October 2002 in “Dermatologic Surgery” The document concludes that careful planning, efficient use of every hair graft, and setting surgical priorities are crucial for successful hair restoration surgery.
12 citations
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June 2013 in “The American Journal of Dermatopathology” A new method using visual aids to diagnose hair diseases was effective after brief training.
March 2026 in “Preprints.org” Robotic systems in cosmetic surgery are promising but need more development and research.
January 2024 in “Wiadomości Lekarskie” New technologies improve diagnosis and treatment of digestive disorders.
April 2026 in “Cosmetics” Robotic systems in cosmetic surgery show promise but face challenges like high costs and need more research and training.
Autonomous robotic surgery is advancing but still requires human supervision for complex procedures.
17 citations
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December 2022 in “Biosensors” Triboelectric nanogenerators can power wearable medical devices for long-term self-treatment and monitoring.
2 citations
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September 2024 in “Journal of Cosmetic Dermatology” Robotic technology greatly improves cosmetic dermatology outcomes and patient satisfaction.
9 citations
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January 2025 in “Droplet” Precise cell manipulation technologies are advancing but still face challenges in improving accuracy for medical use.
2 citations
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May 2018 in “International Society of Hair Restoration Surgery” The new system makes hair transplants faster and more precise.
January 2024 in “Wiadomości Lekarskie” AI and robotics are improving treatment and monitoring of neurodegenerative disorders like Parkinson's.
Commercial and open-source light sheet microscopy systems have advanced through engineer-scientist collaborations, improving imaging quality.
4 citations
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January 2022 in “Current pharmaceutical design” Microsponges delivery system is a safe, versatile method for controlled drug release in various treatments.
Mechanical surface cues can control macrophage behavior for better immunotherapy and tissue healing.
January 2026 in “Microsystems & Nanoengineering” New technologies replicate human skin for testing without animals.
223 citations
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October 2020 in “Microsystems & Nanoengineering” Microtechnology methods improve organoid production for medical research.
March 2025 in “Journal of Neonatal Surgery” Robotic surgery and AI improve precision and recovery in medicine but face cost and training challenges.
July 2026 in “Organoid Research” Hydrogel microspheres can improve the development and effectiveness of musculoskeletal organoids.
125 citations
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March 2017 in “Micromachines” Microfluidic technology improves cell spheroid creation for better drug testing and tissue engineering.
2 citations
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November 2025 in “Pharmaceutics” Cell-mediated drug delivery systems improve skin disease treatment by using living cells for precise, prolonged, and less toxic therapy.
1 citations
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June 2025 in “Therapeutic Delivery” Gas-propelled microneedles can improve drug delivery efficiency and precision.
17 citations
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July 2024 in “Advanced Intelligent Systems” Human-robot interaction becomes simpler as robots achieve full autonomy in surgery.
20 citations
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April 2022 in “Journal of Personalized Medicine” Powered exoskeleton training improves body perception and quality of life in spinal cord injury patients.
January 2026 in “Nano-Micro Letters” 4D scaffolds made with melt electrowriting can change shape for use in medicine.
9 citations
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February 2025 in “Biomimetics” Robotic surgery in plastic and reconstructive procedures improves precision and outcomes but faces challenges like high costs and long operating times.
January 2024 in “Wiadomości Lekarskie” Robotics will greatly change dentistry with ongoing tech advancements.
October 2022 in “Hair Transplantation” New FUE systems have greatly improved hair restoration surgery.
1 citations
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October 2013 The framework helps develop medical apps on mobile devices to reduce reliance on desktop computers.
14 citations
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September 2023 in “Foods” Microfluidics can create precise, efficient delivery systems for food and cosmetics, but scaling up is challenging.
4 citations
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January 2026 in “Micro” Bioinspired conductive materials and advanced bioprinting can improve tissue regeneration by creating smart, adaptable scaffolds.