3-D bioprinting can regenerate human hair follicles using bioink with collagen and fibroblasts.
November 2022 in “Journal of Investigative Dermatology” 3D skin bioprinting, using skin bioinks like collagen and gelatin, is growing fast and could help treat wounds, burns, and skin cancers, as well as test cosmetics and drugs.
July 2026 in “Biomimetics” 3D printed bone implants are becoming more effective with smart antibacterial strategies and AI design.
49 citations
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August 2022 in “Materials Today Bio” 3D bioprinting shows promise for creating functional organs and models for urological diseases.
82 citations
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January 2022 in “Bioactive Materials” Improving bioinks can enhance skin healing and regeneration.
17 citations
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January 2013 in “Journal of Cosmetics, Dermatological Sciences and Applications” 3D bioprinting could improve skin repair and treat conditions like vitiligo and alopecia by precisely placing cells.
1 citations
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September 2022 in “Biomaterials advances” 3D bioprinting can effectively regenerate hair follicles and skin tissue in wounds.
65 citations
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January 2021 in “Burns & Trauma” Bioprinting and spheroid culture can create a skin model with regenerating sweat glands and hair follicles.
4 citations
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January 2022 in “SSRN Electronic Journal” Bioprinting hair follicle germs can effectively regenerate hair and improve hair growth.
3D bioprinting shows great promise for improving wound healing and skin restoration.
1 citations
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November 2014 in “Elsevier eBooks” Future research should focus on making bioengineered skin that completely restores all skin functions.
February 2025 in “International Journal of Bioprinting” 3D-printed scaffolds help regenerate hair follicles in lab-grown skin.
28 citations
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December 2016 in “Journal of Biomedical Materials Research Part A” Bone-forming cells grow well in 3D polymer scaffolds with 35 µm pores.
January 2019 in “CLINICAL AND EXPERIMENTAL MORPHOLOGY” 5 citations
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March 2025 in “Tissue Engineering and Regenerative Medicine” 35 citations
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February 2024 in “Science Advances” Magnetic fields help create complex 3D soft structures for biomedical use.
July 2026 in “Acta Biomaterialia” A method was developed to create early-stage hair structures in lab-grown skin.
October 2021 in “Postepy Dermatologii I Alergologii”
69 citations
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June 2017 in “Experimental Biology and Medicine” Advanced human skin models improve drug development and could replace animal testing.
January 2026 in “SSRN Electronic Journal” December 2025 in “Materials Technology” The engineered scaffold shows promise for effective skin repair.
2 citations
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August 2023 in “Life” Bioinspired polymers are promising for advanced medical treatments and tissue repair.
The bar-cartridge type implanter is the best for implanting dermal papilla cells efficiently and at controlled depths.
17 citations
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April 2022 in “Bioactive Materials” Continuous microfluidic processes can help scale up microtissue production for industrial and clinical use.
3 citations
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July 2025 in “Gels” Engineered protein hydrogels improve medical treatments by mimicking natural body structures.
8 citations
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December 2017 in “Current Opinion in Cell Biology” 3D bioengineering can potentially regenerate complex oral organs for future therapies.
April 2017 in “The journal of investigative dermatology/Journal of investigative dermatology” Researchers developed a method to grow human hair follicles using 3D-printed skin models and modified cells.
January 2026 in “Advanced Healthcare Materials” The new bioreactor improves skin grafts by evenly stretching cells and monitoring conditions for better growth.
3 citations
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January 2023 in “Materials horizons” The new biomaterial helps grow blood vessels and hair for skin repair.
1 citations
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June 2012 in “OhioLink ETD Center (Ohio Library and Information Network)” A new 3-D bioreactor system improves drug screening and reduces animal testing.