BPC-157
About the Product
Genetic Labs BPC-157 is a high-purity synthetic peptide (research grade) supplied in a vial containing 10mg of lyophilized (freeze-dried) powder. BPC-157 (Body Protection Compound-157) is a synthetic pentadecapeptide consisting of 15 amino acids, derived from a protective protein found in human gastric juice. It is a stable peptide that has been extensively studied for its remarkable cytoprotective, regenerative, and anti-inflammatory properties. BPC-157 promotes healing and repair across multiple tissue types through its ability to stimulate angiogenesis, modulate growth factor expression, and protect cells from damage. This makes it a versatile research tool in wound healing, gastroenterology, orthopedics, and neurobiology.
Kit Contents:
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1 Vial with 10mg BPC-157 (Lyophilized Powder)
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1 Vial with 3mL Bacteriostatic Water (Diluent)
For Laboratory Research Use Only. Not for human consumption.
Benefits (Research Scope)
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Cytoprotective Pentadecapeptide: BPC-157 is a stable synthetic peptide that exhibits potent cytoprotective, regenerative, and anti-inflammatory properties. It promotes the healing of various tissues, including gastrointestinal tract, muscle, tendon, ligament, bone, and neural tissue, through multiple synergistic mechanisms.
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Versatile Research Tool: Suitable for a wide range of studies, including:
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Gastrointestinal Research: Studies on gastric ulcers, inflammatory bowel disease (IBD), leaky gut syndrome, and intestinal barrier integrity.
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Wound Healing & Tissue Repair: Research into accelerated wound closure, angiogenesis, extracellular matrix remodeling, and tissue regeneration.
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Muscle & Tendon Research: Studies on muscle healing, tendon repair, ligament regeneration, and sports injury models.
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Anti-Inflammatory Research: Investigation into the modulation of inflammatory cytokines and the promotion of anti-inflammatory microenvironments.
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Neuroprotection: Research into neural repair, axonal growth, neuroinflammation modulation, and neuroprotection in models of neurological injury.
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Bone & Cartilage Research: Studies on bone healing, fracture repair, and cartilage regeneration.
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Organ Protection: Investigation into the protective effects against toxic and ischemic damage in liver, kidney, and other organs.
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Dental Research: Studies on periodontal healing and oral tissue repair.
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Practical Formulation: The lyophilized powder ensures stability and extended shelf life, while the included bacteriostatic water facilitates easy reconstitution for both in vitro and in vivo experiments.
Research & Science
BPC-157 is one of the most extensively studied regenerative peptides, with a robust body of preclinical research spanning several decades and covering a wide range of tissue repair applications.
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Mechanism of Action: BPC-157 exerts its biological effects through multiple interrelated mechanisms:
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Angiogenesis Promotion: BPC-157 stimulates the formation of new blood vessels through upregulation of vascular endothelial growth factor (VEGF) and other angiogenic factors, improving blood supply to damaged tissues.
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Growth Factor Modulation: Enhances the expression of growth factors, including VEGF, FGF (fibroblast growth factor), and TGF-β (transforming growth factor-beta), which are essential for tissue repair and regeneration.
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Collagen Synthesis: Promotes collagen production and deposition, essential for wound healing and tissue integrity.
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Anti-Inflammatory Effects: Reduces the production of pro-inflammatory cytokines (TNF-α, IL-1β, IL-6) and promotes a regenerative, anti-inflammatory cellular environment.
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Nitric Oxide Modulation: BPC-157 modulates nitric oxide (NO) production, which plays a critical role in angiogenesis, vasodilation, and tissue repair.
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Cell Survival & Protection: Protects cells from oxidative stress, toxic damage, and apoptosis through activation of survival signaling pathways.
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Gastrointestinal Protection: BPC-157 promotes the healing of gastric and intestinal mucosa through increased mucus production, enhanced cell proliferation, and protection from acid and other irritants.
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Gastrointestinal Research: BPC-157 has demonstrated remarkable efficacy in gastrointestinal research:
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Gastric Ulcer Healing: Accelerates healing of various types of gastric ulcers (stress-induced, alcohol-induced, NSAID-induced).
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Inflammatory Bowel Disease (IBD): Reduces inflammation and promotes healing in models of colitis and Crohn's disease.
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Intestinal Barrier Integrity: Protects and restores intestinal barrier function in models of leaky gut syndrome.
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Organ Protection: Protects the liver, kidney, and pancreas from toxic and ischemic damage.
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Muscle, Tendon & Ligament Research: BPC-157 has been extensively studied for its effects on the musculoskeletal system:
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Muscle Healing: Accelerates recovery from muscle injury and damage.
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Tendon Repair: Promotes healing of tendon tears and tendinopathy with improved collagen organization and tensile strength.
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Ligament Healing: Enhances ligament repair and recovery.
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Sports Injury Models: Demonstrates accelerated recovery and return to function in various injury models.
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Neuroprotective Research: BPC-157 has demonstrated significant neuroprotective properties:
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Promotes neuronal survival and axonal growth.
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Protects against neurotoxicity and apoptosis.
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Modulates neuroinflammation .
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Promotes recovery in models of spinal cord injury, traumatic brain injury, and peripheral nerve injury.
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Bone & Cartilage Research: BPC-157 promotes:
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Bone healing: Accelerates fracture repair with improved bone formation.
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Cartilage regeneration: Promotes repair of damaged cartilage.
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Anti-Inflammatory Research: BPC-157's potent anti-inflammatory effects make it valuable for studying inflammatory conditions, including arthritis, inflammatory bowel disease, and other inflammatory disorders.
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Angiogenesis Research: The peptide's ability to stimulate new blood vessel formation makes it a valuable tool for studying angiogenesis-related processes in wound healing and tissue regeneration.
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Focus on Genetic Variability: Research is exploring how genetic polymorphisms in growth factor genes, inflammatory pathway genes, and tissue repair-related genes may influence individual responses to BPC-157, providing insights for personalized regenerative medicine approaches.