Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

How does the malaria parasite transform its unique cytoskeleton to ensure disease transmission?

In plain English

AI plain-English summary

The malaria parasite rebuilds its internal skeleton into bizarre, never-before-seen shapes to infect mosquitoes and spread disease. Most cells rely on microtubules—tiny protein rods that give structure and allow movement—and these rods look nearly identical across animals, plants, and fungi. But the team recently discovered that the malaria parasite *Plasmodium falciparum* builds microtubules with completely different structures during the stages when it transmits from humans to mosquitoes. No one knows how the parasite assembles these odd skeletons, or what unique abilities they give it. This project will use advanced imaging techniques to map those structures in three key life stages: as the parasite matures inside human blood cells, as it bursts out to become a swimming gamete in the mosquito gut, and as those gametes fuse. This is fundamental science. It does not aim to produce a drug or vaccine tomorrow. But microtubules are already a proven drug target in other diseases. Understanding how the parasite builds its own unusual version could eventually allow researchers to design compounds that jam that assembly process—blocking transmission without harming human cells. Past work on unusual microtubules in other organisms has similarly opened unexpected routes to new therapies.

View original technical description
To ensure disease transmission, the malaria parasite undergoes multiple rounds of metamorphosis, as it entirely alters its cell morphology to promote uptake and establishment in the mosquito. Each round of cellular transformations is driven by an important cytoskeletal component: the cell’s microtubules. Microtubules provide organisation and shape while allowing cells to transport cargo, divide, move and oppose distortion. Their importance across eukaryotes and establishment as an effective drug target has resulted in their extensive study and emphasised their high structural conservation. Remarkably however, we recently showed that transmission stages of P. falciparum have microtubules evolved to undertake specific roles, with structures that are strikingly different from the well-studied canonical microtubules in vertebrates. Understanding these unique structures will pave the way for structure-guided drug targeting. In this proposal we aim to understand how P. falciparum assembles and utilises its distinctive microtubule cytoskeleton in three sequential and under-studied lifecycle stages; gametocyte maturation, their conversion into gametes in the mosquito and subsequent gamete fertilisation. Using state-of-the-art in situ structural biology methodologies that span resolution and biological scales, we will determine microtubule structures and study how their non-canonical forms confer important and unique properties to the parasite.

View the original record at the funder ↗

Researchers

Josie Ferreira (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Host-ile take over: understanding how P. falciparum gametocytes subvert their host cell during infection
Functional dissection of Condensin and Cohesin in atypical mitosis and meiosis in Plasmodium
Divide and Thrive: Unravelling the unconventional dynamics and regulation of rapidcell division during Plasmodium male gamete formation
Unravelling the molecular mechanisms regulating cell division in the malaria parasite
Investigating ubiquitination-regulated cell cycle events underpinning malaria transmission

Original classification

Career Development Award

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.