Mohsen Akbari
University of Victoria
157 Papers
253 Citations
Mohsen Akbari is an academic researcher from University of Victoria. The author has contributed to research in topics: Medicine & Biology. The author has an hindex of 35, co-authored 125 publications. Previous affiliations of Mohsen Akbari include Simon Fraser University & Center for Advanced Materials.
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Papers
25th Anniversary Article: Rational Design and Applications of Hydrogels in Regenerative Medicine
Nasim Annabi,Nasim Annabi,Ali Tamayol,Ali Tamayol,Jorge Alfredo Uquillas,Jorge Alfredo Uquillas,Mohsen Akbari,Mohsen Akbari,Luiz E. Bertassoni,Luiz E. Bertassoni,Chaenyung Cha,Chaenyung Cha,Gulden Camci-Unal,Gulden Camci-Unal,Mehmet R. Dokmeci,Mehmet R. Dokmeci,Nicholas A. Peppas,Ali Khademhosseini,Ali Khademhosseini +18 more
TL;DR: The development of advanced hydrogel with tunable physiochemical properties is highlighted, with particular emphasis on elastomeric, light‐sensitive, composite, and shape‐memory hydrogels, and a number of potential applications and challenges in the utilization in regenerative medicine are reviewed.
Graphene-based materials for tissue engineering.
Su Ryon Shin,Su Ryon Shin,Yi-Chen Li,Hae Lin Jang,Parastoo Khoshakhlagh,Mohsen Akbari,Amir Nasajpour,Yu Shrike Zhang,Ali Tamayol,Ali Khademhosseini +9 more
TL;DR: Graphene and its chemical derivatives have been a pivotal new class of nanomaterials and a model system for quantum behavior and the opportunities in the usage of graphene-based materials for clinical applications are outlined.
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Self-Healing Hydrogels: The Next Paradigm Shift in Tissue Engineering?
Sepehr Talebian,Mehdi Mehrali,Nayere Taebnia,Cristian Pablo Pennisi,Firoz Babu Kadumudi,Javad Foroughi,Masoud Hasany,Mehdi Nikkhah,Mohsen Akbari,Gorka Orive,Alireza Dolatshahi-Pirouz,Alireza Dolatshahi-Pirouz +11 more
TL;DR: The recent progress in the development of multifunctional and self‐healable hydrogels for various tissue engineering applications is discussed in detail and their potential applications within the rapidly expanding areas of bioelectronics, cyborganics, and soft robotics are highlighted.
Reduced Graphene Oxide-GelMA Hybrid Hydrogels as Scaffolds for Cardiac Tissue Engineering.
Su Ryon Shin,Su Ryon Shin,Su Ryon Shin,Claudio Zihlmann,Claudio Zihlmann,Mohsen Akbari,Mohsen Akbari,Mohsen Akbari,Pribpandao Assawes,Pribpandao Assawes,Louis Cheung,Kaizhen Zhang,Vijayan Manoharan,Vijayan Manoharan,Yu Shrike Zhang,Yu Shrike Zhang,Mehmet Yuksekkaya,Kai-Tak Wan,Mehdi Nikkhah,Mehmet R. Dokmeci,Mehmet R. Dokmeci,Mehmet R. Dokmeci,Xiaowu Shirley Tang,Ali Khademhosseini +23 more
TL;DR: The engineered cardiac tissue constructs using rGO incorporated hybrid hydrogels can potentially provide high-fidelity tissue models for drug studies and the investigations of cardiac tissue development and/or disease processes in vitro.
Fiber-based tissue engineering: Progress, challenges, and opportunities
Ali Tamayol,Mohsen Akbari,Nasim Annabi,Nasim Annabi,Nasim Annabi,Arghya Paul,Arghya Paul,Arghya Paul,Ali Khademhosseini,Ali Khademhosseini,Ali Khademhosseini,David Juncker +11 more
TL;DR: This work critically review the techniques used to form cell-free and cell-laden fibers and to assemble them into scaffolds and compares their mechanical properties, morphological features and biological activity.
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