud [4 ]
Kadumudi, Firoz Babu [5 ]
Mehrali, Mehdi [4 ]
Shahbazi, Mohammad-Ali [6 ,7 ]
Alizadeh, Parvin [1 ]
Orive, Gorka [2 ,8 ,9 ,10 ]
Dolatshahi-Pirouz, Alireza [5 ]
机构
[1] Tarbiat Modares Univ, Fac Engn & Technol, Dept Mat Sci & Engn, POB 14115-143, Tehran, Iran
[2] Univ Basque Country UPV EHU, Sch Pharm, NanoBioCel Grp, Vitoria 01006, Spain
[3] Univ Jiroft, Fac Sci, Dept Chem, POB 8767161167, Jiroft, Iran
[4] Tech Univ Denmark, Dept Civil & Mech Engn, DK-2800 Lyngby, Denmark
[5] Tech Univ Denmark, Dept Hlth Technol, DK-2800 Lyngby, Denmark
[6] Univ Groningen, Univ Med Ctr Groningen, Dept Biomed Engn, Antonius Deusinglaan 1, NL-9713 AV Groningen, Netherlands
[7] Univ Groningen, WJ Kolff Inst Biomed Engn & Mat Sci, Antonius Deusinglaan 1, NL-9713 AV Groningen, Netherlands
[8] Biomed Res Networking Ctr Bioengn Biomat & Nanomed, Vitoria 01006, Spain
[9] Univ Inst Regenerat Med & Oral Implantol UIRMI, UPV EHU Fundacion Eduardo Anitua, Vitoria 01006, Spain
[10] Bioaraba, NanoBioCel Res Grp, Vitoria 01006, Spain
关键词
Bioprinting; 3D bioprinting; 4D bioprinting; Tissue engineering; Hydrogels; HYDROGELS; SCAFFOLDS; HYDROXYAPATITE; BIOMATERIALS; NANOPARTICLES; PRINTABILITY; DEGRADATION; MECHANISMS; OXIDATION; GELATION;
D O I
10.1016/j.mtbio.2023.100829
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Amazing achievements have been made in the field of tissue engineering during the past decades. However, we have not yet seen fully functional human heart, liver, brain, or kidney tissue emerge from the clinics. The promise of tissue engineering is thus still not fully unleashed. This is mainly related to the challenges associated with producing tissue constructs with similar complexity as native tissue. Bioprinting is an innovative technology that has been used to obliterate these obstacles. Nevertheless, natural organs are highly dynamic and can change shape over time; this is part of their functional repertoire inside the body. 3D-bioprinted tissue constructs should likewise adapt to their surrounding environment and not remain static. For this reason, the new trend in the field is 4D bioprinting - a new method that delivers printed constructs that can evolve their shape and function over time. A key lack of methodology for printing approaches is the scalability, easy-to-print, and intelligent inks. Alginate plays a vital role in driving innovative progress in 3D and 4D bioprinting due to its exceptional properties, scalability, and versatility. Alginate's ability to support 3D and 4D printing methods positions it as a key material for fueling advancements in bioprinting across various applications, from tissue engineering to regenerative medicine and beyond. Here, we review the current progress in designing scalable alginate (Alg) bioinks for 3D and 4D bioprinting in a "dry"/air state. Our focus is primarily on tissue engineering, however, these next-generation materials could be used in the emerging fields of soft robotics, bioelectronics, and cyborganics.
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页数:22
相关论文
共 142 条
  • [1] Alginate-based hydrogels as drug delivery vehicles in cancer treatment and their applications in wound dressing and 3D bioprinting
    Abasalizadeh, Farhad
    Moghaddam, Sevil Vaghefi
    Alizadeh, Effat
    Akbari, Elahe
    Kashani, Elmira
    Fazljou, Seyyed Mohammad Bagher
    Torbati, Mohammadali
    Akbarzadeh, Abolfazl
    [J]. JOURNAL OF BIOLOGICAL ENGINEERING, 2020, 14 (01)
  • [2] Adhikari J., 2021, NANO STRUCT NANOOBJE, V25, DOI DOI 10.1016/J.NANOSO.2020.100630
  • [3] Multifunctional polyethylene imine hybrids decorated by silica bioactive glass with enhanced mechanical properties, antibacterial, and osteogenesis for bone repair
    Aghayan, Mitra
    Alizadeh, Parvin
    Keshavarz, Mozhgan
    [J]. MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2021, 131
  • [4] Ahadian S., 2016, Tissue Eng Artif Organs Regen Med Smart Diagnostics Pers Med, V1-2, DOI DOI 10.1002/9783527689934.CH2
  • [5] Smart scaffolds in tissue regeneration
    Ahadian, Samad
    Khademhosseini, Ali
    [J]. REGENERATIVE BIOMATERIALS, 2018, 5 (03) : 125 - 128
  • [6] Development of a clay based bioink for 3D cell printing for skeletal application
    Ahlfeld, T.
    Cidonio, G.
    Kilian, D.
    Duin, S.
    Akkineni, A. R.
    Dawson, J. I.
    Yang, S.
    Lode, A.
    Oreffo, R. O. C.
    Gelinsky, M.
    [J]. BIOFABRICATION, 2017, 9 (03)
  • [7] Biomimetic double network hydrogels: Combining dynamic and static crosslinks to enable biofabrication and control cell-matrix interactions
    Aldana, Ana A.
    Morgan, Francis L. C.
    Houben, Sofie
    Pitet, Louis M.
    Moroni, Lorenzo
    Baker, Matthew B.
    [J]. JOURNAL OF POLYMER SCIENCE, 2021, 59 (22) : 2832 - 2843
  • [8] Multi-nozzle extrusion system for 3D printer and its control mechanism
    Ali, Md. Hazrat
    Mir-Nasiri, Nazim
    Ko, Wai Lun
    [J]. INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2016, 86 (1-4) : 999 - 1010
  • [9] Bioprinting and its applications in tissue engineering and regenerative medicine
    Aljohani, Waeljumah
    Ullah, Muhammad Wajid
    Zhang, Xianglin
    Yang, Guang
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2018, 107 : 261 - 275
  • [10] Advances and Future Perspectives in 4D Bioprinting
    Ashammakhi, Nureddin
    Ahadian, Samad
    Fan Zengjie
    Suthiwanich, Kasinan
    Lorestani, Farnaz
    Orive, Gorka
    Ostrovidov, Serge
    Khademhosseini, Ali
    [J]. BIOTECHNOLOGY JOURNAL, 2018, 13 (12)