Bioengineered silkworms with butterfly cytotoxin-modified silk glands produce sericin cocoons with a utility for a new biomaterial

Proc Natl Acad Sci U S A. 2017 Jun 27;114(26):6740-6745. doi: 10.1073/pnas.1703449114. Epub 2017 Jun 12.

Abstract

Genetically manipulated organisms with dysfunction of specific tissues are crucial for the study of various biological applications and mechanisms. However, the bioengineering of model organisms with tissue-specific dysfunction has not progressed because the challenges of expression of proteins, such as cytotoxins, in living cells of individual organisms need to be overcome first. Here, we report the establishment of a transgenic silkworm (Bombyx mori) with posterior silk glands (PSGs) that was designed to express the cabbage butterfly (Pieris rapae) cytotoxin pierisin-1A (P1A). P1A, a homolog of the apoptosis inducer pierisin-1, had relatively lower DNA ADP ribosyltransferase activity than pierisin-1; it also induced the repression of certain protein synthesis when expressed in B. mori-derived cultured cells. The transgene-derived P1A domain harboring enzymatic activity was successfully expressed in the transgenic silkworm PSGs. The glands showed no apoptosis-related morphological changes; however, an abnormal appearance was evident. The introduced truncated P1A resulted in the dysfunction of PSGs in that they failed to produce the silk protein fibroin. Cocoons generated by the silkworms solely consisted of the glue-like glycoprotein sericin, from which soluble sericin could be prepared to form hydrogels. Embryonic stem cells could be maintained on the hydrogels in an undifferentiated state and proliferated through stimulation by the cytokines introduced into the hydrogels. Thus, bioengineering with targeted P1A expression successfully produced silkworms with a biologically useful trait that has significant application potential.

Keywords: cytotoxin; hydrogel; silk proteins; transgenic silkworm.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • ADP Ribose Transferases* / biosynthesis
  • ADP Ribose Transferases* / genetics
  • ADP Ribose Transferases* / pharmacology
  • Animals
  • Animals, Genetically Modified* / genetics
  • Animals, Genetically Modified* / metabolism
  • Bombyx* / genetics
  • Bombyx* / metabolism
  • Cytokines / biosynthesis
  • Cytotoxins* / biosynthesis
  • Cytotoxins* / genetics
  • Cytotoxins* / pharmacology
  • Exocrine Glands / metabolism*
  • Hydrogels / pharmacology*
  • Insect Proteins* / biosynthesis
  • Insect Proteins* / genetics
  • Insect Proteins* / pharmacology
  • Mice
  • Mouse Embryonic Stem Cells / cytology
  • Mouse Embryonic Stem Cells / metabolism*
  • Sericins* / biosynthesis
  • Sericins* / genetics
  • Sericins* / pharmacology

Substances

  • Cytokines
  • Cytotoxins
  • Hydrogels
  • Insect Proteins
  • Sericins
  • pierisin protein, insect
  • ADP Ribose Transferases