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  4. Oxygenation By Intravascular Photosynthesis Reduces Kidney Damage During Ex Vivo Preservation
 
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Oxygenation By Intravascular Photosynthesis Reduces Kidney Damage During Ex Vivo Preservation

Journal
ACS Applied Bio Materials
Date Issued
2024-11-08
Author(s)
Valentina Veloso-Giménez
Camila Cárdenas-Calderón
Valentina Castillo
Felipe Carvajal
Daniela Gallardo-Agüero
Sergio González-Itier
Rocío Corrales-Orovio
Daniela Becerra
Miguel Miranda
Rolando Rebolledo  
San Martín, Sebastián  
Facultad de Medicina  
Mauricio P. Boric
José Tomás Egaña
DOI
10.1021/acsabm.4c01327
WoS ID
WOS:001351690200001
Abstract
Several clinical issues are associated with reduced oxygen delivery to tissues due to impaired vascular perfusion; moreover, organs procured for transplantation are subjected to severe hypoxia during preservation. Consequently, alternative tissue oxygenation is an active field in biomedical research where several innovative approaches have been recently proposed. Among these, intravascular photosynthesis represents a promising approach as it relies on the intrinsic capacity of certain microorganisms to produce oxygen upon illumination. In this context, this work aims at the development of photosynthetic perfusable solutions that could be applied to preserve organs for transplantation purposes. Our findings demonstrate that a biocompatible physiological solution containing the photosynthetic microalgae <i>Chlamydomonas reinhardtii</i> can fulfill the metabolic oxygen demand of rat kidney slices in vitro. Furthermore, intravascular administration of this solution does not induce tissue damage in the rat kidneys. Moreover, kidney slices obtained from these algae-perfused organs exhibited significantly improved preservation after 24 h of incubation in hypoxia while exposed to light, resulting in reduced tissue damage and enhanced metabolic status. Overall, the results presented here contribute to the development of alternative strategies for tissue oxygenation, supporting the use of perfusable photosynthetic solutions for organ preservation in transplantation.
Subjects

Biochemistry

Biomaterials

Biomedical Engineerin...

Chemistry

OCDE Subjects

Natural Sciences::Bio...

Quartile (Date Issued)
SQ
License
acceso restringido

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