KLOW GHK-Cu / KPV / BPC-157 / TB500
Original price was: $189.99.$149.99Current price is: $149.99.
Out of stock
3 published certificates
Certificate information is temporarily unavailable.
Description
A four-component co-formulation supplied for controlled research environments. Suitable for studies involving peptide characterization and method development in model systems.Not for human use.
Documentation & Quality Assurance
Each lot is sourced through our verified global supply chain with emphasis on traceability and quality control.These documents are reviewed internally and displayed as they become available. Independent third-party testing is also performed on select lots to confirm identity, purity, and alignment with our internal specifications.
Important Notice
This product is intended for laboratory research use only. It is not intended for human or veterinary use, and must not be used for diagnostic, therapeutic, or clinical purposes.
This material is not a drug, medical device, or dietary supplement, and has not been evaluated by the U.S. Food and Drug Administration.
Quality & Manufacturing
All materials are sourced from carefully vetted domestic and international manufacturing partners who follow quality systems consistent with ISO and cGMP principles. Each supplier is reviewed for reliability, documentation integrity, and transparency in testing.
We require a verified purity of 99% or higher and perform independent third-party spot testing to confirm that select lots meet our internal standards for identity, purity, and composition. Where available, endotoxin testing results are included on Certificates of Analysis to verify laboratory purity; their inclusion is for research quality assessment only and does not imply suitability for human or veterinary use.
All research materials are sealed for integrity and packaged for stability during storage and transport from manufacturing through final delivery.
Additional information
| Weight | 0.0625 lbs |
|---|
Published Scientific Research
Explore the full library of peer-reviewed studies, clinical data, mechanism breakdowns, and molecular specifications for KLOW GHK-Cu / KPV / BPC-157 / TB500.
All research is sourced from PubMed-indexed journals for informational and educational purposes only. For Research Use Only (RUO). Not for human use.
View Full Research Library →Storage Instructions
All products from House of Compounds are manufactured using a lyophilization (freeze-drying) process. This method is designed to maintain product integrity and allows vials to remain stable during shipping for approximately 3–4 months.
Once a vial is reconstituted with bacteriostatic water, it should be stored in the refrigerator to help maintain stability. Under these conditions, reconstituted material is generally considered stable for up to 30 days.
Lyophilization is a dehydration technique in which compounds are frozen and then exposed to low pressure. This causes the water in the vial to sublimate directly from solid to gas, leaving behind a stable, crystalline white structure. This powder can be kept at room temperature until reconstitution.
Upon receipt, products should be stored away from heat and light. For short-term use, refrigeration at approximately 4°C (39°F) is suitable. For long-term storage (several months to years), vials may be placed in a freezer at approximately -80°C (-112°F). Freezing is the preferred method for preserving product stability over extended periods.
⚠️ Important Notice:
These products are intended for research use only. Not for human consumption.
Research Use Only
The following peer-reviewed publications reference compounds for laboratory and in vitro research purposes only. Not for human or animal use. Not intended to diagnose, treat, cure, or prevent any disease or condition.
Published Scientific Research
Peer-reviewed laboratory studies investigating regenerative peptides
Injectable Peptide Therapy: A Primer for Orthopaedic and Sports Medicine Physicians.
RESULTS: BPC-157 demonstrated potential benefits in tendon and muscle repair, but these findings are largely unvalidated in human trials. CJC-1295 combined with ipamorelin showed significantly improved maximum tetanic tension in murine models with glucocorticoid-induced muscle loss, but these findings are limited to animal studies.
View Full StudyEnzyme-Programmable DNA-PEG Hydrogel Spatiotemporally Regulates Bone Regeneration Microenvironment.
Conventional hydrogel drug delivery systems are limited in recapitulating the natural spatiotemporal progression of bone regeneration due to their passive release mechanisms. Molecular dynamics simulations reveal the underlying mechanism of hydrogel-mediated mineralization, demonstrating enhanced calcium phosphate formation.
View Full StudyBioinspired Engineering of Streamlined Skeletal Interoception: Neural Bioprinted Piezoelectric Scaffolds for Neuro-Vascularized Bone Regeneration.
Moreover, beyond their canonical role within the interoceptive pathway, these neurons exert a direct effector role by secreting calcitonin gene-related peptide (CGRP) to promote bone repair. Upon sensing ultrasound (US) stimulation, the piezoelectric poly(l-lactide) (PLLA) component mediates mechanoelectrical coupling, triggering a Ca influx-induced effector response in the incorporated DRG neurons that enhances CGRP secretion and expression.
View Full StudyBrain-infiltrating ILC2s boost poststroke angiogenic initiation through α-CGRP production.
Whether ILC2s can infiltrate the brain from bloodstream and the underlying mechanisms involved remain unclear. Impaired function of CGRP receptors on cerebrovascular endothelial cells abolishes the angiogenic effect of ILC2s.
View Full StudyMY-1 promotes angiogenesis in the ischemic hindlimbs by regulating the stability of CDC42 via PSMD14.
This system significantly promoted blood flow reperfusion and muscle tissue repair in the ischemic region. In vitro experiments revealed that MY-1 promoted the formation of filopodia in endothelial cells, accelerating cell migration and confirming the critical role of CDC42 in this process.
View Full StudyFPR2 at the crossroads of inflammation and repair in the eye.
Formyl peptide receptors (FPRs) belong to the G protein-coupled receptor family and are involved in regulating inflammatory processes, neuronal survival, and angiogenesis. We also examine the molecular mechanisms, signaling pathways, and ligand specificity that drive these divergent effects, positioning FPR2 as a promising yet complex therapeutic target in ophthalmology.
View Full Study



