How to Reconstitute BPC-157 and TB-500 for Research
Reconstitution is the step that turns a dry research peptide into a measurable liquid, and getting the arithmetic right is what makes every later measurement meaningful. This guide works through the process for two commonly paired compounds, BPC-157 and TB-500, using concrete vial sizes and showing how solvent volume determines concentration. Everything here is a laboratory measurement exercise - converting mass to volume and reading small volumes on a graduated syringe - and none of it constitutes a dosing recommendation.
The starting point: mg to mcg
Research vials are labeled by mass in milligrams, but the numbers used in measurement are usually easier to handle in micrograms. One milligram is one thousand micrograms, so a 5 mg BPC-157 vial holds 5000 mcg and a 10 mg TB-500 vial holds 10000 mcg. The background on this unit change is covered in the mg versus mcg guide. The mass in the vial never changes when you add water; only the concentration - the amount per unit volume - shifts with the volume of solvent you choose.
Choosing a solvent
The standard diluent is bacteriostatic water, sterile water containing about 0.9 percent benzyl alcohol. The benzyl alcohol suppresses microbial growth, which matters when a vial is entered more than once. The solvent is added slowly against the inside wall of the vial rather than jetted directly onto the powder, and the vial is swirled gently rather than shaken until the cake dissolves.
Reading a 1 mL insulin syringe
A 1 mL insulin syringe (also called 1 cc) is graduated to 100 units across its full barrel. That means the whole 1 mL is 100 units, one unit corresponds to 0.01 mL, and ten units correspond to 0.1 mL. Units are simply a fine volume scale printed on the barrel, and converting a unit reading into a mass is the core measurement exercise. An insulin syringe of this type is the usual tool for reading such small volumes.
Worked example: 5 mg BPC-157
Start with 5000 mcg in the vial. If you add 1 mL of bacteriostatic water the concentration becomes 5000 mcg per mL, so a 10 unit (0.1 mL) draw holds 500 mcg and a 20 unit (0.2 mL) draw holds 1000 mcg. If you instead add 2 mL, the same 5000 mcg is spread across twice the volume, giving 2500 mcg per mL, and a 10 unit draw then holds 250 mcg. The table below lays out several common volumes.
| Solvent added | Concentration (mcg per mL) | 10 units (0.1 mL) | 50 units (0.5 mL) |
|---|---|---|---|
| 1 mL | 5000 | 500 mcg | 2500 mcg |
| 2 mL | 2500 | 250 mcg | 1250 mcg |
| 3 mL | 1667 | 167 mcg | 833 mcg |
| 5 mL | 1000 | 100 mcg | 500 mcg |
Worked example: 10 mg TB-500
The same logic applies to a 10 mg TB-500 vial holding 10000 mcg. Reconstituting with 2 mL gives 5000 mcg per mL, so a 10 unit draw holds 500 mcg; reconstituting with 5 mL gives 2000 mcg per mL, so a 10 unit draw holds 200 mcg. Because TB-500 vials are often larger in mass than BPC-157 vials, researchers frequently pick a larger solvent volume to keep the numbers convenient.
| Solvent added | Concentration (mcg per mL) | 10 units (0.1 mL) | 50 units (0.5 mL) |
|---|---|---|---|
| 1 mL | 10000 | 1000 mcg | 5000 mcg |
| 2 mL | 5000 | 500 mcg | 2500 mcg |
| 4 mL | 2500 | 250 mcg | 1250 mcg |
| 5 mL | 2000 | 200 mcg | 1000 mcg |
For faster iteration across many volumes, the interactive reconstitution calculator performs the same arithmetic automatically once the vial mass and solvent volume are entered.
Storage of the reconstituted vial
Once reconstituted, both peptides are stored in the refrigerator, typically at 2 to 8 degrees Celsius, and shielded from light. Repeated freezing and thawing of a reconstituted solution is avoided because freeze-thaw cycles can degrade peptide integrity. Unopened lyophilized vials, by contrast, are kept frozen for long-term storage and only reconstituted when a study calls for them. Labeling each vial with its concentration and the date of reconstitution keeps later measurements traceable.
The listings for BPC-157 and TB-500 state the vial masses used throughout these examples, so the same arithmetic can be repeated for whatever mass a given vial carries. The method never changes: convert milligrams to micrograms, divide by the solvent volume, and read the result on the syringe scale.
Research use only. This article is educational and is not medical, legal, or financial advice. The compounds discussed are not approved for human or veterinary use, consumption, or therapeutic application.

