From Plant Based Therapy to Plant-Derived Vesicle-Like Nanoparticles for Cancer Treatment: Past, Present and Future

被引:3
作者
An, Ye [1 ]
Sun, Jian-Xuan [1 ]
Ma, Si-Yang [1 ]
Xu, Meng-Yao [1 ]
Xu, Jin-Zhou [1 ]
Liu, Chen-Qian [1 ]
Wang, Shao-Gang [1 ]
Xia, Qi-Dong [1 ]
机构
[1] Huazhong Univ Sci & Technol, Tongji Hosp, Dept & Inst Urol, Tongji Med Coll, Wuhan, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
plant-based anticancer therapy; drug delivery system; anticancer; plant-derived vesicle-like nanoparticles; EXOSOME-LIKE NANOVESICLES; TRADITIONAL CHINESE MEDICINE; EXTRACELLULAR VESICLES; DRUG-DELIVERY; CLINICAL-APPLICATION; COLORECTAL-CANCER; OXIDATIVE STRESS; BREAST-CANCER; DNA-DAMAGE; APOPTOSIS;
D O I
10.2147/IJN.S499893
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Cancer stands as a formidable malady profoundly impacting human health. Throughout history, plant-based therapies have remained pivotal in the arsenal against cancer, evolving alongside the epochs. Presently, challenges such as the arduous extraction of active components and potential safety concerns impede the progression of plant-based anticancer therapies. The isolation of plantderived vesicle-like nanoparticles (PDVLNs), a kind of lipid bilayer capsules isolated from plants, has brought plant-based anticancer therapy into a novel realm and has led to decades of research on PDVLNs. Accumulating evidence indicates that PDVLNs can deliver plant-derived active substances to human cells and regulate cellular functions. Regulating immunity, inducing cell cycle arrest, and promoting apoptosis in cancer cells are the most commonly reported mechanisms of PDVLNs in tumor suppression. Low immunogenicity and lack of tumorigenicity make PDVLNs a good platform for drug delivery. The molecules within the PDVLNs are all from source plants, so the selection of source plants is crucial. In recent years, there has been a clear trend that the source plants have changed from vegetables or fruits to medicinal plants. This review highlights the mechanisms of medicinal plant-based cancer therapies to identify candidate source plants. More importantly, the current research on PDVLN-based cancer therapy and the applications of PDVLNs for drug delivery are systematically discussed.
引用
收藏
页码:3471 / 3491
页数:21
相关论文
共 150 条
[1]   Paclitaxel's Mechanistic and Clinical Effects on Breast Cancer [J].
Abu Samaan, Tala M. ;
Samec, Marek ;
Liskova, Alena ;
Kubatka, Peter ;
Busselberg, Dietrich .
BIOMOLECULES, 2019, 9 (12)
[2]   Delivery of siRNA to the mouse brain by systemic injection of targeted exosomes [J].
Alvarez-Erviti, Lydia ;
Seow, Yiqi ;
Yin, HaiFang ;
Betts, Corinne ;
Lakhal, Samira ;
Wood, Matthew J. A. .
NATURE BIOTECHNOLOGY, 2011, 29 (04) :341-U179
[3]   Plant polyphenols mobilize endogenous copper in human peripheral lymphocytes leading to oxidative DNA breakage: A putative mechanism for anticancer properties [J].
Ami, AS ;
Bhat, SH ;
Hanif, S ;
Hadi, SM .
FEBS LETTERS, 2006, 580 (02) :533-538
[4]   Do Plant Cells Secrete Exosomes Derived from Multivesicular Bodies? [J].
An, Qianli ;
van Bel, Aart J. E. ;
Hueckelhoven, Ralph .
PLANT SIGNALING & BEHAVIOR, 2007, 2 (01) :4-7
[5]   Assessment of polyphenolic content, antioxidant activity, protection against ROS-induced DNA damage and anticancer activity of Vitis vinifera stem extracts [J].
Apostolou, Anna ;
Stagos, Dimitrios ;
Galitsiou, Elissavet ;
Spyrou, Argiris ;
Haroutounian, Serko ;
Portesis, Nikolaos ;
Trizoglou, Ioanna ;
Hayes, A. Wallace ;
Tsatsakis, Aristides M. ;
Kouretas, Dimitrios .
FOOD AND CHEMICAL TOXICOLOGY, 2013, 61 :60-68
[6]   Anti-cancer potential of flavonoids: recent trends and future perspectives [J].
Batra, Priya ;
Sharma, Anil K. .
3 BIOTECH, 2013, 3 (06) :439-459
[7]   DLS and zeta potential - What they are and what they are not? [J].
Bhattacharjee, Sourav .
JOURNAL OF CONTROLLED RELEASE, 2016, 235 :337-351
[8]   Plant lectins in cancer therapeutics: Targeting apoptosis and autophagy-dependent cell death [J].
Bhutia, Sujit K. ;
Panda, Prashanta K. ;
Sinha, Niharika ;
Praharaj, Prakash P. ;
Bhol, Chandra S. ;
Panigrahi, Debasna P. ;
Mahapatra, Kewal K. ;
Saha, Sarbari ;
Patra, Srimanta ;
Mishra, Soumya R. ;
Behera, Bishnu P. ;
Patil, Shankargouda ;
Maiti, Tapas K. .
PHARMACOLOGICAL RESEARCH, 2019, 144 :8-18
[9]   Biomanufacturing of Tomato-Derived Nanovesicles [J].
Bokka, Ramesh ;
Ramos, Anna Paulina ;
Fiume, Immacolata ;
Manno, Mauro ;
Raccosta, Samuele ;
Turiak, Lilla ;
Sugar, Simon ;
Adamo, Giorgia ;
Csizmadia, Tamas ;
Pocsfalvi, Gabriella .
FOODS, 2020, 9 (12)
[10]   Nanotherapy and Reactive Oxygen Species (ROS) in Cancer: A Novel Perspective [J].
Brenneisen, Peter ;
Reichert, Andreas S. .
ANTIOXIDANTS, 2018, 7 (02)