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BPC-157 + TB-500

Blend

BPC-157 + TB-500

Research Use Only

All products are intended solely for laboratory research and are not for human or animal consumption. By purchasing, the buyer agrees to use these products in compliance with all applicable laws.

BPC-157 + TB-500 Overview

The BPC-157 + TB-500 blend combines two synthetic peptides studied for their signaling pathway interactions. BPC-157 is known for its potential effects on molecular signaling, structural remodeling, and cytokine modulation, while TB-500 (a fragment of Thymosin Beta-4) is associated with epithelial modeling, angiogenesis, and extracellular matrix dynamics. Together, they may provide complementary activity across multiple pathways in controlled experimental settings.

Goldstein A. et al. (2005).

History

The concept of the BPC-157 + TB-500 blend stems from parallel lines of peptide research tracing back to foundational discoveries in molecular biology. BPC-157, deriving from a natural protein fragment in gastric tissue, was first synthesized to investigate its signaling and remodeling effects on structural and epithelial systems. Meanwhile, Thymosin β-4 (Tβ4)—and its synthetic fragment TB-500—originated from the discovery of thymosins in the 1960s by Allan L. Goldstein and colleagues, leading to interest in Tβ4’s role in extracellular matrix dynamics and pathway modeling.

Goldstein A. L., Hannappel E. et al. (2012).

BPC-157 Structure

CAS #: 137525-51-0

Molecular Formula: C₆₂H₉₈N₁₆O₂₂

Molecular Weight: 1419.556 g/mol

PubChem ID: 108101

TB-500 Structure

CAS #: 77591-33-4

CAS #: 137525-51-0

Molecular Formula: C₆₂H₉₈N₁₆O₂₂

Molecular Weight: 1419.556 g/mol

PubChem ID: 108101

Research Findings

BPC-157 and TB-500 have been studied in structural, vascular, epithelial, and systemic models, with research exploring their effects on tendon-to-bone interface modeling, collagen organization, angiogenesis, molecular migration, and systemic signaling. These findings highlight their roles in matrix dynamics, vascular pathways, and pathway activity in preclinical settings.

Key Areas of Resarch:

  • Structural: Tendon-to-bone, collagen, matrix

  • Vascular: Angiogenesis, nitric oxide, remodeling

  • Epithelial: Migration, signaling, matrix

  • Systemic: Gastric, survival, pathway dynamics

Together, these findings suggest broad experimental applications for BPC-157 and TB-500 across multiple biological pathways. Their combined influence on collagen synthesis, vascular formation, cytokine modulation, and systemic signaling provides a versatile foundation for research into molecular remodeling, pathway dynamics, and experimental biology.

Sikiric P. et al., Current Pharmaceutical Design, 2018

Our Process

STEP 1

Precision Lyophilization

Manufactured in a controlled U.S. facility under strict compounding standards.

STEP 2

Verified Purity

Every batch third-party tested with HPLC and mass spectrometry.

STEP 3

Same-Day Fulfillment

Orders dispatched same-day from our U.S. facility.
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Orders dispatched same-day from our U.S. facility.
Frequently Asked Questions

Orders dispatched same-day from our U.S. facility.

Each vial contains exactly what’s shown on the label. For example, a 10mg vial has exactly 10mg of lyophilized peptide. Researchers can divide it into smaller portions—like four 2.5mg measurements—but the total amount remains 10mg.

Peptides are supplied as lyophilized powder. They do not come reconstituted, and any extra supplies must be sourced separately for research applications.
In lyophilized powder form, peptides stay stable for up to 2 years. After reconstitution, it should be refrigerated and is generally stable for up to 2 months.

Products from Raw Peptides do not include usage instructions, as they are strictly for in vitro research and prohibited by law for human or animal use. Misuse or unlawful application will result in permanent denial of service.

Lyophilized peptides should be stored away from heat and light. Once reconstituted, they must be refrigerated to maintain stability and efficacy.