Identifying adeno-associated virus (AAV) vectors that efficiently target high grade glioma cells, for in vitro monitoring of temporal cell responses

被引:0
|
作者
Sarker, Farhana A. [1 ,2 ]
Chen, Yuyan [1 ,2 ]
Westhaus, Adrian [3 ]
Lisowski, Leszek [3 ,4 ,5 ,6 ]
O'Neill, Geraldine M. [1 ,2 ]
机构
[1] Univ Sydney, Childrens Hosp Clin Sch, Fac Med & Hlth, Sydney, Australia
[2] Childrens Hosp Westmead, Childrens Canc Res Unit, Locked Bag 4001, Sydney, NSW 2145, Australia
[3] Univ Sydney, Childrens Med Res Inst, Fac Med & Hlth, Translat Vectorol Res Unit, Westmead, Australia
[4] Childrens Med Res Inst, Australian Genome Therapeut Ctr, Westmead, Australia
[5] Sydney Childrens Hosp Network, Westmead, Australia
[6] Mil Inst Med, Lab Mol Oncol & Innovat Therapies, Warsaw, Poland
来源
FEBS OPEN BIO | 2024年 / 14卷 / 11期
关键词
AAV; barcoded; glioma; YAP/TAZ; ADHESION;
D O I
10.1002/2211-5463.13894
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
To improve the translation of preclinical cancer research data to successful clinical effect, there is an increasing focus on the use of primary patient-derived cancer cells with limited growth in culture to reduce genetic and phenotype drift. However, these primary lines are less amenable to standardly used methods of exogenous DNA introduction. Adeno-associated viral (AAV) vectors display tropism for a wide range of human tissues, avidly infect primary cells and have a good safety profile. In the present study, we therefore used a next-generation sequencing (NGS) barcoded AAV screening method to assess transduction capability of a panel of 36 AAVs in primary cell lines representing high-grade glioma (HGG) brain tumours including glioblastoma (GBM) and diffuse intrinsic pontine glioma (DIPG)/diffuse midline glioma (DMG). As proof of principle, we created a reporter construct to analyse activity of the transcriptional co-activators yes-associated protein (YAP) and transcriptional co-activator with PDZ-binding motif (TAZ). Transcriptional activation was monitored by promoter-driven expression of the Timer fluorescent tag, a protein that fluoresces green immediately after transcription and transitions to red fluorescence over time. As expected, attempts to express the reporter in primary HGG cells from plasmid expression vectors were unsuccessful. Using the top candidate from the AAV screen, we demonstrate successful AAV-mediated transduction of HGG cells with the YAP/TAZ dynamic activity reporter. In summary, the NGS-screening approach facilitated screening of many potential AAVs, identifying vectors that can be used to study the biology of primary HGG cells.
引用
收藏
页码:1914 / 1925
页数:12
相关论文
共 50 条
  • [31] Adeno-associated virus type 6 (AAV6) vectors mediate efficient transduction of airway epithelial cells in mouse lungs compared to that of AAV2 vectors
    Halbert, CL
    Allen, JM
    Miller, AD
    JOURNAL OF VIROLOGY, 2001, 75 (14) : 6615 - 6624
  • [32] Self-complementary adeno-associated virus 2 (AAV)-T cell protein tyrosine phosphatase vectors as helper viruses to improve transcluction efficiency of conventional single-stranded AAV vectors in vitro and in vivo
    Zhong, L
    Chen, LY
    Li, YJ
    Qing, KY
    Weigel-Kelley, KA
    Chan, RJ
    Yoder, MC
    Srivastava, A
    MOLECULAR THERAPY, 2004, 10 (05) : 950 - 957
  • [33] Improved gene transfer into coronary artery endothelial cells with retargeted adeno-associated virus (AAV) vectors selected from a random AAV display peptide library
    Mueller, OJ
    Kaul, F
    Pasqualini, R
    Arap, W
    Trepel, M
    Kleinschmidt, JA
    CIRCULATION, 2003, 108 (17) : 290 - 290
  • [34] Comparison of viral vectors for gene transfer into CLL cells: Efficient transduction with adeno-associated virus-8 (AAV-8).
    Jewell, AP
    Cochrane, M
    McIntosh, J
    Benjamin, R
    Nathwani, A
    BLOOD, 2005, 106 (11) : 837A - 837A
  • [35] High-Efficiency Transduction of Liver Cancer Cells by Recombinant Adeno-Associated Virus Serotype 3 Vectors
    Ling, Chen
    Lu, Yuan
    Cheng, Binbin
    McGoogan, Katherine E.
    Gee, Samantha W. Y.
    Ma, Wenqin
    Li, Baozheng
    Aslanidi, George V.
    Srivastava, Arun
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2011, (49):
  • [36] High Prevalence of Infectious Adeno-associated Virus (AAV) in Human Peripheral Blood Mononuclear Cells Indicative of T Lymphocytes as Sites of AAV Persistence
    Hueser, Daniela
    Khalid, Dina
    Lutter, Timo
    Hammer, Eva-Maria
    Weger, Stefan
    Hessler, Melanie
    Kalus, Ulrich
    Tauchmann, Yvonne
    Hensel-Wiegel, Karin
    Lassner, Dirk
    Heilbronn, Regine
    JOURNAL OF VIROLOGY, 2017, 91 (04)
  • [37] AAV-Display: A combinatorial approach for the generation of receptor-specific adeno-associated virus vectors for gene transfer into hematopoietic cells.
    Perabo, L
    Buening, H
    Girod, A
    Ried, M
    Kofler, DM
    Wendtner, C
    Enssle, J
    Hallek, MJ
    BLOOD, 2002, 100 (11) : 488B - 489B
  • [38] Recombinant adeno-associated virus (AAV-CFTR) vectors do not integrate in a site-specific fashion in an immortalized epithelial cell line
    Kearns, WG
    Afione, SA
    Fulmer, SB
    Pang, MG
    Erikson, D
    Egan, M
    Landrum, MJ
    Flotte, TR
    Cutting, GR
    GENE THERAPY, 1996, 3 (09) : 748 - 755
  • [39] Development of a high-yield, high-quality purification process for adeno-associated virus vectors that can be used in vivo without ultracentrifugation: Application to a lung endothelial cell-targeted adeno-associated virus
    Shiraishi, Yasunaga
    Adachi, Takeshi
    Cacicedo, Jose M.
    Ido, Yasuo
    FASEB JOURNAL, 2022, 36 (12):
  • [40] High-Throughput In Vitro, Ex Vivo, and In Vivo Screen of Adeno-Associated Virus Vectors Based on Physical and Functional Transduction
    Westhaus, Adrian
    Cabanes-Creus, Marti
    Rybicki, Arkadiusz
    Baltazar, Grober
    Navarro, Renina Gale
    Zhu, Erhua
    Drouyer, Matthieu
    Knight, Maddison
    Albu, Razvan F.
    Ng, Boaz H.
    Kalajdzic, Predrag
    Kwiatek, Magdalena
    Hsu, Kenneth
    Santilli, Giorgia
    Gold, Wendy
    Kramer, Belinda
    Gonzalez-Cordero, Anai
    Thrasher, Adrian J.
    Alexander, Ian E.
    Lisowski, Leszek
    HUMAN GENE THERAPY, 2020, 31 (9-10) : 575 - 589