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Sexual Transmission of American Trypanosomes from Males and Females to Naive Mates
Published on: January 27, 2019
Structural bases that underline Trypanosoma cruzi calreticulin proinfective, antiangiogenic and antitumor properties
Jaime Peña Álvarez1, Jaime Teneb2, Ismael Maldonado2
1University of Chile, Faculty of Physical and Mathematical Sciences, CeBiB, Chile; University of Chile, Faculty of Medicine, ICBM, Immunology Disciplinary Program, Chile.
Abstract:
Microbes have developed mechanisms to resist the host immune defenses and some elicit antitumor immune responses. About 6 million people are infected with Trypanosoma cruzi, the protozoan agent of Chagas' disease, the sixth neglected tropical disease worldwide. Eighty years ago, G. Roskin and N. Klyuyeva proposed that T. cruzi infection mediates an anti-cancer activity. This observation has been reproduced by several other laboratories, but no molecular basis has been proposed. We have shown that the highly pleiotropic chaperone calreticulin (TcCalr, formerly known as TcCRT), translocates from the parasite ER to the exterior, where it mediates infection. Similar to its human counterpart HuCALR (formerly known as HuCRT), TcCalr inhibits C1 in its capacity to initiate the classical pathway of complement activation. We have also proposed that TcCalr inhibits angiogenesis and it is a likely mediator of antitumor effects. We have generated several in silico structural TcCalr models to delimit a peptide (VC-TcCalr) at the TcCalr N-domain. Chemically synthesized VC-TcCalr did bind to C1q and was anti-angiogenic in Gallus gallus chorioallantoic membrane assays. These properties were associated with structural features, as determined in silico. VC-TcCalr, a strong dipole, interacts with charged proteins such as collagen-like tails and scavenger receptors. Comparatively, HuCALR has less polarity and spatial stability, probably due to at least substitutions of Gln for Gly, Arg for Lys, Arg for Asp and Ser for Arg that hinder protein-protein interactions. These differences can explain, at least in part, how TcCalr inhibits the complement activation pathway and has higher efficiency as an antiangiogenic and antitumor agent than HuCALR.
Insights
Trypanosoma cruzi calreticulin (TcCalr) inhibits complement activation and angiogenesis. A derived peptide (VC-TcCalr) shows potent anti-tumor effects, exceeding its human counterpart (HuCALR).
Area of Science:
- Immunology
- Parasitology
- Molecular Biology
Background:
- Microbes can evade immune responses and some exhibit anti-cancer properties.
- Trypanosoma cruzi, the agent of Chagas' disease, has a historical association with anti-cancer activity.
- The molecular mechanisms behind T. cruzi's potential anti-tumor effects remain largely unexplored.
Purpose of the Study:
- To investigate the molecular basis of T. cruzi's proposed anti-cancer activity.
- To characterize the role of parasite calreticulin (TcCalr) in immune evasion and anti-tumor responses.
- To identify and evaluate a specific peptide derived from TcCalr for its therapeutic potential.
Main Methods:
- In silico modeling of TcCalr structure to identify functional domains.
- Chemical synthesis of a peptide (VC-TcCalr) from the TcCalr N-domain.
- In vitro assays to assess C1q binding and anti-angiogenic activity using Gallus gallus chorioallantoic membrane assays.
Main Results:
- TcCalr translocates to the parasite exterior and inhibits complement activation via C1.
- The synthesized peptide VC-TcCalr demonstrated C1q binding and significant anti-angiogenic properties.
- Structural analysis revealed VC-TcCalr's strong dipole and interaction with charged proteins, contrasting with human calreticulin (HuCALR).
Conclusions:
- TcCalr plays a role in T. cruzi's interaction with the host immune system, specifically by inhibiting complement.
- VC-TcCalr exhibits potent anti-angiogenic and potential anti-tumor activities, attributed to its unique structural and chemical properties.
- TcCalr and its derived peptide show greater efficacy than HuCALR, suggesting therapeutic potential for microbial-derived molecules in cancer treatment.
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