11 citations
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April 2019 in “Journal of Biological Research” This study identified 12 potential candidate biomarkers associated with hair loss by analyzing the differential expression of genes, suggesting possible therapeutic targets for alopecia.
6 citations
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May 2022 in “Frontiers in Microbiology” This review evaluates the potential of natural products from marine microorganisms for cosmetic applications and reports no new experimental results, highlighting challenges and prospects in their use.
6 citations
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April 2021 in “NAR Genomics and Bioinformatics” This study found extensive co-evolution of polyglutamine repeat lengths in neural protein clusters, highlighting their potential role in neurocognitive variation and neuropsychiatric disease development.
4 citations
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January 2026 in “Micro” This review introduces a framework to integrate bioinspired conductive materials and advanced 3D/4D printing in regenerative medicine for dynamic, responsive tissue regeneration, emphasizing the potential of smart scaffolds to adapt to physiological cues.
3 citations
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June 2023 in “Frontiers in Medicine” This study constructed a model using serum levels of BMP2, CD8A, PRF1, and XCL1 as a non-invasive biomarker to accurately predict recurrence in patients with alopecia areata.
3 citations
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February 2023 in “Journal of Investigative Dermatology” Ch55 may help reduce skin scarring and fibrosis.
1 citations
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May 2025 in “BMC Genomics” In this study, researchers identified key lncRNAs and target genes potentially involved in the transformation of the hair follicle cycle, which could advance understanding of lncRNAs' roles in hair follicle development.
This study found that late embryonic skin injuries can regenerate multiple tissue types, but this ability is hindered postnatally due to fibroblast-driven hyperinnervation, which can be mitigated to enable regeneration.
February 2026 in “Frontiers in Immunology” This review highlights the role of the brain–gut–skin axis in systemic inflammatory skin conditions, revealing potential interventions like microbiome-directed treatments and integrative therapies, though emphasizes the need for more robust clinical validation.
February 2026 in “Nature Communications” In this study, researchers created a detailed human skin cell atlas by analyzing over 700,000 cells, finding that disrupted communication among specific immune and stromal cell subsets may play a key role in initiating and sustaining chronic skin inflammation in atopic dermatitis.
In this study, researchers used an integrated in silico approach to demonstrate that Polygonum multiflorum combats androgenetic alopecia via anthraquinone emodin, which targets PI3K catalytic subunits differently from traditional antiandrogenic treatments, showing potential as a novel therapeutic strategy.
This study explored the molecular mechanisms by which Polygonum multiflorum may treat androgenic alopecia, suggesting it influences cell apoptosis and inflammation through specific pathways, with potential application value pending further testing.
June 2024 in “The American journal of psychiatry” In this study by Sawada et al., the researchers developed a human striatal model using stem cells and postmortem samples, revealing accelerated neuronal maturation and specific gene expression changes linked to schizophrenia risk, which may inform future research on the disorder's developmental roots.
February 2024 in “Skin research and technology” The researchers in this study identified molecular mechanisms involved in frontal fibrosis alopecia, highlighting immune response and fatty acid metabolism, and developed a four-gene diagnostic model showing high accuracy in distinguishing affected individuals from controls.
June 2022 in “Indian Dermatology Online Journal” This study found that telemedicine effectively managed common dermatological conditions like tinea, acne, hair disorders, and dermatitis during the COVID-19 pandemic, with a significant portion of patients not needing face-to-face consultations.
62 citations
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August 2023 in “International Journal of Nanomedicine” This review discusses the potential of Pluronic F127-derived hydrogels for wound healing, examining their applications in various wound types and exploring underlying mechanisms and their interaction within the wound microenvironment.
29 citations
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May 2025 in “Polymers” This study systematically examines how smart biomaterials used with DLP technology can enhance bioprinting in tissue engineering and regenerative medicine, while also identifying current challenges and future research needs.
10 citations
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February 2023 in “Colloids and surfaces. A, Physicochemical and engineering aspects” This study found that a wound dressing made from egg white proteins, polyvinyl alcohol, and 1 mg/ml graphene oxide was most effective in promoting skin wound healing and tissue regeneration.
8 citations
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September 2024 in “International Journal of Molecular Sciences” This review discusses how polymers can be customized to develop biomaterials that mimic the extracellular matrix, exploring their potential in biomedical and biotechnological applications by triggering cell functions similar to natural physiological systems.
8 citations
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January 2023 in “RSC Advances” This article reviews advancements in carbon dots for tissue engineering and regenerative medicine, highlighting challenges and future directions without presenting new clinical findings.
7 citations
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August 2025 in “Journal of Nanobiotechnology” This review highlights the potential of microneedles and nanomedicine in advancing tissue regeneration, emphasizing their innovative, localized, and minimally invasive approaches as promising solutions to current challenges in treating chronic wounds and degenerative diseases.
7 citations
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June 2025 in “Nano Energy” This study reports that triboelectro-responsive DNA hydrogels, enhanced with conductive polymers and triboelectric stimulation, effectively accelerate wound healing and exhibit strong anti-bacterial and anti-inflammatory properties, achieving 99.8% closure of bacterium-infected diabetic wounds in 14 days.
6 citations
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February 2023 in “Biomaterials Research” This review explores the different types of hydrogels used to repair diabetic ulcers, the mechanisms involved, and the limitations in developing these technologies for clinical use, but it reports no new clinical results.
5 citations
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May 2025 in “Chemical and Biological Technologies in Agriculture” This study found that purified humic acids from oxidized coal enhance plant growth by modulating oxidative stress and influencing photobiological processes, with improved root growth and enzyme activity linked to antioxidant and pro-oxidant properties.
1 citations
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February 2026 in “ACS Omega” This review highlights the potential of self-powered nanogenerators in revolutionizing biomedical devices by using biomechanical or environmental energy, focusing on applications like regenerative hair growth, drug release patches, and electronic skin while evaluating challenges such as energy efficiency and biocompatibility.
July 2026 in “Biomimetics” This review discusses recent advancements in bone tissue engineering, emphasizing a shift from passive to smart responsive antibacterial strategies to prevent implant-associated infections, and highlights AI's role in optimizing bone scaffold design for personalized, infection-free implants.
May 2026 in “British Journal of Clinical Pharmacology” In this study, researchers observed low variability in hair formoterol concentrations for COPD patients with stable adherence, but inter-patient differences and other factors may limit the effectiveness of hair analysis as a reliable tool for assessing medication adherence.
April 2026 in “Dermatology and Therapy” The device improved hair growth and thickness in men without side effects.
April 2026 in “Molecules” This study suggests that extracellular vesicles derived from Saccharomyces cerevisiae may enhance hair follicle-related cellular processes, highlighting their potential for biomedical and cosmetic applications.
February 2026 in “Preprints.org” In this study, extracellular vesicles from Saccharomyces cerevisiae demonstrated multifunctional bioactivity, enhancing cell proliferation and migration, reducing inflammation, and promoting collagen gene expression in hair follicle–related cells.