6 citations
,
June 2024 in “Biofabrication” A small 3D skin model helps study how immune cells move in the skin.
28 citations
,
October 2023 in “Trends in biotechnology” 49 citations
,
August 2022 in “Materials Today Bio” 3D bioprinting shows promise for creating functional organs and models for urological diseases.
51 citations
,
March 2018 in “Journal of Investigative Dermatology” Current murine models need improvement for better human wound healing research translation.
1 citations
,
January 2026 in “Frontiers in Cell and Developmental Biology” AI improves biomaterial design by making it faster, cheaper, and more effective for personalized medicine.
46 citations
,
October 2023 in “Science Advances” 3D bioprinting can now create skin with hair-like structures for medical use.
31 citations
,
July 2023 in “Foods” 3D scaffolds are crucial for making lab-grown meat taste and feel like real meat.
48 citations
,
April 2024 in “Nature Communications” The new method improves bone repair by enhancing cell loading and stability in bioprinted scaffolds.
January 2026 in “Cellular and Molecular Bioengineering” A 3D model of Dupuytren’s disease was developed for better drug testing.
65 citations
,
January 2021 in “Burns & Trauma” Bioprinting and spheroid culture can create a skin model with regenerating sweat glands and hair follicles.
1 citations
,
March 2021 in “Skin health and disease” Better hair loss models needed for research.
208 citations
,
January 2013 in “Lab on a Chip” The Multi-Organ-Chip improves the growth and quality of skin and hair in the lab, potentially replacing animal testing.
July 2025 in “Journal of Investigative Dermatology” Tissue-engineered skin substitutes can model junctional epidermolysis bullosa and may help develop gene therapy.
January 2024 in “Journal of Tissue Engineering” A new ethical skin model using stem cells offers a reliable alternative for dermatological research.
July 2026 in “Acta Biomaterialia” A method was developed to create early-stage hair structures in lab-grown skin.
2 citations
,
December 2025 in “Gels” Nano-zinc oxide affects genes linked to cell death, inflammation, and stress in skin cells.
July 2026 in “Materials Today Bio” DNA hydrogels can help repair tissues and treat tumors in regenerative medicine.
276 citations
,
December 2017 in “Journal of Dermatological Science” The document concludes that mouse models are helpful but have limitations for skin wound healing research, and suggests using larger animals and genetically modified mice for better human application.
4 citations
,
March 2023 in “Cancer Innovation” Flexible bioelectronics show promise in non-invasive cancer detection and treatment but need improvements in stability and effectiveness.
December 2025 in “Materials Technology” The engineered scaffold shows promise for effective skin repair.
20 citations
,
September 2022 in “Journal of Biomedical Optics” PBM helps improve cell survival in 3D tissue engineering.
6 citations
,
July 2025 in “Advanced Materials” Biomimetic cell membrane-coated scaffolds significantly enhance tissue regeneration by mimicking natural cellular environments.
February 2024 in “Biomedical materials” Scientists created a lab-grown hair follicle model that behaves like real hair and could improve hair loss treatment research.
January 2019 in “CLINICAL AND EXPERIMENTAL MORPHOLOGY” 177 citations
,
April 2008 in “Biomedical Materials” Human hair proteins can be used to create scaffolds that support cell growth for tissue engineering.
5 citations
,
February 2019 in “bioRxiv (Cold Spring Harbor Laboratory)” 3D cell cultures produce extracellular vesicles similar to those in the body.
January 2025 in “Online Publication Service of Würzburg University (Würzburg University)” A protocol was developed to create 3D skin models from adult diseased cells to study Small Fiber Neuropathy.
14 citations
,
March 2016 in “Regenerative Biomaterials” Medicine is shifting from using artificial replacements to regenerating tissues naturally.
46 citations
,
October 2022 in “Biomaterials”
November 2025 in “IECCMEXICO” 3D bioprinting advancements are improving skin regeneration for wound healing and personalized reconstruction.