A comprehensive review of the application of 3D-bioprinting in chronic wound management

被引:3
|
作者
Guptha, Prathap Madeswara [1 ]
Kanoujia, Jovita [1 ]
Kishore, Ankita [1 ]
Raina, Neha [2 ]
Wahi, Abhishek [2 ]
Gupta, Piyush Kumar [3 ]
Gupta, Madhu [2 ]
机构
[1] Amity Univ Madhya Pradesh AUMP, Amity Inst Pharm, Gwalior, India
[2] Delhi Pharmaceut Sci & Res Univ, Sch Pharmaceut Sci, Dept Pharmaceut, Pushp Vihar, New Delhi 110017, India
[3] Sharda Univ, Sharda Sch Basic Sci & Res, Dept Life Sci, Greater Noida, India
关键词
Chronic wounds; 3D-bioprinting; wound dressing; natural biomaterials; wound; CELL-LADEN; DRUG-DELIVERY; DRESSINGS; HYDROGEL; MECHANISMS; SCAFFOLDS; BIOINKS;
D O I
10.1080/17425247.2024.2355184
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
IntroductionChronic wounds require more sophisticated care than standard wound care because they are becoming more severe as a result of diseases like diabetes. By resolving shortcomings in existing methods, 3D-bioprinting offers a viable path toward personalized, mechanically strong, and cell-stimulating wound dressings.Areas CoveredThis review highlights the drawbacks of traditional approaches while navigating the difficulties of managing chronic wounds. The conversation revolves around employing natural biomaterials for customized dressings, with a particular emphasis on 3D-bioprinting. A thorough understanding of the uses of 3D-printed dressings in a range of chronic wound scenarios is provided by insights into recent research and patents.Expert OpinionThe expert view recognizes wounds as a historical human ailment and emphasizes the growing difficulties and expenses related to wound treatment. The expert acknowledges that 3D printing is revolutionary, but also points out that it is still in its infancy and has the potential to enhance mass production rather than replace it. The review highlights the benefits of 3D printing for wound dressings by providing instances of smart materials that improve treatment results by stimulating angiogenesis, reducing pain, and targeting particular enzymes. The expert advises taking action to convert the technology's prospective advantages into real benefits for patients, even in the face of resistance to change in the healthcare industry. It is believed that the increasing evidence from in-vivo studies is promising and represents a positive change in the treatment of chronic wounds toward sophisticated 3D-printed dressings.
引用
收藏
页码:1573 / 1594
页数:22
相关论文
共 50 条
  • [41] Motility Improvement of Biomimetic Trachea Scaffold via Hybrid 3D-Bioprinting Technology
    Yu, Young Soo
    Ahn, Chi Bum
    Son, Kuk Hui
    Lee, Jin Woo
    POLYMERS, 2021, 13 (06)
  • [42] Modern materials used in 3D-bioprinting and methods of their improvement for use in regenerative medicine
    Ryabov, V. M.
    JOURNAL OF BIOENERGETICS AND BIOMEMBRANES, 2018, 50 (06) : 577 - 577
  • [43] Towards 3D-Bioprinting of Bionic Pancreas: Effect of Pressure on the Viability of Pancreatic Islets
    Klak, M.
    Kosowska, K.
    Majdanska, E.
    Dobrzanski, T.
    Berman, A.
    Kaczynski, L.
    Kowalska, P.
    Gomolka, M.
    Wszola, M.
    AMERICAN JOURNAL OF TRANSPLANTATION, 2019, 19 : 921 - 922
  • [44] Bioink Based on the dECM for 3D-Bioprinting of Bionic Pancreas - First Results of Animal
    Klak, Marta
    Kosowska, Katarzyna
    Bryniarski, Tomasz
    Lojszczyk, Ilona
    Dobrzanski, Tomasz
    Tymicki, Grzegorz
    Filip, Anna
    Szczepankiewicz, Andrzej
    Olkowski, Radoslaw
    Kosowska, Anna
    Berman, Andrzej
    Kaminski, Artur
    Wszola, Michal
    TRANSPLANTATION, 2022, 106 (09) : S750 - S750
  • [45] TOWARDS 3D-BIOPRINTING OF BIONIC PANCREAS: THE EFFECT OF TIME OF UV CROSSLINKING ON PANCREATIC ISLETS AFTER THE BIOPRINTING PROCESS
    Klak, Marta
    Gomolka, Magdalena
    Kowalska, Patrycja
    Swiezszkowski, Wojciech
    Idaszek, Joanna
    Berman, Andrzej
    Kosowska, Katarzyna
    Majdanska, Edyta
    Wszola, Michal
    TRANSPLANT INTERNATIONAL, 2019, 32 : 367 - 367
  • [46] BIOINK BASED ON THE DECM FOR 3D-BIOPRINTING OF BIONIC PANCREAS - FIRST RESULTS OF ANIMAL
    Klak, Marta
    Kosowska, Katarzyna
    Bryniarski, Tomasz
    Lojszczyk, Ilona
    Dobrzanski, Tomasz
    Tymicki, Grzegorz
    Filip, Anna
    Szczepankiewicz, Andrzej A.
    Olkowski, Radoslaw
    Kosowska, Anna
    Berman, Andrzej
    Kaminski, Artur
    Wszola, Michal
    TISSUE ENGINEERING PART A, 2023, 29 (11-12) : 1110 - 1110
  • [47] The Use of Collagen with High Concentration in Cartilage Tissue Engineering by Means of 3D-Bioprinting
    Isaeva E.V.
    Beketov E.E.
    Yuzhakov V.V.
    Arguchinskaya N.V.
    Kisel A.A.
    Malakhov E.P.
    Lagoda T.S.
    Yakovleva N.D.
    Shegai P.V.
    Ivanov S.A.
    Kaprin A.D.
    Cell and Tissue Biology, 2021, 15 (5) : 493 - 502
  • [48] Application of 3D-Printed Bioinks in Chronic Wound Healing: A Scoping Review
    Abuhamad, Asmaa Y.
    Masri, Syafira
    Fadilah, Nur Izzah Md
    Alamassi, Mohammed Numan
    Maarof, Manira
    Fauzi, Mh Busra
    POLYMERS, 2024, 16 (17)
  • [49] Tumor Cells Develop Defined Cellular Phenotypes After 3D-Bioprinting in Different Bioinks
    Schmidt, Sonja K.
    Schmid, Rafael
    Arkudas, Andreas
    Kengelbach-Weigand, Annika
    Bosserhoff, Anja K.
    CELLS, 2019, 8 (10)
  • [50] Towards a Novel Cost-Effective and Versatile Bioink for 3D-Bioprinting in Tissue Engineering
    Zueger, Fabian
    Berner, Natascha
    Gullo, Maurizio R.
    BIOMIMETICS, 2023, 8 (01)