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Banger Labs

GHK-Cu

GHK-Cu — research-grade peptide. ≥ 99% purity (HPLC), Certificate of Analysis with every batch. For laboratory research use only.

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Certificate of Analysis

Every batch independently verified by third-party laboratories.

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GHK-Cu COA

Independently tested

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Purity≥99.4%
MethodHPLC
Documents1 PDF

All Banger Labs products are independently tested by accredited third-party laboratories. Results are batch-specific and provided for research transparency only. This product is not approved for human use.

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Every Dose, Independently Tested

Verified by Vanguard Laboratory — always ≥99.5% purity, tested 7×. Swipe to view your selected dose.

GHK-Cu 50mg — Vanguard Laboratory Certificate of Analysis, ≥99.5% purity
PASSGHK-Cu · 50mg
GHK-Cu 100mg — Vanguard Laboratory Certificate of Analysis, ≥99.5% purity
PASSGHK-Cu · 100mg

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Frequently Asked Questions

Everything you need to know about this product and your order.

All Banger Labs peptides are independently tested and verified at ≥99.4% purity by HPLC analysis. Every batch comes with a full Certificate of Analysis.
Store lyophilised peptides at -20°C in a dry, dark environment. Once reconstituted, store at 4°C and use within 28 days. Avoid repeated freeze-thaw cycles.
No. All products sold by Banger Labs are strictly for research use only (RUO). They are not approved for human or veterinary use and must not be administered to any living organism.
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Research Overview Cited research summary, handling & references — tap to expand

GHK-Cu (Copper Tripeptide-1): A Research Compendium

What GHK-Cu Is

GHK-Cu is the copper(II) complex of the human tripeptide glycyl-L-histidyl-L-lysine (GHK), a small endogenous sequence first described in human plasma and later studied across many tissue and culture systems. The peptide has a high affinity for copper ions, and the resulting GHK-Cu complex is the form most frequently investigated in the regenerative and cosmetic-science literature.[1] Reviews characterize GHK and GHK-Cu as modulators of multiple cellular pathways, with reported relevance to tissue remodeling and skin biology in experimental settings.[2] In research, GHK-Cu is handled exclusively as a laboratory reference material; the summaries below describe directions explored in peer-reviewed publications and are not statements about results in humans.

Areas Studied in the Research Literature

The themes below recur across the published GHK / GHK-Cu literature. They are provided to orient researchers and imply no clinical benefit, safety, or efficacy in any species.

Copper Coordination Chemistry

GHK's defining biochemical feature is its capacity to bind copper(II), forming the GHK-Cu complex that is central to most published investigations and to its use in early culture-system studies.[1]

Skin Regeneration Pathways

Review-level work has framed GHK as a natural modulator of multiple cellular pathways implicated in skin regeneration, summarizing a large body of in vitro observation.[2]

Gene-Expression Profiling

Analyses of gene-expression data have been used to revisit the regenerative and protective actions attributed to GHK-Cu, situating the peptide within transcriptomic research.[3]

Tissue Remodeling

The peptide has been examined in the context of tissue remodeling, a recurring theme in the biomaterials and dermatology literature.[4]

Oxidative Stress & Aging Models

GHK-Cu has been discussed in relation to oxidative stress and degenerative conditions of aging in review work, including hypotheses extending to cognitive health.[5]

Anti-Aging Peptide Research

The broader potential of GHK as an anti-aging peptide has been reviewed, mapping where the field has proposed continued study.[6]

Biomaterials & Delivery Systems

GHK has been incorporated into biomaterial scaffolds, with work on oxidized alginate hydrogels and mesenchymal stem cell osteogenesis as one example of delivery-focused research.[7] Skin-permeation methodology for liposome-encapsulated GHK-Cu has likewise been investigated.[8]

Reconstitution, Handling & Storage (Research)

The following describes generally accepted laboratory handling practices for lyophilized research peptides. It is general technical guidance for trained personnel and is not a protocol for any use in humans or animals.

Before Opening

Lyophilized material is typically kept sealed and cold until use; equilibrating a sealed vial toward room temperature before opening helps limit condensation onto the powder.

Reconstitution

Copper-peptide complexes are colored in solution, and researchers commonly reconstitute with a suitable sterile diluent added slowly down the vial wall, swirling gently rather than shaking to limit mechanical stress.

Storage After Reconstitution

Solutions are generally stored refrigerated and protected from light, with handling minimized; aliquoting reduces repeated temperature cycling of a working stock.

Freeze–Thaw

Repeated freeze–thaw cycles are widely regarded as a degradation risk for peptide solutions, so single-use aliquots are a common practice for longer-term storage.

Stability & Half-Life Notes

As a small copper-binding tripeptide, GHK-Cu is generally treated as sensitive to oxidative, enzymatic, and physical degradation in solution, which underlies the standard emphasis on cold storage, protection from light, and avoidance of repeated freeze–thaw cycles. The copper component also makes formulation and pH relevant to stability. Specific stability characteristics should be assessed empirically for any given preparation rather than assumed from general peptide behavior.

Compliance

Research Use Only — Not For Human Use

This product is sold strictly as a research-use-only (RUO) reference material intended for in vitro experimentation and laboratory study by qualified professionals. It is not a drug, dietary supplement, cosmetic, or food, and it is not intended to diagnose, treat, cure, or prevent any disease or condition. It is not for human or veterinary use and must not be administered to humans or animals. The summaries above describe published scientific investigation only and make no claim of safety or efficacy. Purchasers are responsible for handling, storing, and disposing of this material in accordance with all applicable laws, regulations, and institutional policies.

References

  1. Pickart L, et al. The use of glycylhistidyllysine in culture systems. In Vitro. 1981. PMID: 7021400
  2. Pickart L, et al. GHK Peptide as a Natural Modulator of Multiple Cellular Pathways in Skin Regeneration. Biomed Res Int. 2015. PMID: 26236730
  3. Pickart L, et al. Regenerative and Protective Actions of the GHK-Cu Peptide in the Light of the New Gene Data. Int J Mol Sci. 2018. PMID: 29986520
  4. Pickart L, et al. The human tri-peptide GHK and tissue remodeling. J Biomater Sci Polym Ed. 2008. PMID: 18644225
  5. Pickart L, et al. The human tripeptide GHK-Cu in prevention of oxidative stress and degenerative conditions of aging: implications for cognitive health. Oxid Med Cell Longev. 2012. PMID: 22666519
  6. Dou Y, et al. The potential of GHK as an anti-aging peptide. Aging Pathobiol Ther. 2020. PMID: 35083444
  7. Klontzas ME, et al. Oxidized alginate hydrogels with the GHK peptide enhance cord blood mesenchymal stem cell osteogenesis. Acta Biomater. 2019. PMID: 30772514
  8. Ogórek K, et al. Are We Ready to Measure Skin Permeation of Modern Antiaging GHK-Cu Tripeptide Encapsulated in Liposomes? Molecules. 2025. PMID: 39795193
Evidence

Scientific References

Explore the published research literature on GHK-Cu. We link directly to independent, primary sources — we don't summarize or interpret findings. For research use only.

Links open external databases (pubmed.ncbi.nlm.nih.gov · clinicaltrials.gov). Banger Labs is not affiliated with these sources. For research use only — not medical advice.

GHK-Cu ≥99.4% Purity
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