Microneedles as a Promising Technology for Disease Monitoring and Drug Delivery: A Review DOI Creative Commons

Rashmi Hulimane Shivaswamy,

Pranav Binulal,

Aloysious Benoy

et al.

ACS Materials Au, Journal Year: 2024, Volume and Issue: 5(1), P. 115 - 140

Published: Nov. 28, 2024

The delivery of molecules, such as DNA, RNA, peptides, and certain hydrophilic drugs, across the epidermal barrier poses a significant obstacle. Microneedle technology has emerged prominent area focus in biomedical research because its ability to deliver wide range biomolecules, vaccines, medicines, other substances through skin. Microneedles (MNs) form microchannels by disrupting skin's structure, which compromises function, facilitating easy penetration drugs into These devices enhance administration many therapeutic skin, enhancing their stability. Transcutaneous medications using microneedle patch offers advantages over conventional drug methods. containing active can be stimulated different internal external factors result regulated release substances. To achieve efficient desired location, it is necessary consider design needles with appropriate optimized characteristics. choice materials for developing manufacturing these vital determining pharmacodynamics pharmacokinetics delivery. This article provides most recent update overview numerous systems that utilize activators stimulate components from microneedles. Further, discusses utilized producing microneedles strategies important managing drugs. An explanation commonly employed fabrication techniques applications electronics, particularly integrated systems, discussed. successfully implement clinical settings, essential comprehensively assess several factors, biocompatibility, stability, safety, production cost. Finally, an in-depth review criteria difficulties potential future direction delivering monitoring diseases explored.

Language: Английский

The Future of Medicine: How 3D Printing Is Transforming Pharmaceuticals DOI Creative Commons
Jurga Bernatonienė, Jolita Stabrauskiene, Jurga Andrėja Kazlauskaitė

et al.

Pharmaceutics, Journal Year: 2025, Volume and Issue: 17(3), P. 390 - 390

Published: March 19, 2025

Three-dimensional printing technology is transforming pharmaceutical manufacturing by shifting from conventional mass production to additive manufacturing, with a strong emphasis on personalized medicine. The integration of bioinks and AI-driven optimization further enhancing this innovation, enabling drug precise dosages, tailored drug-release profiles, unique multi-drug combinations that respond individual patient needs. This advancement significantly impacting healthcare accelerating development, encouraging innovative designs, treatment efficacy. Traditional follows one-size-fits-all approach, which often fails meet the specific requirements patients medical conditions. In contrast, 3D printing, coupled bioink formulations, allows for on-demand production, reducing dependency large-scale storage. AI-powered design process refine dosage forms, printability, release mechanisms, ensuring precision efficiency in manufacturing. These advancements have potential lower overall costs while improving adherence medication regimens. review explores potential, challenges, environmental benefits positioning it as key driver next-generation

Language: Английский

Citations

2

Opportunities and Challenges of Microneedle Electrochemical Sensors for Interstitial Fluid Detection DOI
Yanming Dong,

Siying Mao,

Shiwei Chen

et al.

TrAC Trends in Analytical Chemistry, Journal Year: 2024, Volume and Issue: 180, P. 117891 - 117891

Published: July 31, 2024

Language: Английский

Citations

13

Recent Progress in Semi‐Implantable Bioelectronics for Precision Health Monitoring DOI

Wenting Chen,

Xinyu Zheng, Zhou Yue

et al.

Advanced Functional Materials, Journal Year: 2025, Volume and Issue: unknown

Published: Feb. 26, 2025

Abstract Driven by the growing burden of chronic diseases and limited public healthcare resources, portable health monitoring platforms are widely developed to enable continuous timely dissemination provide users with management disease prevention. However, it is still a challenge for precision fully bio‐integrated electronic devices achieve stable physiological signal recording over long periods time. Recently, semi‐implantable bioelectronics (SI‐bioelectronics) have excelled in real‐time, long‐term, high‐sensitivity pathological signals minimal invasiveness, enabled precise microneedle sensing probes. In this review, comprehensive overview recent advancements SI‐bioelectronics provided, focus on their structures, design considerations, performances biochemical indicators, bioelectrical signals, biomechanical signals. Opportunities research such as smart medicine Internet Things also discussed, which will drive toward intelligence efficiency.

Language: Английский

Citations

1

3D PRINTING TECHNOLOGY IN MICRONEEDLES: AN EMERGING ERA IN TRANSDERMAL DRUG DELIVERY DOI Creative Commons

Manali D. Prajapat,

Amol D. Gholap, Snehal Shinde

et al.

Hybrid Advances, Journal Year: 2025, Volume and Issue: unknown, P. 100447 - 100447

Published: March 1, 2025

Language: Английский

Citations

1

3D Printing in Healthcare: A Review on Drug Printing, Challenges and Future Perspectives DOI
Maruf Nizam, Rajesh Purohit, Mohammad Taufik

et al.

Materials Today Communications, Journal Year: 2024, Volume and Issue: 40, P. 110199 - 110199

Published: Aug. 1, 2024

Language: Английский

Citations

8

3D printing of drug delivery systems enhanced with micro/nano-technology DOI
Hui Zhu,

Huijuan Kuang,

Xinxin Huang

et al.

Advanced Drug Delivery Reviews, Journal Year: 2024, Volume and Issue: unknown, P. 115479 - 115479

Published: Nov. 1, 2024

Language: Английский

Citations

5

Additive manufacturing of microneedles for sensing and drug delivery DOI

Tuba Bedir,

Sachin Kadian,

Shubhangi Shukla

et al.

Expert Opinion on Drug Delivery, Journal Year: 2024, Volume and Issue: 21(7), P. 1053 - 1068

Published: July 2, 2024

Introduction Microneedles (MNs) are miniaturized, painless, and minimally invasive platforms that have attracted significant attention over recent decades across multiple fields, such as drug delivery, disease monitoring, diagnosis, cosmetics. Several manufacturing methods been employed to create MNs; however, these approaches come with drawbacks related complicated, costly, time-consuming fabrication processes. In this context, employing additive (AM) technology for MN allows the quick production of intricate prototypes exceptional precision, providing flexibility customize MNs according desired shape dimensions. Furthermore, AM demonstrates promise in sophisticated transdermal delivery systems medical devices through integration various technologies.

Language: Английский

Citations

4

Recent progress in the 3D printing of microneedle patches for biomedical applications DOI
Huan Liu,

Aminov Nail,

Decheng Meng

et al.

International Journal of Pharmaceutics, Journal Year: 2024, Volume and Issue: unknown, P. 124995 - 124995

Published: Nov. 1, 2024

Language: Английский

Citations

4

Applications and prospects of biomaterials in diabetes management DOI Creative Commons
Wei‐jie Guan, Liang Zhang

Frontiers in Bioengineering and Biotechnology, Journal Year: 2025, Volume and Issue: 13

Published: March 7, 2025

Diabetes is a widespread metabolic disorder that presents considerable challenges in its management. Recent advancements biomaterial research have shed light on innovative approaches for the treatment of diabetes. This review examines role biomaterials diabetes diagnosis and treatment, as well their application managing diabetic wounds. By evaluating recent developments alongside future obstacles, highlights promising potential care, underscoring importance enhancing patient outcomes refining methodologies.

Language: Английский

Citations

0

Advancements in Materials for 3D-Printed Microneedle Arrays: Enhancing Performance and Biocompatibility DOI Creative Commons
Mahmood Razzaghi,

Joel Alexander Ninan,

Mohsen Akbari

et al.

Micromachines, Journal Year: 2024, Volume and Issue: 15(12), P. 1433 - 1433

Published: Nov. 28, 2024

The rapid advancement of 3D printing technology has revolutionized the fabrication microneedle arrays (MNAs), which hold great promise in biomedical applications such as drug delivery, diagnostics, and therapeutic interventions. This review uniquely explores advanced materials used production 3D-printed MNAs, including photopolymer resins, biocompatible materials, composite designed to improve mechanical properties, biocompatibility, functional performance. Additionally, it introduces emerging trends 4D for programmable MNAs. By analyzing recent innovations, this identifies critical challenges proposes future directions advance field Unlike previous reviews, paper emphasizes integration innovative with techniques enhance both performance sustainability

Language: Английский

Citations

3