The evidence was based on experimental data only briefly described in the patent and included models of: gastric ulcers, heart damage, liver damage, pancreatic injury, kidney damage, experimental diabetes, fever, edema, rhinitis, bone fracture, burns, skin wounds, hypersensitivity reactions, pupil dilation, colon injury, tumour growth, radiation injury, red blood cell development, fertility and lactation, tooth damage, several types of central and peripheral nerve damage, and survival from infection with Trichinosis (i.e., tapeworms) as well as several viruses

In controlled research environments, GHK-Cu is commonly used to study: Skin and connective-tissue repair processes Fibroblast recruitment, proliferation, and matrix production Angiogenesis and endothelial-cell behavior Antimicrobial activity in wound models (when combined with selected co-factors) Neurobiological and gene-expression changes in nervous system models Experimental modulation of inflammatory and fibrotic responses These applications make GHK-Cu a versatile tool for probing how small copper-peptide complexes participate in tissue-regeneration and stress-response pathways
Associations between free fatty acids, cumulus oocyte complex morphology and ovarian function during in vitro fertilization
[DOI] [PMC free article] [PubMed] [Google Scholar] [Retracted] 222.Kheradmand E., Hajizadeh Moghaddam A., Zare M
Milk thistle is widely used, but its not the right fit for everyone