Magnetic Cell Separation Based on Protein Nanoparticles Mediating the Interaction between Magnetic Particles and Target Cells

被引:0
作者
Nishida, Kei [1 ]
Wang, Gaoyang [1 ]
Kobatake, Eiry [1 ]
Mie, Masayasu [1 ]
机构
[1] Inst Sci Tokyo, Sch Life Sci & Technol, Dept Life Sci & Technol, Yokohama 2268501, Japan
基金
日本学术振兴会;
关键词
magnetic separation; cell separation; fusionprotein; protein nanoparticle; DNA aptamer; IRON-OXIDE NANOPARTICLES; BINDING; HETEROGENEITY; APTAMERS; DESIGN; LABEL;
D O I
10.1021/acsabm.4c01450
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Isolation of specific cells from biological samples is an important aspect of various biological research and diagnostic applications. Magnetic separation using magnetic particles (MPs) allows for easy and specific isolation of the target cells. However, depending on the target cell antigen, biological ligands, such as antibodies, must be modified or altered on MPs. Additionally, further biological evaluation of isolated cells requires the removal of MPs from cells by the enzymatic degradation of the biological ligands. In this study, we designed a magnetic cell separation system in which temperature-responsive protein nanoparticles mediated the interaction between target cells and MPs, achieving the easy changeability of biological ligands, removal of MPs by cooling, and effective cell isolation. The protein nanoparticles were thermally responsively formed from fusion proteins constituted of elastin-like polypeptide (ELP), poly(aspartic acid) [poly(d)], and proteins-of-interest such as NanoLuc luciferase (Nluc) fused with replication initiation protein (Rep) (ELP-poly(d)-Nluc-Rep) or biotin acceptor peptide (BAP) (ELP-poly(d)-Nluc-BAP). Rep exhibited enzymatic conjugation activity with an optional DNA aptamer to protein nanoparticles. The transmembrane glycoprotein mucin 1 (MUC1)-binding DNA aptamer was conjugated to Rep as a model aptamer. Bioluminescence signals emitted from the Nluc domains were used to analyze the binding abilities. BAP contributed to binding to streptavidin-modified MPs via a biotin-streptavidin interaction. The MUC1-conjugated protein nanoparticles bound to MUC1-positive human breast cancer MCF-7 cells via MUC1 aptamers and streptavidin-conjugated MPs via BAP, leading to magnetic cell separation. The ratio of isolated MCF-7 cells via magnetic separation was 71.3% for the MCF-7 suspension at 1000 cells/1 mL. The MPs bound on recovered MCF-7 cells were removed by cooling at 4 degrees C to induce the dissociation of protein nanoparticles. Magnetic cell separation systems that use protein nanoparticles are a promising technology for biological research and diagnostic applications.
引用
收藏
页码:1126 / 1137
页数:12
相关论文
共 45 条
[1]   Blood Monocytes: Development, Heterogeneity, and Relationship with Dendritic Cells [J].
Auffray, Cedric ;
Sieweke, Michael H. ;
Geissmann, Frederic .
ANNUAL REVIEW OF IMMUNOLOGY, 2009, 27 :669-692
[2]   Immuno-modified superparamagnetic nanoparticles via host-guest interactions for high-purity capture and mild release of exosomes [J].
Cai, Shuang ;
Luo, Bin ;
Jiang, Peipei ;
Zhou, Xiaoxi ;
Lan, Fang ;
Yi, Qiangying ;
Wu, Yao .
NANOSCALE, 2018, 10 (29) :14280-14289
[3]   Pulmonary venous circulating tumor cell dissemination before tumor resection and disease relapse [J].
Chemi, Francesca ;
Rothwell, Dominic G. ;
McGranahan, Nicholas ;
Gulati, Sakshi ;
Abbosh, Chris ;
Pearce, Simon P. ;
Zhou, Cong ;
Wilson, Gareth A. ;
Jamal-Hanjani, Mariam ;
Birkbak, Nicolai ;
Pierce, Jackie ;
Kim, Chang Sik ;
Ferdous, Saba ;
Burt, Deborah J. ;
Slane-Tan, Daniel ;
Gomes, Fabio ;
Moore, David ;
Shah, Rajesh ;
Al Bakir, Maise ;
Hiley, Crispin ;
Veeriah, Selvaraju ;
Summers, Yvonne ;
Crosbie, Philip ;
Ward, Sophia ;
Mesquita, Barbara ;
Dynowski, Marek ;
Biswas, Dhruva ;
Tugwood, Jonathan ;
Blackhall, Fiona ;
Miller, Crispin ;
Hackshaw, Allan ;
Brady, Ged ;
Swanton, Charles ;
Dive, Caroline .
NATURE MEDICINE, 2019, 25 (10) :1534-+
[4]   Regenerative NanoOctopus Based on Multivalent-Aptamer-Functionalized Magnetic Microparticles for Effective Cell Capture in Whole Blood [J].
Chen, Yongli ;
Tyagi, Deependra ;
Lyu, Mingsheng ;
Carrier, Andrew J. ;
Nganou, Collins ;
Youden, Brian ;
Wang, Wei ;
Cui, Shufen ;
Servos, Mark ;
Oakes, Ken ;
He, Shengnan ;
Zhang, Xu .
ANALYTICAL CHEMISTRY, 2019, 91 (06) :4017-4022
[5]   Muscle stem cell isolation and in vitro culture for meat production: A methodological review [J].
Choi, Kwang-Hwan ;
Yoon, Ji Won ;
Kim, Minsu ;
Lee, Hyun Jung ;
Jeong, Jinsol ;
Ryu, Minkyung ;
Jo, Cheorun ;
Lee, Chang-Kyu .
COMPREHENSIVE REVIEWS IN FOOD SCIENCE AND FOOD SAFETY, 2021, 20 (01) :429-457
[6]  
CRONAN JE, 1990, J BIOL CHEM, V265, P10327
[7]   A biotechnological perspective on the application of iron oxide magnetic colloids modified with polysaccharides [J].
Dias, A. M. G. C. ;
Hussain, A. ;
Marcos, A. S. ;
Roque, A. C. A. .
BIOTECHNOLOGY ADVANCES, 2011, 29 (01) :142-155
[8]   Natural Biointerface Based on Cancer Cell Membranes for Specific Capture and Release of Circulating Tumor Cells [J].
Ding, Pi ;
Wang, Zhili ;
Wu, Zeen ;
Zhou, Youxin ;
Sun, Na ;
Pei, Renjun .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (18) :20263-20270
[9]   Targeting Mucin Protein Enables Rapid and Efficient Ovarian Cancer Cell Capture: Role of Nanoparticle Properties in Efficient Capture and Culture [J].
Feely, Nathan ;
Wdowicz, Anita ;
Chevalier, Anne ;
Wang, Ying ;
Li, Peng ;
Rollo, Fanny ;
Lee, Gil U. .
SMALL, 2023, 19 (18)
[10]   DNA aptamers that bind to MUC1 tumour marker: Design and characterization of MUC1-binding single-stranded DNA aptamers [J].
Ferreira, C. S. M. ;
Matthews, C. S. ;
Missailidis, S. .
TUMOR BIOLOGY, 2006, 27 (06) :289-301