1 citations
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April 2012 in “American Literary History” Harriet E. Wilson had a challenging career as a spiritualist in Boston, facing competition and possible racism.
Finding functions for unknown GPCRs is hard but key for making new drugs.
January 2026 in “Supportive Care in Cancer” New cooling caps can help prevent hair loss from chemotherapy in a cost-effective and eco-friendly way.
August 2025 in “Fabad Journal of Pharmaceutical Sciences” Cuscuta reflexa has potential medicinal benefits but needs more research for clinical use.
August 2025 in “MedScien” Tumor-targeted drug carriers can improve chemotherapy precision and reduce side effects.
April 2024 in “bioRxiv (Cold Spring Harbor Laboratory)” A gene network led by RSL4 is crucial for early root hair growth in response to cold in Arabidopsis thaliana.
The conference emphasized innovative solutions for global challenges, including disaster architecture, education, health, and economic impacts.
Continuous research and innovative strategies are essential for sustainable development.
A new system for classifying curly hair types using precise measurements can improve hair care products and cultural inclusion.
April 2015 in “Andrology” HNG may help prevent the negative effects of chemotherapy on sperm production and white blood cell counts.
43 citations
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September 2001 in “Scanning” Hair treatments like bleaching increase friction by exposing tiny pores on the hair surface.
10 citations
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May 2012 in “Cell Adhesion & Migration” ILK and ELMO2 help cells move and stick together, important for wound healing and hair growth.
January 2024 in “International Research Journal of Modernization in Engineering Technology and Science” Nanotechnology improves the effectiveness of herbal hair products.
1 citations
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July 2025 in “Cancer Medicine” Colorectal cancer cells can adapt without losing their traits or drug sensitivity.
47 citations
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September 2011 in “Acta biomaterialia” Protein composition greatly affects the function of keratin biomaterials.
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February 2024 in “Science Advances” Magnetic fields help create complex 3D soft structures for biomedical use.
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February 2023 in “ACS Biomaterials Science & Engineering” The new microwell device helps grow more hair stem cells that can regenerate hair.
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January 2025 in “Droplet” Precise cell manipulation technologies are advancing but still face challenges in improving accuracy for medical use.
9 citations
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April 2019 in “Journal of Structural Biology” Keratin fibers in hair twist left-handed.
8 citations
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September 2023 in “International Journal of Nanomedicine” A new lab-grown lung model helps study adenoviruses and test antiviral drugs.
February 2026 in “International Journal of Molecular Sciences” 3D human skin models show promise for dermatology but face challenges in standardization and cost.
125 citations
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March 2017 in “Micromachines” Microfluidic technology improves cell spheroid creation for better drug testing and tissue engineering.
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February 2024 in “ACS Omega” The scaffold is a promising material for wound healing and tissue engineering.
15 citations
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January 2023 in “Biomaterials Research” 3D bioprinting in plastic surgery could lead to personalized grafts and fewer complications.
7 citations
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August 2025 in “Journal of Nanobiotechnology” Bioengineered microneedles and nanomedicine offer promising, precise treatments for tissue regeneration.
September 2023 in “Membranes” 3D-printed membranes with smart sensors can greatly improve tissue healing and have many medical applications.
November 2022 in “Regenerative Therapy” Advancements in tissue engineering show promise for hair follicle regeneration to treat hair loss.
62 citations
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December 2007 in “Journal of biological chemistry/The Journal of biological chemistry” A specific chemical change in the S100A3 protein leads to the formation of a four-part structure important for hair formation.
46 citations
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October 2023 in “Science Advances” 3D bioprinting can now create skin with hair-like structures for medical use.
21 citations
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September 2019 in “International Journal of Nanomedicine” RADA16-I can effectively deliver and release mangiferin, improving its solubility and bioavailability.