This is a working overview of 合成肽, written for readers who want more than a one-paragraph summary but less than a textbook.
This page was last updated on 2026-03-13 and is reviewed periodically as new material appears.
Thymosin alpha-1 is a synthetic peptide of 28 amino acids, corresponding to the N-terminal fragment of prothymosin alpha. Its sequence begins with acetylation at the N-terminus, a modification that affects stability and receptor interaction. The peptide is acidic, with a calculated isoelectric point near 4.2, and carries no disulfide bonds, so its secondary structure is largely flexible in solution. Molecular mass is approximately 3108 daltons. The native form was first isolated from bovine thymus tissue, while pharmaceutical material is produced by solid-phase peptide synthesis.
Within the immune system, the peptide acts on several cell types rather than a single target. Reported activities include promotion of T-cell maturation, enhancement of natural killer cell activity, and modulation of cytokine production by dendritic cells and macrophages. Some of these effects appear to operate through toll-like receptor signaling, though the precise receptor-level mechanism remains debated. Whether the observed immune changes translate into clinical benefit is a separate question and depends on the indication studied.
Laboratory work indicates that the peptide acts on cells of both the innate and adaptive immune systems. Reported effects include signalling through Toll-like receptors on dendritic cells, enhanced T-cell maturation, and increased natural killer cell activity. These actions are described largely from cell-culture and animal experiments, and the precise receptor-level events remain incompletely defined. Studies in humans have generally measured immune markers rather than a single defined molecular target. The resulting picture remains partly descriptive.
Clinical research has examined the peptide in chronic hepatitis B and C, as a vaccine adjuvant, and in sepsis and oncology settings. Results across trials have been mixed, and several studies were small or conducted under differing protocols. Regulatory status varies by country, and the compound is not approved in every jurisdiction where it is studied. Evidence for any single indication should be read with attention to sample size and endpoint choice.
| Property | Value | Notes |
|---|---|---|
| Chemical class | Synthetic peptide, 28 residues | N-terminal fragment of prothymosin alpha |
| Molecular mass | About 3108 Da | Acetylated form |
| Isoelectric point | Near 4.2 | Acidic peptide |
| Appearance | White to off-white lyophilized powder | Common supplied form |
| Typical storage | -20 °C or below, dry | Solution stability is lower |
Most published studies on thymosin alpha-1 report changes in immune measurements rather than clinical outcomes, and findings differ across designs and populations. Whether the peptide signals through one defined receptor or through several less specific interactions remains an open question. Its reported circulation half-life of a few hours complicates comparison of dosing schedules across trials. Mechanistic claims are frequently drawn from isolated cell cultures, and how far those results extend to whole organisms is unresolved.
Thymosin alpha-1 is a synthetic peptide of 28 amino acids whose sequence matches the amino-terminal region of prothymosin alpha. The chain is acetylated at its first residue and contains one disulfide bridge between two cysteine residues, which folds the molecule into a compact loop. Its molecular formula, C129H215N33O55, corresponds to a monoisotopic mass of roughly 3,106 daltons. Material used in laboratories is made by solid-phase synthesis rather than isolated from animal tissue.
Early work on thymic extracts in the 1960s described a heat-stable acidic fraction containing many polypeptides. Separation of that mixture yielded individual components, and thymosin alpha-1 was named as one of them on the basis of assays for T-cell activity. The first preparations came from calf thymus, while subsequent research and clinical material has been chemically synthesized. Nomenclature in older papers is inconsistent, and the same peptide sometimes appears under different designations, which complicates literature searches.
市售的胸腺素α1通常以冻干粉形式提供,溶解后用于注射。其氨基酸组成包括多个酸性残基,因此在中性pH下带负电荷。该肽可溶于水和生理盐水,但在有机溶剂中溶解度有限。储存条件通常为冻干状态下负20摄氏度,溶解后需冷藏并避免反复冻融。常见的同义词包括胸腺肽α1、thymalfasin和Tα1。
胸腺素α1(thymosin alpha 1,Tα1)是一种由28个氨基酸组成的酸性肽,N端被乙酰化,分子量约为3108道尔顿。该肽最早从牛胸腺组织提取物中分离,属于胸腺素组分5的一个成分。其序列在不同哺乳动物中高度保守,提示其具有基本的生物学功能。名称中的“α1”指其在电泳中的迁移位置,并非表示亚型编号。它既存在于胸腺,也存在于脾脏和淋巴结等免疫组织。
=== Perrault method === This approach, discovered by Perrault and Chan in 2009, uses hydroquinone to reduce HAuCl4 in an aqueous solution that contains 15 nm gold nanoparticle seeds. This seed-based method of synthesis is similar to that used in photographic film development, in which silver grains within the film grow through addition of reduced silver onto their surface. Likewise, gold nanoparticles can act in conjunction with hydroquinone to catalyze reduction of ionic gold onto their surface. The presence of a stabilizer such as citrate results in controlled deposition of gold atoms onto the particles, and growth. Typically, the nanoparticle seeds are produced using the citrate method. The hydroquinone method complements that of Frens, as it extends the range of monodispersed spherical particle sizes that can be produced. Whereas the Frens method is ideal for particles of 12–20 nm, the hydroquinone method can produce particles of at least 30–300 nm.
== History == Addition of heated blood to media was first documented for use by Cohen and Fitzgerald in 1910 and then by Dr. Olga Povitzky at the New York City Department of Health Bureau of Laboratories. The term "chocolate" comes from the brown color generated from the higher concentration of heated blood in the mixture and was first used by Warren Crowe in 1915.
Magnetic resonance imaging (MRI) has a sensitivity of 97-100% and specificity of 94-100% in the diagnosis of aortic dissections. MRIs take up to 20–30 minutes to complete and therefore may not be suitable for use in people who are critically ill, such as those with aortic dissections. MRIs are also not available in many resource limited settings. MRIs do not expose the person to potentially harmful ionizing radiation.
== Selected bibliography == Daly, Marie M.; Mirsky, A.E. (June 1949). "Chromatography of Purines and Pyrimidines on Starch Columns". Journal of Biological Chemistry. 179 (2): 981–982. doi:10.1016/S0021-9258(19)51291-1. PMID 18150028. Daly, M.M.; Allfrey, V.G.; Mirsky, A.E. (May 20, 1950). "Purine and Pyrimidine Contents of Some Desoxypentose Nucleic Acids" (PDF). Journal of General Physiology. 33 (5): 497–510. doi:10.1085/jgp.33.5.497. PMC 2147206. PMID 15422104. Daly, Marie; Mirsky, A.E.; Ris, Hans (March 20, 1951). "The Amino Acid Composition and Some Properties of Histones" (PDF). The Journal of General Physiology. 34 (4): 439–450. doi:10.1085/jgp.34.4.439. PMC 2147226. PMID 14824510. Daly, Marie M.; Mirsky, A.E. (November 1952). "Formation of Protein in the Pancreas". Journal of General Physiology. 36 (2): 243–254. doi:10.1085/jgp.36.2.243. PMC 2147369. PMID 13011280. Daly, Marie M.; Allfrey, V.G.; Mirsky, A.E. (November 1952). "Uptake of Glycine-N15 by Components of Cell Nuclei" (PDF). Journal of General Physiology. 36 (2): 173–179. doi:10.1085/jgp.36.2.173. PMC 2147362. PMID 13011275. Allfrey, V.; Daly, M.M.; Mirsky, A.E. (November 20, 1953). "Synthesis of protein in the pancreas. II. The role of ribonucleoprotein in protein synthesis". Journal of General Physiology. 37 (2): 157–175. doi:10.1085/jgp.37.2.157. PMC 214743. PMID 13109153. Mirsky, A.E.; Allfrey, V.G.; Daly, M.M. (September 1954). "The Uptake of N15-Labelled Glycine by Liver Proteins". Journal of Histochemistry and Cytochemistry. 2 (5): 376–377. doi:10.1177/2.5.376. PMID 13192326. S2CID 40223958.
Sources: en.wikipedia.org
More data on this classification are discoverable at the Expasy metallothionein page.Secondary structure elements have been observed in several MTs SmtA from Syneccochoccus, mammalian MT3, echinoderm SpMTA, fish Notothenia coriiceps MT, crustacean MTH, but until this moment, the content of such structures is considered to be poor in MTs, and its functional influence is not considered. Tertiary structure of MTs is also highly heterogeneous. While vertebrate, echinoderm and crustacean MTs show a bidominial structure with divalent metals as Zn(II) or Cd(II) (the protein is folded so as to bind metals in two functionally independent domains, with a metallic cluster each), yeast and prokaryotic MTs show a monodominial structure (one domain with a single metallic cluster). In yeast, the first 40 residues in the protein wrap around the metal by forming two large parallel loops separated by a deep cleft containing the metal cluster. Although no structural data is available for molluscan, nematoda and Drosophila MTs, it is commonly assumed that the former are bidominial and the latter monodominial. No conclusive data are available for Plant MTs, but two possible structures have been proposed: 1) a bidominial structure similar to that of vertebrate MTs; 2) a codominial structure, in which two Cys-rich domains interact to form a single metallic cluster. Quaternary structure has not been broadly considered for MTs.
A third ZIPRA incursion attempt in July 1969 met with similarly catastrophic results. Thereafter, ZIPRA abandoned the notion of attempting to infiltrate the country with large groups of insurgents equipped only with small arms; it limited itself to more irregular forms of warfare until it could stockpile enough heavy weaponry to mount a major conventional invasion. For its part, the ZANLA leadership criticised ZIPRA's continued fixation with winning a major conventional engagement, arguing that the failed incursions demonstrated the futility of engaging the Rhodesian military in the type of pitched battles in which it held an indisputable advantage. ZIPRA's failure to obtain support from the locals was also noted, and ZANLA began implementing a long-term covert politicisation programme to cultivate civilian support throughout its future area of operations.
=== Immunophenotypic studies === Immunohistochemistry (IHC) is best performed on frozen sections of tumor (not formalin fixed material!). Histiocytoma is readily distinguished from other histiocytic disorders and cutaneous lymphoma with the aid of IHC. Our work has clearly shown that histiocytomas have the phenotype of epidermal Langerhans cells. They express CD1a, CD1b, CD1c, MHC class II, CD11c, and E-cadherin. Amongst leukocytes, E-cadherin expression is unique to Langerhans cells. Langerhans cells utilize E-cadherin to localize in the epidermis via homotypic interaction with E-cadherin expressed by keratinocytes. Histiocytomas lack expression of CD4 and Thy-1, which are consistently expressed by histiocytes in cutaneous and systemic histiocytosis. Hence cutaneous histiocytoma is a localized epidermal Langerhans cell tumor, and the rare examples of systemic spread of histiocytoma are best characterized as Langerhans cell histiocytosis (LCH) similar to that observed in humans.
Saturation of the body fat compartment in people with rapid and profound body fat loss (people with cancer, cardiac or infection-induced cachexia can lose 80% of their body fat). Early carbon dioxide retention causes cutaneous vasodilation (releasing more fentanyl), together with acidosis, which reduces the protein binding of fentanyl, releasing yet more fentanyl. Reduced sedation, losing a useful early warning sign of opioid toxicity and resulting in levels closer to respiratory-depressant levels. Another related complication of fentanyl overdoses includes the so-called wooden chest syndrome, which quickly induces complete respiratory failure by paralyzing the thoracic muscles, explained in more detail in the Muscle rigidity section below.
==== Writers and Erasers ==== The proteins that regulate genetics are often categorized as writers, readers, and erasers, i.e., enzymes that install epigenetic modifications, proteins that recognize these modifications, and enzymes that remove these modifications. To date, O-GlcNAc has been identified on writer and eraser enzymes. O-GlcNAc is found in multiple locations on EZH2, the catalytic methyltransferase subunit of PRC2, and is thought to stabilize EZH2 prior to PRC2 complex formation and regulate di- and tri-methyltransferase activity. All three members of the ten-eleven translocation (TET) family of dioxygenases (TET1, TET2, and TET3) are known to be modified by O-GlcNAc. O-GlcNAc has been suggested to cause nuclear export of TET3, reducing its enzymatic activity by depleting it from the nucleus. O-GlcNAcylation of HDAC1 is associated with elevated activating phosphorylation of HDAC1.
Sources: en.wikipedia.org
It corresponds to a fragment of the larger protein prothymosin alpha, which is present in many tissues. The isolated 28-amino-acid peptide was originally obtained from thymus preparations, and the pharmaceutical product is synthesized rather than extracted. The term therefore describes both a natural fragment and a manufactured drug substance.
Thymosin alpha-1 is a single defined 28-residue peptide, while the broader family includes unrelated peptides such as thymosin beta-4. The shared name reflects historical isolation from thymus tissue rather than a common structure. Confusion between the two is common in older literature.
No single pathway fully accounts for its reported effects. Several studies describe interaction with innate immune receptors and downstream cytokine changes, but the complete picture is not settled. Open questions remain about which effects occur at physiological concentrations.
It corresponds to the first 28 amino acids of thymosin beta-4, a larger protein found in many tissues. The fragment is acetylated at its N-terminus and is produced synthetically for research and pharmaceutical use. Synthetic and natural forms share the same sequence.