CJC-1295 No DAC – 5mg
$59.00
CJC-1295 (No DAC) is a ≥99% pure peptide supplied as a lyophilized powder for in-vitro research. Commonly studied for its interaction with GHRH receptors and short-duration endocrine signaling models.
For laboratory use only—no human or veterinary applications.
19 in stock
| Title | Range | Discount |
|---|---|---|
| 5% off | 5 - 9 | $56.05 |
| 10% off | 10 + | $53.10 |
CJC-1295 (No DAC) – Research Peptide
CJC-1295 (No DAC) is a synthetic peptide analog studied in scientific literature for its interaction with growth hormone–related signaling pathways. Unlike its DAC-modified counterpart, this version is designed without a drug affinity complex, resulting in a shorter activity profile that allows researchers to investigate more controlled and transient receptor interactions within experimental models.
In research settings, CJC-1295 (No DAC) has been explored for its interaction with growth hormone–releasing hormone (GHRH) receptors, making it a compound of interest in studies focused on pulsatile signaling, receptor binding dynamics, and short-duration peptide activity. Its structure allows for precise examination of timing-dependent signaling mechanisms and pathway responsiveness.
This peptide is supplied as a lyophilized powder, enabling accurate handling, storage, and reconstitution in controlled laboratory and analytical environments. Its shorter-acting profile makes it particularly useful for researchers studying intermittent signaling patterns and peptide-receptor engagement over defined timeframes.
At Kinesin Peptide Research, CJC-1295 (No DAC) is provided strictly for research purposes only and is intended for use in laboratory settings by qualified professionals. Each batch is produced with an emphasis on purity, consistency, and research-grade standards to support reliable and reproducible experimental outcomes.
Research Applications May Include:
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GHRH receptor interaction studies
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Pulsatile and short-duration signaling models
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Endocrine and hormone pathway research
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Peptide-receptor binding dynamics
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Time-dependent signaling and pathway analysis



