Blocking the active site of thiolase

A key feature of the active site of the trypanosomal thiolase is the HDCF-loop (HIS-ASP-CYS-PHE), visualised in light blue.

A key feature of the active site of the trypanosomal thiolase is the HDCF-loop (HIS-ASP-CYS-PHE), visualised in light blue. © University of Oulu

Scientists at the University of Oulu, Finland, and at the HZB break new ground for drug discovery research in the fight against sleeping sickness

Scientists at the University of Oulu, Finland, and at the Helmholtz Center Berlin (HZB) have shown the way to new directions in drug development against African sleeping sickness and other tropical parasitic infections. This was based on the structural analysis of the enzyme thiolase, which plays a central role in lipid metabolism in the parasite that causes sleeping sickness. The researchers examined the biomolecule’s structure at the MX beamline of electron storage ring, BESSY II, at the HZB. (Biochemical J. 2013, DOI: 10.1042/BJ20130669)

Sleeping sicknesses – african trypanosomiasis, kala-azar, indian leishmaniasis – are infections caused by tropical parasites. Millions get sick from them each year and thousands end up dying. Anti-parasitic drugs are expensive and often have a host of unwanted side effects. In decades, there have been no new effective therapies. Reason enough for the World Health Organization (WHO) to consider research, which can lead to the development of new anti-parasitic drugs, a top priority.

Now, Prof. Rik Wierenga and his team at Oulu University have paved the way for this type of research by shedding light on the structure of the enzyme thiolase. Thiolase figures prominently in parasitic lipid metabolism. According to Wierenga, “key is knowing the geometry of the enzyme’s active site. This is the place where lipids that play a central role in parasitic metabolism attach and where chemical reactions that convert lipids into other substances take place.” Which is why it’s important to investigate the active site’s structure and function: “It enables us to develop lipid-like substances that firmly attach to the active site and block it.” The molecules that are involved represent the ideal starting points for new drug development.
Studies at BESSY of the enzyme thiolase have yielded a highly detailed image of thiolase’s active site. “We now have a much clearer idea of thiolase’s role in all this,” says Wierenga. “It would appear that the enzyme catalyzes the first step in the sterol biosynthesis pathway, which is important in a number of parasites.”

“The measurements of crystalline thiolase proteins we obtained at our MX beamline has helped to unravel the active site’s geometry,” says HZB’s own Dr. Manfred Weiss. One particular region of the protein called the HDCF loop turns out to be key. The structure, which lies deep within thiolase’s interior, was previously unknown. “Understanding the HDCF loop is the ideal starting point for the development of new anti-parasitic drugs,” adds Wierenga.

Original publication:
Harijan, R.K., Kiema, T.R., Karjalainen, M.P., Janardan, N., Murthy, M.R., Weiss. M.S., Michels, P.A., Wierenga, R.K. (2013) Crystal structures of SCP2-thiolases of Trypanosomatidae, human pathogens causing widespread tropical diseases: the importance for catalysis of the cysteine of the unique HDCF loop. Biochem J., 455, 119-130.

HS

  • Copy link

You might also be interested in

  • Special prize by Jugend Forscht awarded to former school intern
    News
    04.08.2026
    Special prize by Jugend Forscht awarded to former school intern
    Shaoxuan Wang has won a special prize in the Jugend Forscht competition for her project ‘Smart Capsules – intelligent microcapsules for glucose-dependent insulin release’. She designed the project as a “special achievement” for her A-levels. To carry out the experimental work, Shaoxuan was able to spend a further two weeks in the laboratory at the HZB Institute for Electrochemical Energy Storage, where she had completed a school internship two years earlier.
  • BESSY II: New sample environment allows glimpse into thermocatalytic processes
    Science Highlight
    15.07.2026
    BESSY II: New sample environment allows glimpse into thermocatalytic processes
    A novel measurement cell allows, for the first time, soft and hard X-ray investigations under high pressures of up to 20 bar and temperatures of up to 400°C. This provides new insights into thermocatalytic processes, such as the Fischer-Tropsch synthesis for producing synthetic fuels. The development of the measurement cell is considered a significant achievement within the Care-O-Sene project.

  • Magnetic imaging: Micro-flowers increase the local magnetic field
    Science Highlight
    06.07.2026
    Magnetic imaging: Micro-flowers increase the local magnetic field
    Materials with magnetic nanostructures have many potential applications such as in spintronics. To explore such materials, nanoscale magnetic-sensitive imaging techniques are very useful, but up to now only weak magnetic fields could be applied during the imaging process. Now an international collaboration led by Dr. Sergio Valencia, HZB, has developed an approach that overcomes this limitation. The team designed tiny magnetic flux concentrators (MFCs), into which the sample is placed. The geometry of the MFCs resembles a flower with a number of petals which focus the applied magnetic field into its center. This greatly expands the magnetic field range available during imaging, and so the range of magnetic systems that can be investigated. The micro-flowers, enhancing magnetic fields locally, can find application in different nanometric magnetic microscopy techniques.