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tb-500-notes.peptides4800.com › Data › Identification And Molecular Background — Beginner to Advanced

Identification And Molecular Background — Beginner to Advanced

By Editorial Desk · published 2026-03-06 · last reviewed 2026-04-12 · Data

The short version of TB-500 fits in a sentence. The long version — which is the one that helps — is below.

Reviewed 2026-04-12. Anything still debated is marked as such rather than presented as settled.

Identification and Molecular Background

Interest in the peptide grew during the 2000s and 2010s, when studies of tendon and ligament injuries in horses reported changes in lesion size after treatment. Those reports circulated widely outside the scientific literature and shaped much of the current online discussion. Subsequent reviews noted inconsistent study design, small groups, and a shortage of independent replication. Popular descriptions often blur the line between the fragment, the complete protein, and unrelated growth factors, which complicates comparisons across sources.

TB-500 is a synthetic peptide whose sequence corresponds to a short fragment near the N-terminus of thymosin beta-4, a small protein present in most mammalian cells. The fragment is commonly cited as containing the actin-binding region of the parent molecule, which is why it appears in laboratory work on cell migration and tissue repair. Suppliers distribute it as a lyophilised powder intended for research use. Its identity is defined by amino acid sequence and by the presence of an acetyl group on the N-terminal residue.

Full-length thymosin beta-4 consists of roughly forty-three amino acids and ranks among the more abundant small proteins in the cytoplasm. The fragment is much shorter, so it cannot reproduce every function attributed to the intact molecule. In cell culture, short actin-binding motifs can interfere with filament dynamics and cell movement, but such observations come from controlled experiments rather than from whole-animal work. Whether a truncated fragment produces the same effects as the parent protein remains an open question.

Identity and Reported Background

Thymosin beta-4 is a naturally occurring protein of 43 amino acids found in most mammalian cells, where it binds actin monomers and influences filament dynamics. It was first isolated from thymus tissue in the early 1980s, and its actin-binding activity was later mapped to a short region near the N-terminus. The synthetic fragment sold as TB-500 was designed to reproduce that region rather than the full protein. Whether a short fragment reproduces the behavior of the intact molecule remains an open question, since the parent protein carries additional structural elements outside the binding region.

Published research on the intact protein is substantial, covering actin regulation, cell migration, and wound models. Research using the heptapeptide fragment specifically is far smaller, and much of the circulating material originates in supplier documentation rather than peer-reviewed reports. Where fragment studies do exist, they often employ different sequences, chain lengths, or terminal modifications, which complicates direct comparison across papers. Readers encountering claims about TB-500 should therefore separate evidence about thymosin beta-4 from evidence about the fragment itself.

Discussion of the compound frequently appears alongside other short peptides described as fragments of larger proteins. That grouping is convenient but can be misleading, because fragment length, charge, and modification state determine how a peptide behaves in solution and in any experimental system. A seven-residue acetylated peptide and a full-length protein differ in mass by roughly an order of magnitude, and they cannot be assumed to share distribution or binding properties. Precision about which molecule is under discussion is the single most useful step when reading such material.

Tb-500 at a glance

PropertyValueNotes
Generic designationSynthetic thymosin beta-4 N-terminal fragmentPeptide nomenclature varies by supplier
Peptide lengthApproximately 17 amino acid residuesReported length sometimes differs between sources
N-terminal modificationAcetyl groupAffects mass and chromatographic behaviour
Compound classSmall synthetic peptideNot a small-molecule drug
Common synonymsTB4 fragment; thymosin beta-4 fragmentNaming is inconsistent in popular media

Storage, Handling, and Analytical Checks

The regulatory position is broadly consistent across major jurisdictions: no thymosin beta-4 fragment is an approved medicine, and laboratory material is commonly labelled as not intended for human consumption. Anti-doping rules in sport list thymosin beta-4 and its fragments among prohibited peptide hormones. Because these products travel through research-chemical channels rather than pharmaceutical supply chains, quality varies considerably between vendors. Independent testing of identity, purity and sterility is the only dependable check, and a certificate of analysis describes one batch rather than a supplier's whole catalogue.

Lyophilized peptide powder is normally held desiccated at −20 °C, with −80 °C used for longer storage periods. Allowing a sealed vial to reach room temperature before opening is standard practice, because condensation forming on cold powder introduces moisture. Once dissolved, solutions are typically kept cold and shielded from light. Repeated freeze-thaw cycles are avoided because they encourage aggregation and gradual loss of material. These conventions are general to synthetic peptides rather than unique to any one sequence.

Purity and identity are separate measurements and are often confused. Reverse-phase high-performance liquid chromatography, usually with ultraviolet detection near 214 nanometres, reports the share of total peak area belonging to the target compound. Mass spectrometry by electrospray or matrix-assisted laser desorption then checks whether the observed mass matches the expected sequence. Neither measurement alone shows that a vial holds the intended peptide. Peptide content, meaning the fraction of vial mass that is genuine peptide rather than counter-ion, water or residual acid, is reported separately and is frequently lower than the stated purity figure.

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Handling, Storage, and Quality Control

Identity and purity are checked with chromatographic and mass spectrometric methods. Reverse-phase high-performance liquid chromatography separates the peptide from related impurities, while mass spectrometry confirms the expected molecular mass. A certificate of analysis may report a purity percentage, but the laboratory should still verify the material independently. Common quality concerns include truncated sequences, deamidation, oxidation, and residual solvents from synthesis. Because TB-500 is short, some impurities can differ from the target by only a few mass units.

Reconstitution practices affect downstream measurements. The dry powder is typically dissolved in sterile water or a suitable aqueous buffer, then mixed gently rather than vortexed at high speed. Visible particles or cloudiness suggest incomplete dissolution or contamination and should be investigated. For long-term storage, aliquots should be labeled with concentration, solvent, and date. Open questions include how different buffers alter peptide conformation and whether specific container materials adsorb the peptide. Those variables can change apparent concentration in assays even when the chemical identity is correct.

Lyophilized TB-500 is hygroscopic and should be kept dry before use. The usual storage recommendation for the solid is -20 °C, protected from light and moisture. Once dissolved, the peptide is less stable, and repeated freeze-thaw cycles can promote aggregation or degradation. Laboratories often divide a reconstituted solution into single-use aliquots and store them at -80 °C. Exact stability limits depend on buffer, pH, and concentration, so published data do not define a single universal condition.

Storage and Analytical Verification

Lyophilized peptide arrives as a dry cake that should stay sealed until use. Reconstitution is generally performed with sterile water or a buffered solution, and the resulting liquid should be handled gently to limit mechanical stress. Repeated freeze-thaw cycles are widely described as harmful to short peptides, so dividing a reconstituted batch into single-use portions is a common practice. Laboratories also record the solvent, concentration, and date of preparation on the vial label to keep later measurements traceable.

Dry powder is commonly held at minus twenty degrees Celsius, with some suppliers recommending lower temperatures for long-term archival storage. Once dissolved, solutions are typically kept cold and protected from light, since aqueous peptide solutions can lose integrity through hydrolysis or oxidation over time. Stability data specific to this fragment are limited in the public literature, and much of the guidance comes from general peptide handling practice rather than from controlled degradation studies. Users therefore treat stated shelf lives as approximate rather than fixed.

Handling, Storage, and Analytical Verification

Storage recommendations center on keeping the dry powder cold, dry, and dark. A freezer at -20 degrees Celsius or below is conventional, and desiccant is often included to limit moisture uptake. Once dissolved, the peptide is less stable, and solutions are typically kept frozen and thawed only once. Repeated freeze-thaw cycles are a common source of losses because they promote aggregation and adsorption to container surfaces. Working aliquots are therefore prepared in advance, and glass or low-binding plastic is usually preferred over ordinary laboratory plastic.

Identity and purity are assessed with a small set of standard techniques. Reverse-phase high-performance liquid chromatography gives a purity estimate from peak area, usually recorded at 214 or 220 nanometers, where the peptide bond absorbs. Mass spectrometry confirms the expected molecular mass and can reveal truncated or oxidized species. Amino acid analysis or tandem mass spectrometry sequencing can verify the sequence itself. Additional quality attributes include water content, residual trifluoroacetic acid carried over from purification, and endotoxin where the material is intended for biological work.

The compound is most often distributed as a lyophilized powder, appearing white to off-white and forming a loose cake or fluffy solid. It is hygroscopic to some degree, so brief exposure to humid air can add water weight and complicate weighing. The peptide dissolves readily in water and in neutral aqueous buffers, and aqueous solubility is generally described as high, well above the concentrations used in typical assays. Some polar organic solvents are also usable, which matters when a concentrated stock is prepared before dilution into buffer.

Background from the literature

In such reactions, which are more useful for alkyl iodides and bromides, the degree of alkylation is difficult to control such that one obtains mixtures of primary, secondary, and tertiary amines, as well as quaternary ammonium salts. Selectivity can be improved via the Delépine reaction, although this is rarely employed on an industrial scale. Selectivity is also assured in the Gabriel synthesis, which involves organohalide reacting with potassium phthalimide. Aryl halides are much less reactive toward amines and for that reason are more controllable. A popular way to prepare aryl amines is the Buchwald-Hartwig reaction.

United States The new 323 arrived in the United States for the 1986 model year and continued to be available through 1989. The naming practice was now aligned with most of Mazda's export markets, with the 323 badge replacing GLC. For 1987 the wagon version was added to the lineup, with the same mechanicals as the hatchbacks and saloons. In 1988, Mazda added a turbocharged option in the GT and GTX model as well as four-wheel drive in the GTX model. The GTX was the first four-wheel drive passenger car Mazda offered in the United States. The GT and GTX featured a turbocharged and intercooled 1.6 liter 16-valve DOHC 4-cylinder engine rated at 132 hp (98 kW) and only was available with a 5-speed manual transmission.

This is a list of biochemists. It should include those who have been important to the development or practice of biochemistry. Their research or applications have made significant contributions in the area of basic or applied biochemistry.

DSC is used widely for examining polymeric materials to determine their thermal transitions. Important thermal transitions include the glass transition temperature (Tg), crystallization temperature (Tc), and melting temperature (Tm). The observed thermal transitions can be utilized to compare materials, although the transitions alone do not uniquely identify composition. The composition of unknown materials may be completed using complementary techniques such as IR spectroscopy. Melting points and glass transition temperatures for most polymers are available from standard compilations, and the method can show polymer degradation by the lowering of the expected melting temperature. Tm depends on the molecular weight of the polymer and thermal history. The percent crystalline content of a polymer can be estimated from the crystallization/melting peaks of the DSC graph using reference heats of fusion found in the literature. DSC can also be used to study thermal degradation of polymers using an approach such as Oxidative Onset Temperature/Time (OOT); however, the user risks contamination of the DSC cell, which can be problematic. Thermogravimetric Analysis (TGA) may be more useful for decomposition behavior determination. Impurities in polymers can be determined by examining thermograms for anomalous peaks, and plasticisers can be detected at their characteristic boiling points.

== History == Malacidins were discovered by researchers at Rockefeller University, led by Brad Hover and Sean Brady. The group had been looking into antibiotics related to daptomycin and their calcium-dependent nature, but determined that it would be impractical to culture variations in lab conditions. Instead, the team used a genetics approach that was more scalable. They focused on searching for novel biosynthetic gene clusters (BGCs) – genes that are usually expressed together, that bacteria use to make secondary metabolites. To do this, they extracted DNA from around 2,000 soil samples to build metagenomic libraries that captured the genetic diversity of the environmental microbiome. They then designed degenerate primers to amplify genes likely to be similar to the BGC that make daptomycin by using a polymerase chain reaction (PCR) procedure, sequenced the amplified genes, and then used metagenomics to confirm that these genes were indeed likely to be the kind of BGCs they sought. One of the novel BGCs they found was present in around 19% of the screened soil samples but not readily found in cultured microbial collections, so they took that BGC, put it into other host bacteria, and then isolated and analyzed the secondary metabolites. The work was published in Nature Microbiology in February 2018.

Sources: en.wikipedia.org

Further detail

=== Tests === Thyroid function tests include a battery of blood tests, including the measurement of the thyroid hormones, as well as the measurement of thyroid stimulating hormone (TSH). They may reveal hyperthyroidism (high T3 and T4), hypothyroidism (low T3, T4), or subclinical hyperthyroidism (normal T3 and T4 with a low TSH). TSH levels are considered the most sensitive marker of thyroid dysfunction. They are however not always accurate, particularly if the cause of hypothyroidism is thought to be related to insufficient thyrotropin releasing hormone (TRH) secretion, in which case it may be low or falsely normal. In such a case a TRH stimulation test, in which TRH is given and TSH levels are measured at 30 and 60-minutes after, may be conducted. T3 and T4 can be measured directly. However, as the two thyroid hormones travel bound to other molecules, and it is the "free" component that is biologically active, free T3 and free T4 levels can be measured. T3 is preferred, because in hypothyroidism T3 levels may be normal. The ratio of bound to unbound thyroid hormones is known as the thyroid hormone binding ratio (THBR). It is also possible to measure directly the main carriers of the thyroid hormones, thyroglobulin and throxine-binding globulin. Thyroglobulin will also be measurable in a healthy thyroid, and will increase with inflammation, and may also be used to measure the success of thyroid removal or ablation. If successful, thyroglobulin should be undetectable.

=== Austrian Empire and Austria-Hungary === In 1814, by decisions of the Congress of Vienna, Tyrol was reunified and returned to Austria, becoming a crown land (Kronland) of the Austrian Empire. The formerly Salzburgian Zillertal, Brixental and Matrei were also permanently integrated into Tyrol. Administratively Vorarlberg was attached to the reconstituted Tyrol (formally as "the princely county of Tyrol with Vorarlberg" – die gefürstete Grafschaft Tirol mit Vorarlberg) as Kreis Bregenz until it became a crown land in its own right in the 1861 February Patent. Tyrol-proper (i.e. excluding Vorarlberg) was until 1849 divided into six Kreise: Oberinnthal (or Imst), Unterinnthal (Schwaz), Pusterthal (Bruneck), Etsch (Bozen), Trient and Rovereto. In 1849 this was reduced to three: Innsbruck, Brixen and Trient, which broadly corresponded with the modern North Tyrol, South + East Tyrol and Trentino respectively. These Kreise were briefly divided into modern-style political districts but were recentralised and divided into smaller "office districts" from 1853. Following the Austro-Hungarian Compromise of 1867 Tyrol was a Cisleithanian (Austrian) crown land within Austria-Hungary. The Kreise and office districts were abolished and political districts re-introduced in 1868.

=== U.S. labeling === For U.S. food and dietary supplement labeling purposes, the amount in a serving is expressed as a percent of Daily Value (%DV). For vitamin A labeling purposes, 100% of the Daily Value was set at 5,000 IU, but it was revised to 900 μg RAE on 27 May 2016. A table of the old and new adult daily values is provided at Reference Daily Intake.

In April 1805, Britain and Russia signed a treaty with the aim of removing the French from the Batavian Republic (roughly present-day Netherlands) and the Swiss Confederation. Austria joined the alliance after the annexation of Genoa (Ligurian Republic) and the proclamation of Napoleon as King of Italy on 17 March 1805. Sweden, which had already agreed to lease Swedish Pomerania as a military base for British troops against France, entered the coalition on 9 August. The Austrians began the war by invading Bavaria on 8 September 1805 with an army of about 72,000 under Karl Mack von Leiberich, and the French army marched out from Boulogne in late July 1805 to confront them. At Ulm (25 September – 20 October) Napoleon surrounded Mack's army, forcing its surrender without significant losses. With the main Austrian army north of the Alps defeated (another army under Archduke Charles fought against André Masséna's French army in Italy), Napoleon occupied Vienna on 13 November. Far from his supply lines, he faced a larger Austro–Russian army under the command of Mikhail Kutuzov, with Emperor Alexander I of Russia personally present. On 2 December, Napoleon crushed the Austro–Russian force in Moravia at Austerlitz (usually considered his greatest victory). He inflicted 25,000 casualties on a numerically superior enemy army while sustaining fewer than 7,000 in his own force.

=== MeSH D12.644.360 – intracellular signaling peptides and proteins === MeSH D12.644.360.011 – activating transcription factor 6 MeSH D12.644.360.024 – adaptor proteins, signal transducing MeSH D12.644.360.024.264 – caveolin 1 MeSH D12.644.360.024.272 – caveolin 2 MeSH D12.644.360.024.280 – cortactin MeSH D12.644.360.024.295 – crk-associated substrate protein MeSH D12.644.360.024.297 – grb2 adaptor protein MeSH D12.644.360.024.298 – grb7 adaptor protein MeSH D12.644.360.024.300 – grb10 adaptor protein MeSH D12.644.360.024.301 – interferon-stimulated gene factor 3 MeSH D12.644.360.024.301.500 – interferon-stimulated gene factor 3, alpha subunit MeSH D12.644.360.024.301.500.500 – stat1 transcription factor MeSH D12.644.360.024.301.500.750 – stat2 transcription factor MeSH D12.644.360.024.301.750 – interferon-stimulated gene factor 3, gamma subunit MeSH D12.644.360.024.303 – interferon regulatory factors MeSH D12.644.360.024.303.124 – interferon regulatory factor-1 MeSH D12.644.360.024.303.249 – interferon regulatory factor-2 MeSH D12.644.360.024.303.374 – interferon regulatory factor-3 MeSH D12.644.360.024.303.437 – interferon regulatory factor-7 MeSH D12.644.360.024.303.500 – interferon-stimulated gene factor 3, gamma subunit MeSH D12.644.360.024.305 – pii nitrogen regulatory proteins MeSH D12.644.360.024.307 – paxillin MeSH D12.644.360.024.311 – protein inhibitors of activated STAT MeSH D12.644.360.024.313 – 14-3-3 proteins MeSH D12.644.360.024.318 – proto-oncogene proteins c-crk MeSH D12.644.360.024.326 – proto-oncogene proteins c-vav MeSH D12.644.360.024.334 – smad proteins MeSH D12.644.360.024.334.200 – smad proteins, inhibitory MeSH D12.644.360.024.334.200.600 – smad6 protein MeSH D12.644.360.024.334.200.700 – smad7 protein MeSH D12.644.360.024.334.500 – smad proteins, receptor-regulated MeSH D12.644.360.024.334.500.100 – smad1 protein MeSH D12.644.360.024.334.500.200 – smad2 protein MeSH D12.644.360.024.334.500.300 – smad3 protein MeSH D12.644.360.024.334.500.500 – smad5 protein MeSH D12.644.360.024.334.500.800 – smad8 protein MeSH D12.644.360.024.334.750 – smad4 protein MeSH D12.644.360.024.342 – stat transcription factors MeSH D12.644.360.024.342.100 – stat1 transcription factor MeSH D12.644.360.024.342.200 – stat2 transcription factor MeSH D12.644.360.024.342.300 – stat3 transcription factor MeSH D12.644.360.024.342.400 – stat4 transcription factor MeSH D12.644.360.024.342.500 – stat5 transcription factor MeSH D12.644.360.024.342.600 – stat6 transcription factor MeSH D12.644.360.024.374 – suppressor of cytokine signaling proteins MeSH D12.644.360.024.500 – tumor necrosis factor receptor-associated peptides and proteins MeSH D12.644.360.024.500.500 – tnf receptor-associated factor 1 MeSH D12.644.360.024.500.750 – tnf receptor-associated factor 2 MeSH D12.644.360.024.500.875 – tnf receptor-associated factor 3 MeSH D12.644.360.024.500.937 – tnf receptor-associated factor 5 MeSH D12.644.360.024.500.968 – tnf receptor-associated factor 6 MeSH D12.644.360.050 – adenylate cyclase MeSH D12.644.360.075 – apoptosis regulatory proteins MeSH D12.644.360.075.311 – apoptosis inducing factor MeSH D12.644.360.075.405 – caspases MeSH D12.644.360.075.405.200 – caspase 1 MeSH D12.644.360.075.437 – inhibitor of apoptosis proteins MeSH D12.644.360.075.437.500 – neuronal apoptosis-inhibitory protein MeSH D12.644.360.075.437.750 – x-linked inhibitor of apoptosis protein MeSH D12.644.360.075.718 – proto-oncogene proteins c-bcl-2 MeSH D12.644.360.075.718.100 – bcl-associated death protein MeSH D12.644.360.075.718.400 – bcl-2-associated x protein MeSH D12.644.360.075.718.750 – bcl-2 homologous antagonist-killer protein MeSH D12.644.360.075.718.937 – bcl-x protein MeSH D12.644.360.075.718.968 – bh3 interacting domain death agonist protein MeSH D12.644.360.100 – ca(2+)-calmodulin dependent protein kinase MeSH D12.644.360.100.500 – myosin-light-chain kinase MeSH D12.644.360.150 – casein kinases MeSH D12.644.360.150.300 – casein kinase i MeSH D12.644.360.150.300.100 – casein kinase ialpha MeSH D12.644.360.150.300.200 – casein kinase idelta MeSH D12.644.360.150.300.300 – casein kinase iepsilon MeSH D12.644.360.150.600 – casein kinase ii MeSH D12.644.360.200 – cyclic nucleotide-regulated protein kinases MeSH D12.644.360.200.125 – cyclic amp-dependent protein kinases MeSH D12.644.360.200.125.500 – beta-adrenergic receptor kinase MeSH D12.644.360.200.150 – cyclic gmp-dependent protein kinases MeSH D12.644.360.200.575 – protamine kinase MeSH D12.644.360.250 – cyclin-dependent kinases MeSH D12.644.360.250.067 – cdc2-cdc28 kinases MeSH D12.644.360.250.067.249 – cdc2 protein kinase MeSH D12.644.360.250.067.500 – cdc28 protein kinase, s cerevisiae MeSH D12.644.360.250.067.875 – cyclin-dependent kinase 5 MeSH D12.644.360.250.067.900 – cyclin-dependent kinase 9 MeSH D12.644.360.250.323 – cyclin-dependent kinase 2 MeSH D12.644.360.250.451 – cyclin-dependent kinase 4 MeSH D12.644.360.250.515 – cyclin-dependent kinase 6 MeSH D12.644.360.250.580 – maturation-promoting factor MeSH D12.644.360.250.580.500 – cdc2 protein kinase MeSH D12.644.360.275 – eif-2 kinase MeSH D12.644.360.287 – focal adhesion protein-tyrosine kinases MeSH D12.644.360.300 – glycogen synthase kinases MeSH D12.644.360.300.500 – glycogen synthase kinase 3 MeSH D12.644.360.325 – gtp-binding protein regulators MeSH D12.644.360.325.150 – gtpase-activating proteins MeSH D12.644.360.325.150.100 – chimerin proteins MeSH D12.644.360.325.150.100.200 – chimerin 1 MeSH D12.644.360.325.150.300 – eukaryotic initiation factor-5 MeSH D12.644.360.325.150.500 – ras gtpase-activating proteins MeSH D12.644.360.325.150.500.460 – neurofibromin 1 MeSH D12.644.360.325.150.500.500 – p120 gtpase activating protein MeSH D12.644.360.325.150.750 – rgs proteins MeSH D12.644.360.325.225 – guanine nucleotide dissociation inhibitors MeSH D12.644.360.325.300 – guanine nucleotide exchange factors MeSH D12.644.360.325.300.200 – eukaryotic initiation factor-2b MeSH D12.644.360.325.300.300 – guanine nucleotide-releasing factor 2 MeSH D12.644.360.325.300.450 – proto-oncogene proteins c-vav MeSH D12.644.360.325.300.600 – ral guanine nucleotide exchange factor MeSH D12.644.360.325.300.700 – ras guanine nucleotide exchange factors MeSH D12.644.360.325.300.700.500 – ras-grf1 MeSH D12.644.360.325.300.700.700 – son of sevenless proteins MeSH D12.644.360.325.300.700.700.600 – son of sevenless protein, drosophila MeSH D12.644.360.325.300.700.700.630 – sos1 protein MeSH D12.644.360.350 – guanylate cyclase MeSH D12.644.360.375 – heterotrimeric gtp-binding proteins MeSH D12.644.360.375.100 – gtp-binding protein alpha subunits MeSH D12.644.360.375.100.100 – gtp-binding protein alpha subunits, g12-g13 MeSH D12.644.360.375.100.200 – gtp-binding protein alpha subunits, gi-go MeSH D12.644.360.375.100.200.500 – gtp-binding protein alpha subunit, gi2 MeSH D12.644.360.375.100.300 – gtp-binding protein alpha subunits, gq-g11 MeSH D12.644.360.375.100.400 – gtp-binding protein alpha subunits, gs MeSH D12.644.360.375.520 – gtp-binding protein beta subunits MeSH D12.644.360.375.730 – gtp-binding protein gamma subunits MeSH D12.644.360.375.940 – transducin MeSH D12.644.360.376 – i-kappa b kinase MeSH D12.644.360.378 – i-kappa b proteins MeSH D12.644.360.381 – intracellular calcium-sensing proteins MeSH D12.644.360.381.249 – calmodulin MeSH D12.644.360.381.311 – calnexin MeSH D12.644.360.381.374 – calreticulin MeSH D12.644.360.381.437 – gelsolin MeSH D12.644.360.381.500 – neuronal calcium-sensor proteins MeSH D12.644.360.381.500.124 – guanylate cyclase-activating proteins MeSH D12.644.360.381.500.249 – hippocalcin MeSH D12.644.360.381.500.374 – Kv channel-interacting proteins MeSH D12.644.360.381.500.500 – neurocalcin MeSH D12.644.360.381.500.750 – recoverin MeSH D12.644.360.400 – map kinase kinase kinases MeSH D12.644.360.400.100 – map kinase kinase kinase 1 MeSH D12.644.360.400.200 – map kinase kinase kinase 2 MeSH D12.644.360.400.300 – map kinase kinase kinase 3 MeSH D12.644.360.400.400 – map kinase kinase kinase 4 MeSH D12.644.360.400.500 – map kinase kinase kinase 5 MeSH D12.644.360.400.800 – proto-oncogene proteins c-mos MeSH D12.644.360.400.842 – raf kinases MeSH D12.644.360.400.842.249 – oncogene proteins v-raf MeSH D12.644.360.400.842.374 – proto-oncogene proteins b-raf MeSH D12.644.360.400.842.500 – proto-oncogene proteins c-raf MeSH D12.644.360.440 – mitogen-activated protein kinase kinases MeSH D12.644.360.440.100 – map kinase kinase 1 MeSH D12.644.360.440.200 – map kinase kinase 2 MeSH D12.644.360.440.300 – map kinase kinase 3 MeSH D12.644.360.440.400 – map kinase kinase 4 MeSH D12.644.360.440.500 – map kinase kinase 5 MeSH D12.644.360.440.600 – map kinase kinase 6 MeSH D12.644.360.440.700 – map kinase kinase 7 MeSH D12.644.360.450 – mitogen-activated protein kinases MeSH D12.644.360.450.169 – extracellular signal-regulated map kinases MeSH D12.644.360.450.169.500 – mitogen-activated protein kinase 1 MeSH D12.644.360.450.169.750 – mitogen-activated protein kinase 3 MeSH D12.644.360.450.169.875 – mitogen-activated protein kinase 6 MeSH D12.644.360.450.169.937 – mitogen-activated protein kinase 7 MeSH D12.644.360.450.340 – jnk mitogen-activated protein kinases MeSH D12.644.360.450.340.500 – mitogen-activated protein kinase 8 MeSH D12.644.360.450.340.750 – mitogen-activated protein kinase 9 MeSH D12.644.360.450.340.800 – mitogen-activated protein kinase 10 MeSH D12.644.360.450.835 – p38 mitogen-activated protein kinases MeSH D12.644.360.450.835.200 – mitogen-activated protein kinase 11 MeSH D12.644.360.450.835.400 – mitogen-activated protein kinase 12 MeSH D12.644.360.450.835.600 – mitogen-activated protein kinase 13 MeSH D12.644.360.450.835.800 – mitogen-activated protein kinase 14 MeSH D12.644.360.525 – monomeric gtp-binding proteins MeSH D12.644.360.525.100 – adp-ribosylation factors MeSH D12.644.360.525.100.100 – ADP-ribosylation factor 1 MeSH D12.644.360.525.400 – rab gtp-binding proteins MeSH D12.644.360.525.400.025 – rab1 gtp-binding proteins MeSH D12.644.360.525.400.050 – rab2 gtp-binding protein MeSH D12.644.360.525.400.100 – rab3 gtp-binding proteins MeSH D12.644.360.525.400.100.100 – rab3a gtp-binding protein MeSH D12.644.360.525.400.150 – rab4 gtp-binding proteins MeSH D12.644.360.525.400.200 – rab5 gtp-binding proteins MeSH D12.644.360.525.450 – ral gtp-binding proteins MeSH D12.644.360.525.462 – ran gtp-binding protein MeSH D12.644.360.525.475 – rap gtp-binding proteins MeSH D12.644.360.525.475.100 – rap1 gtp-binding proteins MeSH D12.644.360.525.500 – ras proteins MeSH D12.644.360.525.500.300 – oncogene protein p21(ras) MeSH D12.644.360.525.500.600 – proto-oncogene proteins p21(ras) MeSH D12.644.360.525.700 – rho gtp-binding proteins MeSH D12.644.360.525.700.050 – cdc42 gtp-binding protein MeSH D12.644.360.525.700.050.500 – cdc42 gtp-binding protein, saccharomyces cerevisiae MeSH D12.644.360.525.700.100 – rac gtp-binding proteins MeSH D12.644.360.525.700.100.100 – rac1 gtp-binding protein MeSH D12.644.360.525.700.200 – rhoa gtp-binding protein MeSH D12.644.360.525.700.300 – rhob gtp-binding protein MeSH D12.644.360.543 – olfactory marker protein MeSH D12.644.360.562 – phosphatidylethanolamine binding protein MeSH D12.644.360.581 – phospholipase c gamma MeSH D12.644.360.600 – ribosomal protein s6 kinases MeSH D12.644.360.600.249 – ribosomal protein s6 kinases, 70-kda MeSH D12.644.360.600.500 – ribosomal protein s6 kinases, 90-kda

Sources: en.wikipedia.org

Frequently asked questions

What is TB-500 chemically?

It is a synthetic peptide based on a short sequence near the start of thymosin beta-4. It is supplied as a research chemical rather than as a licensed pharmaceutical product.

Is TB-500 the same as thymosin beta-4?

No. Thymosin beta-4 is the full-length protein of about forty-three amino acids, while the fragment covers only its beginning. The two are related but are not interchangeable in experimental or analytical terms.

Where does the name come from?

The label is a catalogue designation that became common in non-technical discussion. Scientific papers usually refer to the fragment by sequence or as a thymosin beta-4 N-terminal peptide.

What is TB-500 made of?

Most listings describe it as a short acetylated peptide with the sequence Ac-LKKTETQ, presented as a region of thymosin beta-4. The label is a trade-style name rather than a standardized chemical name, so the exact content of a given vial depends on the supplier.

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