Universidad San Sebastián  
 

Repositorio Institucional Universidad San Sebastián

Búsqueda avanzada

Descubre información por...

 

Título

Ver títulos
 

Autor

Ver autores
 

Tipo

Ver tipos
 

Materia

Ver materias

Buscar documentos por...




Mostrar el registro sencillo del ítem

dc.contributor.author Gutiérrez, Ramón
dc.contributor.author Gutiérrez-Castro, Francisco
dc.contributor.author Muñoz-Godoy, Natalia
dc.contributor.author Rivadeneira, Ider
dc.contributor.author Sobarzo Escares, Adolay Exequiel
dc.contributor.author Alarcón, Luis
dc.contributor.author Dorado, Wilson
dc.contributor.author Lagos, Andy
dc.contributor.author Montenegro, Diego
dc.contributor.author Muñoz, Ignacio
dc.contributor.author Aguilera, Rodrigo
dc.contributor.author Iturra, Jordan
dc.contributor.author Krakowiak, Francisco
dc.contributor.author Peña-Vargas, Cristián
dc.contributor.author Toledo, Andres
dc.date.accessioned 2026-02-08T03:30:31Z
dc.date.available 2026-02-08T03:30:31Z
dc.date.issued 2025-06
dc.identifier.issn 2227-9059
dc.identifier.other Mendeley: 51bd5ce4-4dc6-3f4b-9725-6f88a7c08eb0
dc.identifier.uri https://repositorio.uss.cl/handle/uss/20530
dc.description Publisher Copyright: © 2025 by the authors.
dc.description.abstract Despite the progress in cancer immunotherapy, therapeutic responses in solid tumors remain suboptimal due to the immunosuppressive nature of the tumor microenvironment (TME), limited immune cell infiltration, and inefficient delivery of immune-activating agents. Dendritic cell-based therapies possess strong immunological potential but face challenges in viability, standardization, and scalability. Likewise, exosomes and CAR-T cells are hindered by instability, production complexity, and limited efficacy in immune-excluded tumor settings. Objective: This study evaluates dendritic cell-derived vesicles (DC-Vesicles), embedded in a phospholipid-rich structural scaffold, as a multi-functional and scalable platform for immune modulation and therapeutic delivery. We aimed to assess their structural stability, immune marker preservation under clinical processing conditions, and potential to reprogram the TME. Methods and Results: DC-Vesicles were generated and analyzed using bottom-up proteomics via nanoLC–MS/MS on a timsTOF Pro 2 system under three conditions: fresh, concentrated, and cryopreserved. A consistent proteomic profile of over 400 proteins was identified, with cryopreserved samples retaining >90% of immune-relevant markers. Differential expression analysis confirmed stability of key immunological proteins such as HLA-A, QSOX1, ICAM1, NAMPT, TIGAR, and Galectin-9. No significant degradation was observed post-cryopreservation. Visualization through heatmaps, PCA, and volcano plots supported inter-condition consistency. In silico modeling suggested preserved capacity for M1 macrophage polarization and CD8+ T cell activation. Conclusions: DC-Vesicles demonstrate structural resilience and functional retention across storage conditions. Their cold-chain-independent compatibility, immune-targeting profile, and potential regulatory classification as Non-New Chemical Entities (NCEs) support their advancement as candidates for precision immunotherapy in resistant solid tumors. es
dc.language.iso eng
dc.relation.ispartof vol. 13 Issue: no. 6 Pages: 1-21
dc.source Biomedicines
dc.title Phospholipid-Rich DC-Vesicles with Preserved Immune Fingerprints: A Stable and Scalable Platform for Precision Immunotherapy en
dc.type Artículo
dc.identifier.doi 10.3390/biomedicines13061299
dc.publisher.department Facultad de Ciencias


Ficheros en el ítem

Ficheros Tamaño Formato Ver

No hay ficheros asociados a este ítem.

Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro sencillo del ítem