MacroBac: New Technologies for Robust and Efficient Large-Scale Production of Recombinant Multiprotein Complexes

Scott D. Gradia, Justin P. Ishida, Miaw Sheue Tsai, Chris Jeans, John A. Tainer, Jill O. Fuss

Research output: Chapter in Book/Report/Conference proceedingChapter

56 Scopus citations

Abstract

Recombinant expression of large, multiprotein complexes is essential and often rate limiting for determining structural, biophysical, and biochemical properties of DNA repair, replication, transcription, and other key cellular processes. Baculovirus-infected insect cell expression systems are especially well suited for producing large, human proteins recombinantly, and multigene baculovirus systems have facilitated studies of multiprotein complexes. In this chapter, we describe a multigene baculovirus system called MacroBac that uses a Biobricks-type assembly method based on restriction and ligation (Series 11) or ligation-independent cloning (Series 438). MacroBac cloning and assembly is efficient and equally well suited for either single subcloning reactions or high-throughput cloning using 96-well plates and liquid handling robotics. MacroBac vectors are polypromoter with each gene flanked by a strong polyhedrin promoter and an SV40 poly(A) termination signal that minimize gene order expression level effects seen in many polycistronic assemblies. Large assemblies are robustly achievable, and we have successfully assembled as many as 10 genes into a single MacroBac vector. Importantly, we have observed significant increases in expression levels and quality of large, multiprotein complexes using a single, multigene, polypromoter virus rather than coinfection with multiple, single-gene viruses. Given the importance of characterizing functional complexes, we believe that MacroBac provides a critical enabling technology that may change the way that structural, biophysical, and biochemical research is done.

Original languageEnglish (US)
Title of host publicationMethods in Enzymology
PublisherAcademic Press Inc.
Pages1-26
Number of pages26
DOIs
StatePublished - 2017

Publication series

NameMethods in Enzymology
Volume592
ISSN (Print)0076-6879
ISSN (Electronic)1557-7988

Keywords

  • Baculovirus
  • Biobricks
  • Insect cells
  • LIC
  • MacroBac
  • Multigene
  • Protein complex
  • Recombinant protein expression

ASJC Scopus subject areas

  • Biochemistry
  • Molecular Biology

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