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Thymosin Alpha 1 (Tα1) — Thymic Immunomodulatory Research Peptide | Klene Peptides

For Research Use Only | Not for Human or Veterinary Administration

Thymosin Alpha 1 (Tα1) is a 28-amino acid N-terminally acetylated peptide originally isolated from thymic tissue by Allan Goldstein and colleagues in 1977. Since its discovery, Tα1 has emerged as one of the most extensively characterized immunomodulatory peptides in biomedical research, with a body of evidence spanning antiviral defense, anti-tumor immunosurveillance, autoimmune modulation, and sepsis immune restoration. It is approved as a biopharmaceutical (Zadaxin®) in over 35 countries for indications including hepatitis B, hepatitis C, and non-small cell lung cancer, and holds FDA orphan drug designations in the United States. As an investigational research compound, Tα1 provides a uniquely well-characterized mechanistic template for studying innate and adaptive immune system coordination. Klene Peptides supplies Tα1 to USA research institutions with verified purity and same-day order fulfillment.

Every vial from Klene Peptides includes:

Chemical Identity & Structural Profile

ParameterValue
Full Name
Thymosin Alpha 1 / Thymalfasin
Sequence (1-letter)
Ac-SDAAVDTSSEITTKDLKEKKEVVEEAEN
Amino Acid Count
28
N-terminal Modification
Acetylation (Ac-Ser) — required for biological activity
Molecular Formula
C₁₂₉H₂₁₅N₃₃O₅₅
Molecular Weight
3,108.30 g/mol
CAS Number
62304-98-7
INN
Thymalfasin
Approved Trade Name
Zadaxin® (35+ countries)
Appearance
White to off-white lyophilized powder
Solubility
Water, PBS, 0.9% saline
Storage
Lyophilized: −20°C; Reconstituted: 4°C, use within 48 hours (no preservative)

Tα1 was originally isolated as a component of “Fraction 5” from bovine thymic extract and subsequently fully sequenced and synthesized. The N-terminal acetylation is structurally essential — deacetylated or truncated analogs demonstrate substantially reduced receptor interaction and immunological activity.

Mechanism of Action

Tα1’s immunomodulatory activity operates through coordinated engagement of innate immune pattern recognition and adaptive immune priming:

Primary Receptor & Signaling Interactions

Receptor / PathwayCell TypeDownstream Effect
TLR2 (Toll-Like Receptor 2)
Dendritic cells, macrophages
NF-κB activation → IL-12, IFN-γ production
TLR4
Macrophages, monocytes
Innate immune priming and anti-pathogen signaling
TLR9
Plasmacytoid dendritic cells
Type I interferon production (IFN-α/β)
MHC Class II upregulation
Antigen-presenting cells
Enhanced antigen presentation to CD4+ T cells
PD-L1 modulation
Tumor microenvironment
Immune checkpoint pathway investigation
mTOR pathway
T regulatory cells
Foxp3+ Treg population dynamics in anti-tumor contexts

Key Immunological Effects

EffectCell AffectedResearch Application
T-cell maturation induction
CD4+, CD8+ thymocytes
Thymic reconstitution models
NK cell activation
Natural killer cells
Innate anti-tumor surveillance studies
Th1 polarization
CD4+ helper T cells
IFN-γ-driven antiviral and anti-tumor immunity
DC maturation acceleration
Dendritic cells
Antigen presentation and adjuvant co-administration research
Cytokine rebalancing
Monocytes, macrophages
Sepsis immune paralysis reversal models
Regulatory T cell modulation
Foxp3+ Treg population
Autoimmune and immune tolerance research

Pharmacokinetic & ADME Profile

ParameterValueNotes
Molecular Weight
3,108.30 g/mol
SC preferred for systemic delivery
Bioavailability (SC)
~90%
Clinical pharmacokinetic data available
Tmax
~2 hours post-SC
Rapid absorption
Half-life (t½)
~2 hours
Short PK half-life; immune effect duration exceeds PK window
Volume of Distribution
~15–25 L
Extravascular distribution
Protein Binding
Moderate albumin-associated fraction
Primary Metabolism
Proteolytic
Serum and tissue peptidase activity
Excretion
Renal
Metabolite fragment clearance

Research note: Tα1’s short plasma half-life (~2 hours) contrasts with persistent immunological effects lasting days to weeks — attributed to TLR-mediated activation of dendritic cells and downstream cytokine cascade maintenance. This PK/PD dissociation is an active area of investigation for optimizing research dosing interval design.

Research Applications

Antiviral Immunology

Virus ModelMechanism InvestigatedObserved Effect
Hepatitis B
TLR9 → IFN-α, DC activation
Enhanced viral clearance in chronic HBV models
Hepatitis C
Th1 polarization, NK cell activation
HCV viral load reduction (clinical trial supported)
Influenza
TLR2/4 innate immune priming
Reduced viral replication and mortality (murine)
SARS-CoV-2
TLR-mediated IFN production, T-cell rescue
Lymphocyte restoration; under active investigation
HIV
CD4+ homeostasis restoration, DC maturation
T-cell reconstitution models

Oncology & Tumor Immunology

Cancer ModelResearch Focus
Non-small cell lung cancer
Combination with chemotherapy; checkpoint co-administration
Hepatocellular carcinoma
Anti-tumor immunosurveillance activation
Melanoma
NK and CD8+ cytotoxic T-cell priming
Colorectal cancer
Tumor microenvironment remodeling

Tα1’s combination with checkpoint inhibitors (PD-1/PD-L1 blockade) is an emerging area, as its TLR-dependent DC maturation may synergize with checkpoint release to restore anti-tumor T-cell activity in exhausted tumor microenvironments.

Sepsis & Critical Illness Immunology

Sepsis-induced immunoparalysis — characterized by monocyte deactivation, HLA-DR downregulation, and dominance of immunosuppressive cytokines — is a primary research context for Tα1:

Autoimmunity & Immune Tolerance Research

Tα1’s dual capacity to stimulate innate immune signaling while modulating regulatory T-cell populations makes it mechanistically relevant in autoimmunity research, particularly lupus and rheumatoid arthritis models, where Treg/Teff balance is a central investigative parameter.

Research Dosing Reference

For scientific reference only — not prescriptive recommendations

Research ModelReported DoseRouteSchedule
Antiviral models (rodent)
200–400 mcg/kg
SC
2–3× per week
Tumor immunology (murine)
100–500 mcg/kg
SC
Daily or every-other-day
Sepsis immune restoration
1.6 mg (flat dose clinical reference)
SC
Twice daily × 7 days
T-cell reconstitution models
100–300 mcg/kg
SC
Per protocol
In vitro assays
0.1–10 µg/mL
Cell culture media
Per experiment

The 1.6 mg flat dose is derived from Zadaxin® approved-use clinical data — provided as published reference context only.

Reconstitution Reference

Lyophilized AmountSterile WaterConcentration
5 mg
2.5 mL
2.0 mg/mL
10 mg
5.0 mL
2.0 mg/mL

All reconstituted peptides should be stored refrigerated at 2–8°C and protected from repeated freeze-thaw cycles. For research use only.

Klene Peptides Quality Standards

Certificate of Analysis — Standard Parameters

Every batch supplied by Klene Peptides is verified against the following analytical benchmarks:

TestSpecificationMethod
Purity
≥99%
HPLC (High-Performance Liquid Chromatography)
Molecular Identification
Confirmed
HPLC-MS (High-Performance Liquid Chromatography – Mass Spectrometry)
Water Content
<1.5%

What Every Klene Peptides Order Includes

Ordering Thymosin Alpha 1 for Your Research Program

Important Research Compliance Notice

All products sold by Klene Peptides are strictly for in vitro research and laboratory investigation purposes only. Thymosin Alpha 1 supplied by KlenePeptides.net has not been evaluated by the FDA for human safety or efficacy in the indications described. It is not approved for human or veterinary administration in the USA. Purchase, possession, and use must comply with all applicable federal, state, and local regulations. This content is intended for licensed researchers and qualified scientific personnel only.

Scientific References

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