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GHRH receptor agonist

Tesamorelin

TH9507 — trans-3-hexenoyl-GHRH(1-44) amide (GHRH analogue)

Moderate Human EvidenceInvestigationalLast updated 2026-07-20
Overview

Tesamorelin (TH9507) is a synthetic 44-amino-acid analogue of growth hormone-releasing hormone (GHRH) with a stabilising trans-3-hexenoyl modification at the N-terminus. It binds the GHRH receptor on pituitary somatotrophs and stimulates the body's own pulsatile release of growth hormone (GH), which in turn raises hepatic IGF-1.

Research contexts include visceral (deep-belly) fat reduction, body composition and lean-mass preservation, and improvements in triglycerides and non-HDL cholesterol. Because the pituitary is signalled to release its own GH rather than replacing it directly, negative-feedback loops through IGF-1 and somatostatin remain intact — the tolerability profile in research contexts is generally milder than high-dose exogenous rhGH.

The compound is a research-use lyophilized peptide reconstituted with bacteriostatic water for repeated-access subcutaneous use, per the standard Healthy Mango preparation convention.

Quick Facts & Evidence
Category
GHRH receptor agonist
Research area
GHRH analogue
Most studied for
  • Visceral (deep-belly) fat reduction
  • Body-composition research (lean mass preservation)
  • Hepatic fat and lipid profile
  • Preservation of pulsatile GH release as an alternative to exogenous rhGH
Clinical status
Investigational
Human evidence
Moderate Human Evidence
Regulatory status
Not approved by FDA, EMA or MHRA

Moderate Human Evidence

Supported by human trials, but of limited size, duration, or replication. May be approved for related but not identical indications.

Research Protocols

Research Protocol Snapshot

Preparation covered on this page

Freeze-dried injectable research format

This page covers the RUO lyophilized tesamorelin vial reconstituted with bacteriostatic water for repeated-access subcutaneous research use, following the standard Healthy Mango preparation convention.

Tesamorelin research values at a glance.

ItemExample value
Vial size10 mg
Liquid used to mixBacteriostatic water
Amount of liquid added2.0 mL
Final concentration5 mg/mL
How it's givenSubcutaneous injection
Research dose2 mg
FrequencyOnce daily
After mixingRefrigerate; use within 7–10 days
Reported Dosing

One research protocol is documented for this format. It is educational reference, not a recommendation.

The Reported Protocol

DoseFrequencyDurationNotes
2 mgOnce daily, subcutaneousContinuous (no established cycling protocol)0.4 mL at 5 mg/mL

Why protocols vary

A single research-context protocol is documented for this format: 2 mg once daily, subcutaneous. Cycling is not established — the dosing is described as continuous.

At the standard 5 mg/mL reconstitution, the 2 mg amount corresponds to 0.4 mL, which is why the 10 mg + 2.0 mL preparation is the convention across the peptide-therapy space.

Preparing the Solution

Turning the freeze-dried powder into a measurable liquid.

Documented preparation

The documented research protocol is based on this preparation concentration.

Freeze-dried powder: 10 mg vial

Diluent: 2.0 mL bacteriostatic water

Final concentration: 5 mg/mL

Vial and volume from the practitioner reference; concentration calculated · Research-practitioner guide

Your vial

Matching preparation

Bacteriostatic water

2mL

Resulting concentration

5 mg/mL

Equivalent volume

The reported research amount of 2 mg is contained within

0.4mL

of the prepared solution now in your vial.

Show calculation
Documented concentration
10 mg ÷ 2 mL = 5 mg/mL
Bacteriostatic water to match the documented concentration
10 mg ÷ 5 mg/mL = 2 mL
Equivalent volume at this concentration
2 mg ÷ 5 mg/mL = 0.4 mL

This tool performs arithmetic conversions using the preparation example and reported research amount shown on this page. It does not recommend an amount, route, preparation method, or use.

This tool performs arithmetic conversions using the preparation example and reported research amount shown on this page. It does not recommend an amount, route, preparation method, or use.

Sources for these values

  • Documented in the practitioner referenceResearch-practitioner guide

This example explains how concentration and volume are calculated for the standard RUO preparation. It is not a preparation guide.

How It's Given

Method used for this format

Subcutaneous injection, once daily

Documented in the practitioner reference · Research-practitioner guide

Why this method

Tesamorelin is a peptide; the subcutaneous route delivers it into circulation without the gastrointestinal degradation that would break the molecule down.

Once-daily subcutaneous dosing matches the pulsatile GHRH signalling the compound is designed to mimic.

Injection sites reported

  • Abdomen (rotate sites)
  • Avoid scarred, bruised, inflamed, or infected skin
Storage

Before mixing

  • Refrigerate 2–8 °C
  • Protect from light
  • Do not freeze

Documented in the practitioner reference; general RUO practice · Research-practitioner guide

After mixing

  • Refrigerate 2–8 °C
  • Use within 7–10 days
  • Do not freeze
  • Discard if cloudy or discoloured

Documented in the practitioner reference · Research-practitioner guide

Handling

  • Direct diluent slowly down the vial wall
  • Gently swirl until dissolved — do not shake
  • New sterile needle each draw
  • Do not share vials

General RUO practice · Research-practitioner guide

Storage guidance summarises documented practitioner practice and standard RUO peptide handling. Verify the specific vial's supplied instructions before use.

Common Cycle

Tesamorelin dosing is described as continuous daily use — not cycled.

Cycle Length
Continuous daily use
Break Before the Next Cycle
Not applicable — no established cycling protocol
What the Research Shows
Not defined

Documented in the practitioner reference · Research-practitioner guide

Effects are reported to be maintained with ongoing daily use; intermittent-dosing schedules discussed in body-recomposition contexts are not part of the documented protocol.

Compound Overview

Current areas of research

The following are the research contexts described for tesamorelin.

  • Reduction of visceral (deep-belly) adipose tissue
  • Improvement of triglycerides and non-HDL cholesterol
  • Support of lean muscle mass in body-composition research
  • Preservation of the body's own pulsatile GH release (contrast with exogenous rhGH replacement)
Mechanism of action

Tesamorelin (TH9507) is a synthetic 44-amino-acid analogue of growth hormone-releasing hormone (GHRH) with a stabilising trans-3-hexenoyl modification at the N-terminus. It binds the GHRH receptor on pituitary somatotrophs and stimulates the body's own pulsatile release of growth hormone (GH), which in turn raises hepatic IGF-1.

Research contexts include visceral (deep-belly) fat reduction, body composition and lean-mass preservation, and improvements in triglycerides and non-HDL cholesterol. Because the pituitary is signalled to release its own GH rather than replacing it directly, negative-feedback loops through IGF-1 and somatostatin remain intact — the tolerability profile in research contexts is generally milder than high-dose exogenous rhGH.

The compound is a research-use lyophilized peptide reconstituted with bacteriostatic water for repeated-access subcutaneous use, per the standard Healthy Mango preparation convention.

  • A full-length GHRH(1-44) analogue with a stabilising N-terminal modification
  • Preserves the physiologic pulsatile GH pattern (vs direct rhGH replacement)
  • Standard RUO preparation: 10 mg vial + 2.0 mL bacteriostatic water → 5 mg/mL
  • Documented research dose: 2 mg once daily, subcutaneous
Human research

Tesamorelin's research context is anchored in its GHRH-analogue mechanism: pituitary GHRH-receptor activation drives the body's own pulsatile GH release, which in turn elevates hepatic IGF-1 and mediates the compound's characteristic effects on visceral fat, lipid profile, and lean mass.

Evidence level is Level B (moderate) — supported by a well-characterised mechanism and reproducible research-context effects in the GHRH-analogue peer-reviewed literature, without a formal RUO regulatory framework.


Tesamorelin is a research-use GHRH-analogue peptide, prepared as a lyophilized vial reconstituted with bacteriostatic water for subcutaneous research use.

Access is via research-supply or compounding-pharmacy channels; parameters (identity, mass, diluent, sterility, beyond-use date) should be verified from the dispensing source before use.

The mechanism (pituitary GHRH-receptor agonism → pulsatile GH → IGF-1 elevation) is well characterised. Research-context effects on visceral fat, body composition, and lipid profile are reproducible across the peer-reviewed GHRH-analogue literature.

Safety considerations

The following are commonly reported for GHRH-analogue compounds in the research literature.

  • Injection-site reactions — Erythema, pruritus, pain, bruising — most common
  • Arthralgia
  • Myalgia
  • Peripheral oedema
  • Carpal tunnel-like symptoms — Paresthesia in hands or feet
  • Fluid retention
  • Hyperglycaemia / impaired glucose tolerance — Attributable to IGF-1 elevation; relevant to research participants with diabetes or prediabetes
  • Rash
  • Rare: severe hypersensitivity — Discontinue and seek medical care immediately

The contraindications below are drawn from the general safety profile for GHRH-analogue compounds. The dominant safety signals reported in the research literature are injection-site reactions and the metabolic effects of IGF-1 elevation.

  • Disruption of the hypothalamic-pituitary axis (hypophysectomy, hypopituitarism, pituitary tumour or surgery, head irradiation, head trauma)
  • Active malignancy — theoretical risk from IGF-1 elevation
  • Pregnancy
  • Known hypersensitivity to tesamorelin

Monitoring

  • Baseline and periodic IGF-1 measurements
  • Fasting glucose and HbA1c in research participants with diabetes or prediabetes
  • Signs of fluid retention or new-onset carpal tunnel-like symptoms
  • Injection-site reactions across rotation sites
Frequently asked questions
  • How is tesamorelin different from rhGH (recombinant human growth hormone)?

    Recombinant human GH (rhGH) replaces GH directly, bypassing the pituitary. Tesamorelin acts one step upstream: it stimulates the pituitary to release its own GH in physiologic pulses. Because the negative-feedback loops through IGF-1 and somatostatin remain intact, tesamorelin generally shows a milder side-effect profile than high-dose rhGH — though it is still associated with IGF-1 elevation, fluid retention, and glucose changes.

  • What is the standard research preparation?

    The documented preparation reconstitutes a 10 mg vial with 2.0 mL of bacteriostatic water, giving a 5 mg/mL solution. The documented research amount is 2 mg once daily by subcutaneous injection — 0.4 mL at that concentration.

  • How long does a reconstituted vial last?

    The reconstituted vial is usable for approximately 7–10 days refrigerated. Only mix one vial at a time — do not reconstitute a full month's supply at once. Discard if the solution ever becomes cloudy or discoloured.

  • What happens to IGF-1 during tesamorelin research?

    IGF-1 rises during administration; this is the expected pharmacology of a GHRH-analogue signal driving pituitary GH release. Research contexts commonly monitor IGF-1 periodically to keep it within an age-appropriate reference range.

  • How does tesamorelin compare to sermorelin?

    Sermorelin is a shorter GHRH(1-29) analogue with a very short half-life (~10–20 minutes). Tesamorelin is a full-length GHRH(1-44) analogue with a stabilising trans-3-hexenoyl modification and a somewhat longer half-life (~26–38 minutes). See the Tesamorelin vs Sermorelin comparison for a structured side-by-side.

References
  1. [1]

    Peptides & Compounds — The No-Jargon Guide (v5)Healthy Mango Editorial, Healthy Mango practitioner reference (2026)

Laboratory Reference Notice

This section summarizes procedures and study parameters reported in published scientific literature and laboratory protocols. It is provided for educational and research reference only and must not be interpreted as medical advice, clinical guidance, or instructions for personal use.

Editorial review pending

This page has not yet undergone external editorial review. Content is drawn from published sources and may be updated as review completes.

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