4 citations
,
March 2019 in “Experimental Biology and Medicine” This study found that exposure to 50 Hz electromagnetic fields enhanced hair regrowth in mice by increasing stem cell proliferation and keratinocyte growth factor expression, suggesting potential benefits for hair loss treatment.
February 2023 in “International journal of research - granthaalayah” This article reviews a tabletop microscopy method for recording electromagnetic radiation from tissues, using hair follicles as a model, and presents no new clinical findings.
20 citations
,
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.
April 2018 in “Journal of Investigative Dermatology” This paper presents a new methodology combining magnetic tweezers and traction force microscopy to study keratinocyte mechanobiology, but reports no experimental results yet.
November 2021 in “International journal of research - granthaalayah” This study presents additional data suggesting that the absence of nerve endings in certain segments of human hair follicles influences the asymmetrical distribution of electrical charges, as indicated by no precipitation of Potassium Ferricyanide crystals.
2 citations
,
April 2022 in “Biomedicines” This study demonstrated that exposing hair follicle organ cultures to extremely low-frequency electromagnetic fields at 10 G intensity for 60 minutes promoted hair growth, suggesting its potential as a treatment for hair loss.
1 citations
,
August 2022 in “Chemical engineering journal advances” This study demonstrated that human hair can be coated with Fe3O4 nanoparticles, allowing it to be oriented and moved by a magnetic field, which may enhance drug delivery and hair care applications.
August 2011 in “BIO-PROTOCOL” This protocol paper details methods for live imaging and analysis of dividing germline stem cells in C. elegans and reports no new research findings.
35 citations
,
February 2024 in “Science Advances” This study introduces a magnet-assisted fabrication strategy for creating complex 3D soft bioscaffolds, demonstrating its effectiveness by producing structures with overhangs and supporting biohybrid actuators, promising advancements in biomedical applications.
44 citations
,
February 2016 in “Science” Researchers developed a new type of memory using antiferromagnets that is stable, not disrupted by magnets, and works at room temperature.
6 citations
,
July 2024 in “Cureus” This review explores the applications of magnetized water in agriculture and medicine and notes potential benefits for human health, but it presents no new experimental findings.
4 citations
,
March 2023 in “Cancer Innovation” This paper discusses the recent advancements and challenges of flexible bioelectronics in personalized health management and cancer therapy, but reports no new studies or results.
15 citations
,
February 2024 in “Skin Research and Technology” This article reviews technological advances in skin ultrasonography and magnetic resonance and highlights the pivotal contributions of the Editors, the Editorial Board, and the Journal to these fields. No specific experimental results are reported.
April 2023 in “Journal of Investigative Dermatology” This study demonstrated that the Epidermal Biopotential Sensing System (EBSS) can measure digital biomarkers of pain in mice, suggesting potential applications in assessing pain and screening analgesics in populations with communication difficulties.
1 citations
,
July 2023 in “Cytotherapy” In this study, MSC-derived magnetic nanovesicles combined with a magnetic field increased skin retention and accelerated hair follicle growth in a mouse model of hair regeneration.
December 2025 in “eScience” This study presents a new wireless bioelectronic system powered by ambient Wi-Fi signals that enhances wound healing by providing electrical stimulation and real-time monitoring, offering a promising solution for at-home treatment and regenerative therapy.
5 citations
,
June 2011 in “PLoS ONE” This study found that biologic rhythms in mammoth hairs differed from those in modern human hair, with variations in growth rates and mineral content providing insights into the lifestyle and behavior of extinct species.
1 citations
,
June 2022 in “Photobiomodulation, photomedicine, and laser surgery” This literature watch compiles recent studies on photobiomodulation therapy across various applications, offering no new empirical findings.
January 2026 in “Regenerative Therapy” Low-frequency electromagnetic fields may help treat hair loss by promoting hair regrowth.
9 citations
,
September 2022 in “Frontiers in Physics” This study found that Mueller Matrix microscopy can accurately identify, detect, and evaluate hair follicles in mouse skin tissue, suggesting its potential for skin structure research and dermatological applications.
18 citations
,
April 2010 in “Langmuir” This study found that human hair surfaces exhibit nonhomogeneous wettability, potentially influenced by daily rhythms and even monthly changes possibly linked to the menstrual cycle.
November 2022 in “Journal of Cosmetic Dermatology” In this study, combining photobiomodulation therapy and pulsed electromagnetic field therapy over 24 weeks significantly increased hair density in androgenetic alopecia patients compared to a sham device control, with minimal side effects reported.
October 2022 in “Journal of Pharmaceutical Negative Results” This review examines the therapeutic effects of photobiomodulation on severe medical illnesses but reports no new clinical results; it emphasizes its potential in neurology, pulmonology, inflammation, dermatology, wound healing, and oncology.
198 citations
,
May 2021 in “Advanced Materials” This review discusses triboelectric nanogenerator (TENG) devices for body-integrated electrical stimulation therapy and suggests they may revolutionize personalized healthcare, but it reports no new clinical results.
7 citations
,
January 2020 in “International Journal of Molecular Sciences” This study found that exposure to extremely low-frequency electromagnetic fields at specific intensities significantly enhanced human hair follicle cell activation and proliferation, suggesting a potential new treatment approach for alopecia.
Hair properties change under electromagnetic fields and are influenced by individual characteristics and the environment.
August 2026 in “ChemRxiv” This review explores the convergence of functional biomaterials, biosensing, and AI technologies in bioengineering, highlighting applications in cancer modeling and regenerative medicine, while addressing challenges like biofouling and dataset integration.
2 citations
,
June 2020 in “Skin Research and Technology” This study found that scalp thickness and hair follicle depth were reduced in individuals with androgenetic alopecia, and MRI signal intensity was higher compared to those without the condition.
21 citations
,
September 2008 in “Magnetic Resonance Imaging” This study utilized magnetic resonance imaging to noninvasively visualize and differentiate skin structures in rat skin, finding a significant correlation between MRI data and histological areas.
December 2018 in “Zenodo (CERN European Organization for Nuclear Research)” This study found that topical application of a Biofield Energy Healing-treated mixture of herbal extracts in mice increased hair growth and melanogenesis compared to untreated extracts.