A lettuce (Lactuca sativa) homolog of human Nogo-B receptor interacts with cis-prenyltransferase and is necessary for natural rubber biosynthesis

J Biol Chem. 2015 Jan 23;290(4):1898-914. doi: 10.1074/jbc.M114.616920. Epub 2014 Dec 4.

Abstract

Natural rubber (cis-1,4-polyisoprene) is an indispensable biopolymer used to manufacture diverse consumer products. Although a major source of natural rubber is the rubber tree (Hevea brasiliensis), lettuce (Lactuca sativa) is also known to synthesize natural rubber. Here, we report that an unusual cis-prenyltransferase-like 2 (CPTL2) that lacks the conserved motifs of conventional cis-prenyltransferase is required for natural rubber biosynthesis in lettuce. CPTL2, identified from the lettuce rubber particle proteome, displays homology to a human NogoB receptor and is predominantly expressed in latex. Multiple transgenic lettuces expressing CPTL2-RNAi constructs showed that a decrease of CPTL2 transcripts (3-15% CPTL2 expression relative to controls) coincided with the reduction of natural rubber as low as 5%. We also identified a conventional cis-prenyltransferase 3 (CPT3), exclusively expressed in latex. In subcellular localization studies using fluorescent proteins, cytosolic CPT3 was relocalized to endoplasmic reticulum by co-occurrence of CPTL2 in tobacco and yeast at the log phase. Furthermore, yeast two-hybrid data showed that CPTL2 and CPT3 interact. Yeast microsomes containing CPTL2/CPT3 showed enhanced synthesis of short cis-polyisoprenes, but natural rubber could not be synthesized in vitro. Intriguingly, a homologous pair CPTL1/CPT1, which displays ubiquitous expressions in lettuce, showed a potent dolichol biosynthetic activity in vitro. Taken together, our data suggest that CPTL2 is a scaffolding protein that tethers CPT3 on endoplasmic reticulum and is necessary for natural rubber biosynthesis in planta, but yeast-expressed CPTL2 and CPT3 alone could not synthesize high molecular weight natural rubber in vitro.

Keywords: Enzyme Catalysis; Lettuce; Natural Rubber; Plant Biochemistry; Protein Complex; Proteomics; Terpenoid; cis-Prenyltransferase, RNA Interference.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Agrobacterium / metabolism
  • Amino Acid Sequence
  • Chromatography, Thin Layer
  • DNA / chemistry
  • Endoplasmic Reticulum / metabolism
  • Green Fluorescent Proteins / metabolism
  • Hevea
  • Lactuca / metabolism*
  • Latex / chemistry
  • Microscopy, Confocal
  • Microsomes / metabolism
  • Molecular Sequence Data
  • Molecular Weight
  • Nicotiana / metabolism
  • Phenotype
  • Plant Proteins / metabolism*
  • Plants, Genetically Modified / metabolism
  • Protein Binding
  • Proteomics
  • RNA Interference
  • Receptors, Cell Surface / metabolism*
  • Rubber / metabolism*
  • Sequence Homology, Amino Acid
  • Transferases / metabolism*
  • Two-Hybrid System Techniques
  • Yeasts / metabolism

Substances

  • Latex
  • Plant Proteins
  • Receptors, Cell Surface
  • Green Fluorescent Proteins
  • Rubber
  • DNA
  • Transferases
  • cis-prenyl transferase