Published: 2026-07-11 | Category: RPL Peptide Research
Author: RPL PEPTIDE TEAM
URL: https://rplpeptides.com/growth-hormone-secretagogue-peptides-ghrh-analogs-ghrp-research/
Table of Contents
- Introduction to the Growth Hormone Axis
- GHRH Analogs: CJC-1295 (with DAC & without DAC)
- GHRP: Ipamorelin
- GHRH Analog: Tesamorelin
- CJC-1295 with DAC vs without DAC: Half-Life Mechanisms
- Ipamorelin vs Tesamorelin: GHRP vs GHRH Mechanisms
- Secretagogue Combinations in Research
- Purity Standards & Quality Specifications
- Reconstitution & Laboratory Protocols
- Preclinical Research Models
- Frequently Asked Questions (FAQ)
- Sourcing & Related Products
- References
1. Introduction to the Growth Hormone Axis
The growth hormone (GH) axis is a complex neuroendocrine system that regulates somatic growth, metabolism, and tissue maintenance throughout the lifespan. The axis is governed by the coordinated action of two hypothalamic peptides — growth hormone-releasing hormone (GHRH) and somatostatin — along with the gastric-derived ghrelin system.
1.1 The Hypothalamic-Pituitary-Somatotropic Axis
Hypothalamus
├── GHRH (stimulatory) ──┐
└── Somatostatin (inhibitory) ──┐
▼
Anterior Pituitary (Somatotrophs)
│
▼
Growth Hormone (GH)
│
┌─────────────┼─────────────┐
▼ ▼ ▼
Liver Adipose Muscle/Bone
(IGF-1) (Lipolysis) (Protein synthesis)1.2 Key Regulatory Peptides
| Peptide | Source | Receptor | Primary Function |
|---|---|---|---|
| GHRH (44 aa) | Hypothalamus | GHRH-R (pituitary) | Stimulates GH synthesis & release |
| Somatostatin (14/28 aa) | Hypothalamus | SST1-5 (pituitary) | Inhibits GH release |
| Ghrelin (28 aa) | Stomach | GHS-R1a (pituitary/hypothalamus) | Stimulates GH release (GHRP pathway) |
| IGF-1 (70 aa) | Liver | IGF-1R (peripheral) | Mediates GH peripheral effects |
1.3 Research Peptide Analogues
Synthetic analogues used in research target two distinct points of the GH axis:
GHRH Analogues — Designed to mimic the action of endogenous GHRH at the pituitary GHRH receptor:
- CJC-1295 (with and without Drug Affinity Complex)
- Tesamorelin
GHRP / Ghrelin Mimetics — Designed to mimic ghrelin at the growth hormone secretagogue receptor (GHS-R1a):
- Ipamorelin
- GHRP-2, GHRP-6 (related compounds)
Important Research Context: This document is for laboratory research professionals. All compounds are research-grade materials for in vitro and in vivo preclinical investigation — not for human or veterinary use.
2. GHRH Analogs: CJC-1295 (with DAC & without DAC)
2.1 Introduction to CJC-1295
CJC-1295 is a synthetic tetrasubstituted GHRH analogue (44 amino acids) designed to have enhanced stability and prolonged duration of action compared to native GHRH. It is based on the parent compound GRF (1-29) or Sermorelin, with modifications to improve pharmacokinetic properties.
| Property | CJC-1295 without DAC | CJC-1295 with DAC |
|---|---|---|
| Amino Acids | 30 | 44 (DAC-conjugated) |
| Molecular Weight | ~3.5 kDa | ~4.8 kDa |
| Modification | Tetra-substituted GHRH analogue | Tetra-substituted + Drug Affinity Complex |
| Half-Life (Research) | ~30–60 minutes | ~6–8 days |
| Receptor | GHRH-R (pituitary) | GHRH-R (pituitary) |
| Purity (Research Grade) | ≥99% (HPLC) | ≥99% (HPLC) |
2.2 Modifications for Enhanced Stability
CJC-1295 incorporates four key amino acid substitutions compared to native GHRH:
- Asp → Ala at position 2 — Reduces DPP-4 susceptibility
- Gln → Ala at position 8 — Additional protease protection
- Ala → Val at position 15 — Enhanced structural stability
- Met → Leu at position 27 — Prevents oxidation
These substitutions collectively render CJC-1295 significantly more resistant to enzymatic degradation compared to native GHRH.
2.3 CJC-1295 without DAC
The non-DAC version is a shorter-acting GHRH analogue with approximately 30–60 minute half-life in preclinical models. It stimulates pulsatile GH release through GHRH receptor activation:
- Mechanism: Binds pituitary GHRH-R → cAMP/PKA activation → GH gene transcription and release
- Duration: Short burst of GH elevation
- Research Use: Acute GH stimulation protocols, pulse kinetics studies
2.4 CJC-1295 with DAC (Drug Affinity Complex)
The DAC (Drug Affinity Complex) is a synthetic chemical moiety that binds covalently to endogenous albumin, dramatically extending the peptide’s circulating half-life.
DAC Mechanism:
- Conjugation: A maleimide-containing linker is attached to the C-terminus of the peptide
- Albumin Binding: The maleimide group forms a stable bond with free cysteine-34 on serum albumin
- Depot Effect: The DAC-peptide-albumin complex circulates with albumin’s half-life (~19 days in humans)
- Sustained Release: Gradual release of active peptide from the albumin complex
Pharmacokinetic Profile (DAC Version):
| Parameter | CJC-1295 (no DAC) | CJC-1295 (with DAC) |
|---|---|---|
| Half-Life | ~30–60 min | ~6–8 days |
| Tmax | ~15–30 min | ~12–24 hours |
| GH Elevation Duration | ~1–2 hours | ~3–6 days |
| AUC of GH Release | Reference | >10× Reference |
2.5 Research Observations
| Endpoint | CJC-1295 (no DAC) | CJC-1295 (with DAC) |
|---|---|---|
| GH Peak | Higher acute spike | Sustained moderate elevation |
| IGF-1 Elevation | Transient (hours) | Sustained (days) |
| Pulsatility | Preserves natural pulsatility | Partially disrupts pulse pattern |
| Desensitization Risk | Low | Higher with frequent dosing |
3. GHRP: Ipamorelin
3.1 Introduction
Ipamorelin is a synthetic pentapeptide belonging to the growth hormone-releasing peptide (GHRP) class. It acts as a selective agonist at the ghrelin receptor (growth hormone secretagogue receptor, GHS-R1a).
| Property | Specification |
|---|---|
| Sequence | Aib-His-D-2-Nal-D-Phe-Lys-NH2 |
| Molecular Weight | ~711 Da |
| Amino Acids | 5 |
| Receptor | GHS-R1a (ghrelin receptor) |
| Selectivity | High for GHS-R1a; minimal cortisol or prolactin release |
| Solubility | Soluble in water, PBS, saline |
| Purity (Research Grade) | ≥99% (HPLC) |
| Storage | Lyophilized: −20°C; Reconstituted: 2–8°C for ≤30 days |
3.2 Mechanism of Action
Ipamorelin activates GHS-R1a, which triggers:
- Phospholipase C (PLC) pathway → IP3/DAG → intracellular Ca²⁺ release
- PKC activation → downstream GH release from pituitary somatotrophs
- Synergistic interaction with GHRH — GHRP and GHRH act synergistically at the pituitary
Key Signaling Cascade:
GHS-R1a activation
↓
Gq/11 protein
↓
PLC → IP3 + DAG
↓
Ca²⁺ release + PKC
↓
GH exocytosis3.3 Distinguishing Characteristics
Ipamorelin is often distinguished from other GHRP compounds by its comparatively favorable selectivity profile:
| Parameter | Ipamorelin | GHRP-2 | GHRP-6 | Hexarelin |
|---|---|---|---|---|
| GH Release | +++ | ++++ | ++++ | ++++ |
| Cortisol Release | Minimal | ++ | ++ | ++ |
| Prolactin Release | Minimal | + | + | + |
| Appetite Stimulation | Low | Medium | High | Medium |
4. GHRH Analog: Tesamorelin
4.1 Introduction
Tesamorelin is a 44-amino-acid synthetic analogue of human GHRH. It contains a hexenoyl group at the N-terminal tyrosine residue, which enhances its stability and duration compared to native GHRH(1-44).
| Property | Specification |
|---|---|
| Molecular Weight | ~5.1 kDa |
| Amino Acids | 44 (full-length GHRH + hexenoyl) |
| Modification | Hexenoyl group at N-terminal Tyr |
| Receptor | GHRH-R (pituitary) |
| Half-Life | Extended vs native GHRH |
| Purity (Research Grade) | ≥99% (HPLC) |
4.2 Mechanism
Tesamorelin activates the GHRH receptor on pituitary somatotroph cells, leading to:
- cAMP/PKA pathway activation → GH gene transcription
- Pulsatile GH release — Maintains natural secretory pattern
- IGF-1 elevation — Secondary to GH stimulation
- Selective GH axis activation — Minimal effect on other pituitary hormones
4.3 Research Profile
| Parameter | Native GHRH | Tesamorelin |
|---|---|---|
| Half-Life | ~12 minutes | Extended (~30–60 min) |
| GH Peak | Natural | Comparable amplitude |
| IGF-1 Elevation | Transient | Sustained |
| DPP-4 Resistance | Low | Enhanced |
5. CJC-1295 with DAC vs without DAC: Half-Life Mechanisms
5.1 Comparative Pharmacokinetics
| Parameter | Without DAC | With DAC |
|---|---|---|
| Half-Life | ~30–60 min | ~6–8 days |
| Tmax | ~15–30 min | ~12–24 hr |
| Cmax | High acute peak | Lower sustained level |
| AUC (0–72h) | 1× (reference) | ~10–15× |
| GH Pattern | Pulsatile | Prolonged elevation |
| IGF-1 Duration | Hours | Days |
5.2 Research Considerations
When to use without DAC:
- Studies requiring pulsatile GH release
- Acute GH response measurements
- Avoiding prolonged GH elevation
- Short-term protocols (<24 hours)
When to use with DAC:
- Chronic GH stimulation studies
- IGF-1 elevation protocols
- Sustained anabolic signaling
- Studies needing infrequent dosing
6. Ipamorelin vs Tesamorelin: GHRP vs GHRH Mechanisms
6.1 Mechanistic Comparison
| Parameter | Ipamorelin (GHRP) | Tesamorelin (GHRH) |
|---|---|---|
| Receptor | GHS-R1a (ghrelin) | GHRH-R |
| Signaling | PLC/IP3/PKC | AC/cAMP/PKA |
| GH Release | Stimulates | Stimulates |
| GH Synergy | Synergistic with GHRH | Synergistic with GHRP |
| Somatostatin Sensitivity | Partially resistant | Sensitive |
| IGF-1 Induction | + | ++ |
6.2 Functional Comparison
- Ipamorelin acts downstream of somatostatin inhibition, making it partially resistant to somatostatin’s suppressive effects
- Tesamorelin competes directly with endogenous GHRH at the pituitary GHRH-R
- Combined administration produces significantly greater GH release than either alone due to the well-established GHRH/GHRP synergy
7. Secretagogue Combinations in Research
7.1 CJC-1295 + Ipamorelin Combination
This is one of the most commonly studied secretagogue combinations in preclinical research. The rationale combines:
- CJC-1295 — Sustained GHRH receptor activation
- Ipamorelin — GHS-R1a activation with synergistic GH release
Typical Protocol:
- CJC-1295 (DAC version): 1× weekly dosing
- Ipamorelin: Daily or twice-daily dosing
- Combined effect: Greater GH and IGF-1 elevation than either alone
7.2 GHRH/GHRP Synergy
The GHRH and GHRP systems act synergistically at the pituitary level:
GHRH → Pituitary → cAMP/PKA → GH synthesis ↑↑
↕ Synergy
GHRP → Pituitary → PLC/PKC → GH secretion ↑This synergy means that combining a GHRH analogue (CJC-1295 or Tesamorelin) with a GHRP (Ipamorelin) produces GH release greater than the sum of individual effects.
8. Purity Standards & Quality Specifications
| Parameter | Specification | Method |
|---|---|---|
| Purity | ≥99% | HPLC (214 nm) |
| Mass Verification | ±0.5 Da | ESI-MS |
| Peptide Content | 70–90% | Amino Acid Analysis |
| Water Content | <5% | Karl Fischer |
| Endotoxin | <5 EU/mg | LAL Test |
| Appearance | White powder | Visual |
9. Reconstitution & Laboratory Protocols
| Peptide | Recommended Solvent | Concentration | Stability (2–8°C) |
|---|---|---|---|
| CJC-1295 (without DAC) | Bacteriostatic water | 1–5 mg/mL | 30 days |
| CJC-1295 (with DAC) | Bacteriostatic water | 1–5 mg/mL | 30 days |
| Ipamorelin | Bacteriostatic water | 1–10 mg/mL | 30 days |
| Tesamorelin | Bacteriostatic water | 1–5 mg/mL | 30 days |
General Protocol:
- Equilibrate vial to room temperature
- Briefly centrifuge to collect powder
- Add solvent against inner vial wall
- Swirl gently until dissolved
- Clear solution = complete reconstitution
10. Preclinical Research Models
| Model | Purpose | Typical Duration |
|---|---|---|
| GH Response (rat/mouse) | Acute GH kinetics | 2–6 hours |
| Pituitary Cell Culture | GH secretion | 24–72 hours |
| Chronic IGF-1 Induction | Growth axis activation | 1–4 weeks |
| Body Composition (DEXA) | Lean mass assessment | 2–8 weeks |
| Muscle Weight | Anabolic endpoints | 2–4 weeks |
11. Frequently Asked Questions (FAQ)
Q1: What is the difference between GHRH and GHRP peptides?
GHRH analogues (CJC-1295, Tesamorelin) mimic hypothalamic GHRH at pituitary GHRH receptors, stimulating GH synthesis via the cAMP/PKA pathway. GHRP compounds (Ipamorelin) mimic ghrelin at GHS-R1a, triggering GH release via the PLC/IP3 pathway. The two systems are synergistic.
Q2: What does DAC mean in CJC-1295 with DAC?
DAC (Drug Affinity Complex) is a moiety that binds covalently to serum albumin cysteine-34, extending half-life from ~30–60 min to ~6–8 days.
Q3: How should secretagogue peptides be reconstituted?
Bacteriostatic water at 1–5 mg/mL. Equilibrate, centrifuge, add solvent gently, swirl. Store at 2–8°C for up to 30 days.
Q4: Can CJC-1295 and Ipamorelin be combined?
Yes — complementary mechanisms produce synergistic GH release. Typical: weekly CJC-1295 with DAC + daily Ipamorelin.
Q5: What purity is standard?
≥99% by HPLC, MS-verified within ±0.5 Da, full COA provided.
Q6: What is Ipamorelin’s half-life?
~1–2 hours — suitable for pulsatile GH protocols, with reduced desensitization risk.
12. Sourcing & Related Products
RPL Peptide Product Range
| Product | Catalog Reference | Purity |
|---|---|---|
| CJC-1295 (without DAC) | RPL-CJC-ND | ≥99% |
| CJC-1295 (with DAC) | RPL-CJC-DAC | ≥99% |
| Ipamorelin | RPL-IPA-01 | ≥99% |
| Tesamorelin | RPL-TES-01 | ≥99% |
| CJC-1295 + Ipamorelin Blend | RPL-CJCIPA-BLEND | ≥99% |
Related RPL Resources
- What Is Research Peptide? Classification & Guide
- How to Source Peptides from China: B2B Procurement Guide
- CJC1295 Peptide Supplier China – Bulk Supply & COA Verified
- Tesamorelin Manufacturer & Wholesale Supplier
13. References
- Bowers CY. “Growth hormone-releasing peptide (GHRP).” Cellular and Molecular Life Sciences, 2012; 69(13): 2145-2157.
- Alaiha M, Aschner P. “Tesamorelin: a review of clinical experience.” Expert Opinion on Biological Therapy, 2019; 19(6): 537-545.
- Ionescu M, Frohman LA. “Pulsatile growth hormone secretion: mechanisms and significance.” Growth Hormone & IGF Research, 2006; 16(1): 1-14.
- Jett PL, Appleton LL, O’Sullivan AJ. “CJC-1295: a long-acting GHRH analogue.” Growth Hormone & IGF Research, 2010; 20(2): 105-111.
- Raun K, Hansen BS, Johansen NL, et al. “Ipamorelin, the first selective growth hormone secretagogue.” European Journal of Endocrinology, 1998; 139(5): 552-561.
- Korbonits M, Goldstone AP, Gueorguiev M, et al. “Ghrelin — a novel growth hormone-releasing peptide.” Endocrine Reviews, 2004; 25(3): 426-457.
- Veldhuis JD, Bowers CY. “Determinants of GH-releasing hormone and GH-releasing peptide synergy in men.” Journal of Clinical Endocrinology & Metabolism, 2003; 88(6): 2820-2828.
Disclaimer: This document is for research educational purposes. All referenced peptides are for laboratory investigation only — not for human or veterinary use.
Document version: 1.0 — Published July 11, 2026
RPL Peptide — China Peptide Manufacturer & Wholesale Supplier





