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Pick your peptide, enter your vial size and how much water you're adding, and we'll tell you exactly what to draw — with a week-by-week plan and the research behind every number.
Mixing maths only · for research use · not a dosing recommendation
Most peptide calculators stop at "mL per dose." Ours keeps going — the doses used in real research, a week-by-week plan, and how many vials you will get through.
Pick a peptide and the calculator pulls up its dose range, how to take it and how long it lasts — then works out what each of those doses means for your mix, down to the line on the syringe.
Try it →Research reports a range, not one magic number. You see the low, middle and high end separately — and how solid the evidence behind each one actually is.
See the chart →Behind every number is the study it came from — the authors, the journal, the year, and a plain-English line on what that paper actually showed. All of it one click away.
Open the library →— peptides, sorted into — groups.
Dose ranges on this site are pulled from three tiers of evidence, and we label which tier a compound sits in rather than flattening them together:
| Tier | Compounds | Meaning |
|---|---|---|
| Clinical | — | Human trial dosing published |
| Preclinical | — | Preclinical research only |
| Limited | — | Sparse or community-reported |
Three short guides covering the basics, in plain English.
Which water to use, how to add it without wrecking the peptide, and the simple maths for working out your concentration.
Read →What a "unit" actually means, how the different syringe sizes compare, and the mg / mcg / IU mix-up that catches nearly everyone out.
Read →How long a vial lasts before and after mixing, what temperature it needs, and the mistakes that ruin a vial.
Read →
Pick your peptide, tell us what's in the vial and how much water you're adding, and we'll show you exactly what to draw — plus a week-by-week plan and the doses used in research.
| When | Dose | How Often | How Many mL | Draw To | Number Of Doses | Peptide Used |
|---|
| Level | Dose | How Often | How Many mL | Draw To | Doses In Vial |
|---|
Every compound in the database with its class, common vial strengths, reported research range, cadence, route, half-life, and evidence tier. Sort or filter, then jump straight into the calculator.
| Peptide | Type | Dose Range | How Often | How To Take It | Half-life | Evidence |
|---|
Ranges reflect figures reported in the cited literature. They are not recommendations, and the presence of a compound in this table is not an endorsement of its use.
Every study behind the numbers on this site, sorted by type of peptide. Each entry gives the authors, the journal and the year, plus a plain-English line on what that paper actually showed — so you can weigh the evidence yourself instead of taking a number on trust.
The mechanical background the calculator assumes you already know.
Lyophilised peptide arrives as a dry cake or powder under vacuum. Reconstitution is the act of dissolving that cake into a known volume of sterile diluent so that a measurable fraction of it can be withdrawn.
Bacteriostatic water is sterile water containing roughly 0.9% benzyl alcohol, which suppresses microbial growth and makes multi-draw vials viable for a matter of weeks under refrigeration. Sterile water for injection contains no preservative and is generally reserved for single-draw work. A handful of compounds — copper peptides and some acetate salts among them — have documented compatibility quirks with benzyl alcohol, so check the compound profile before defaulting.
The diluent volume is a free choice, and it is the only lever you have over measurement precision. A 5 mg vial in 1 mL gives 5 mg/mL, which puts a 250 mcg dose at 5 units — legible, but every half-unit of error is a 10% dosing error. The same vial in 2.5 mL gives 2 mg/mL and puts that dose at 12.5 units, where the same absolute error matters far less. Dilute enough that your target lands somewhere in the mid-range of the barrel.
Everything on this site assumes a standard 1 mL U-100 insulin syringe — the ordinary kind, marked 0 to 100. The U-100 label means it is calibrated for insulin at 100 units per millilitre, and that is what fixes 1 unit at 0.01 mL.
This is where most people go wrong. A unit is a volume, not an amount of peptide. Ten units drawn from a weak mix and ten units from a strong one fill the syringe to exactly the same line — but one holds five times more peptide than the other. That is why the calculator always asks what you put in the vial.
| What it says | What it means |
|---|---|
| U-100 | The calibration. 100 units of insulin per millilitre — which is what fixes 1 unit at 0.01 mL. |
| 1 mL | The barrel holds 1 millilitre in total, marked out as 100 units. |
| 1 unit | 0.01 mL. A hundredth of the barrel. This is a volume, not an amount of peptide. |
| 1–2 units | The smallest gap between marks, so the smallest amount you can measure with confidence. |
Four units of measure show up constantly and they are not interchangeable:
Lyophilised peptide is comparatively robust: kept dry, dark, and at −20 °C, most compounds in this database are stable for a year or more, and many tolerate 2–8 °C for months. The moment water is introduced, that changes.
| State | Temperature | Typical window | Notes |
|---|---|---|---|
| Lyophilised, sealed | −20 °C | 12–24 months | Protect from light and moisture |
| Lyophilised, sealed | 2–8 °C | 1–3 months | Acceptable short-term |
| Reconstituted, bacteriostatic | 2–8 °C | 2–4 weeks | Compound-dependent; some far shorter |
| Reconstituted, sterile water | 2–8 °C | ~24 hours | No preservative — single session |
| Any state | Room temp | Hours | Degradation accelerates sharply |
How the numbers on this site were put together, how we grade the evidence behind them, and what we will not do with them.
We think you should know exactly how this was built, because it changes how much weight the figures deserve.
The dose ranges and the citations were assembled by an AI system from its training knowledge of the published peptide literature. They were not compiled by researching each compound one at a time, and the individual citations have not been checked against the source records. Author names, journals and years may contain errors.
That is also why every reference on this site links to a PubMed search rather than a specific article ID. A search will take you to the real record if the paper exists. A fabricated ID would look authoritative and lead nowhere, which is worse than no link at all.
Three parts of the site do not come from that process:
What this means in practice: treat the ranges as a well-informed starting point for your own reading, not as a verified bibliography. Follow the links. If a number matters to a decision you are making, check it at the source.
Every compound carries an evidence tier, and we would rather show you a weak one honestly than dress it up:
| Tier | What it means |
|---|---|
| Clinical | Human trial or approved-label dosing has been published for this compound. |
| Preclinical | Laboratory and animal data only. No human dosing trials. |
| Limited | Sparse evidence, often from a single research programme, or figures reported only within the research community. |
Week-by-week schedules carry their own label so you can see where each one originated — a published label, a clinical trial protocol, a commonly used protocol, one we built from a compound's own cited range, or an OptimalDosages protocol anchored to a target we chose. Where no source publishes a schedule, the page says so rather than implying one exists.
A literature check runs weekly against Europe PMC, rotating through the catalogue so every compound is reviewed roughly monthly. It flags new human trials, dose findings, safety signals and retractions of papers we cite. It reports only — it cannot edit the site.
If you find an error, tell us and we will fix it. Corrections to dose figures or evidence tiers are made in place, and the build identifier in the footer changes whenever the site does, so you can tell whether you are looking at a current version.