TY - JOUR
T1 - Construction of gateway-compatible baculovirus expression vectors for high-throughput protein expression and in vivo microcrystal screening
AU - Tang, Yanyang
AU - Saul, Justin
AU - Nagaratnam, Nirupa
AU - Martin-Garcia, Jose M.
AU - Fromme, Petra
AU - Qiu, Ji
AU - LaBaer, Joshua
N1 - Funding Information:
We thank Drs. James Love and Scott Garforth for providing the pIEx-cyto vector to DNASU and for this work. We thank David Lowry for his kind help with the TEM imaging and analysis. We also thank Dr. Michele Zacks for her kind help with the scientific editing, proofreading, and comments provided on this manuscript. We acknowledge the use of facilities within the Eyring Materials Center at Arizona State University supported in part by NNCI-ECCS-1542160. This work was supported by the Flinn Foundation (Ref. 1991) (Y. Tang, J. Saul, N. Nagaratnam, J. M. Martin-Garcia, P. Fromme, J. Qiu, J. LaBaer), and in part by the NSF-STC “BioXFEL” (NSF-1231306) and the NIH (R01-GM095583 to P. Fromme).
Publisher Copyright:
© 2020, The Author(s).
PY - 2020/12/1
Y1 - 2020/12/1
N2 - Baculovirus mediated-insect cell expression systems have been widely used for producing heterogeneous proteins. However, to date, there is still the lack of an easy-to-manipulate system that enables the high-throughput protein characterization in insect cells by taking advantage of large existing Gateway clone libraries. To resolve this limitation, we have constructed a suite of Gateway-compatible pIEx-derived baculovirus expression vectors that allow the rapid and cost-effective construction of expression clones for mass parallel protein expression in insect cells. This vector collection also supports the attachment of a variety of fusion tags to target proteins to meet the needs for different research applications. We first demonstrated the utility of these vectors for protein expression and purification using a set of 40 target proteins of various sizes, cellular localizations and host organisms. We then established a scalable pipeline coupled with the SONICC and TEM techniques to screen for microcrystal formation within living insect cells. Using this pipeline, we successfully identified microcrystals for ~ 16% of the tested protein set, which can be potentially used for structure elucidation by X-ray crystallography. In summary, we have established a versatile pipeline enabling parallel gene cloning, protein expression and purification, and in vivo microcrystal screening for structural studies.
AB - Baculovirus mediated-insect cell expression systems have been widely used for producing heterogeneous proteins. However, to date, there is still the lack of an easy-to-manipulate system that enables the high-throughput protein characterization in insect cells by taking advantage of large existing Gateway clone libraries. To resolve this limitation, we have constructed a suite of Gateway-compatible pIEx-derived baculovirus expression vectors that allow the rapid and cost-effective construction of expression clones for mass parallel protein expression in insect cells. This vector collection also supports the attachment of a variety of fusion tags to target proteins to meet the needs for different research applications. We first demonstrated the utility of these vectors for protein expression and purification using a set of 40 target proteins of various sizes, cellular localizations and host organisms. We then established a scalable pipeline coupled with the SONICC and TEM techniques to screen for microcrystal formation within living insect cells. Using this pipeline, we successfully identified microcrystals for ~ 16% of the tested protein set, which can be potentially used for structure elucidation by X-ray crystallography. In summary, we have established a versatile pipeline enabling parallel gene cloning, protein expression and purification, and in vivo microcrystal screening for structural studies.
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U2 - 10.1038/s41598-020-70163-2
DO - 10.1038/s41598-020-70163-2
M3 - Article
C2 - 32770037
AN - SCOPUS:85089182285
SN - 2045-2322
VL - 10
JO - Scientific Reports
JF - Scientific Reports
IS - 1
M1 - 13323
ER -