Generation of new cytotoxic human ribonuclease variants directed to the nucleus
Anna Vert1, Jessica Castro, Santiago Ruiz-Martínez
1Laboratori d'Enginyeria de Proteïnes, Departament de Biologia, Facultat de Ciències, Universitat de Girona, Campus de Montilivi, M. Aurélia Campmany 69, Girona, Spain.
Abstract:
Ribonucleases are promising agents for use in anticancer therapy. Engineering a nuclear localization signal into the sequence of the human pancreatic ribonuclease has been revealed as a new strategy to endow this enzyme with cytotoxic activity against tumor cells. We previously described a cytotoxic human pancreatic ribonuclease variant, named PE5, which is able to cleave nuclear RNA, inducing the apoptosis of cancer cells and reducing the amount of P-glycoprotein in different multidrug-resistant cell lines. These results open the opportunity to use this ribonuclease in combination with other chemotherapeutics. In this work, we have investigated how to improve the properties of PE5 as an antitumor drug candidate. When attempting to develop a recombinant protein as a drug, two of the main desirable attributes are minimum immunogenicity and maximum potency. The improvements of PE5 have been designed in both senses. First, in order to reduce the potential immunogenicity of the protein, we have studied which residues mutated on PE5 can be reverted to those of the wild-type human pancreatic ribonuclease sequence without affecting its cytotoxicity. Second, we have investigated the effect of introducing an additional nuclear localization signal at different sites of PE5 in an effort to obtain a more cytotoxic enzyme. We show that the nuclear localization signal location is critical for the cytotoxicity. One of these variants, named NLSPE5, presents about a 10-fold increase in cytotoxicity respective to PE5. This variant induces apoptosis and kills the cells using the same mechanism as PE5.
Insights
Engineered ribonuclease variants show enhanced anticancer properties. A novel variant, NLSPE5, demonstrates a tenfold increase in cytotoxicity against tumor cells by targeting nuclear RNA and inducing apoptosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Ribonucleases are explored as anticancer agents.
- Human pancreatic ribonuclease variants, like PE5, exhibit cytotoxicity by cleaving nuclear RNA and inducing apoptosis in cancer cells.
- PE5 reduces P-glycoprotein in multidrug-resistant cell lines, suggesting combination therapy potential.
Purpose of the Study:
- To enhance the antitumor properties of the PE5 ribonuclease variant.
- To minimize potential immunogenicity and maximize cytotoxic potency.
- To investigate the impact of nuclear localization signal (NLS) placement on cytotoxicity.
Main Methods:
- Engineered variants of PE5 by reverting specific mutations to wild-type sequences to assess immunogenicity.
- Introduced additional nuclear localization signals (NLS) at various positions within PE5.
- Assessed cytotoxicity and apoptosis induction mechanisms of the engineered variants.
Main Results:
- Identified PE5 variants with reduced immunogenicity without compromising cytotoxicity.
- Demonstrated that the location of an additional NLS is critical for enzyme potency.
- A new variant, NLSPE5, exhibited approximately a tenfold increase in cytotoxicity compared to PE5.
- NLSPE5 induces apoptosis and cell death via the same mechanism as PE5.
Conclusions:
- Optimized PE5 variants offer improved potential as anticancer drug candidates.
- The NLSPE5 variant represents a significant advancement in ribonuclease-based cancer therapy due to its heightened potency.
- Further development of engineered ribonucleases holds promise for novel cancer treatment strategies.
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