Exploring the Potential of Mitochondria-Targeted Drug Delivery for Enhanced Breast Cancer Therapy

被引:0
作者
Ghazizadeh, Yalda [1 ]
Sharifi-Ardani, Seyedeh Elnaz [1 ]
Tajik, Negin [1 ]
Mirzaei, Roya [2 ]
Pourahmad, Jalal [3 ]
机构
[1] Shahid Beheshti Univ Med Sci, Student Res Comm, Sch Pharm, Tehran, Iran
[2] Shahid Beheshti Univ Med Sci, Pharmaceut Sci Res Ctr, Tehran, Iran
[3] Shahid Beheshti Univ Med Sci, Sch Pharm, Dept Toxicol & Pharmacol, Tehran, Iran
关键词
breast cancer; immunological properties; mitochondria; nanotechnology; MULTIDRUG-RESISTANCE; PAMAM DENDRIMERS; CO-DELIVERY; CELLS; LIPOSOMES; APOPTOSIS; DOXORUBICIN; MICELLES; ACID; PACLITAXEL;
D O I
10.1155/ijbc/3013009
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Breast cancer stands as the utmost prevalent malignancy in women, impacting the epithelial tissue of the breast and often displaying resistance to effective treatment due to its diverse molecular and histological features. Current treatment modalities may exhibit decreasing efficacy over time and can lead to disease progression. The mitochondria, a crucial organelle responsible for cellular metabolism and energy supply, stand highly sensitive to both heat and reactive oxygen species, presenting an assuring target for photodynamic and photothermal therapies (PTTs) in cancer cure. The employment of nanodrug carriers for combination deliveries holds promise in addressing challenges related to drug degradation and off-target toxicity. By circumventing the reticuloendothelial system, nanocarriers bolster the drug's bioavailability at the intended site and ensure controlled codelivery of multiple drugs, thereby maintaining the normal pharmacokinetic features and the regular pharmacodynamic characteristics of different therapeutic mechanisms. The precision and efficacy of this innovative technology have revolutionized drug delivery, substantially enhancing treatment effectiveness. In the pursuit of targeting mitochondrial modifications in cancer cells, various combination therapies such as photodynamic therapy (PDT), PTT, and chemodynamic therapy (CDT) have been explored. These therapies have improved the efficiency of mitochondria-targeted cancer treatment due to their advantageous properties of minimal toxicity, noninvasiveness, reduced drug resistance, and a safer profile. Our review article provides an exhaustive overview of alterations in the mitochondrial environment in BC, their impact on BC development, potential mitochondrial targets for BC treatment, nanotherapeutic approaches for targeting mitochondria, and the limitations of these approaches.
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页数:20
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共 113 条
[1]   Dual-Functional Peptide Driven Liposome Codelivery System for Efficient Treatment of Doxorubicin-Resistant Breast Cancer [J].
Ahmed, Kamel S. ;
Liu, Shenhuan ;
Mao, Jing ;
Zhang, Jie ;
Qiu, Lipeng .
DRUG DESIGN DEVELOPMENT AND THERAPY, 2021, 15 :3223-3239
[2]   Mitochondrial regulation in the tumor microenvironment: targeting mitochondria for immunotherapy [J].
Ahn, Minseo ;
Ali, Akhtar ;
Seo, Jae Ho .
FRONTIERS IN IMMUNOLOGY, 2024, 15
[3]   Graphene nanoparticles induces apoptosis in MCF-7 cells through mitochondrial damage and NF-KB pathway [J].
Alsaedi, Iman I. J. ;
Taqi, Zainab J. ;
Hussien, Adi M. Abdul ;
Sulaiman, Ghassan M. ;
Jabir, Majid S. .
MATERIALS RESEARCH EXPRESS, 2019, 6 (09)
[4]   Reversal of multidrug resistance by co-delivery of paclitaxel and lonidamine using a TPGS and hyaluronic acid dual-functionalized liposome for cancer treatment [J].
Assanhou, Assogba G. ;
Li, Wenyuan ;
Zhang, Lei ;
Xue, Lingjing ;
Kong, Lingyi ;
Sun, Hongbin ;
Mo, Ran ;
Zhang, Can .
BIOMATERIALS, 2015, 73 :284-295
[5]   Photodynamic and antiangiogenic activities of parietin liposomes in triple negative breast cancer [J].
Ayoub, Abdallah M. ;
Amin, Muhammed U. ;
Ambreen, Ghazala ;
Abu Dayyih, Alice ;
Abdelsalam, Ahmed M. ;
Somaida, Ahmed ;
Engelhardt, Konrad ;
Wojcik, Matthias ;
Schaefer, Jens ;
Bakowsky, Udo .
BIOMATERIALS ADVANCES, 2022, 134
[6]   Changes in Regional Cerebral Perfusion Over Time in Idiopathic REM Sleep Behavior Disorder [J].
Baril, Andree-Ann ;
Gagnon, Jean-Francois ;
Pelletier, Amelie ;
Soucy, Jean-Paul ;
Gosselin, Nadia ;
Postuma, Ronald B. ;
Montplaisir, Jacques .
MOVEMENT DISORDERS, 2020, 35 (08) :1475-1481
[7]   Formulation and characterization of folate receptor-targeted PEGylated liposome encapsulating bioactive compounds from Kappaphycus alvarezii for cancer therapy [J].
Baskararaj, Suraj ;
Panneerselvam, Theivendren ;
Govindaraj, Saravanan ;
Arunachalam, Sankarganesh ;
Parasuraman, Pavadai ;
Pandian, Sureshbabu Ram Kumar ;
Sankaranarayanan, Murugesan ;
Mohan, Uma Priya ;
Palanisamy, Ponnusamy ;
Ravishankar, Vigneshwaran ;
Kunjiappan, Selvaraj .
3 BIOTECH, 2020, 10 (03)
[8]   Biodegradable PEG-PCL Nanoparticles for Co-delivery of MUC1 Inhibitor and Doxorubicin for the Confinement of Triple-Negative Breast Cancer [J].
Behl, Akanksha ;
Solanki, Subhash ;
Paswan, Shravan K. ;
Datta, Tirtha K. ;
Saini, Adesh K. ;
Saini, Reena, V ;
Parmar, Virinder S. ;
Thakur, Vijay Kumar ;
Malhotra, Shashwat ;
Chhillar, Anil K. .
JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2023, 31 (03) :999-1018
[9]   Liposomes loaded with paclitaxel and modified with novel triphenylphosphonium-PEG-PE conjugate possess low toxicity, target mitochondria and demonstrate enhanced antitumor effects in vitro and in vivo [J].
Biswas, Swati ;
Dodwadkar, Namita S. ;
Deshpande, Pranali P. ;
Torchilin, Vladimir P. .
JOURNAL OF CONTROLLED RELEASE, 2012, 159 (03) :393-402
[10]   Therapeutic Approaches to Treat Mitochondrial Diseases: "One-Size-Fits-All" and "Precision Medicine" Strategies [J].
Bottani, Emanuela ;
Lamperti, Costanza ;
Prigione, Alessandro ;
Tiranti, Valeria ;
Persico, Nicola ;
Brunetti, Dario .
PHARMACEUTICS, 2020, 12 (11) :1-63