Related Experiment Video
Updated: May 9, 2026

High-throughput Gene Tagging in Trypanosoma brucei
Published on: August 12, 2016
Functional characterisation and drug target validation of a mitotic kinesin-13 in Trypanosoma brucei
Kuan Yoow Chan1, Keith R Matthews, Klaus Ersfeld
1Department of Biological Sciences, University of Hull, Hull, UK.
Abstract:
Mitotic kinesins are essential for faithful chromosome segregation and cell proliferation. Therefore, in humans, kinesin motor proteins have been identified as anti-cancer drug targets and small molecule inhibitors are now tested in clinical studies. Phylogenetic analyses have assigned five of the approximately fifty kinesin motor proteins coded by Trypanosoma brucei genome to the Kinesin-13 family. Kinesins of this family have unusual biochemical properties because they do not transport cargo along microtubules but are able to depolymerise microtubules at their ends, therefore contributing to the regulation of microtubule length. In other eukaryotic genomes sequenced to date, only between one and three Kinesin-13s are present. We have used immunolocalisation, RNAi-mediated protein depletion, biochemical in vitro assays and a mouse model of infection to study the single mitotic Kinesin-13 in T. brucei. Subcellular localisation of all five T. brucei Kinesin-13s revealed distinct distributions, indicating that the expansion of this kinesin family in kinetoplastids is accompanied by functional diversification. Only a single kinesin (TbKif13-1) has a nuclear localisation. Using active, recombinant TbKif13-1 in in vitro assays we experimentally confirm the depolymerising properties of this kinesin. We analyse the biological function of TbKif13-1 by RNAi-mediated protein depletion and show its central role in regulating spindle assembly during mitosis. Absence of the protein leads to abnormally long and bent mitotic spindles, causing chromosome mis-segregation and cell death. RNAi-depletion in a mouse model of infection completely prevents infection with the parasite. Given its essential role in mitosis, proliferation and survival of the parasite and the availability of a simple in vitro activity assay, TbKif13-1 has been identified as an excellent potential drug target.
Insights
Trypanosoma brucei Kinesin-13 (TbKif13-1) is crucial for cell division and parasite survival. Inhibiting this essential mitotic kinesin in a mouse model prevented infection, identifying it as a promising anti-parasitic drug target.
Area of Science:
- Cell Biology
- Parasitology
- Molecular Biology
Background:
- Mitotic kinesins are vital for chromosome segregation and cell proliferation, making them key anti-cancer drug targets.
- The Trypanosoma brucei genome encodes an expanded family of five Kinesin-13 proteins, unusual kinesins that depolymerize microtubules.
- Kinesin-13s regulate microtubule dynamics, distinct from cargo-carrying kinesins.
Purpose of the Study:
- To investigate the function and potential as a drug target of the single mitotic Kinesin-13 (TbKif13-1) in Trypanosoma brucei.
- To understand the role of TbKif13-1 in parasite mitosis, proliferation, and infection.
Main Methods:
- Phylogenetic analysis to identify Kinesin-13 family members in T. brucei.
- Immunolocalization and RNA interference (RNAi)-mediated protein depletion to study protein function.
- Biochemical in vitro assays using recombinant TbKif13-1 to confirm depolymerization activity.
- Infection studies using a mouse model to assess the impact of TbKif13-1 depletion.
Main Results:
- Phylogenetic analysis revealed five Kinesin-13s in T. brucei, with distinct subcellular localizations suggesting functional diversification.
- TbKif13-1 was confirmed to possess microtubule depolymerization activity in vitro.
- RNAi-mediated depletion of TbKif13-1 resulted in aberrant mitotic spindles, chromosome mis-segregation, and cell death.
- Depletion of TbKif13-1 in a mouse model completely abolished parasite infection.
Conclusions:
- TbKif13-1 is essential for T. brucei mitosis, spindle assembly, and parasite survival.
- The unique role and essentiality of TbKif13-1, coupled with its in vitro assay availability, make it a highly promising drug target for treating parasitic infections.
More Related Videos
14:26Purification of Extracellular Trypanosomes, Including African, from Blood by Anion-Exchangers (Diethylaminoethyl-cellulose Columns)
Published on: April 6, 2019
08:48In Vitro Drug Screening Against All Life Cycle Stages of Trypanosoma cruzi Using Parasites Expressing β-galactosidase
Published on: November 5, 2021