Tablas de Dosis  ›  Cartalax
Bioregulator

Cartalax Guía & Tabla de Dosis

A short peptide bioregulator (Ala-Glu-Asp) from the Khavinson series studied for vascular and connective-tissue support.

También conocido comoAED, Ala-Glu-Asp
FórmulaC12H19N3O8
CAS307297-39-8
Víasubcutaneous
Cartalax — Tabla de dosis
Cada fila citada
ObjetivoDosisFrecuenciaDuraciónEvidenciaFuente
Los datos de dosis citados de este compuesto se están compilando.
Solo para uso de investigación y educativo. No es consejo médico.
Cómo Reconstituir Cartalax
U-100

Enfoque común: reconstituir un vial de ejemplo de 5 mg de Cartalax con agua bacteriostática. La tabla muestra la concentración en tres volúmenes de agua comunes — usa la calculadora de esta página para tu dosis objetivo específica.

Agua BACConcentraciónVolumen / dosisUnidades (U-100)
1 mL5 mg/mL
2 mL2.5 mg/mL
3 mL1.67 mg/mL

Las unidades mostradas son para una jeringa de insulina U-100 (1 mL = 100 unidades). Verifica siempre tus propios cálculos antes de cargar.

Tamaños de Vial de Cartalax

Reconstitución resuelta para cada tamaño común de vial:

What is Cartalax?

Cartalax is a tiny peptide — a miniature chain of just three amino acids: alanine, glutamic acid, and aspartic acid. Scientists abbreviate it Ala-Glu-Asp, or simply AED. It belongs to a family of short signalling peptides developed by Russian researcher Vladimir Khavinson and colleagues. These are often called bioregulators — meaning they are thought to nudge the body's own regulatory processes rather than force a dramatic chemical change. Cartalax is specifically being studied for its potential role in supporting vascular tissue (blood vessels) and connective tissue (the structural scaffolding of the body, including cartilage). It is a research compound only and is not approved for human therapeutic use.

How Cartalax Works

Think of your DNA as a vast library of books. Most of the time, only certain books are open and being read. Short peptide bioregulators like Cartalax are thought to act a bit like a librarian — they may help select which books get opened. The scientific term for this is epigenetic regulation. Specifically, Cartalax is believed to interact with certain stretches of DNA, potentially influencing how genes involved in connective and vascular tissue maintenance are expressed. Because it is so small (just three amino acids), it can potentially slip into the cell nucleus and interact directly with genetic material — a property that makes the Khavinson peptides unusual and scientifically interesting. This is still an active area of investigation, and much of the work has been done in laboratory and animal models.

What the Research Shows

It is important to be upfront: the provided source abstracts for this page cover antiepileptic drug research and do not contain direct data on Cartalax. The published Cartalax research exists primarily in Russian-language journals and specialised peptide biology literature not represented in the sources listed here. Because our editorial standards require every factual claim to be tied to a provided source, we cannot cite specific Cartalax study outcomes on this page beyond what is supported. We will update this section as sourced evidence becomes available. What we can say is that the Khavinson peptide programme has produced a large body of work on short-chain bioregulators and tissue-specific gene regulation — Cartalax sits within that tradition, targeting vascular and connective-tissue pathways.

What Cartalax Is Being Studied For

Researchers investigating Cartalax are generally interested in the following areas:

  • Vascular tissue support — how the peptide may influence the biology of blood vessel walls, including endothelial cell behaviour.
  • Connective tissue and cartilage biology — whether it affects the cells (fibroblasts, chondrocytes) that maintain structural tissues.
  • Ageing and tissue maintenance — the broader Khavinson programme examines whether short peptides can slow age-related decline in tissue function.
  • Gene expression studies — laboratory work exploring which specific genes Cartalax may switch on or off in relevant cell types.

All of these are research contexts. None represents an approved medical application. This compound is for laboratory and preclinical research purposes only.

How Cartalax Is Dosed in Research

Dosing protocols for Cartalax vary across the published preclinical literature, and no standardised human dosing exists. For a full breakdown of the doses and schedules observed in research settings, please refer to the dosage chart on this page. You can also use the calculator to work out reconstitution volumes for your specific vial size. As with all research peptides, the dosage chart is provided for reference and informational purposes only — it does not constitute medical advice or a treatment recommendation.

Mixing and Storing Cartalax

Cartalax is typically supplied as a lyophilised (freeze-dried) powder in a sealed vial. Here is a plain-language overview of standard research reconstitution practice:

  • Reconstitution solvent: Bacteriostatic water (water with a small amount of benzyl alcohol) is most commonly used. Sterile water is an alternative for immediate use.
  • How to mix: Draw the chosen solvent into a syringe and inject it slowly down the side of the vial — never shoot it directly onto the powder, as this can damage the peptide. Gently swirl (do not shake) until the powder fully dissolves. The solution should be clear.
  • Storage before reconstitution: Keep lyophilised vials in a cool, dry place away from light. Many researchers store them at −20 °C (a standard freezer) for long-term stability.
  • Storage after reconstitution: Reconstituted peptide solution should be refrigerated at 2–8 °C and typically used within 2–4 weeks. Avoid repeated freeze-thaw cycles, which can degrade the peptide.
  • Handling: Use sterile technique throughout. Inspect the solution before each use — discard if it appears cloudy or discoloured.

These are general best-practice guidelines for research peptide handling. Always follow the specific instructions provided with your research material.

Sources

  1. Teratogenicity of Antiepileptic Drugs. — Clinical psychopharmacology and neuroscience : the official scientific journal of the Korean College of Neuropsychopharmacology, 2017. PMID 28138106.
  2. Antiepileptic drug monotherapy: pediatric concerns. — Seminars in pediatric neurology, 2005. PMID 16114174.
  3. Treatment strategies for focal epilepsy. — Expert opinion on pharmacotherapy, 2009. PMID 19351225.
  4. Anti-epileptic medication and bone health. — Osteoporosis international : a journal established as result of cooperation between the European Foundation for Osteoporosis and the National Osteoporosis Foundation of the USA, 2007. PMID 17091219.
  5. Pregnancy and epilepsy. — Continuum (Minneapolis, Minn.), 2014. PMID 24492811.
  6. Stopping antiepileptic drugs in seizure-free patients. — Current opinion in neurology, 2014. PMID 24556735.
Materiales Necesarios

Un kit típico de reconstitución e inyección incluye:

  • Vial(es) de péptido liofilizado — suficiente para todo el protocolo
  • Agua bacteriostática para la reconstitución
  • Jeringas de insulina U-100 (una por inyección)
  • Toallitas de alcohol
  • Un contenedor de objetos punzantes para desecho seguro
Almacenamiento, Manejo e Inyección

Almacenamiento y manejo

El péptido liofilizado se suele mantener refrigerado y protegido de la luz; una vez reconstituido con agua bacteriostática, normalmente se refrigera a 2–8 °C y se usa en pocas semanas. Sigue la técnica aséptica para evitar la contaminación, según la guía de seguridad en inyecciones de CDC.

Técnica de inyección

Las inyecciones subcutáneas suelen aplicarse en la grasa del abdomen o el muslo: limpia el sitio con una toallita de alcohol, pellizca la piel, inserta en el ángulo recomendado y rota los sitios para proteger el tejido. Consulta MedlinePlus para una guía paso a paso de inyección subcutánea.

Referencias generales de técnica aséptica e inyección para uso educativo — no son específicas de ningún compuesto de investigación.

Cartalax Preguntas

What is Cartalax?
Cartalax (also written AED) is a three-amino-acid peptide — alanine, glutamic acid, aspartic acid — developed as part of the Khavinson bioregulator series. It is studied in laboratory and preclinical settings for its potential effects on vascular and connective tissue biology. It is a research compound only and is not approved for any medical use.
How does Cartalax work?
Cartalax is thought to act as an epigenetic regulator — essentially influencing which genes are switched on or off in relevant tissue cells. Its very small size may allow it to interact directly with DNA in the cell nucleus, potentially affecting gene expression in vascular and connective tissue. This mechanism is still being studied in laboratory models.
What is Cartalax used for in research?
Research interest in Cartalax centres on vascular tissue support, connective tissue and cartilage biology, age-related tissue maintenance, and gene expression studies in relevant cell types. All applications are strictly preclinical or experimental. No therapeutic use in humans has been approved.
How is Cartalax dosed?
Dosing varies across preclinical studies, and no validated human protocol exists. See the dosage chart on this page for a summary of doses observed in research literature, and use the on-page calculator to work out reconstitution volumes. This information is for reference only and does not constitute medical advice.
How do you reconstitute Cartalax?
Add bacteriostatic or sterile water slowly down the inside wall of the vial — never directly onto the powder. Swirl gently until fully dissolved. Store the reconstituted solution at 2–8 °C and use within 2–4 weeks. Keep unmixed powder frozen at −20 °C. Always use sterile technique and discard any cloudy or discoloured solution.
Is Cartalax safe?
Cartalax has not been through the clinical trial process required to establish safety and efficacy in humans. Available data come from laboratory and animal studies. No conclusions about human safety can be drawn from current evidence. It is sold strictly for research purposes. Always consult a qualified professional before handling any research compound.