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Updated: Aug 12, 2026

Mouse Oocyte Microinjection, Maturation and Ploidy Assessment
Published on: July 23, 2011
The development of the macrogamete and oocyst wall in Eimeria maxima: immuno-light and electron microscopy
D J P Ferguson1, S I Belli, N C Smith
1Nuffield Department of Pathology, University of Oxford, John Radcliffe Hospital, Oxford OX3 9DU, UK. david.ferguson@ndcls.ox.ac.uk
Abstract:
We have identified, and followed the development of three macrogamete organelles involved in the formation of the oocyst wall of Eimeria maxima. The first were small lucent vacuoles that cross-reacted with antibodies to the apple domains of the Toxoplasma gondii microneme protein 4. They appeared early in development and were secreted during macrogamete maturation to form an outer veil and were termed veil forming bodies. The second were the wall forming bodies type 1, large, electron dense vacuoles that stained positively only with antibodies raised to an enriched preparation of the native forms of 56 (gam56), 82 (gam82) and 230 kDa (gam230) gametocyte antigens (termed anti-APGA). The third were the wall forming bodies type 2, which appeared before the wall forming bodies type 1 but remain enclosed within the rough endoplasmic reticulum and stained positively with antibodies raised to recombinant versions of gam56 (anti-gam56), gam82 (anti-gam82) and gam230 (anti-gam230) plus anti-APGA. At the initiation of oocyst wall formation, the anti-T. gondii microneme protein 4 positive outer veil detached from the surface. The outer layer of the oocyst wall was formed by the release of the contents of wall forming bodies type 1 at the surface to form an electron dense, anti-APGA positive layer. The wall forming bodies type 2 appeared, subsequently, to give rise to the electron lucent inner layer. Thus, oocyst wall formation in E. maxima represents a sequential release of the contents of the veil forming bodies, wall forming bodies types 1 and 2 and this may be controlled at the level of the rough endoplasmic reticulum/Golgi body.
Insights
Three macrogamete organelles, veil forming bodies, wall forming bodies type 1, and wall forming bodies type 2, sequentially form the Eimeria maxima oocyst wall. This process may be regulated by the rough endoplasmic reticulum/Golgi body.
Area of Science:
- Cell Biology
- Parasitology
- Molecular Biology
Background:
- Eimeria maxima oocyst wall formation is crucial for parasite survival and transmission.
- The precise origin and sequential contribution of macrogamete organelles to oocyst wall development remain incompletely understood.
Purpose of the Study:
- To identify and characterize macrogamete organelles involved in Eimeria maxima oocyst wall formation.
- To elucidate the sequential contribution of these organelles to the distinct layers of the oocyst wall.
Main Methods:
- Immunoelectron microscopy using antibodies against Toxoplasma gondii microneme protein 4 and Eimeria maxima gametocyte antigens (gam56, gam82, gam230).
- Tracking the development and secretion of distinct vacuolar organelles within macrogametes.
- Analyzing the temporal and spatial release of organelle contents during oocyst wall assembly.
Main Results:
- Three types of organelles were identified: veil forming bodies (VFBs), wall forming bodies type 1 (WFB-1), and wall forming bodies type 2 (WFB-2).
- VFBs secreted an outer veil, WFB-1 formed the electron-dense outer oocyst wall layer, and WFB-2 formed the electron-lucent inner layer.
- Oocyst wall formation involved a sequential release of contents from VFBs, WFB-1, and WFB-2, potentially regulated by the ER/Golgi.
Conclusions:
- Oocyst wall formation in Eimeria maxima is a complex, multi-step process involving distinct organelles.
- The sequential secretion of organelle contents dictates the layered structure of the oocyst wall.
- The endoplasmic reticulum/Golgi body likely plays a regulatory role in this organelle-mediated process.
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