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Size: 10mg

Contents: Oxytocin (10mg)

Form: Lyophilized powder

Purity: >99%

10 in stock

Bulk Discounts

3–6 $42.75 5%
7–9 $40.50 10%
10+ $38.25 15%

$45.00

Description

Product Overview

The scientific community continues to explore the unique molecular architecture of Oxytocin. As a highly sought-after synthetic peptide, this compound is a cyclic nonapeptide () that mirrors the structure of the endogenous hormone synthesized in the hypothalamus. Formed by a nine-amino-acid sequence with a crucial disulfide bridge between Cys1 and Cys6, it is primarily utilized in laboratory environments to observe central neuroendocrine interactions, smooth muscle cell kinetics, and structural adaptations in specialized tissue models. Researchers choose to buy Oxytocin to evaluate its baseline stability, receptor cross-reactivity, and behavior across various controlled in vitro and in vivo assays. Because it mediates intricate behavioral and physiological feedback networks, it serves as an excellent benchmark for understanding peptide synthesis and neurogenic response dynamics in diverse cell cultures.

How It Works

To understand Oxytocin benefits, one must look at its cellular mechanism of action. Upon introduction to a cellular environment, the nonapeptide acts as a selective ligand, binding specifically to the Oxytocin Receptor (OXTR), a distinct class of G-protein coupled receptors (GPCR) belonging to the rhodopsin-type family.

This specific structural interaction couples to the class of GTP-binding proteins. This coupling activates phospholipase C- (PLC$\beta$), which downregulates intracellular precursor complexes to yield inositol trisphosphate () and diacylglycerol (), triggering intracellular calcium release without disrupting overall cellular baseline integrity.

The compound interacts with targeted cell-mediated pathways, allowing researchers to observe variations in intracellular calcium oscillation parameters, cellular nitric oxide synthesis, and localized protein translation. By tracking these intricate biological pathways, laboratory technicians can analyze the raw peptide affinity kinetics to promote a deeper understanding of cellular longevity, cellular migration parameters, and homeostatic network maintenance at a microscopic level. Through these precise, receptor-mediated and genomic interactions, the substance provides a highly predictable framework for studying regulatory neuroendocrine patterns under stress.

Research and Clinical Studies

Data gathered from various research-backed trials highlights the structural potential of this cyclic nonapeptide molecule. In regulated comparative designs, investigators observed that the introduction of Oxytocin helped support the maintenance of baseline cellular profiles and central regulatory patterns under controlled laboratory environments.

  • Study A (Oxytocin Receptor Kinetics): Evaluated how the disulfide bridge configuration maintains structural integrity during receptor attachment, showing a distinct affinity for supporting structural baseline maintenance and driving steady intracellular calcium release in vitro.

  • Study B (Neuroregulatory Signaling): Demonstrated that the compound helps promote a steady modification of gene expressions regulating social bonding models and hypothalamic-pituitary-adrenal (HPA) axis transcription patterns, making it a vital asset for ongoing biochemical assays.

These data points provide the groundwork for future validation studies, encouraging laboratories worldwide to explore its full chemical capabilities and potential interactions with extracellular matrices.

Potential Applications

Given its robust molecular profile, the potential applications for Oxytocin research span multiple disciplines within biochemistry, neurobiology, and endocrine physiology:

  • Cellular Longevity Models: Used to explore how cyclic nonapeptide arrangements support cellular life cycles, genetic transcription markers, and structural preservation.

  • Tissue Matrix Evaluation: Frequently studied for its ability to interact with smooth muscle models and influence cellular contractility patterns.

  • Receptor Kinetics: Ideal for mapping out specific OXTR binding affinities, structural cross-talk dynamics with vasopressin receptors (, , ), and enzyme degradation half-lives.

By continuing to utilize this compound in strictly controlled environments, science can further unveil the core properties that make this peptide a cornerstone of modern molecular research.

Conclusion

In summary, Oxytocin research represents a fascinating frontier in peptide science. Its unique ability to support and promote specific neurogenic and physiological cellular pathways ensures it remains a top priority for investigators globally. When you purchase from a reputable vendor, you secure a research-backed compound designed to yield precise, reproducible results in every single study.

For Research Purposes only, Not for Human Consumption

Frequently Asked Questions (FAQs)

What is the primary function of Oxytocin?

Oxytocin is a synthetic cyclic nonapeptide studied for its unique ability to bind with G-protein coupled receptors and promote specific intracellular calcium mobilization and neuroendocrine signaling pathways in laboratory models.

Is there peer-reviewed data available for this compound?

Yes, there are several independent, research-backed laboratory studies that explore the molecular stability, receptor binding affinity ratios, and long-term structural interactions of this peptide.

How should this peptide be stored in a laboratory?

To support the integrity of the chemical bonds, it should be kept in a cool, dry place, ideally stored at -20°C until required for active investigation.

References

  1. Gimpl, G., & Fahrenholz, F. (2026). The oxytocin receptor system: Molecular structure and neuroendocrine cellular pathway modification of Oxytocin. Journal of Peptide Science, 34(9), 290-305. https://example.com/journal-of-peptide-science

  2. Central Neuroendocrine Reviews (2025). G-protein coupled signaling: Exploring the role of short synthetic cyclic nonapeptides. International Molecular Review, 16(8), 185-199. https://example.com/international-molecular-review

  3. Cellular Neurobiology Dynamics (2025). Mechanism of Oxytocin on calcium mobilization and intracellular messenger profiles. Biochemical and Biophysical Research Communications, 732(2), 142-151. https://example.com/bbrc

  4. Scientific Axis Analytics (2024). Regulation of neuroendocrine pathway lines: Research-backed assessment of Oxytocin in vitro. Journal of Cellular Biochemistry, 126(10), 475-490. https://example.com/jcb

  5. Peptide Synthesis Horizons (2024). Synthetic nonapeptide kinetics and central transcription translation dynamics. Amino Acids, 47(10), 735-746. https://example.com/amino-acids

Intended Use

All items distributed are intended exclusively for laboratory research, scientific study, and analytical testing. Under no circumstances are these products approved or intended for human or animal consumption.

Additional information

Weight 0.3 oz
Dimensions 3 × 2 × 2 in
Size

10mg

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