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Intravital Microscopy of Tumor-associated Vasculature Using Advanced Dorsal Skinfold Window Chambers on Transgenic Fluorescent Mice
Published on: January 19, 2018
Recent advances in the development of tumor microenvironment-activatable nanomotors for deep tumor penetration
Qianyang Jiang1, Jiahuan He1, Hairui Zhang2
1Key Laboratory of Artificial Organs and Computational Medicine in Zhejiang Province, Shulan International Medical College, Zhejiang Shuren University, Hangzhou, PR China.
Abstract:
Cancer represents a significant threat to human health, with the use of traditional chemotherapy drugs being limited by their harsh side effects. Tumor-targeted nanocarriers have emerged as a promising solution to this problem, as they can deliver drugs directly to the tumor site, improving drug effectiveness and reducing adverse effects. However, the efficacy of most nanomedicines is hindered by poor penetration into solid tumors. Nanomotors, capable of converting various forms of energy into mechanical energy for self-propelled movement, offer a potential solution for enhancing drug delivery to deep tumor regions. External force-driven nanomotors, such as those powered by magnetic fields or ultrasound, provide precise control but often necessitate bulky and costly external equipment. Bio-driven nanomotors, propelled by sperm, macrophages, or bacteria, utilize biological molecules for self-propulsion and are well-suited to the physiological environment. However, they are constrained by limited lifespan, inadequate speed, and potential immune responses. To address these issues, nanomotors have been engineered to propel themselves forward by catalyzing intrinsic "fuel" in the tumor microenvironment. This mechanism facilitates their penetration through biological barriers, allowing them to reach deep tumor regions for targeted drug delivery. In this regard, this article provides a review of tumor microenvironment-activatable nanomotors (fueled by hydrogen peroxide, urea, arginine), and discusses their prospects and challenges in clinical translation, aiming to offer new insights for safe, efficient, and precise treatment in cancer therapy.
Insights
Tumor microenvironment-activatable nanomotors offer enhanced cancer drug delivery by self-propelling through tumors. This approach overcomes limitations of traditional nanomedicines for improved therapeutic outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Traditional chemotherapy has severe side effects, limiting its efficacy.
- Nanocarriers improve drug delivery but struggle with tumor penetration.
- Nanomotors offer self-propelled drug delivery to deep tumor regions.
Purpose of the Study:
- To review tumor microenvironment-activatable nanomotors for cancer therapy.
- To discuss the prospects and challenges of these nanomotors in clinical translation.
Main Methods:
- Review of nanomotors activated by tumor microenvironment fuels (e.g., hydrogen peroxide, urea, arginine).
- Analysis of self-propulsion mechanisms for enhanced tumor penetration.
- Discussion of clinical translation challenges and future directions.
Main Results:
- Tumor microenvironment-activatable nanomotors can overcome penetration barriers in solid tumors.
- Self-propulsion enhances drug delivery to previously inaccessible deep tumor regions.
- Engineered nanomotors utilize intrinsic tumor fuels for autonomous movement.
Conclusions:
- Tumor microenvironment-activatable nanomotors represent a promising strategy for precise and efficient cancer drug delivery.
- Further research is needed to address challenges for successful clinical translation.
- These nanomotors offer potential for safer and more effective cancer treatments.

