Modeling of nanotherapeutics delivery based on tumor perfusion

被引:27
|
作者
van de Ven, Anne L. [1 ]
Abdollahi, Behnaz [2 ]
Martinez, Carlos J. [1 ,3 ]
Burey, Lacey A. [4 ]
Landis, Melissa D. [4 ]
Chang, Jenny C. [4 ,5 ]
Ferrari, Mauro [5 ,6 ,7 ]
Frieboes, Hermann B. [2 ,8 ,9 ]
机构
[1] Methodist Hosp, Res Inst, Dept Nanomed, Houston, TX 77030 USA
[2] Univ Louisville, Dept Elect & Comp Engn, Louisville, KY 40292 USA
[3] Southwestern Univ, Dept Biol, Georgetown, TX USA
[4] Methodist Hosp, Res Inst, Ctr Canc, Houston, TX 77030 USA
[5] Weill Cornell Med Coll, Dept Med, New York, NY USA
[6] Methodist Hosp, Res Inst, Houston, TX 77030 USA
[7] Alliance NanoHlth, Houston, TX USA
[8] Univ Louisville, Dept Bioengn, Louisville, KY 40208 USA
[9] Univ Louisville, James Graham Brown Canc Ctr, Louisville, KY 40292 USA
来源
NEW JOURNAL OF PHYSICS | 2013年 / 15卷
关键词
CEREBRAL BLOOD-VOLUME; VASCULAR-PERMEABILITY; MACROMOLECULAR THERAPEUTICS; MICROVASCULAR PERMEABILITY; TUMORITROPIC ACCUMULATION; ANTIANGIOGENIC THERAPY; MICROVESSEL DENSITY; BREAST-CANCER; SURFACE-AREA; CT PERFUSION;
D O I
10.1088/1367-2630/15/5/055004
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Heterogeneities in the perfusion of solid tumors prevent optimal delivery of nanotherapeutics. Clinical imaging protocols for obtaining patient-specific data have proven difficult to implement. It is challenging to determine which perfusion features hold greater prognostic value and to relate measurements to vessel structure and function. With the advent of systemically administered nanotherapeutics whose delivery is dependent on overcoming diffusive and convective barriers to transport, such knowledge is increasingly important. We describe a framework for the automated evaluation of vascular perfusion curves measured at the single vessel level. Primary tumor fragments, collected from triple-negative breast cancer patients and grown as xenografts in mice, were injected with fluorescence contrast and monitored using intravital microscopy. The time to arterial peak and venous delay, two features whose probability distributions were measured directly from time-series curves, were analyzed using a fuzzy c-mean supervised classifier in order to rank individual tumors according to their perfusion characteristics. The resulting rankings correlated inversely with experimental nanoparticle accumulation measurements, enabling the modeling of nanotherapeutics delivery without requiring any underlying assumptions about tissue structure or function, or heterogeneities contained therein. With additional calibration, these methodologies may enable the investigation of nanotherapeutics delivery strategies in a variety of tumor models.
引用
收藏
页数:22
相关论文
共 50 条
  • [41] Breaking the niche: multidimensional nanotherapeutics for tumor microenvironment modulation
    Swetha, K. Laxmi
    Maravajjala, Kavya Sree
    Li, Shyh-Dar
    Singh, Manu Smriti
    Roy, Aniruddha
    DRUG DELIVERY AND TRANSLATIONAL RESEARCH, 2023, 13 (01) : 105 - 134
  • [42] Exploring the Role of Nanotherapeutics for Diagnosis and Treatment of Solid Tumor
    Verma, Ravinder
    Akter, Rokeya
    Kumar, Manish
    Bhatt, Shailendra
    Tiwari, Abhishek
    Tiwari, Varsha
    Tagde, Priti
    Pandey, Parijat
    Mittal, Vineet
    Purohit, Deepika
    Redhu, Rakesh
    Rahman, Md. Habibur
    Kaushik, Deepak
    CURRENT NANOSCIENCE, 2024, 20 (01) : 109 - 129
  • [43] Regulating Cholesterol in Tumorigenesis: A Novel Paradigm for Tumor Nanotherapeutics
    Wu, Huifeng
    Wu, Xiaodong
    Zhao, Mengdan
    Yan, Jingjing
    Li, Chaoqun
    Zhang, Zhewei
    Tang, Sangsang
    Wang, Rong
    Fei, Weidong
    INTERNATIONAL JOURNAL OF NANOMEDICINE, 2024, 19 : 1055 - 1076
  • [44] Progress in advanced nanotherapeutics for enhanced photodynamic immunotherapy of tumor
    Wei, Xiao
    Song, Mingzhu
    Jiang, Guirong
    Liang, Min
    Chen, Chunlan
    Yang, Zhiyong
    Zou, Liang
    THERANOSTICS, 2022, 12 (12): : 5272 - 5298
  • [45] Advances in nanotherapeutics for tumor treatment by targeting calcium overload
    Wang, Chenglong
    Peng, Junrong
    Xiao, Yiwei
    Zhang, Zongquan
    Yang, Xi
    Liang, Xiaoya
    Yang, Jing
    Zhou, Xiangyu
    Li, Chunhong
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2025, 245
  • [46] Nose-to-brain delivery of nanotherapeutics: Transport mechanisms and applications
    Xu, Kunyao
    Duan, Suqin
    Wang, Wenjing
    Ouyang, Qiuhong
    Qin, Feng
    Guo, Peilin
    Hou, Jinghan
    He, Zhanlong
    Wei, Wei
    Qin, Meng
    WILEY INTERDISCIPLINARY REVIEWS-NANOMEDICINE AND NANOBIOTECHNOLOGY, 2024, 16 (02)
  • [47] Cell Membrane-Cloaked Nanotherapeutics for Targeted Drug Delivery
    Lee, Na-Hyun
    You, Sumin
    Taghizadeh, Ali
    Taghizadeh, Mohsen
    Kim, Hye Sung
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (04)
  • [48] Nanotherapeutics: emerging competent technology in neuroAIDS and CNS drug delivery
    Saxena, Shailendra K.
    Tiwari, Sneham
    Nair, Madhavan P. N.
    NANOMEDICINE, 2012, 7 (07) : 941 - 944
  • [49] Insight into chitosan derived nanotherapeutics for anticancer drug delivery and imaging
    Moramkar, Nimish
    Bhatt, Purvi
    EUROPEAN POLYMER JOURNAL, 2021, 154 (154)
  • [50] Multiscale Modeling of Tissue Perfusion Based on Homogenization
    Rohan, Eduard
    Lukes, Vladimir
    Cimrman, Robert
    INTERNATIONAL CONFERENCE OF THE CZECH SOCIETY OF BIOMECHANICS - HUMAN BIOMECHANICS 2010, 2010, : 274 - 278