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Motivations

27Aging Biotech

Glucosepane is a major protein cross-link of the senescent human extracellular matrix. Relationship with diabetes

Scientific rationale for extracellular-matrix glycation and crosslinks2005

Mass spectrometry of 110 human skin-collagen and 28 glomerular-basement-membrane preparations identified glucosepane as an abundant crosslink. Skin levels rose with age and diabetes; kidney basement-membrane levels rose with diabetes but not old age. This human tissue study motivates crosslink research but did not test removal or demonstrate restored tissue function. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/15677467/

Collapse of proteostasis represents an early molecular event in Caenorhabditis elegans aging

Scientific rationale for protein quality controlBen-Zvi, Miller and Morimoto2009

Engineered protein-folding sensors lost function early in adult C. elegans, alongside weaker heat-shock and unfolded-protein responses. Enhancing HSF-1 or DAF-16 suppressed sensor misfolding. The findings connect stress-response capacity with proteostasis decline in a laboratory worm model. Sources verified 2026-09-28: https://pmc.ncbi.nlm.nih.gov/articles/PMC2736453/

The ageing systemic milieu negatively regulates neurogenesis and cognitive function

Scientific rationale for age-dependent circulating signalsVilleda et al.2011

Old systemic environments and old plasma reduced neurogenesis and aspects of learning in young mice. Raising peripheral CCL11 reproduced some effects, while CCL11 increased with age in sampled human blood and cerebrospinal fluid. These findings motivate research on circulating signals; they do not show that blocking CCL11 reverses established human brain aging. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/21886162/

A conserved NAD+ binding pocket that regulates protein-protein interactions during aging

Scientific rationale for NAD-dependent DNA-repair regulation2017

NAD binding to DBC1 prevented its inhibition of the DNA-repair enzyme PARP1. Aging mice showed stronger DBC1–PARP1 association as NAD declined; restoring NAD reversed measured DNA-damage changes. The experiments motivate investigation of a specific NAD-sensitive repair mechanism, without establishing human clinical benefit or lifespan extension. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/28336669/

SIRT6 Is Responsible for More Efficient DNA Double-Strand Break Repair in Long-Lived Species

Scientific rationale for DNA repair and comparative longevityTian et al.2019

Across 18 rodent species, double-strand-break repair capacity tracked maximum lifespan, whereas nucleotide-excision repair did not. Experiments mapped differences in SIRT6 repair activity to five amino-acid residues. The study combines comparative associations with cell-level mechanism tests; it did not test a treatment in aged mammals. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/31002797/

Measurements of damage and repair of binary health attributes in aging mice and humans reveal that robustness and resilience decrease with age, operate over broad timescales, and are affected differently by interventions

Scientific rationale for functional aging measurementFarrell et al.2022

Longitudinal mouse and human health deficits distinguish resistance to damage from recovery. These measures support research on functional aging; associations and model estimates do not establish therapeutic efficacy. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/36409200/

Ageing-associated changes in transcriptional elongation influence longevity

Scientific rationale for transcription-fidelity researchDebès et al.2023

RNA polymerase II elongation accelerated with age across five species. Slower-polymerase variants extended worm and fly lifespan; histone augmentation improved fly survival and cultured human-cell proliferative capacity. These findings motivate research on transcription kinetics and chromatin maintenance. Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37046086/

27 of 27 records

Ageing-associated changes in transcriptional elongation influence longevity

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Notes

RNA polymerase II elongation accelerated with age across five species. Slower-polymerase variants extended worm and fly lifespan; histone augmentation improved fly survival and cultured human-cell proliferative capacity. These findings motivate research on transcription kinetics and chromatin maintenance.

Sources verified 2026-09-28: https://pubmed.ncbi.nlm.nih.gov/37046086/

Hallmark / category
Scientific rationale for transcription-fidelity research
Author
Debès et al.
Year
2023