Is TB-500 FDA approved?
No. This profile records TB-500 as not FDA approved and for research use only.
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Review the regulatory and source details on this page for the current context.
THE REGENERATOR
Thymosin Beta-4 Fragment 17-23
TB-500 (a thymosin beta-4 fragment) helps cells move, build new blood vessels, and calm inflammation so injured tissue (muscle, tendon, and wounds) can repair and regenerate more efficiently.
Not FDA approved · research use only
Reviewed by our clinical team
3 research sources
Jul 15, 2026
Dose and schedule recommendations shown below come from The Peptide App Clinical Team. Research links are provided so readers can inspect the supporting evidence directly. Review the sources.
No. This profile records TB-500 as not FDA approved and for research use only.
Review the regulatory and source details on this page for the current context.
Dose: 2-5 mg per week, split into 2 injections.
Schedule: twice_weekly. Cycle: 4-8 weeks on, 4 weeks off. This is clinical-team guidance for reference and does not replace individualized instructions from a licensed clinician.
This guide links to 3 curated or current research sources.
Open the research section to inspect the source titles, publication details, study types, and available abstracts directly.
Promotes cell migration by regulating cytoskeleton
TB-500 is a synthetic version of a region of thymosin beta-4, whose defining job is to bind G-actin, the free monomer that cells assemble into the actin filaments of their internal scaffolding. By holding a reservoir of these monomers and regulating how quickly they polymerize, it helps a cell rebuild and reorganize its cytoskeleton on demand, which is what lets the cell change shape and crawl toward a site of injury. That migration matters because tissue repair depends on cells physically relocating to close a wound. This is the peptide's most established biochemical action, though the downstream repair effects come mainly from animal and cell studies rather than human trials.
Upregulates VEGF to create new blood vessels
Beyond moving cells, TB-500 has been reported to encourage the growth of new blood vessels, partly by increasing signals such as VEGF that tell existing vessels to sprout and extend. New vasculature matters for repair because it restores the oxygen and nutrient supply a healing area needs to rebuild. Keep in mind this angiogenic effect is drawn from preclinical and animal research rather than controlled human studies, so the strength of the effect in people is not established.
Inhibits NF-κB and reduces inflammatory cytokines
TB-500 is also described as calming inflammation by dialing down NF-kB, a master switch that turns on many pro-inflammatory genes. When that switch is less active, cells release fewer inflammatory cytokines, which can shorten the aggressive early phase of an injury and let repair proceed. This anti-inflammatory activity comes largely from laboratory and animal models, so treat it as an early-stage finding rather than a proven human effect.
Modulates TGF-β to reduce scarring
The same repair biology extends to how tissue heals, not just whether it heals. TB-500 is reported to influence TGF-beta, a signaling protein that drives the deposition of collagen and scar tissue, with the aim of steering healing toward functional tissue and away from excess fibrosis. Less scarring can mean tissue that stays more flexible and works better after it recovers. This anti-fibrotic effect remains preclinical, and TB-500 is not an approved or proven treatment for scarring in humans.
TB-500 traces back to thymosin beta-4, a small protein first identified in thymus tissue. Early work in the 1960s and 1970s isolated a mixture called thymosin fraction 5, and thymosin beta-4 was later characterized as one of the individual peptides within it. It is not exclusive to the thymus and is made in many tissues, and it shows up in high concentrations in wound fluid and platelets. A key clue to its role came from wound-healing research: scientists noticed that a particular protein appeared wherever tissue was injured, whether skin wounds, muscle damage, or inflammation, and that protein was thymosin beta-4. What stood out was that it did not only help tissue heal at the injury site, it seemed to help repair cells move through the body toward the damage. Researchers later pinpointed the active region responsible for much of that effect, and that shorter fragment is what is sold today as TB-500. It became widely known through veterinary use, particularly in racehorses, before it drew interest in human recovery circles.
TB-500 is read about most for stubborn tendon, ligament, and muscle injuries, but the underlying protein has been studied across a wider range of repair settings, including skin wounds, the surface of the eye, and heart tissue after injury. Its described jobs are to lower inflammation, limit scar tissue, and encourage new cells to grow where they are needed. It is also the peptide people most often pair with BPC-157, in what the community nicknamed the Wolverine stack. The two are described as complementary: BPC-157 is associated with new blood-vessel growth and better circulation to bring oxygen and nutrients to damaged tissue, while TB-500 is associated with moving repair cells in and driving regeneration. People who use it generally describe changes over weeks to months of consistent use rather than an overnight result.
Thymosin beta-4 is a 43 amino acid peptide, and its defining feature is that it binds actin, the internal scaffolding that lets a cell change shape and physically move. Repair and immune cells have to migrate quickly to the site of an injury, which means rapidly reorganizing that actin scaffolding. By supporting actin dynamics, thymosin beta-4 is described as helping those cells reach damaged tissue more efficiently, which is a first step in repair. It is also associated with the growth of new blood vessels, with lower inflammation, and with less fibrosis, meaning less thick scar tissue as a wound closes. Because it is a small and mobile molecule, it is generally described as distributing through the body rather than staying at one spot, which is part of why it is discussed for widespread or hard-to-reach injuries.
TB-500 is described in cited protocols as a subcutaneous injection rather than an oral product. Its small size is associated with good distribution through the body once administered, which fits the way people talk about it for systemic rather than purely local repair. This differs from BPC-157, where an oral form is often linked specifically to gut goals. This is background on how the compound is discussed, not a recommendation on route or dose.
Thymosin beta-4, the full parent protein, has been through formal human clinical trials, including work on dry eye and on slow-healing skin wounds. TB-500 as sold in the research-chemical market is usually described as a fragment or synthetic version of that protein, so the clinical trial results for thymosin beta-4 do not automatically transfer to it. Most of the direct evidence specific to TB-500 is from animal studies and from anecdotal reports. That leaves a well-studied parent protein with real human data, paired with a derived compound whose own formal human evidence is limited.
TB-500 has not been approved by the FDA. It is prohibited in sport by the World Anti-Doping Agency, which lists it among growth factors, and thymosin beta-4 has a well known history as a doping agent in horse racing, where it has featured in high-profile scandals, so athletes in tested sports should be aware of it. In late 2024 it was placed, alongside a number of other peptides, on an FDA list that restricts pharmacy compounding.
The live research feed did not return papers for this page. The curated references below remain available for crawlable source context.