The role of surface charge in the desolvation process of gelatin: implications in nanoparticle synthesis and modulation of drug release

被引:69
作者
Ahsan, Saad M. [1 ]
Rao, Chintalagiri Mohan [1 ]
机构
[1] CSIR, Ctr Cellular & Mol Biol, Hyderabad 500007, Telangana, India
来源
INTERNATIONAL JOURNAL OF NANOMEDICINE | 2017年 / 12卷
关键词
protein desolvation; nanoparticle assembly; gelatin nanoparticle synthesis; protease susceptibility; intracellular drug release; PROTEIN NANOPARTICLES; 2-STEP DESOLVATION; DELIVERY; OPTIMIZATION; BEHAVIOR; SYSTEM; CANCER; WATER; PH;
D O I
10.2147/IJN.S124938
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The process of moving hydrophobic amino acids into the core of a protein by desolvation is important in protein folding. However, a rapid and forced desolvation can lead to precipitation of proteins. Desolvation of proteins under controlled conditions generates nanoparticles - homogeneous aggregates with a narrow size distribution. The protein nanoparticles, under physiological conditions, undergo surface erosion due to the action of proteases, releasing the entrapped drug/gene. The packing density of protein nanoparticles significantly influences the release kinetics. We have investigated the desolvation process of gelatin, exploring the role of pH and desolvating agent in nanoparticle synthesis. Our results show that the desolvation process, initiated by the addition of acetone, follows distinct pathways for gelatin incubated at different pH values and results in the generation of nanoparticles with varying matrix densities. The nanoparticles synthesized with varying matrix densities show variations in drug loading and protease-dependent extra-and intracellular drug release. These results will be useful in fine-tuning the synthesis of nanoparticles with desirable drug release profiles.
引用
收藏
页码:795 / 808
页数:14
相关论文
共 39 条
  • [1] The Contribution of Entropy, Enthalpy, and Hydrophobic Desolvation to Cooperativity in Repeat-Protein Folding
    Aksel, Tural
    Majumdar, Ananya
    Barrick, Doug
    [J]. STRUCTURE, 2011, 19 (03) : 349 - 360
  • [2] Azarmi S, 2006, J PHARM PHARM SCI, V9, P124
  • [3] Preparation and characterisation of antibody modified gelatin nanoparticles as drug carrier system for uptake in lymphocytes
    Balthasar, S
    Michaelis, K
    Dinauer, N
    von Briesen, H
    Kreuter, J
    Langer, K
    [J]. BIOMATERIALS, 2005, 26 (15) : 2723 - 2732
  • [4] Molecular structure of the collagen triple helix
    Brodsky, B
    Persikov, AV
    [J]. FIBROUS PROTEINS: COILED-COILS, COLLAGEN AND ELASTOMERS, 2005, 70 : 301 - +
  • [5] The collagen triple-helix structure
    Brodsky, B
    Ramshaw, JAM
    [J]. MATRIX BIOLOGY, 1997, 15 (8-9) : 545 - 554
  • [6] Protein folding mediated by solvation:: Water expulsion and formation of the hydrophobic core occur after the structural collapse
    Cheung, MS
    García, AE
    Onuchic, JN
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (02) : 685 - 690
  • [7] Preparation of avidin-labelled gelatin nanoparticles as carriers for biotinylated peptide nucleic acid (PNA)
    Coester, C
    Kreuter, J
    von Briesen, H
    Langer, K
    [J]. INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2000, 196 (02) : 147 - 149
  • [8] Coester CJ, 2000, J MICROENCAPSUL, V17, P187
  • [9] THE VISCOSITY AND RIGIDITY OF GELATIN IN CONCENTRATED AQUEOUS SYSTEMS .1. VISCOSITY
    CUMPER, CWN
    ALEXANDER, AE
    [J]. AUSTRALIAN JOURNAL OF SCIENTIFIC RESEARCH SERIES A-PHYSICAL SCIENCES, 1952, 5 (01): : 146 - 152
  • [10] DJABOUROV M, 1993, BIORHEOLOGY, V30, P191