Critical parameters to standardize the size and concentration determination of nanomaterials by nanoparticle tracking analysis

被引:5
作者
Tian, Youxi [1 ,2 ,3 ]
Tian, Dong [3 ]
Peng, Xinsheng [1 ]
Qiu, Hong [2 ,3 ]
机构
[1] Guangdong Med Univ, Sch Pharm, 1 City Ave Songshan Lake Sci & Tech Ind Pk, Dongguan 523808, Peoples R China
[2] Univ Chinese Acad Sci, Sch Pharm, 19A Yuquan Rd, Beijing 100049, Peoples R China
[3] Chinese Acad Sci, Shanghai Inst Mat Med, Carbohydrate Based Drug Res Ctr, 555 Zuchongzhi Rd, Shanghai 200031, Peoples R China
关键词
Nanomaterials; Nanoparticle; Extracellular vesicle; Sizing and counting; nanoparticle tracking analysis (NTA); resistive pulse sensing (RPS); transmission electron microscopy (TEM); ACCURATE PARTICLE-SIZE; EXTRACELLULAR VESICLES; SUBMICRON PARTICLES; ANALYSIS NTA; QUANTIFICATION; NANOSIGHT; PROTEINS;
D O I
10.1016/j.ijpharm.2024.124097
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The size and concentration are critical for the diagnostic and therapeutic applications of nanomaterials but the accurate measurement remains challenging. Nanoparticle tracking analysis (NTA) is widely used for size and concentration determination. However, highly repeatable standard operating procedures (SOPs) are absent. We adopted the "search-evaluate-test" strategy to standardize the measurement by searching the critical parameters. The particles per frame are linearly proportional to the sample concentration and the measured results are more accurate and repeatable when the concentration is 10(8)-10(9) particles/ml. The optimal detection threshold is around 5. The optimal camera level is such that it allows clear observation of particles without diffractive rings and overexposure. The optimal speed is <= 50 in AU and similar to 10 mu l/min in flow rate. We then evaluated the protocol using polydisperse polystyrene particles and we found that NTA could discriminate particles in bimodal mixtures with high size resolution but the performance on multimodal mixtures is not as good as that of resistive pulse sensing (RPS). We further analyzed the polystyrene particles, SiO2 particles, and biological samples by NTA following the SOPs. The size and concentration measured by NTA differentially varies to those determined by RPS and transmission electron microscopy.
引用
收藏
页数:16
相关论文
共 59 条
[51]   Characterization of Submicron (0.1-1 μm) Particles in Therapeutic Proteins by Nanoparticle Tracking Analysis [J].
Vasudev, Rekha ;
Mathew, Sam ;
Afonina, Nataliya .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2015, 104 (05) :1622-1631
[52]   Size and concentration analyses of extracellular vesicles by nanoparticle tracking analysis: a variation study [J].
Vestad, Beate ;
Llorente, Alicia ;
Neurauter, Axl ;
Phuyal, Santosh ;
Kierulf, Bente ;
Kierulf, Peter ;
Skotland, Tore ;
Sandvig, Kirsten ;
Haug, Kari Bente F. ;
Ovstebo, Reidun .
JOURNAL OF EXTRACELLULAR VESICLES, 2017, 6 (01) :1-11
[53]   Measuring particle concentration of multimodal synthetic reference materials and extracellular vesicles with orthogonal techniques: Who is up to the challenge? [J].
Vogel, Robert ;
Savage, John ;
Muzard, Julien ;
Della Camera, Giacomo ;
Vella, Gabriele ;
Law, Alice ;
Marchioni, Marianne ;
Mehn, Dora ;
Geiss, Otmar ;
Peacock, Ben ;
Aubert, Dimitri ;
Calzolai, Luigi ;
Caputo, Fanny ;
Prina-Mello, Adriele .
JOURNAL OF EXTRACELLULAR VESICLES, 2021, 10 (03)
[54]   A standardized method to determine the concentration of extracellular vesicles using tunable resistive pulse sensing [J].
Vogel, Robert ;
Coumans, Frank A. W. ;
Maltesen, Raluca G. ;
Boing, Anita N. ;
Bonnington, Katherine E. ;
Broekman, Marike L. ;
Broom, Murray F. ;
Buzas, Edit I. ;
Christiansen, Gunna ;
Hajji, Najat ;
Kristensen, Soren R. ;
Kuehn, Meta J. ;
Lund, Sigrid M. ;
Maas, Sybren L. N. ;
Nieuwland, Rienk ;
Osteikoetxea, Xabier ;
Schnoor, Rosalie ;
Scicluna, Benjamin J. ;
Shambrook, Mitch ;
de Vrij, Jeroen ;
Mann, Stephen I. ;
Hill, Andrew F. ;
Pedersen, Shona .
JOURNAL OF EXTRACELLULAR VESICLES, 2016, 5
[55]   Towards defining reference materials for measuring extracellular vesicle refractive index, epitope abundance, size and concentration [J].
Welsh, Joshua A. ;
van der Pol, Edwin ;
Bettin, Britta A. ;
Carter, David R. F. ;
Hendrix, An ;
Lenassi, Metka ;
Langlois, Marc-Andre ;
Llorente, Alicia ;
van de Nes, Arthur S. ;
Nieuwland, Rienk ;
Tang, Vera ;
Wang, Lili ;
Witwer, Kenneth W. ;
Jones, Jennifer C. .
JOURNAL OF EXTRACELLULAR VESICLES, 2020, 9 (01)
[56]   Standardization of sample collection, isolation and analysis methods in extracellular vesicle research [J].
Witwer, Kenneth W. ;
Buzas, Edit I. ;
Bemis, Lynne T. ;
Bora, Adriana ;
Lasser, Cecilia ;
Lotvall, Jan ;
Hoen, Esther N. Nolte-'t ;
Piper, Melissa G. ;
Sivaraman, Sarada ;
Skog, Johan ;
Thery, Clotilde ;
Wauben, Marca H. ;
Hochberg, Fred .
JOURNAL OF EXTRACELLULAR VESICLES, 2013, 2 (01)
[57]   Neutralization of SARS-CoV-2 pseudovirus using ACE2-engineered extracellular vesicles [J].
Wu, Canhao ;
Xu, Qin ;
Wang, Huiyuan ;
Tu, Bin ;
Zeng, Jiaxin ;
Zhao, Pengfei ;
Shi, Mingjie ;
Qiu, Hong ;
Huang, Yongzhuo .
ACTA PHARMACEUTICA SINICA B, 2022, 12 (03) :1523-1533
[58]   Antibody-Gold Nanoparticle Bioconjugates for Biosensors: Synthesis, Characterization and Selected Applications [J].
Zhang, Lu ;
Mazouzi, Yacine ;
Salmain, Michele ;
Liedberg, Bo ;
Boujday, Souhir .
BIOSENSORS & BIOELECTRONICS, 2020, 165 (165)
[59]   Characterization of Nanoparticle Tracking Analysis for Quantification and Sizing of Submicron Particles of Therapeutic Proteins [J].
Zhou, Chen ;
Krueger, Aaron B. ;
Barnard, James G. ;
Qi, Wei ;
Carpenter, John F. .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2015, 104 (08) :2441-2450