Selective CXCR4+ Cancer Cell Targeting and Potent Antineoplastic Effect by a Nanostructured Version of Recombinant Ricin.
Raquel DíazVictor PallarèsOlivia Cano-GarridoNaroa SernaLaura Sánchez-GarcíaAïda FalgàsMireia PesarrodonaUgutz UnzuetaAlejandro Sánchez-ChardiJulieta M SánchezIsolda CasanovaEsther VázquezRamón ManguesAntonio VillaverdePublished in: Small (Weinheim an der Bergstrasse, Germany) (2018)
Under the unmet need of efficient tumor-targeting drugs for oncology, a recombinant version of the plant toxin ricin (the modular protein T22-mRTA-H6) is engineered to self-assemble as protein-only, CXCR4-targeted nanoparticles. The soluble version of the construct self-organizes as regular 11 nm planar entities that are highly cytotoxic in cultured CXCR4+ cancer cells upon short time exposure, with a determined IC50 in the nanomolar order of magnitude. The chemical inhibition of CXCR4 binding sites in exposed cells results in a dramatic reduction of the cytotoxic potency, proving the receptor-dependent mechanism of cytotoxicity. The insoluble version of T22-mRTA-H6 is, contrarily, moderately active, indicating that free, nanostructured protein is the optimal drug form. In animal models of acute myeloid leukemia, T22-mRTA-H6 nanoparticles show an impressive and highly selective therapeutic effect, dramatically reducing the leukemia cells affectation of clinically relevant organs. Functionalized T22-mRTA-H6 nanoparticles are then promising prototypes of chemically homogeneous, highly potent antitumor nanostructured toxins for precise oncotherapies based on self-mediated intracellular drug delivery.
Keyphrases
- acute myeloid leukemia
- psychometric properties
- induced apoptosis
- cancer therapy
- drug delivery
- cell cycle arrest
- protein protein
- cell migration
- binding protein
- escherichia coli
- amino acid
- endoplasmic reticulum stress
- palliative care
- emergency department
- signaling pathway
- bone marrow
- anti inflammatory
- allogeneic hematopoietic stem cell transplantation
- cell free
- drug induced
- molecularly imprinted
- solid phase extraction