Skip to content
Open access · CC-BY via OpenAlex

Effects of putative metformin targets on phenotypic age and leukocyte telomere length: a mendelian randomisation study using data from the UK Biobank

Shan Luo, Ian Chi Kei Wong, Celine Sze Ling Chui, Jie Zheng, Yuan Huang, C. Mary Schooling, Shiu Lun Au Yeung

The Lancet Healthy Longevity · 2023 · ▲ 62 citations

Abstract

Background Metformin, a first-line medication for type 2 diabetes, might also have a protective effect against ageing-related diseases, but so far little experimental evidence is available. We sought to assess the target-specific effect of metformin on biomarkers of ageing in the UK Biobank. Methods In this drug target mendelian randomisation study, we assessed the target-specific effect of four putative targets of metformin (AMPK, ETFDH, GPD1, and PEN2), involving ten genes. Genetic variants with evidence of causation of gene expression, glycated haemoglobin A 1c (HbA 1c ), and colocalisation were used as instruments mimicking the target-specific effect of metformin via HbA 1c lowering. The biomarkers of ageing considered were phenotypic age (PhenoAge) and leukocyte telomere(definition) length. To triangulate the evidence, we also assessed the effect of HbA 1c on the outcomes using a polygenic mendelian randomisation design and assessed the effect of metformin use on these outcomes using a cross-sectional observational design. Findings GPD1-induced HbA 1c lowering was associated with younger PhenoAge (β –5·26, 95% CI –6·69 to –3·83) and longer leukocyte telomere length (β 0·28, 0·03 to 0·53), and AMPKγ2 ( PRKAG2 )-induced HbA 1c lowering was associated with younger PhenoAge (β –4·88, –7·14 to –2·62) but not with longer leukocyte telomere length. Genetically predicted HbA 1c lowering was associated with younger PhenoAge (β –0·96 per SD lowering of HbA 1c , 95% CI –1·19 to –0·74) but not associated with leukocyte telomere length. In the propensity score matched analysis, metformin use was associated with younger PhenoAge (β –0·36, 95% CI –0·59 to –0·13) but not with leukocyte telomere length. Interpretation This study provides genetic validation evidence that metformin might promote healthy ageing via targets GPD1 and AMPKγ2 ( PRKAG2 ), and the effect could be in part due to its glycaemic property. Our findings support further clinical research into metformin and longevity. Funding Healthy Longevity Catalyst Award, National Academy of Medicine, and Seed Fund for Basic Research, The University of Hong Kong.

◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:

Read at source →

Provenance

Source
OpenAlex
DOI
10.1016/s2666-7568(23)00085-5
Canonical
link ↗
Fetched
2026-06-18 MST

Cite this

APA
Luo, S., Wong, I.C.K., Chui, C.S.L., Zheng, J., Huang, Y., Schooling, C.M., &amp; Yeung, S.L.A. (2023). Effects of putative metformin targets on phenotypic age and leukocyte telomere length: a mendelian randomisation study using data from the UK Biobank. <em>The Lancet Healthy Longevity</em>. https://doi.org/10.1016/s2666-7568(23)00085-5
Vancouver
Luo S, Wong ICK, Chui CSL, Zheng J, Huang Y, Schooling CM, et al. Effects of putative metformin targets on phenotypic age and leukocyte telomere length: a mendelian randomisation study using data from the UK Biobank. The Lancet Healthy Longevity. 2023. doi:10.1016/s2666-7568(23)00085-5.
BibTeX
@article{shan2023Effect, title = {Effects of putative metformin targets on phenotypic age and leukocyte telomere length: a mendelian randomisation study using data from the UK Biobank}, author = {Shan Luo and Ian Chi Kei Wong and Celine Sze Ling Chui and Jie Zheng and Yuan Huang and C. Mary Schooling and Shiu Lun Au Yeung}, journal = {The Lancet Healthy Longevity}, year = {2023}, doi = {10.1016/s2666-7568(23)00085-5}, }

Research neighborhood

References, citing works, and semantically nearest findings. Click a node to open it.

Related findings