Related Experiment Video
Updated: May 31, 2026

Methods to Investigate the Regulatory Role of Small RNAs and Ribosomal Occupancy of Plasmodium falciparum
Published on: December 4, 2015
Biophysics of malarial parasite exit from infected erythrocytes
Rajesh Chandramohanadas1, YongKeun Park, Lena Lui
1Singapore-MIT Alliance for Research and Technology Centre, Singapore, Singapore.
Abstract:
Upon infection and development within human erythrocytes, P. falciparum induces alterations to the infected RBC morphology and bio-mechanical properties to eventually rupture the host cells through parasitic and host derived proteases of cysteine and serine families. We used previously reported broad-spectrum inhibitors (E64d, EGTA-AM and chymostatin) to inhibit these proteases and impede rupture to analyze mechanical signatures associated with parasite escape. Treatment of late-stage iRBCs with E64d and EGTA-AM prevented rupture, resulted in no major RBC cytoskeletal reconfiguration but altered schizont morphology followed by dramatic re-distribution of three-dimensional refractive index (3D-RI) within the iRBC. These phenotypes demonstrated several-fold increased iRBC membrane flickering. In contrast, chymostatin treatment showed no 3D-RI changes and caused elevated fluctuations solely within the parasitophorous vacuole. We show that E64d and EGTA-AM supported PV breakdown and the resulting elevated fluctuations followed non-Gaussian pattern that resulted from direct merozoite impingement against the iRBC membrane. Optical trapping experiments highlighted reduced deformability of the iRBC membranes upon rupture-arrest, more specifically in the treatments that facilitated PV breakdown. Taken together, our experiments provide novel mechanistic interpretations on the role of parasitophorous vacuole in maintaining the spherical schizont morphology, the impact of PV breakdown on iRBC membrane fluctuations leading to eventual parasite escape and the evolution of membrane stiffness properties of host cells in which merozoites were irreversibly trapped, recourse to protease inhibitors. These findings provide a comprehensive, previously unavailable, body of information on the combined effects of biochemical and biophysical factors on parasite egress from iRBCs.
Insights
Protease inhibitors block Plasmodium falciparum rupture of infected red blood cells (iRBCs), revealing how vacuole breakdown impacts membrane mechanics and parasite escape. This study details biophysical factors influencing parasite egress.
Area of Science:
- Biophysics
- Cell Biology
- Parasitology
Background:
- Plasmodium falciparum infection alters red blood cell (RBC) morphology and mechanics.
- Parasite proteases (cysteine and serine families) are crucial for host cell rupture and parasite escape.
Purpose of the Study:
- To investigate the mechanical signatures of parasite escape by inhibiting RBC rupture.
- To elucidate the role of the parasitophorous vacuole (PV) in schizont morphology and parasite egress.
Main Methods:
- Treatment of late-stage infected RBCs (iRBCs) with protease inhibitors (E64d, EGTA-AM, chymostatin).
- Analysis of RBC cytoskeletal reconfiguration, schizont morphology, and 3D refractive index (3D-RI) distribution.
- Measurement of iRBC membrane flickering and optical trapping experiments to assess membrane deformability.
Main Results:
- E64d and EGTA-AM prevented RBC rupture, altered schizont morphology, and increased iRBC membrane flickering.
- PV breakdown, induced by E64d and EGTA-AM, led to non-Gaussian membrane fluctuations.
- Chymostatin treatment did not affect 3D-RI but increased fluctuations within the PV.
- Rupture arrest resulted in reduced iRBC membrane deformability, particularly after PV breakdown.
Conclusions:
- PV breakdown is critical for parasite escape, influencing iRBC membrane dynamics.
- Protease inhibition reveals the interplay between PV integrity, membrane mechanics, and parasite egress.
- Host cell membrane stiffness is altered in iRBCs where merozoites are trapped, offering insights into parasite escape mechanisms.
Related Concept Videos
Malaria
Symbiosis
Leishmaniasis

