Control of biomedical nanoparticle distribution and drug release in vivo by complex particle design strategies

被引:0
|
作者
Bresinsky, Melanie [1 ]
Goepferich, Achim [1 ]
机构
[1] Univ Regensburg, Dept Pharmaceut Technol, D-93053 Regensburg, Bavaria, Germany
关键词
Nanoparticle design; Drug delivery; Targeting; Control by design; Protein corona; Endosomal escape; Nanoparticle exocytosis; Nanoparticle uptake; Switchable nanoparticles; Nanoparticle activation; pH-Responsive; Enzyme-responsive; Redox-responsive; Extrinsically-activitable nanoparticles; In vivo; Targeted drug delivery; MESOPOROUS SILICA NANOPARTICLES; REDOX-RESPONSIVE NANOPARTICLES; PLASMA-PROTEIN ADSORPTION; SOLID LIPID NANOPARTICLES; CELLULAR UPTAKE; POLYMERIC NANOPARTICLES; ENDOSOMAL ESCAPE; CANCER-CELLS; INTRACELLULAR DELIVERY; GOLD NANOPARTICLES;
D O I
10.1016/j.ejpb.2025.114634
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The utilization of targeted nanoparticles as a selective drug delivery system is a powerful tool to increase the amount of active substance reaching the target site. This can increase therapeutic efficacy while reducing adverse drug effects. However, nanoparticles face several challenges: upon injection, the immediate adhesion of plasma proteins may mask targeting ligands, thereby diminishing the target cell selectivity. In addition, opsonization can lead to premature clearance and the widespread presence of receptors or enzymes limits the accuracy of target cell recognition. Nanoparticles may also suffer from endosomal entrapment, and controlled drug release can be hindered by premature burst release or insufficient particle retention at the target site. Various strategies have been developed to address these adverse events, such as the implementation of switchable particle properties, regulating the composition of the formed protein corona, or using click-chemistry based targeting approaches. This has resulted in increasingly complex particle designs, raising the question of whether this development actually improves the therapeutic efficacy in vivo. This review provides an overview of the challenges in targeted drug delivery and explores potential solutions described in the literature. Subsequently, appropriate strategies for the development of nanoparticular drug delivery concepts are discussed.
引用
收藏
页数:23
相关论文
共 50 条
  • [21] In Vivo T Cell-Targeting Nanoparticle Drug Delivery Systems: Considerations for Rational Design
    Cevaal, Paula M.
    Ali, Abdalla
    Czuba-Wojnilowicz, Ewa
    Symons, Jori
    Lewin, Sharon R.
    Cortez-Jugo, Christina
    Caruso, Frank
    ACS NANO, 2021, 15 (03) : 3736 - 3753
  • [22] Design of higher precise release control formulation for protein drug.
    Sano, A
    Maeda, M
    Kjihara, M
    Tani, S
    Fujioka, K
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1997, 213 : 175 - PMSE
  • [23] Controlling the burst release of amorphous drug-polysaccharide nanoparticle complex via crosslinking of the polysaccharide chains
    Minh-Hiep Nguyen
    Tran, The-Thien
    Hadinoto, Kunn
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2016, 104 : 156 - 163
  • [24] Pullulan-Based Nanoparticle-HSA Complex Formation and Drug Release Influenced by Surface Charge
    Liming Yuan
    Yiting Cao
    Qian Luo
    Wenyu Yang
    Xiaofeng Wu
    Xiaoping Yang
    Di Wu
    Siyuan Tan
    Ge Qin
    Jia Zhou
    Yue Zeng
    Xinghua Chen
    Xiaojun Tao
    Qiufang Zhang
    Nanoscale Research Letters, 2018, 13
  • [25] Pullulan-Based Nanoparticle-HSA Complex Formation and Drug Release Influenced by Surface Charge
    Yuan, Liming
    Cao, Yiting
    Luo, Qian
    Yang, Wenyu
    Wu, Xiaofeng
    Yang, Xiaoping
    Wu, Di
    Tan, Siyuan
    Qin, Ge
    Zhou, Jia
    Zeng, Yue
    Chen, Xinghua
    Tao, Xiaojun
    Zhang, Qiufang
    NANOSCALE RESEARCH LETTERS, 2018, 13
  • [26] Particle size by design: Standardizing measurements for complex topical drug product assessment
    Chiarentin, Lucas
    Moura, Vera
    Major, Fabio
    Catita, Jose
    Miranda, Margarida
    Vitorino, Carla
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2025, 705
  • [27] Oral drug delivery: effective design and in vivo validation of modified-release systems
    Scholes, P.
    JOURNAL OF PHARMACY AND PHARMACOLOGY, 2008, 60 : A72 - A72
  • [28] Water soluble nanoporous nanoparticle for in vivo targeted drug delivery and controlled release in B cells tumor context
    De Angelis, F.
    Pujia, A.
    Falcone, C.
    Iaccino, E.
    Palmieri, C.
    Liberale, C.
    Mecarini, F.
    Candeloro, P.
    Luberto, L.
    de Laurentiis, A.
    Das, G.
    Scala, G.
    Di Fabrizio, E.
    NANOSCALE, 2010, 2 (10) : 2230 - 2236
  • [29] Porous hydrophilic core/hydrophobic shell nanoparticles for particle size and drug release control
    Hao, Shilei
    Wang, Bochu
    Wang, Yazhou
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2015, 49 : 51 - 57
  • [30] The Effect of Particle Size Distribution on the Design of Urban Stormwater Control Measures
    Selbig, Willliam R.
    Fienen, Michael N.
    Horwatich, Judy A.
    Bannerman, Roger T.
    WATER, 2016, 8 (01):