Open access · OA
via Europe PMC
A microbiota-derived metabolite, 3-phenyllactic acid, prolongs healthspan by enhancing mitochondrial function and stress resilience via SKN-1/ATFS-1 in C. elegans.
Kim J, Jo Y, Lim G, Ji Y, Roh JH, Kim WG, Yi HS, Choi DW, Cho D, Ryu D.
Nature communications · 2024 · ▲ 12 citations
Abstract
The mechanisms underlying the impact of probiotic supplementation on health remain largely elusive. While previous studies primarily focus on the discovery of novel bioactive bacteria and alterations in the microbiome environment to explain potential probiotic effects, our research delves into the role of living Lactiplantibacillus (formerly known as Lactobacillus) and their conditioned media, highlighting that only the former, not dead bacteria, enhance the healthspan(definition) of Caenorhabditis elegans (C. elegans). To elucidate the underlying mechanisms, we conduct transcriptomic profiling through RNA-seq analysis in C. elegans exposed to GTB1, a strain of Lactiplantibacillus plantarum or 3-phenyllactic acid (PLA), mimicking the presence of key candidate metabolites of GTB1 and evaluating healthspan. Our findings reveal that PLA treatment significantly extends the healthspan of C. elegans by promoting energy metabolism and stress resilience in a SKN-1/ATFS-1-dependent manner. Moreover, PLA-mediated longevity is associated with a novel age-related parameter, the Healthy Aging Index (HAI), introduced in this study, which comprises healthspan-related factors such as motility, oxygen consumption rate (OCR), and ATP levels. Extending the relevance of our work to humans, we observe an inverse correlation between blood PLA levels and physical performance in patients with sarcopenia, when compared to age-matched non-sarcopenic controls. Our investigation thus sheds light on the pivotal role of the metabolite PLA in probiotics-mediated enhancement of organismal healthspan, and also hints at its potential involvement in age-associated sarcopenia. These findings warrant further investigation to delineate PLA's role in mitigating age-related declines in healthspan and resilience to external stressors.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- Europe PMC
- DOI
- 10.1038/s41467-024-55015-1
- Canonical
- link ↗
- Fetched
- 2026-05-31 MST
Cite this
APA
J, K., Y, J., G, L., Y, J., JH, R., WG, K., HS, Y., DW, C., D, C., & D., R. (2024). A microbiota-derived metabolite, 3-phenyllactic acid, prolongs healthspan by enhancing mitochondrial function and stress resilience via SKN-1/ATFS-1 in C. elegans. <em>Nature communications</em>. https://doi.org/10.1038/s41467-024-55015-1
Vancouver
J K, Y J, G L, Y J, JH R, WG K, et al. A microbiota-derived metabolite, 3-phenyllactic acid, prolongs healthspan by enhancing mitochondrial function and stress resilience via SKN-1/ATFS-1 in C. elegans. Nature communications. 2024. doi:10.1038/s41467-024-55015-1.
BibTeX
@article{kim2024Amicro,
title = {A microbiota-derived metabolite, 3-phenyllactic acid, prolongs healthspan by enhancing mitochondrial function and stress resilience via SKN-1/ATFS-1 in C. elegans.},
author = {Kim J and Jo Y and Lim G and Ji Y and Roh JH and Kim WG and Yi HS and Choi DW and Cho D and Ryu D.},
journal = {Nature communications},
year = {2024},
doi = {10.1038/s41467-024-55015-1},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Nature Communications 2024
Open access · CC-BY
A microbiota-derived metabolite, 3-phenyllactic acid, prolongs healthspan by enhancing mitochondrial function and stress resilience via SKN-1/ATFS-1 in C. elegans
Frontiers in Nutrition 2024
Open access · CC-BY
Intermittent fasting, fatty acid metabolism reprogramming, and neuroimmuno microenvironment: mechanisms and application prospects
GeroScience 2026
Citation only
Microbiota-derived indole-3-propionic acid extends lifespan in Drosophila and improves muscle and bone health in mice.
Journal of ovarian research 2026
Citation only
Intraperitoneal ZP123 improves aged oocyte quality by restoring granulosa cell gap junctions and improving mitochondrial function.
Annals of the New York Academy of Sciences 2008
Citation only
Oxidative Stress and Energy Crises in Neuronal Dysfunction
Investigative Ophthalmology & Visual Science 2020
Open access · CC-BY