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Updated: Jan 30, 2026

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Published on: June 22, 2017
Calcium negatively regulates secretion from dense granules in Toxoplasma gondii
Nicholas J Katris1,2, Huiling Ke1, Geoffrey I McFadden2
1Department of Biochemistry, University of Cambridge, Cambridge, UK.
Abstract:
Apicomplexan parasites including Toxoplasma gondii and Plasmodium spp. manufacture a complex arsenal of secreted proteins used to interact with and manipulate their host environment. These proteins are organised into three principle exocytotic compartment types according to their functions: micronemes for extracellular attachment and motility, rhoptries for host cell penetration, and dense granules for subsequent manipulation of the host intracellular environment. The order and timing of these events during the parasite's invasion cycle dictates when exocytosis from each compartment occurs. Tight control of compartment secretion is, therefore, an integral part of apicomplexan biology. Control of microneme exocytosis is best understood, where cytosolic intermediate molecular messengers cGMP and Ca2+ act as positive signals. The mechanisms for controlling secretion from rhoptries and dense granules, however, are virtually unknown. Here, we present evidence that dense granule exocytosis is negatively regulated by cytosolic Ca2+ , and we show that this Ca2+ -mediated response is contingent on the function of calcium-dependent protein kinases TgCDPK1 and TgCDPK3. Reciprocal control of micronemes and dense granules provides an elegant solution to the mutually exclusive functions of these exocytotic compartments in parasite invasion cycles and further demonstrates the central role that Ca2+ signalling plays in the invasion biology of apicomplexan parasites.
Insights
Apicomplexan parasites use calcium signaling to control invasion. This study reveals that calcium (Ca2+) negatively regulates dense granule secretion, while also impacting microneme release in parasites like Toxoplasma gondii.
Area of Science:
- Parasitology
- Cell Biology
- Molecular Biology
Background:
- Apicomplexan parasites (e.g., Toxoplasma gondii, Plasmodium spp.) secrete proteins to manipulate host environments.
- These proteins are stored in specialized compartments: micronemes, rhoptries, and dense granules.
- Secretion timing is crucial for parasite invasion, but dense granule and rhoptry regulation remains unclear.
Purpose of the Study:
- To investigate the regulatory mechanisms of dense granule exocytosis in apicomplexan parasites.
- To determine the role of calcium ions (Ca2+) and calcium-dependent protein kinases in dense granule secretion.
Main Methods:
- Investigated the role of cytosolic Ca2+ in dense granule exocytosis.
- Examined the function of calcium-dependent protein kinases TgCDPK1 and TgCDPK3 in this process.
Main Results:
- Dense granule exocytosis is negatively regulated by cytosolic Ca2+.
- This Ca2+-mediated regulation is dependent on the activity of TgCDPK1 and TgCDPK3.
- Reciprocal control of microneme and dense granule secretion by Ca2+ signaling.
Conclusions:
- Cytosolic Ca2+ plays a dual role in regulating apicomplexan invasion, negatively controlling dense granule exocytosis.
- Calcium-dependent protein kinases TgCDPK1 and TgCDPK3 are key mediators of this dense granule regulation.
- This reciprocal control ensures coordinated invasion events and highlights the central role of Ca2+ signaling in apicomplexan biology.
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