Egg White Photocrosslinkable Hydrogels as Versatile Bioinks for Advanced Tissue Engineering Applications

Author:

Mahmoodi Mahboobeh12345ORCID,Darabi Mohammad Ali123,Mohaghegh Neda1,Erdem Ahmet26,Ahari Amir1,Abbasgholizadeh Reza1,Tavafoghi Maryam23,Mir Hashemian Paria7,Hosseini Vahid123,Iqbal Javed28,Haghniaz Reihaneh123,Montazerian Hossein23,Jahangiry Jamileh23,Nasrolahi Fatemeh23,Mirjafari Arshia23,Pagan Erik9,Akbari Mohsen19,Bae Hojae10,John Johnson V.1,Heidari Hossein111,Khademhosseini Ali123ORCID,Hassani Najafabadi Alireza1ORCID

Affiliation:

1. Terasaki Institute for Biomedical Innovation Los Angeles CA 90024 USA

2. Center for Minimally Invasive Therapeutics (C‐MIT) University of California Los Angeles CA 90095 USA

3. Department of Bioengineering University of California Los Angeles CA 90095 USA

4. Department of Biomedical Engineering, Yazd Branch Islamic Azad University Yazd 8915813135 Iran

5. Joint Reconstruction Research Center Tehran University of Medical Sciences Tehran 1461884513 Iran

6. Department of Biomedical Engineering, Umuttepe Campus Kocaeli University Kocaeli 41001 Turkey

7. Department of Biomedical Engineering Boston University Boston MA 02215 USA

8. Department of Botany Bacha Khan University Charsadda Khyber Pakhtunkhwa 24420 Pakistan

9. Laboratory for Innovations in MicroEngineering (LiME) Department of Mechanical Engineering University of Victoria Victoria British Columbia V8P 5C2 Canada

10. Department of Stem Cell and Regenerative Biotechnology, KU Convergence Science and Technology Institute Konkuk University Seoul 05029 Republic of Korea

11. Institute for Materials Discovery University College London London WC1E 6BT UK

Abstract

AbstractThree dimensional (3D) bioprinting using photocrosslinkable hydrogels has gained considerable attention due to its versatility in various applications, including tissue engineering and drug delivery. Egg White (EW) is an organic biomaterial with excellent potential in tissue engineering. It provides abundant proteins, along with biocompatibility, bioactivity, adjustable mechanical properties, and intrinsic antiviral and antibacterial features. Here, a photocrosslinkable hydrogel derived from EW is developed through methacryloyl modification, resulting in Egg White methacryloyl (EWMA). Upon exposure to UV light, synthesized EWMA becomes crosslinked, creating hydrogels with remarkable bioactivity. These hydrogels offer adjustable mechanical and physical properties compatible with most current bioprinters. The EWMA hydrogels closely resemble the native extracellular matrix (ECM) due to cell‐binding and matrix metalloproteinase‐responsive motifs inherent in EW. In addition, EWMA promotes cell growth and proliferation in 3D cultures. It facilitates endothelialization when investigated with human umbilical vein endothelial cells (HUVECs), making it an attractive replacement for engineering hemocompatible vascular grafts and biomedical implants. In summary, the EWMA matrix enables the biofabrication of various living constructs. This breakthrough enhances the development of physiologically relevant 3D in vitro models and opens many opportunities in regenerative medicine.

Funder

National Institutes of Health

National Institute of Arthritis and Musculoskeletal and Skin Diseases

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

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