Open access · CC-BY
via OpenAlex
Spatial transcriptomics reveals metabolic changes underly age-dependent declines in digit regeneration
Robert J. Tower, Emily Busse, Josue Jaramillo, Michelle Lacey, Kevin Hoffseth, Anyonya R. Guntur, Jennifer Simkin, Mimi C. Sammarco
eLife · 2022 · ▲ 41 citations
Abstract
De novo limb regeneration after amputation is restricted in mammals to the distal digit tip. Central to this regenerative process is the blastema, a heterogeneous population of lineage-restricted, dedifferentiated cells that ultimately orchestrates regeneration of the amputated bone and surrounding soft tissue. To investigate skeletal regeneration, we made use of spatial transcriptomics to characterize the transcriptional profile specifically within the blastema. Using this technique, we generated a gene signature with high specificity for the blastema in both our spatial data, as well as other previously published single-cell RNA-sequencing transcriptomic studies. To elucidate potential mechanisms distinguishing regenerative from non-regenerative healing, we applied spatial transcriptomics to an aging model. Consistent with other forms of repair, our digit amputation mouse model showed a significant impairment in regeneration in aged mice. Contrasting young and aged mice, spatial analysis revealed a metabolic shift in aged blastema associated with an increased bioenergetic requirement. This enhanced metabolic turnover was associated with increased hypoxia and angiogenic signaling, leading to excessive vascularization and altered regenerated bone architecture in aged mice. Administration of the metabolite oxaloacetate decreased the oxygen consumption rate of the aged blastema and increased WNT signaling, leading to enhanced in vivo bone regeneration. Thus, targeting cell metabolism may be a promising strategy to mitigate aging-induced declines in tissue regeneration.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.7554/elife.71542
- Canonical
- link ↗
- Fetched
- 2026-07-25 MST
Cite this
APA
Tower, R.J., Busse, E., Jaramillo, J., Lacey, M., Hoffseth, K., Guntur, A.R., Simkin, J., & Sammarco, M.C. (2022). Spatial transcriptomics reveals metabolic changes underly age-dependent declines in digit regeneration. <em>eLife</em>. https://doi.org/10.7554/elife.71542
Vancouver
Tower RJ, Busse E, Jaramillo J, Lacey M, Hoffseth K, Guntur AR, et al. Spatial transcriptomics reveals metabolic changes underly age-dependent declines in digit regeneration. eLife. 2022. doi:10.7554/elife.71542.
BibTeX
@article{robert2022Spatia,
title = {Spatial transcriptomics reveals metabolic changes underly age-dependent declines in digit regeneration},
author = {Robert J. Tower and Emily Busse and Josue Jaramillo and Michelle Lacey and Kevin Hoffseth and Anyonya R. Guntur and Jennifer Simkin and Mimi C. Sammarco},
journal = {eLife},
year = {2022},
doi = {10.7554/elife.71542},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Cell 2022
Open access · CC-BY
Molecular and spatial signatures of mouse brain aging at single-cell resolution
Pathology, research and practice 2026
Citation only
Inflammatory cell death networks in osteoporosis: Mechanisms of pyroptosis, ferroptosis, and their crosstalk with apoptosis, autophagy, and PANoptosis in bone immune remodeling.
Endocrinology 2007
Citation only
Life-Long Caloric Restriction Reveals Biphasic and Dimorphic Effects on Bone Metabolism in Rodents
Bone 2026
Citation only
Osteogenic promotion by naringin through the PI3K/AKT/mTOR pathway-mediated activation of autophagy and inhibition of apoptosis.
Trends in Biochemical Sciences 2024
Open access · OA
Cellular oxidants and the proteostasis network: balance between activation and destruction
Angiogenesis 2025
Open access · CC-BY