Horizontal mitochondrial transfer and mitochondrial transplantation in skin: protection against UVR-induced ROS damage and enhancement of cell proliferation and wound healing

Skin homeostasis, protection against ultraviolet radiation (UVR), and wound repair depend on coordinated interactions among melanocytes, keratinocytes, and fibroblasts. Horizontal mitochondrial transfer (HMT) is a naturally occurring form of intercellular communication in which mitochondria move between cells and may contribute to stress adaptation, cellular recovery, and tissue resilience. Artificial mitochondrial transfer (AMT), performed in vitro or ex vivo, and mitochondrial transplantation (MT), involving the direct administration of isolated mitochondria in vivo, seek to therapeutically harness these biological mechanisms. However, HMT among resident skin cells and its relationship to mitochondria-based regenerative strategies remain poorly understood. HMT among human melanocytes, keratinocytes, and fibroblasts was evaluated under basal conditions and following UVR exposure. Direct 2D coculture and transwell systems were used to assess predominantly contact-dependent and contact-independent HMT, respectively, using fluorescence microscopy. AMT was performed by delivering isolated mitochondria from human fibroblast, human Wharton’s jellymesenchymal stem/stromal cells (WJ-MSCs), or mouse bone marrow MSCs (BM-MSCs) to recipient fibroblasts, followed by assessment of mitochondrial uptake, reactive oxygen species (ROS) production, and cell proliferation. The regenerative effects of locally administered MSC-derived mitochondria were subsequently evaluated in murine and porcine primary-intention wound models: mouse BM-MSC-derived mitochondria were used in murine wounds, whereas human WJ-MSC-derived mitochondria were used in porcine wounds. Outcomes were assessed using histological analysis, the wound healing index (WHI), and, in pigs, spatial quantification of Ki67-positive cells. HMT from melanocytes to keratinocytes increased significantly after UVR exposure and occurred predominantly under direct coculture conditions, reaching approximately 39%, compared with less than 9% in transwell assays. HMT in the other donor–recipientcombinationsremainedbelow4%.AMTusing human WJ-MSC-derived mitochondria reduced UVR-induced ROS production, while mitochondria derived from both human WJ-MSCs and mouse BM-MSCs significantly increased fibroblast proliferation, although the magnitude of these effects depended on the mitochondrial dose. In murine wounds, locally administered BM-MSC-derived mitochondria enhanced early histological repair and produced effects comparable to those observed after intact BM-MSC administration. In porcine wounds, WJ-MSC-derived mitochondria increased the WHI, improved collagen-containing tissue organization, and enhanced Ki67 positivity within epidermal and dermal regions directly involved in wound repair. These findings identify HMT as a cell-type-specific response in the skin, with preferential HMT from melanocytes to keratinocytes that is enhanced by UVR exposure. They also demonstrate that MSC-derived mitochondria can reduce oxidative stress, stimulate fibroblast proliferation, and promote early cutaneous repair after local administration. Together, the results establish a translational link between endogenous mitochondrial exchange and the therapeutic use of AMT and MT, supporting further development of mitochondria-based, cell-free strategies for skin injury and impaired wound healing. Horizontal mitochondrial transfer (HMT) occurs preferentially from melanocytes to keratinocytes and is mediated mainly by direct cell–cell contact. Ultraviolet radiation (UVR) significantly enhances melanocyte-to-keratinocyte HMT. Fibroblasts exhibit limited spontaneous mitochondrial uptake, which may reduce their capacity to adapt to UVR-induced stress. Artificial mitochondrial transfer (AMT) with MSC-derived mitochondria reduces UVR-induced ROS production and promotes fibroblast proliferation. Local mitochondrial transplantation enhances early cutaneous repair in murine and porcine wound models. AMT and mitochondrial transplantation support skin repair by improving tissue repair.

Authors

Institutions

Publication Details

Journal
Journal of Translational Medicine
Published
2026-09-19
DOI
https://doi.org/10.1186/s12967-026-08801-y
Primary Topic
Wound Healing and Treatments
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Horizontal mitochondrial transfer and mitochondrial transplantation in skin: protection against UVR-induced ROS damage and enhancement of cell proliferation and wound healing

Lucas Ferreira dos Santos, Sebastian Peñaherrera, Andrés Caicedo, Daniela Suquillo et al.
Journal of Translational Medicine
Wound Healing and Treatments
article

Horizontal mitochondrial transfer and mitochondrial transplantation in skin: protection against UVR-induced ROS damage and enhancement of cell proliferation and wound healing

Lucas Ferreira dos Santos, Sebastian Peñaherrera, Andrés Caicedo, Daniela Suquillo, Maroun Khoury, Gustavo Donoso, Iván M. Moya, Ramiro F. Diaz, Santiago D. Padilla-Sánchez, Gilberto Segnini, Verónica A. Burzio, Diego Barba, Gabriela Zavala, Andrés Suárez‐Usbeck, P. Pontón, Álvaro A. Pérez-Meza, Alissen Haro-Vinueza, Patricia Luz‐Crawford, Tatiana Maron‐Gutierrez, María Ines Mitrani, Paola Robayo, Abigail Benavides-Almeida, Pamela Arizo, Fernando Torres, A. Villagomez, D. Tenesaca, Estefanía Nova-Lamperti, Diego Villavicencio, Cynthia Viera-Catota, Sebastián Chile-Miranda, Bárbara Antilef, Luciano Ferrada, Matheo Leon, Andrea Del Campo, Pedro M. Aponte, Francisco Cabrera, María Belén Arteaga, Kevin Zambrano, Diego F. Cisneros-Heredia, Solange Cisterna, Martin Santacruz, Tatiana Borja
article en

Abstract

Skin homeostasis, protection against ultraviolet radiation (UVR), and wound repair depend on coordinated interactions among melanocytes, keratinocytes, and fibroblasts. Horizontal mitochondrial transfer (HMT) is a naturally occurring form of intercellular communication in which mitochondria move between cells and may contribute to stress adaptation, cellular recovery, and tissue resilience. Artificial mitochondrial transfer (AMT), performed in vitro or ex vivo, and mitochondrial transplantation (MT), involving the direct administration of isolated mitochondria in vivo, seek to therapeutically harness these biological mechanisms. However, HMT among resident skin cells and its relationship to mitochondria-based regenerative strategies remain poorly understood. HMT among human melanocytes, keratinocytes, and fibroblasts was evaluated under basal conditions and following UVR exposure. Direct 2D coculture and transwell systems were used to assess predominantly contact-dependent and contact-independent HMT, respectively, using fluorescence microscopy. AMT was performed by delivering isolated mitochondria from human fibroblast, human Wharton’s jellymesenchymal stem/stromal cells (WJ-MSCs), or mouse bone marrow MSCs (BM-MSCs) to recipient fibroblasts, followed by assessment of mitochondrial uptake, reactive oxygen species (ROS) production, and cell proliferation. The regenerative effects of locally administered MSC-derived mitochondria were subsequently evaluated in murine and porcine primary-intention wound models: mouse BM-MSC-derived mitochondria were used in murine wounds, whereas human WJ-MSC-derived mitochondria were used in porcine wounds. Outcomes were assessed using histological analysis, the wound healing index (WHI), and, in pigs, spatial quantification of Ki67-positive cells. HMT from melanocytes to keratinocytes increased significantly after UVR exposure and occurred predominantly under direct coculture conditions, reaching approximately 39%, compared with less than 9% in transwell assays. HMT in the other donor–recipientcombinationsremainedbelow4%.AMTusing human WJ-MSC-derived mitochondria reduced UVR-induced ROS production, while mitochondria derived from both human WJ-MSCs and mouse BM-MSCs significantly increased fibroblast proliferation, although the magnitude of these effects depended on the mitochondrial dose. In murine wounds, locally administered BM-MSC-derived mitochondria enhanced early histological repair and produced effects comparable to those observed after intact BM-MSC administration. In porcine wounds, WJ-MSC-derived mitochondria increased the WHI, improved collagen-containing tissue organization, and enhanced Ki67 positivity within epidermal and dermal regions directly involved in wound repair. These findings identify HMT as a cell-type-specific response in the skin, with preferential HMT from melanocytes to keratinocytes that is enhanced by UVR exposure. They also demonstrate that MSC-derived mitochondria can reduce oxidative stress, stimulate fibroblast proliferation, and promote early cutaneous repair after local administration. Together, the results establish a translational link between endogenous mitochondrial exchange and the therapeutic use of AMT and MT, supporting further development of mitochondria-based, cell-free strategies for skin injury and impaired wound healing. Horizontal mitochondrial transfer (HMT) occurs preferentially from melanocytes to keratinocytes and is mediated mainly by direct cell–cell contact. Ultraviolet radiation (UVR) significantly enhances melanocyte-to-keratinocyte HMT. Fibroblasts exhibit limited spontaneous mitochondrial uptake, which may reduce their capacity to adapt to UVR-induced stress. Artificial mitochondrial transfer (AMT) with MSC-derived mitochondria reduces UVR-induced ROS production and promotes fibroblast proliferation. Local mitochondrial transplantation enhances early cutaneous repair in murine and porcine wound models. AMT and mitochondrial transplantation support skin repair by improving tissue repair.

Journal of Translational Medicine
Universidad Mayor (CL), University of Veterinary Medicine Vienna (AT), Pontificia Universidad Católica de Chile (CL), University of Concepción (CL), Universidad de Los Andes, Chile (CL), Maastricht University (NL), Larkin University (US), Universidad de Las Américas (EC), Universidad Andrés Bello (CL), Lehigh Valley Hospital (US), Hospital Vozandes (EC), Fundação Oswaldo Cruz (BR), Universidad San Francisco de Quito (EC)
Openalex Percentile: Top 14%
Wound Healing and Treatments
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.