Literature DB >> 33583172

Impact of Chemical Composition on the Nanostructure and Biological Activity of α-Galactosidase-Loaded Nanovesicles for Fabry Disease Treatment.

Judit Tomsen-Melero1,2,3, Solène Passemard1,3, Natalia García-Aranda3,4, Zamira Vanessa Díaz-Riascos3,4, Ramon González-Rioja1,3, Jannik Nedergaard Pedersen5,6, Jeppe Lyngsø5,6, Josep Merlo-Mas2, Edgar Cristóbal-Lecina3,7, José Luis Corchero3,8, Daniel Pulido3,7, Patricia Cámara-Sánchez3,4, Irina Portnaya9, Inbal Ionita9, Simó Schwartz3,10, Jaume Veciana1,3, Santi Sala2, Miriam Royo3,7, Alba Córdoba2, Dganit Danino9,11, Jan Skov Pedersen5,6, Elisabet González-Mira1,3, Ibane Abasolo3,4, Nora Ventosa1,3.   

Abstract

Fabry disease is a rare lysosomal storage disorder characterized by a deficiency of α-galactosidase A (GLA), a lysosomal hydrolase. The enzyme replacement therapy administering naked GLA shows several drawbacks including poor biodistribution, limited efficacy, and relatively high immunogenicity in Fabry patients. An attractive strategy to overcome these problems is the use of nanocarriers for encapsulating the enzyme. Nanoliposomes functionalized with RGD peptide have already emerged as a good platform to protect and deliver GLA to endothelial cells. However, low colloidal stability and limited enzyme entrapment efficiency could hinder the further pharmaceutical development and the clinical translation of these nanoformulations. Herein, the incorporation of the cationic miristalkonium chloride (MKC) surfactant to RGD nanovesicles is explored, comparing two different nanosystems-quatsomes and hybrid liposomes. In both systems, the positive surface charge introduced by MKC promotes electrostatic interactions between the enzyme and the nanovesicles, improving the loading capacity and colloidal stability. The presence of high MKC content in quatsomes practically abolishes GLA enzymatic activity, while low concentrations of the surfactant in hybrid liposomes stabilize the enzyme without compromising its activity. Moreover, hybrid liposomes show improved efficacy in cell cultures and a good in vitro/in vivo safety profile, ensuring their future preclinical and clinical development.

Entities:  

Keywords:  Fabry disease; RGD targeting; miristalkonium chloride (MKC); nanovesicles; α-galactosidase A (GLA)

Year:  2021        PMID: 33583172     DOI: 10.1021/acsami.0c16871

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  4 in total

1.  Rational Design 2-Hydroxypropylphosphonium Salts as Cancer Cell Mitochondria-Targeted Vectors: Synthesis, Structure, and Biological Properties.

Authors:  Vladimir F Mironov; Andrey V Nemtarev; Olga V Tsepaeva; Mudaris N Dimukhametov; Igor A Litvinov; Alexandra D Voloshina; Tatiana N Pashirova; Eugenii A Titov; Anna P Lyubina; Syumbelya K Amerhanova; Aidar T Gubaidullin; Daut R Islamov
Journal:  Molecules       Date:  2021-10-20       Impact factor: 4.411

Review 2.  Liposomal-Based Formulations: A Path from Basic Research to Temozolomide Delivery Inside Glioblastoma Tissue.

Authors:  Roxana-Maria Amarandi; Alina Ibanescu; Eugen Carasevici; Luminita Marin; Brindusa Dragoi
Journal:  Pharmaceutics       Date:  2022-01-27       Impact factor: 6.321

3.  Application of Quality by Design to the robust preparation of a liposomal GLA formulation by DELOS-susp method.

Authors:  Josep Merlo-Mas; Judit Tomsen-Melero; José-Luis Corchero; Elisabet González-Mira; Albert Font; Jannik N Pedersen; Natalia García-Aranda; Edgar Cristóbal-Lecina; Marta Alcaina-Hernando; Rosa Mendoza; Elena Garcia-Fruitós; Teresa Lizarraga; Susanne Resch; Christa Schimpel; Andreas Falk; Daniel Pulido; Miriam Royo; Simó Schwartz; Ibane Abasolo; Jan Skov Pedersen; Dganit Danino; Andreu Soldevila; Jaume Veciana; Santi Sala; Nora Ventosa; Alba Córdoba
Journal:  J Supercrit Fluids       Date:  2021-07       Impact factor: 4.577

4.  DELOS Nanovesicles-Based Hydrogels: An Advanced Formulation for Topical Use.

Authors:  Lídia Ballell-Hosa; Elisabet González-Mira; Hector Santana; Judit Morla-Folch; Marc Moreno-Masip; Yaima Martínez-Prieto; Albert Revuelta; Primiano Pio Di Mauro; Jaume Veciana; Santi Sala; Lidia Ferrer-Tasies; Nora Ventosa
Journal:  Pharmaceutics       Date:  2022-01-15       Impact factor: 6.321

  4 in total

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