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Thus, the modified C-ECM appears to be a potential biomaterial for cardiac tissue engineering.
However, due to the highest biocompatibility of carbon resulting from the presence of this element in the human body, it appears to be a potential biomaterial.
It is concluded that the AM cross-linked with 0.05 mmol EDC/mg AM may be a potential biomaterial for regenerative medicine.
The obtained results prove that the nanofibrous scaffold with synergistic property of AV and SF would be a potential biomaterial for skin tissue regeneration.
Consequently, the incorporation of wollastonite into the SF scaffold can enhance both the mechanical strength and bioactivity of the scaffold, which suggests that the SF/wollastonite composite scaffold may be a potential biomaterial for tissue engineering.
Consequently, the incorporation of NBG into the SF film can enhance both the bioactivity and biocompatibility of the film, which suggests that the SF/NBG composite film may be a potential biomaterial for bone tissue engineering.
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The nHCG is a potential biomaterial in bone tissue engineering.
Therefore, nHCG/CG is a potential biomaterial in bone tissue engineering.
Findings of this study support the hypothesis that CEM is a potential biomaterial for tissue engineered heart valve scaffold design.
Magnesium, a light-weight engineering metal, is a potential biomaterial for orthopaedic biodegradable mini-implant applications due to its compatible mechanical properties, biodegradability and biocompatibility.
Silk fibroin protein from Antheraea mylitta, a non-mulberry Indian tropical tasar silkworm, is a potential biomaterial for diverse applications due to its widespread versatility as a mechanically robust, biocompatible, tissue engineering material.
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