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KLOW Kit – GHK-Cu (50 mg), BPC-157 (10 mg), TB-500 (10 mg), and KPV (10 mg)

KLOW is a four-peptide research blend combining GHK-Cu, BPC-157, TB-500, and KPV to study tissue repair, inflammation control, and cellular regeneration in laboratory models.

$550.00

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Description

Description

KLOW is a four-peptide research blend combining GHK-Cu, BPC-157, TB-500, and KPV to study tissue repair, inflammation control, and cellular regeneration in laboratory models.
Composition and Purpose

The KLOW peptide blend contains GHK-Cu (50 mg), BPC-157 (10 mg), TB-500 (10 mg), and KPV (10 mg) in a single vial. It is intended for research use only and is not for human or veterinary consumption. Each peptide targets distinct biological pathways involved in repair and regeneration.

GHK-Cu

A copper-binding tripeptide that stimulates collagen and elastin production, promotes angiogenesis, enhances fibroblast proliferation, and modulates gene expression associated with tissue repair.
BPC-157

A gastric pentadecapeptide that supports tendon, ligament, and muscle repair, promotes angiogenesis, protects gut mucosa, and accelerates recovery from tissue injury.
TB-500

A synthetic fragment of thymosin beta-4 that regulates actin polymerization, enhances cell migration, and supports angiogenesis, facilitating tissue remodeling and wound closure.
KPV

A tripeptide fragment of alpha-melanocyte-stimulating hormone that inhibits NF-κB and MAPK pathways, offering potent anti-inflammatory effects and supporting barrier integrity in gut and skin models.

 
Mechanisms and Research Applications
KLOW is designed to explore synergistic effects across multiple biological pathways:

Tissue repair and remodeling: GHK-Cu and BPC-157 support extracellular matrix synthesis and enhance fibroblast activity.
Angiogenesis: BPC-157 and TB-500 promote the formation of new blood vessels, a critical component of healing.
Cell migration: TB-500 enhances actin-driven cell movement to sites of injury.
Inflammation control: KPV modulates immune signaling while preserving normal immune function.

This multi-pathway approach enables researchers to study systemic regenerative processes in vitro and in animal models, including wound healing, gut protection, and connective tissue repair.

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