Healing & Recovery

Thymosine Bêta-4 5mg Protocole du Flacon

Reconstitution et dosage d'un flacon de 5mg de Thymosine Bêta-4 — concentration par volume d'eau BAC, les unités à prélever sur une seringue U-100 et le tableau de dose sourcé.

Également appeléTB4
Voiesubcutaneous
Thymosine Bêta-4 — Tableau de dose
Chaque ligne citée
ObjectifDoseFréquenceDuréePreuveSource
Aucune posologie évaluée par les pairs n'est encore publiée pour ce composé — voir la référence non clinique ci-dessous.
À des fins de recherche et d'éducation uniquement. Pas un avis médical.
Protocole de Référence Non Clinique de Thymosine Bêta-4
Non clinique
Aucune posologie approuvée par les régulateurs ou issue d'essais cliniques n'existe pour Thymosine Bêta-4. Les plages ci-dessous sont des protocoles de référence éducatifs compilés à partir de Pratique communautaire — pas d'essais humains contrôlés. Usage recherche uniquement.
ObjectifDoseFréquenceDuréeBase
Recovery — loading2–2.5 mg2×/week4–6 weeksPratique communautaireCommunity range mirroring TB-500 practice; taper to maintenance after loading.
Ces chiffres ne constituent pas un avis médical et peuvent changer à mesure que les preuves évoluent ; le niveau augmente quand des études paraissent. Dernière révision le Jun 24, 2026
Comment Reconstituer Thymosine Bêta-4
U-100

Approche courante : reconstituer un flacon d'exemple de 5 mg de Thymosine Bêta-4 avec de l'eau bactériostatique. Le tableau indique la concentration à trois volumes d'eau courants — utilisez le calculateur de cette page pour votre dose cible spécifique.

Eau BACConcentrationVolume / doseUnités (U-100)
1 mL5 mg/mL
2 mL2.5 mg/mL
3 mL1.67 mg/mL

Les unités indiquées correspondent à une seringue à insuline U-100 (1 mL = 100 unités). Vérifiez toujours vos propres calculs avant de prélever.

What is Thymosin Beta-4?

Thymosin Beta-4 — often shortened to TB4 — is a small, naturally occurring protein found inside almost every cell in the human body. It weighs only about 5 kilodaltons, making it tiny even by protein standards.[6] Scientists first found it while studying thymus gland extracts in search of immune hormones, but it turned out to be something far more versatile.[3] Today it is classified as a research peptide — meaning it is studied in laboratory and preclinical settings but is not approved for human therapeutic use.

TB4 belongs to a family called the beta-thymosins, a group of closely related peptides that show up across many species, suggesting they do something important that evolution decided to keep.[3]

How Thymosin Beta-4 Works

Think of a cell like a busy construction site. The scaffolding holding everything together is made of a protein called actin. For a cell to move, heal a wound, or form new tissue, that scaffolding has to be constantly torn down and rebuilt. TB4's primary known job is to act like a holding bay for spare actin bricks — it grabs loose actin monomers (the individual building blocks), keeps them ready, and releases them exactly when the cell needs to build or repair.[3][5]

Here's the interesting part: TB4 is almost completely unfolded when it floats freely in a cell. That floppy, flexible shape may actually be a feature, not a bug — it lets TB4 grab onto many different molecular targets, not just actin.[6] Researchers think this flexibility explains why TB4 appears to influence so many different biological processes, from inflammation to blood vessel growth to tissue repair.

One key signaling pathway TB4 influences is called the SRF-MRTF-G-actin pathway — a molecular relay that controls how cells move and how genes related to tissue remodeling get switched on or off.[4]

What the Research Shows

Heart and Blood Vessel Research

Some of the most detailed preclinical work on TB4 involves the heart. Studies in animal models of cardiac injury found that TB4 treatment reduced the size of damaged tissue after a heart attack and helped preserve the heart's pumping ability.[4] Researchers also observed that TB4 appeared to promote new blood vessel growth — a process called angiogenesis — and reduce scarring (fibrosis) in heart tissue.[4] These effects were seen both when TB4 was injected and when animals were genetically engineered to produce extra TB4.[4]

Neuroscience and Alzheimer's Disease Research

A 2025 study used cutting-edge brain organoids — tiny lab-grown brain-like structures made from human stem cells — to model familial Alzheimer's disease. The researchers found that TB4 levels dropped sharply in diseased neurons. When they added TB4 back, it reduced the buildup of beta-amyloid (the toxic protein clumps linked to Alzheimer's) and helped restore normal neuron development. The same protective effects were seen in a mouse model of Alzheimer's.[1] This positions TB4 as a compound of interest for neurodegeneration research, though much more study is needed.

Joint and Musculoskeletal Research

A small retrospective clinical study examined intra-articular (into-the-joint) injections for knee pain. Some patients received a combination of BPC-157 and TB4. Overall, 87.5% of patients across all treatment groups reported significant pain relief, though the study was primarily focused on BPC-157 and was not designed to isolate TB4's specific contribution.[2] The authors called for larger, better-controlled studies.

Anti-Inflammatory and Stem Cell Effects

Early research flagged TB4 as both an anti-inflammatory agent and an inhibitor of bone marrow stem cell overproliferation, hinting at a role in immune regulation.[6] The precise molecular mechanisms behind these effects are still being worked out by researchers.

What Thymosin Beta-4 Is Being Studied For

  • Cardiac tissue repair and protection after ischemic injury[4]
  • New blood vessel formation (angiogenesis) and reduction of cardiac fibrosis[4]
  • Neuroprotection and Alzheimer's disease pathology[1]
  • Wound healing and tissue regeneration[3]
  • Joint and musculoskeletal recovery (in combination protocols)[2]
  • Actin cytoskeleton regulation and cell motility[5]
  • Anti-inflammatory and immune-modulating effects[6]

How Thymosin Beta-4 Is Dosed in Research

Dosing protocols for TB4 vary considerably across preclinical studies — differences in animal models, routes of administration, and research goals make direct comparisons tricky. Because there is no single established human research dose, this page includes a dosage chart summarizing the ranges seen in published research, along with a calculator to help researchers work out volume-based calculations from their specific vial concentrations. Always refer to the chart and your study protocol rather than applying any single figure universally.

Mixing and Storing Thymosin Beta-4

TB4 is typically supplied as a lyophilized powder — that just means it has been freeze-dried for stability. To prepare it for research use, it is reconstituted by slowly adding bacteriostatic water (water with a small amount of benzyl alcohol to prevent bacterial growth) directly to the vial. Aim the liquid at the glass wall, not the powder, to avoid foaming. Gently swirl — never shake — until the powder is fully dissolved. Once mixed, store the vial in a refrigerator (around 2–8 °C / 36–46 °F) and use within a few weeks; for longer storage, the unreconstituted powder can be kept frozen. Repeated freeze-thaw cycles degrade the peptide, so aliquoting into single-use portions before freezing is standard practice in research settings.

Sources

  1. Thymosin beta 4 as an Alzheimer disease intervention target identified using human brain organoids. — Stem cell reports, 2025. PMID 40816274.
  2. Intra-Articular Injection of BPC 157 for Multiple Types of Knee Pain. — Alternative therapies in health and medicine, 2021. PMID 34324435.
  3. beta-Thymosins. — Annals of the New York Academy of Sciences, 2007. PMID 17468232.
  4. Cardioprotection by Thymosin Beta 4. — Vitamins and hormones, 2016. PMID 27450736.
  5. The beta-thymosin enigma. — Annals of the New York Academy of Sciences, 2007. PMID 17495248.
  6. Thymosin beta 4 interactions. — Vitamins and hormones, 2003. PMID 12852258.
Matériel Nécessaire

Un kit type de reconstitution et d'injection comprend :

  • Flacon(s) de peptide lyophilisé — assez pour tout le protocole
  • Eau bactériostatique pour la reconstitution
  • Seringues à insuline U-100 (une par injection)
  • Tampons d'alcool
  • Un conteneur pour objets tranchants pour une élimination sûre
Conservation, Manipulation et Injection

Conservation et manipulation

Le peptide lyophilisé est généralement conservé au réfrigérateur et à l'abri de la lumière ; une fois reconstitué avec de l'eau bactériostatique, il est habituellement réfrigéré à 2–8 °C et utilisé en quelques semaines. Suivez une technique aseptique pour éviter toute contamination, conformément aux recommandations de sécurité des injections du CDC.

Technique d'injection

Les injections sous-cutanées se font généralement dans la graisse de l'abdomen ou de la cuisse : nettoyez le site avec un tampon d'alcool, pincez la peau, insérez à l'angle recommandé et alternez les sites pour protéger les tissus. Consultez MedlinePlus pour un guide pas à pas de l'injection sous-cutanée.

Références générales de technique aseptique et d'injection à usage éducatif — elles ne sont spécifiques à aucun composé de recherche.

Thymosine Bêta-4 FAQ

What is Thymosin Beta-4?
Thymosin Beta-4 (TB4) is a naturally occurring small protein — about 5 kilodaltons in size — found in virtually all human cells.[6] It was originally discovered in thymus gland extracts but is now understood to play a broad role in actin regulation, wound healing, and tissue repair.[3] As a research peptide, it is studied in laboratory and preclinical settings only and is not approved as a therapeutic drug.
How does Thymosin Beta-4 work?
TB4's best-understood job is sequestering actin monomers — essentially holding spare building blocks for the cell's structural scaffold until they're needed for repair or movement.[3][5] Because TB4 has a flexible, largely unfolded shape, it can also interact with many other molecular targets, which likely explains its wide-ranging effects on inflammation, blood vessel growth, and cell signaling.[6]
What is Thymosin Beta-4 used for in research?
Researchers are studying TB4 across several areas: cardiac protection after ischemic injury,[4] promotion of new blood vessel growth and reduction of scar tissue in the heart,[4] neuroprotection in Alzheimer's disease models,[1] general wound healing and tissue regeneration,[3] and joint recovery when combined with other peptides.[2] All findings are preclinical or from small early studies.
How is Thymosin Beta-4 dosed in research?
Dosing ranges vary widely between preclinical studies because research goals, animal models, and administration routes differ. There is no single established human dose. Refer to the dosage chart and calculator on this page for ranges observed in published literature, and always base any research protocol on peer-reviewed sources and institutional guidelines.
How do you reconstitute Thymosin Beta-4?
TB4 comes as a freeze-dried powder. Add bacteriostatic water slowly down the side of the vial — don't aim straight at the powder — and gently swirl until fully dissolved. Never shake it. Once reconstituted, store in the refrigerator (2–8 °C) and use within a few weeks. Keep unreconstituted vials frozen, and avoid repeated freeze-thaw cycles, which degrade the peptide.
Is Thymosin Beta-4 safe?
TB4 is a research compound, not an approved medication, so comprehensive human safety data does not yet exist. Preclinical animal studies have generally reported it as well tolerated, and it is naturally present in human cells.[6] However, the absence of large-scale human clinical trials means its full safety profile is unknown. This page is for educational and research reference only — consult a qualified professional before any use.