A Plastid Protein That Evolved from Ubiquitin and Is Required for Apicoplast Protein Import in Toxoplasma gondii

Justin D Fellows1, Michael J Cipriano2, Swati Agrawal1

  • 1Department of Cellular Biology, University of Georgia, Athens, Georgia, USA.

Mbio
|June 29, 2017
PubMed

Insights

Researchers identified a novel plastid ubiquitin-like protein (PUBL) crucial for apicoplast protein import in parasites like those causing malaria. This finding advances understanding of apicomplexan parasite biology and potential drug targets.

Area of Science:

  • Parasitology
  • Cell Biology
  • Molecular Biology

Background:

  • Apicomplexan parasites cause significant human diseases like malaria and toxoplasmosis.
  • The apicoplast, an organelle unique to apicomplexans, is essential for parasite survival and a promising drug target.
  • Protein import into the apicoplast, particularly across the periplastid membrane, relies on a complex machinery including ERAD and ubiquitination enzymes.

Purpose of the Study:

  • To identify and characterize novel components of the apicoplast protein import machinery.
  • To elucidate the role of a putative ubiquitin-like protein in apicoplast protein translocation.
  • To understand the functional significance of this machinery for apicomplexan parasite viability.

Main Methods:

  • Phylogenomic analysis to identify apicomplexan-specific proteins.
  • Functional characterization using conditional null mutants in *Toxoplasma gondii*.
  • Genetic complementation assays to confirm protein function.
  • Biochemical analysis of protein interactions and essential residues.

Main Results:

  • Identification of a novel apicoplast ubiquitin-like protein (PUBL) specific to apicomplexans.
  • Demonstration that PUBL and CDC48AP cooperate to translocate proteins across the periplastid membrane.
  • Confirmation that PUBL and CDC48AP are essential for parasite survival.
  • Identification of critical residues in PUBL for its function in protein import.

Conclusions:

  • PUBL is a key component of the apicoplast protein import system, acting in concert with CDC48AP.
  • The identified machinery provides a mechanistic understanding of protein import across the apicoplast envelope.
  • These findings offer new avenues for developing therapeutics against apicomplexan-driven diseases.

Related Concept Videos

Protein Transport to the Outer Chloroplast Membrane01:11

Protein Transport to the Outer Chloroplast Membrane

Chloroplast outer membrane proteins encoded by the nucleus are synthesized in the cytosol. Soon after synthesis, they bind cytosolic factors such as 14-3-3 protein and the Hsp70 chaperones that keep these precursors in an unfolded state until their translocation.
Two models describe the mechanism of precursor recognition and entry across the outer membrane through the TOC complex. Model 1 suggests the newly synthesized precursor binds to the TOC receptor 159 and forms a complex.
2.4K
Protein Transport to the Inner Chloroplast Membrane01:18

Protein Transport to the Inner Chloroplast Membrane

Proteins targeted to the inner chloroplast membrane, or plastid proteins, are transported by two general pathways: the stop-transfer and the re-insertion or post-import pathways. Most plastid proteins carry N-terminal transit sequences and internal import sequences targeting it to the specific chloroplast subcompartment. Proteins targeted by the stop-transfer pathway have internal hydrophobic sequences that inhibit their translocation into the stroma. As a result, these precursors are arrested...
2.5K
Protein Transport to the Stroma01:24

Protein Transport to the Stroma

Chloroplasts are triple membrane structures with an outer membrane, an inner membrane, and a thylakoid membrane, each containing distinct metabolite transporters, membrane translocons, and enzymes. Appropriate sorting and translocating these proteins to their correct membrane systems is essential for chloroplast function.
Protein complexes called the translocon of the outer chloroplast membrane or TOC complex, and the translocon of the inner chloroplast membrane or TIC complex mediate the...
2.3K
Translocation of Proteins into the Mitochondria01:19

Translocation of Proteins into the Mitochondria

Mitochondrial precursors are translocated to the internal subcompartments via independent mechanisms involving distinct protein machineries called translocases.
Sorting of outer membrane proteins:
Mitochondrial outer membrane proteins are of two types: the transmembrane, beta-barrel porins, and the membrane-anchored, alpha-helical proteins. Beta-barrel porin precursors are translocated by the TOM complex and inserted into the outer mitochondrial membrane by the SAM complex. In contrast,...
13.5K
Protein Transport to the Thylakoids01:22

Protein Transport to the Thylakoids

Thylakoids are membrane-bound sac-like structures within the chloroplast that serve as sites for photosynthesis. Thylakoid lumen contains many electron transport proteins and is enclosed by a thylakoid membrane rich in the light-harvesting complex. Proteins targeted to the thylakoids are transported as precursors and are sorted by the general TOC/TIC import pathway. Once the precursor reaches the stroma, stromal processing peptidases remove their transit signal and expose thylakoid signal...
3.0K
Protein Import into the Peroxisomes01:27

Protein Import into the Peroxisomes

Cells contain membrane-bound organelles called peroxisomes that oxidize organic molecules by transferring hydrogen atoms to oxygen, producing hydrogen peroxide. Peroxisomes enzymatically convert the released hydrogen peroxide into water and oxygen.
Peroxisomal Protein Import:
Peroxisomes lack the genetic machinery required to code for their own proteins. Hence, most peroxisomal membrane, lumenal and transmembrane proteins are synthesized in the cytoplasm or ER and transported to the peroxisome...
5.5K