• Research Use Only (RUO)
  • Free shipping on orders over $200
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  • Shipping days: Monday–Friday
  • Research Use Only (RUO)
  • Free shipping on orders over $200
  • Expect 24 hours for order processing
  • Shipping days: Monday–Friday

Semax 5MG

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Semax 5mg is a high-purity synthetic neuropeptide designed for cognitive and neuroscience research. It supports investigation into memory formation, neuroplasticity, and neurotrophic signaling pathways. Supplied as a lyophilized peptide powder for controlled laboratory use only. Strictly intended for research applications, not for human consumption

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⚠️ RESEARCH USE ONLY

This product is for R&D purposes only and is not approved for human or veterinary use.

Semax 5mg – Synthetic Neuropeptide for Cognitive Research

Quantum Biogenix presents research-grade Semax 5mg, a synthetic peptide derived from the adrenocorticotropic hormone (ACTH) fragment, widely studied for its role in cognitive function and neuroprotective research. Semax is utilized in controlled laboratory settings to investigate neuroplasticity, memory formation, and stress-response pathways.

Semax has gained significant attention in neuroscience research due to its influence on brain-derived neurotrophic factor (BDNF) expression and neurotransmitter regulation. Experimental models suggest its involvement in learning, attention, and adaptive cognitive responses, making Semax a valuable research compound for neurological and behavioral studies.

Product Name Semax
Category Neuropeptide Research Compound
Form Lyophilized Peptide Powder
Content 5mg
Purity ≥98% HPLC Verified
Application Neuroscience & Cognitive Research
Usage Laboratory Research Only

Scientific Overview of Semax

  • Synthetic analog of an ACTH-derived neuropeptide
  • Modulates neurotrophic and neurotransmitter signaling pathways
  • Supports investigation of memory and learning mechanisms
  • Widely used in cognitive and neuroplasticity research models
  • High-purity peptide suitable for laboratory experimentation

Key Research Applications

  • Cognitive Function Studies – Investigation of learning, memory consolidation, and attention-related processes.
  • Neuroplasticity Research – Evaluation of synaptic adaptation and neuronal growth signaling pathways.
  • BDNF Pathway Analysis – Study of neurotrophic factor expression and brain resilience mechanisms.
  • Stress-Response Models – Examination of adaptive neurological responses to environmental stressors.
  • Behavioral Neuroscience – Assessment of cognitive performance and behavioral outcomes in experimental models.

Laboratory Handling & Storage

  • Form: Lyophilized peptide powder
  • Purity: ≥98% (HPLC verified)
  • Recommended Storage: Store frozen or refrigerated, protected from moisture and light
  • Handling: Reconstitute using laboratory-grade solvents under sterile conditions
  • Stability: Maintain sealed and dry until research use

Mechanism of Research Interest

Semax exerts its research relevance through modulation of neurotrophic signaling pathways, particularly those associated with brain-derived neurotrophic factor (BDNF). By influencing neurotransmitter balance and synaptic plasticity, Semax supports investigation into learning efficiency, memory retention, and adaptive cognitive function. These mechanisms position Semax as an important tool in experimental neuroscience and cognitive research models.

Why Choose Quantum Biogenix?

  • High-purity research peptides
  • Batch-tested laboratory-grade compounds
  • Consistent quality and verification standards
  • Research-focused formulation practices
  • Professional laboratory supply chain handling

Research Use Only Notice

This product is supplied strictly for laboratory research use. It is not intended for human consumption, medical use, or veterinary application. Researchers must comply with institutional safety and handling regulations.

Scientific References

  1. Ashmarin I.P. et al. (1997). Semax and regulation of cognitive function. Neuroscience and Behavioral Physiology.
  2. Gusev E.I. et al. (2003). Neuroprotective properties of ACTH-derived peptides. Journal of Neurochemistry.
  3. Andreeva L.A. et al. (2010). Neuropeptides and neuroplasticity mechanisms. Neuroscience Letters.

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