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Study 10 of 13GHK-Cu literatureBiogerontology · Preclinical2026

The GHK-Cu delays aging in Caenorhabditis elegans via coordinated regulation of mitochondrial function and activation of DAF-16/SKN-1 pathways.

GHK-Cu appears to extend lifespan and improve aging-related functions in C. elegans, but its relevance to human aging is not established.

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Summary and findings

This study investigated the effects of GHK-Cu on lifespan and aging-related phenotypes in Caenorhabditis elegans. The results indicated that GHK-Cu significantly extended lifespan and improved various aging-related functions. No therapeutic claims are made.

How much of this paper we could read: partial text (0.50). We had some abstract detail. Check the source for anything decisive. What this means →
Not reported in abstract.n=200Preclinical2026

Abstract

The authors’ words, as Biogerontology supplied them

Aging is a complex biological process characterized by progressive functional decline across tissues and increased susceptibility to age-related diseases, with oxidative stress being a key contributing factor. Glycine-Histidine-Lysine (GHK), a naturally occurring tripeptide present in human plasma and urine, possesses potent antioxidant properties; however, its broader anti-aging potential remains inadequately explored. In this study, we employed the model organism Caenorhabditis elegans to systematically investigate the anti-aging effects of GHK-Cu (GHK complexed with copper) and elucidate its underlying molecular mechanisms. Our results demonstrated that GHK-Cu significantly extended lifespan of C. elegans and ameliorated mutiple aging-related phenotypes, including enhanced resistance to oxidative and thermal stress, improved motility, pharyngeal pumping, defecation rhythm, and reduced lipofuscin/lipid accumulation. Mechanistically, GHK-Cu preserved mitochondrial function by increasing mitochondrial membrane potential, alleviating age-related mitochondrial network fragmentation, shifting mitochondrial dynamics toward fusion via regulating drp-1 and fzo-1 expression, and promoting ATP biosynthesis. Meanwhile, GHK-Cu activating DAF-16 and SKN-1 pathway, and upregulating sod-3, gst-4, gcs-1, lys-7 and lys-8. This study provides the first mechanistic evidence that GHK-Cu delays aging through coordinated regulation of mitochondrial function and activation of both DAF-16 and SKN-1 pathways. Our findings identify novel molecular targets for developing anti-aging interventions and underscore the potential of GHK-Cu's as a multifaceted geroprotective compound.

Elsewhere in the GHK-Cu corpus

DMining triggers extensive additional deforestation in sub-Saharan Africa.Nature · 2026DOrbital magnetoresistance in the antiferromagnet CoO driven by dynamic orbital angular momentum.Science (New York, N.Y.) · 2026DSurface-dominant transport in Weyl semimetal NbAs nanowires for next-generation interconnects.Science (New York, N.Y.) · 2026CHierarchical regulation and mechanism of "open-hollow-fibrous network" structures: Osteogenic-angiogenic coupling responses of poly(γ-benzyl-L-glutamate) microspheres.PubMed · 2026 · Runx2 expression increased by 1.61-fold, OPN by 3.53-fold, and OCN by 2.29-fold compared to non-functionalized PBLG HNMs.In vitroCMiddle-aged mice treated with GHK-Cu peptide administered intraperitoneally or intranasally show behavioral rescue but divergent hippocampal aging programsbiorxiv-preprint · 2026 · IN treatment increased synaptophysin in females (P < 0.001).AnimalCMiddle-aged mice treated with GHK-Cu peptide administered intraperitoneally or intranasally show behavioral rescue but divergent hippocampal aging programsbiorxiv-preprint · 2026 · IN GHK-Cu improved escape latency across Trials 2–4, p<0.05.Animal