March 2024 in “International Research Journal of Modernization in Engineering Technology and Science” This article explores the use of 3D printing technology to produce hair in the beauty industry, addressing safety concerns, explaining the creation process, and highlighting its benefits over traditional hair while noting its positive environmental impact.
1 citations
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March 2024 in “Brain Imaging and Stimulation” This study reported that a 3D-printed LED photobiomodulation device is technically and financially feasible, but requires further experimental and clinical testing before being used in human healthcare.
5 citations
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September 2024 in “International Journal of Molecular Sciences” This study used a 3D bioprinted human lung cancer model in a mouse phantom to demonstrate a selective cytotoxic effect of X-rays on tumor cells, revealing differences from 2D cell models.
15 citations
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March 2022 in “Acta Biomaterialia” This study demonstrated that a 3D bioprinting technique using a gelatin/alginate hydrogel scaffold can regenerate entire hair follicles in mice, offering potential advancements in hair loss treatment.
49 citations
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August 2022 in “Materials Today Bio” This review discusses 3D bioprinting methods for urological diseases, noting its potential to create functional organs for transplantation despite challenges in replicating organ complexity and material limitations.
May 2026 in “Zenodo (CERN European Organization for Nuclear Research)” This study demonstrates that 3D bioprinting is advancing toward practical use in reconstructive medicine, with promising results in personalized skin grafts, hair regeneration, and burn care, despite existing technical and ethical challenges.
1 citations
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June 2023 in “Journal of Visualized Experiments” This study introduces a customizable 3D-printed microscope stage insert for inverted confocal microscopes, improving accessibility and usability of intravital microscopy for observing cell dynamics in live mice.
May 2026 in “Zenodo (CERN European Organization for Nuclear Research)” This study suggests that 3D bioprinting may become a practical solution for tissue regeneration and complex wound care, demonstrating improved outcomes over traditional methods in various applications.
October 2021 in “Postepy Dermatologii I Alergologii” This review discusses the future potential of 3D skin bioprinting for skin regeneration and reports no new experimental results.
February 2026 in “International Journal of Molecular Sciences” This paper reviews advancements in 3D human skin models using bioprinting, organoid, and organ-on-a-chip technologies, noting improvements in physiological realism through vascularization and multi-omics data, but also highlighting challenges such as cost and lack of standardization that hinder clinical adoption.
This study explored using 3D models derived from reflectance confocal microscopy to better understand and differentiate melanoma on sun-damaged skin, suggesting enhanced diagnostic possibilities.
81 citations
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October 2023 in “Bioactive Materials” This review highlights the promising potential of 3D printing for creating microneedles with precise customization and improved performance compared to traditional micromolding, emphasizing applications in personalized medical devices and advancements in biomedical fields.
48 citations
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December 2022 in “Biomolecules” This review discusses recent advancements in 3D bioprinting for skin regeneration and describes potential improvements for clinical applications, but it reports no new experimental results.
April 2017 in “Plastic and Reconstructive Surgery – Global Open” In this study, researchers developed a 3D-printed vascular model to analyze how different shear stresses influence cell behavior and promote cellular organization around neovessels, offering insights into tissue engineering for wound reconstruction.
49 citations
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January 2023 in “Gels” This review summarizes recent advancements in three-dimensional bioprinting technology and hydrogel bioinks, highlighting their applications in tissue engineering, but reports no new experimental results.
November 2022 in “Journal of Investigative Dermatology” This study observed that three-dimensional cultures of dermal papilla cells enhanced endothelial cell migration and angiogenesis in vitro, which may improve vascularization in tissue-engineered skin constructs.
5 citations
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June 2025 in “Journal of Functional Biomaterials” This study explored recent advancements in 3D bioprinting for head and neck defects, highlighting how bioinks and scaffolds may improve treatment customization and functionality by mimicking native tissue features. The research also examined challenges like biocompatibility and regulatory requirements on the path to clinical use.
42 citations
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June 2021 in “Pharmaceutics” This review summarizes the use of 3D printing technologies for creating microneedles and evaluates their associated benefits, challenges, and regulatory considerations, but does not present new experimental results.
62 citations
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February 2016 in “ACS Applied Materials & Interfaces” This study found that 3D microtissue models of dermal papilla cells can enhance the ability to induce hair-follicle neogenesis in vivo, offering potential for controlled cell production in follicle regeneration.
This study introduces a new type of tissue micromodule, the micro tissue precursor (μTP), which can form complex 3D tissues, including lung stroma and skin models supporting hair viability.
November 2025 in “IECCMEXICO” This review reports that 3D skin bioprinting has made significant progress towards clinical application, particularly in wound healing and disease modeling, but further work on vascularization and bioink standardization remains crucial.
January 2025 in “Diagnostics” This study found that a new three-dimensional high-frequency ultrasound (3D-HFUS) can successfully visualize skin tumors and inflammatory hair diseases, offering promising noninvasive diagnostic and evaluation capabilities compared to traditional two-dimensional methods.
January 2025 in “Vitalitas Medis : Jurnal Kesehatan Dan Kedokteran” This study conducted a systematic review of 3D bioprinting technology in organ and tissue engineering, highlighting its medical applications and bioethical challenges, particularly regarding embryonic stem cells and Islamic ethical perspectives on organ creation.
16 citations
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July 2020 in “Advanced functional materials” This review discusses the development and application of cell-derived matrices in regenerative medicine and disease modeling, presenting various fabrication techniques and future perspectives, but reports no new results.
6 citations
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June 2024 in “Biofabrication” This study used digital-light-processing bioprinting to create a 3D skin-on-a-chip model with a miniaturized vascular network to closely study immune cell interactions similar to real human skin, demonstrating the potential to analyze immune-T cell trafficking influenced by skin signals.
June 2026 in “International Journal of Bioprinting” This review found that 3D bioprinting significantly advances skin tissue engineering by enabling the creation of complex, patient-specific skin structures, though technological and regulatory challenges persist, particularly in areas like scalability and physiological mimicry.
20 citations
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September 2022 in “Journal of Biomedical Optics” This article reviews the potential of using PBM in 3D tissue engineering to improve cell viability under stress conditions but reports no new experimental findings.
110 citations
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August 2011 in “Journal of Visualized Experiments” This research highlights the use of 3D human skin model reconstructs as a promising method to study human skin biology, showing that these models replicate natural melanocyte and melanoma behaviors accurately.
December 2024 in “African Journal of Biomedical Research” This review discusses the potential of 3D bioprinting to revolutionize cosmetic treatments through personalized skin regeneration, facial reconstruction, and anti-aging therapies, while highlighting the current challenges and promising future in the field of cosmetology.
June 1967 in “Journal of Cellular Physiology” This study developed an in vitro 3D organoid model using dermal papilla spheroids and found that it enhances growth factor expression and extracellular matrix production, which could aid drug screening for hair regeneration.