Revolutionizing lung cancer treatment: Nanotechnology-driven advances in targeted drug delivery and novel therapeutic strategies

被引:7
作者
Shojaei, Shirin [1 ]
Pourmadadi, Mehrab [2 ]
Homayoonfal, Mina [3 ]
Behnamrad, Parisa [4 ]
Fathi-karkan, Sonia [5 ,6 ]
Rahdar, Abbas [7 ]
Gerayli, Sina [8 ]
Pandey, Sadanand [8 ]
机构
[1] Kermanshah Univ Med Sci, Hlth Technol Inst, Nano Drug Delivery Res Ctr, Kermanshah, Iran
[2] Shahid Beheshti Univ, Prot Res Ctr, GC, Tehran 1983963113, Iran
[3] Kashan Univ Med Sci, Inst Basic Sci, Res Ctr Biochem & Nutr Metab Dis, Kashan, Iran
[4] Shahid Sadoughi Univ Med Sci, Fac Pharm, Dept Pharmaceut, Yazd, Iran
[5] North Khorasan Univ Med Sci, Nat Prod & Med Plants Res Ctr, Bojnurd 9453155166, Iran
[6] North Khorasan Univ Med Sci, Sch Med, Dept Adv Sci & Technol Med, Bojnurd 9414974877, Iran
[7] Univ Zabol, Dept Phys, POB 98613-35856, Zabol, Iran
[8] Shoolini Univ, Fac Appl Sci & Biotechnol, Sch Bioengn & Food Technol, Solan, Himachal Prades, India
关键词
Lung cancer; Drug delivery mechanisms; Nanotechnology applications; Photothermal therapeutics; Genetic therapy; GROWTH-FACTOR RECEPTOR; PH-SENSITIVE NANOPARTICLES; SOLID LIPID NANOPARTICLES; IMMUNO-PHOTOTHERMAL THERAPY; POLYMER-MODIFIED LIPOSOMES; IRON-OXIDE NANOPARTICLES; CO-DELIVERY; FOLATE RECEPTOR; MAGNETIC NANOPARTICLES; PHOTODYNAMIC THERAPY;
D O I
10.1016/j.jddst.2024.106186
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Lung cancer, the second leading cause of cancer-related mortality and incidence globally, presents a formidable challenge with an estimated 238,340 new cases and 127,070 deaths projected in 2023. These alarming statistics highlight the urgent need for more effective therapeutic strategies, given the limitations of current treatments in efficacy and early detection. Nanotechnology, with its potential for precise, targeted drug delivery, offers a promising avenue to overcome these challenges by enhancing therapeutic effectiveness and reducing systemic toxicity. Recent advancements in this field have led to the development of various nanocarriers-such as solid lipid nanoparticles, dendrimers, carbon nanotubes, and gold nanoparticles-each providing unique advantages, including customizable release profiles, multi-modal loading, and the ability to bypass biological barriers. This review critically examines the rapidly evolving landscape of nanocarrier-based therapeutics in lung cancer, focusing on innovative receptor-targeted approaches that leverage tumor-specific markers like EGFR, HER2, and PD-L1 for precise drug delivery. Furthermore, we explore cutting-edge strategies employing stimuli-responsive release mechanisms aimed at minimizing off-target effects and enhancing tumor selectivity. Clinical trials underscore the potential of these nanotechnology-driven therapies to revolutionize lung cancer treatment, offering more personalized and effective options for patients. By advancing these novel approaches, nanotechnology stands to make a significant impact in transforming the therapeutic landscape for lung cancer, addressing the pressing need for more efficient and targeted treatment modalities.
引用
收藏
页数:45
相关论文
共 386 条
[1]   Inhalable particulate drug delivery systems for lung cancer therapy: Nanoparticles, microparticles, nanocomposites and nanoaggregates [J].
Abdelaziz, Hadeer M. ;
Gaber, Mohamed ;
Abd-Elwakil, Mahmoud M. ;
Mabrouk, Moustafa T. ;
Elgohary, Mayada M. ;
Kamel, Nayra M. ;
Kabary, Dalia M. ;
Freag, May S. ;
Samaha, Magda W. ;
Mortada, Sana M. ;
Elkhodairy, Kadria A. ;
Fang, Jia-You ;
Elzoghby, Ahmed O. .
JOURNAL OF CONTROLLED RELEASE, 2018, 269 :374-392
[2]   In Vitro and In Vivo Tumor Models for the Evaluation of Anticancer Nanoparticles [J].
Abreu, Teresa R. ;
Biscaia, Mariana ;
Goncalves, Nelio ;
Fonseca, Nuno A. ;
Moreira, Joao Nuno .
BIO-NANOMEDICINE FOR CANCER THERAPY, 2021, 1295 :271-299
[3]   Thermosensitive Polymers and Thermo-Responsive Liposomal Drug Delivery Systems [J].
Abuwatfa, Waad H. ;
Awad, Nahid S. ;
Pitt, William G. ;
Husseini, Ghaleb A. .
POLYMERS, 2022, 14 (05)
[4]   Atypical Renal Clearance of Nanoparticles Larger Than the Kidney Filtration Threshold [J].
Adhipandito, Christophorus F. ;
Cheung, Siu-Hung ;
Lin, Yu-Han ;
Wu, Si-Han .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (20)
[5]   Nanoparticles: Cellular Uptake and Cytotoxicity [J].
Adjei, Isaac M. ;
Sharma, Blanka ;
Labhasetwar, Vinod .
NANOMATERIAL: IMPACTS ON CELL BIOLOGY AND MEDICINE, 2014, 811 :73-91
[6]   Nanocarrier fabrication and macromolecule drug delivery: challenges and opportunities [J].
Agrahari, Vibhuti ;
Agrahari, Vivek ;
Mitra, Ashim K. .
THERAPEUTIC DELIVERY, 2016, 7 (04) :257-278
[7]   EGFR-directed monoclonal antibodies in combination with chemotherapy for treatment of non-small-cell lung cancer: an updated review of clinical trials and new perspectives in biomarkers analysis [J].
Agustoni, Francesco ;
Suda, Kenichi ;
Yu, Hui ;
Ren, Shengxiang ;
Rivard, Christopher J. ;
Ellison, Kim ;
Caldwell, Charles, Jr. ;
Rozeboom, Leslie ;
Brovsky, Kristine ;
Hirsch, Fred R. .
CANCER TREATMENT REVIEWS, 2019, 72 :15-27
[8]   Precision Nanotoxicology in Drug Development: Current Trends and Challenges in Safety and Toxicity Implications of Customized Multifunctional Nanocarriers for Drug-Delivery Applications [J].
Ahmad, Anas ;
Imran, Mohammad ;
Sharma, Nisha .
PHARMACEUTICS, 2022, 14 (11)
[9]   Mechanisms of FGFR-mediated carcinogenesis [J].
Ahmad, Imran ;
Iwata, Tomoko ;
Leung, Hing Y. .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR CELL RESEARCH, 2012, 1823 (04) :850-860
[10]   Development and characterization of Brigatinib loaded solid lipid nanoparticles: In-vitro cytotoxicity against human carcinoma A549 lung cell lines [J].
Ahmed, Mohammed Muqtader ;
Fatima, Farhat ;
Anwer, Md Khalid ;
Aldawsari, Mohammed F. ;
Alsaidan, Yasser Saud M. ;
Alfaiz, Suliman Abdulaziz ;
Haque, Anzarul ;
Alanazi, A. Z. ;
Alhazzani, Khalid .
CHEMISTRY AND PHYSICS OF LIPIDS, 2020, 233