Everything below concerns 白蛋白结合. We keep the language plain, cite what the science says, and separate well-supported claims from open questions.
Updated 2025-10-24. Numbers and descriptions here follow the published literature rather than marketing material.
Semaglutide is a synthetic peptide analogue of glucagon-like peptide-1, a gut hormone released after nutrient intake. The molecule contains 31 amino acid residues and differs from the native sequence at several positions. A non-natural residue at position eight resists the enzyme that normally truncates the hormone, while a lysine-linked fatty diacid side chain promotes binding to serum albumin. These two modifications extend the circulating half-life from minutes to roughly one week. The peptide is produced by solid-phase synthesis followed by selective acylation, and its identity and purity are confirmed by spectrometric and chromatographic techniques.
The primary target is the GLP-1 receptor, a class B G protein-coupled receptor expressed on pancreatic beta cells, in the gut, and in several brain regions. Receptor activation raises intracellular cyclic AMP, which potentiates glucose-dependent insulin secretion and lowers glucagon release when blood glucose is elevated. Signalling in the hypothalamus and brainstem is associated with reduced appetite and slower gastric emptying. Because the insulinotropic effect depends on prevailing glucose levels, the hypoglycaemic risk of the peptide alone is described as low in most study settings. The relative contribution of peripheral and central actions remains an active research question.
Semaglutide is a synthetic peptide analog of human glucagon-like peptide-1, a gut hormone released after meals. Its backbone retains the GLP-1 sequence but incorporates two substitutions that slow enzymatic breakdown by dipeptidyl peptidase-4. A short polyethylene glycol linker and a C18 fatty diacid are attached to the peptide chain, allowing the molecule to bind serum albumin and remain in circulation far longer than the native hormone. The result is a circulating half-life measured in days rather than the minutes typical of endogenous GLP-1.
Receptor activation occurs at GLP-1 receptors distributed across pancreatic islets, the hypothalamus, and the gastrointestinal tract. Binding triggers G protein signaling that raises cyclic AMP and enhances glucose-dependent insulin release. Because the effect depends on prevailing glucose levels, insulin secretion does not rise when blood sugar is already low. Signaling in the brain and gut also influences appetite and gastric emptying, which is why the compound appears in both metabolic and weight-related research literature.
| Property | Value | Notes |
|---|---|---|
| Molecular class | Acylated GLP-1 receptor agonist | 31-residue synthetic peptide |
| Molecular formula | C187H291N45O59 | established for the free peptide |
| Appearance | White to off-white powder | as supplied before formulation |
| Solubility | Freely soluble in water | aqueous buffers near neutral pH |
| Typical storage | 2 to 8 degrees Celsius, protected from light | powder and solution forms differ in shelf life |
皮下注射后吸收相对缓慢,绝对生物利用度约为百分之八十九,血药浓度峰值通常出现在给药后一到三天。与白蛋白结合使清除减慢,终末半衰期约为一百六十五小时,接近一周。连续给药约四到五周后达到稳态暴露水平。表观分布容积约为每千克零点二五升,血浆蛋白结合率超过百分之九十九。代谢以蛋白水解切割和脂肪二酸侧链的 β-氧化为主,相关产物主要经尿液与粪便排出。
序列层面的改动同时解决了两个问题,即酶解稳定性与肾脏清除速度。天然 GLP-1 在循环中的半衰期仅约两分钟,主要被二肽基肽酶-4 迅速灭活。酰化侧链与白蛋白的可逆结合形成循环储库,使分子缓慢释放并持续激活受体。这种设计思路后来被广泛用于同类长效肽的开发,属于该类药物化学改造的典型范式。
Degradation proceeds along several parallel routes. Deamidation of asparagine and glutamine residues generates charged variants that shift retention time in chromatographic analysis. Oxidation targets methionine and can be accelerated by trace metals or dissolved oxygen. Non-covalent aggregation produces dimers, oligomers, and larger species that are difficult to reverse. Isomerisation at aspartate residues is slower but measurable under thermal stress. The distribution among these pathways depends on pH, buffer composition, ionic strength, and the presence of excipients such as sugars or surfactants.
Reverse-phase high-performance liquid chromatography with ultraviolet detection near 214 nm is the standard purity method, reported as area percent. Mass spectrometry, usually with electrospray ionisation, confirms identity and reveals covalent modifications. Size-exclusion chromatography quantifies aggregates and fragments. Peptide mapping after enzymatic digestion localises changes to specific sequence regions. Circular dichroism and infrared spectroscopy report on secondary structure, while light scattering tracks particle formation in liquid formulations. No single technique captures every quality attribute.
Quality control relies on pharmacopoeial monographs where they exist, combined with in-house specifications for identity, purity, water content, and counter-ion composition. Reference standards allow calibration across laboratories, although certified materials for every analogue are not universally obtainable. Batch records, chromatograms, and mass spectra form the documentation trail. Regulatory classification varies by jurisdiction and intended use, and research-grade material differs from pharmaceutical-grade material in testing scope. Analytical uncertainty is often expressed as relative standard deviation across replicate injections.
Unlike most tubers, but in common with many other members of the Asteraceae (including the artichoke), Jerusalem artichoke tubers store their carbohydrates as the polysaccharide inulin (not to be confused with the peptide insulin) rather than as starch. This has made them an important source of inulin used as a dietary fiber in food manufacturing. Jerusalem artichoke can propagate with seeds and tubers but the use of tubers leads to higher yields. For planting, the tubers are cut into pieces with three to five buds that are placed in 5–10 centimetres (2–4 in) depth in the soil. Jerusalem artichoke has low nutrient requirements and needs less nitrogen than other energy crops. The competitiveness against weeds is high, making weed control easier but also making it harder to grow a different culture afterward, since some small tubers usually remain in the ground after harvest. The plant's high competitiveness may be due to allelopathic effects, high plant size, and rapid growth rate. Crop yields are high, typically 16–20 tonnes per hectare (7–9 short ton/acre) for tubers, and 18–28 tonnes per hectare (8–12 short ton/acre) green weight for foliage. Tubers remaining in the ground lie dormant over winter and can handle temperatures as low as −30 °C (−22 °F). Jerusalem artichoke also has potential for production of ethanol fuel, using inulin-adapted strains of yeast for fermentation. The tubers are used for cooking and baking in the same ways as potatoes, but unlike the potato, they can also be eaten raw.
Most studies agree on a Cretaceous age for the most recent common ancestor of modern birds but estimates range from the Early Cretaceous to the latest Cretaceous. Similarly, there is no agreement on whether most of the early diversification of modern birds occurred in the Cretaceous and associated with breakup of the supercontinent Gondwana or occurred later and potentially as a consequence of the Cretaceous–Palaeogene extinction event. This disagreement is in part caused by a divergence in the evidence. Most molecular dating studies suggests a Cretaceous evolutionary radiation, while fossil evidence points to a Cenozoic radiation (the so-called 'rocks' versus 'clocks' controversy). The discovery in 2005 of Vegavis from the Maastrichtian, the last stage of the Late Cretaceous, proved that the diversification of modern birds started before the Cenozoic era. The affinities of an earlier fossil, the possible galliform Austinornis lentus, dated to about 85 million years ago, are still too controversial to provide a fossil evidence of modern bird diversification. In 2020, Asteriornis from the Maastrichtian was described, it appears to be a close relative of Galloanserae, the earliest diverging lineage within Neognathae. Attempts to reconcile molecular and fossil evidence using genomic-scale DNA data and comprehensive fossil information have not resolved the controversy.
=== European Union === The fourth iteration of the EU's anti–money laundering directive (AMLD IV) was published on 5 June 2015, after clearing its last legislative stop at the European Parliament. This directive brought the EU's money laundering laws more in line with the US's, which is advantageous for financial institutions operating in both jurisdictions. The Fifth Money Laundering Directive (5MLD) came into force on 10 January 2020, addressing a number of weaknesses in the European Union's AML/CFT regime that came to light after the enactment of the Fourth Money Laundering Directive AMLD IV). The AMLD5 increased the scope of the EU's AML regulations. It decreased the threshold of customer identity verification for the prepaid card industry from EUR 250 to EUR 150. The customers who deposit or transfer funds more than EUR150 will be identified by the prepaid card issuing company. Lack of harmonization in AML requirements between the US and EU has complicated the compliance efforts of global institutions that are looking to standardize the Know Your Customer (KYC) component of their AML programs across key jurisdictions. AMLD IV promises to better align the AML regimes by adopting a more risk-based approach compared to its predecessor, AMLD III. Certain components of the directive, however, go beyond current requirements in both the EU and US, imposing new implementation challenges on banks.
Sources: en.wikipedia.org
Cl2 + H2O ⇌ HClO + HCl Cl2 + 4 OH− ⇌ 2 ClO− + 2 H2O + 2 e− Cl2 + 2 e− ⇌ 2 Cl− When acids are added to aqueous salts of hypochlorous acid (such as sodium hypochlorite in commercial bleach solution), the resultant reaction is driven to the left, and chlorine gas is formed. Thus, the formation of stable hypochlorite bleaches is facilitated by dissolving chlorine gas into basic water solutions, such as sodium hydroxide. The acid can also be prepared by dissolving dichlorine monoxide in water; under standard aqueous conditions, anhydrous hypochlorous acid is currently impossible to prepare due to the readily reversible equilibrium between it and its anhydride:
In fluid dynamics, the Hagen–Poiseuille equation, also known as the Hagen–Poiseuille law, Poiseuille law or Poiseuille equation, is a physical law that gives the pressure drop in an incompressible and Newtonian fluid in laminar flow flowing through a long cylindrical pipe of constant cross section. It can be successfully applied to air flow in the airways of the lungs, or the flow through a drinking straw or through a hypodermic needle. It was experimentally derived independently by Jean Léonard Marie Poiseuille in 1838 and Gotthilf Heinrich Ludwig Hagen, and published by Hagen in 1839 and then by Poiseuille in 1840–41 and 1846. The theoretical justification of the Poiseuille law was given by George Stokes in 1845. The assumptions of the equation are that the fluid is incompressible and Newtonian; the flow is laminar through a pipe of constant circular cross-section that is substantially longer than its diameter; and there is no acceleration of fluid in the pipe. For velocities and pipe diameters above a threshold, actual fluid flow is not laminar but turbulent, leading to larger pressure drops than calculated by the Hagen–Poiseuille equation. Poiseuille's equation describes the pressure drop due to the viscosity of the fluid; other types of pressure drops may still occur in a fluid (see a demonstration here).
=== Lifespan === In the East China Sea, blue mackerel spawn between February and May, when the water temperatures are ideal. In New South Wales, most spawning occurs 10 km (6.2 mi) offshore in waters 100–125 m (328–410 ft) in depth. The East Australian Current can carry eggs and larvae away from the original spawning grounds, broadening the area in which blue mackerel are located. However, egg and larvae probability of surviving decreases the further they are carried by the current. A mature blue mackerel is considered to be over 31 cm (12 in) long. Mackerel can live up to 7 years and grow up to 50 cm (20 in) in length, but are most commonly found to be between 1 and 3 years of age. Counting the marks on otoliths is used to determine the age of blue mackerel.
The branch of medical science that deals with the study of incidence and distribution and control of a disease in a population. (NLM) The study of the patterns, causes, and control of disease in groups of people. (NCI) Equivalence trial
Sources: en.wikipedia.org
=== Hartig net === The Hartig net is formed by an ingrowth of hyphae (often originating from the inner part of the surrounding mantle) into the root of the plant host. The hyphae penetrate and grow in a transverse direction to the axis of the root, and thus form a network between the outer cells of the root axis. In this region fungal and root cells touch, and this is where nutrient and carbon exchange occurs. The depth of penetration differs between species. In Eucalyptus and Alnus the Hartig net is confined to the epidermis, whereas in most gymnosperms the hyphae penetrate more deeply, into the cortical cells or the endodermis. In many epidermal types elongation of cells along the epidermis occurs, increasing surface contact between fungus and root cells. Most cortical type Hartig nets do not show this elongation, suggesting different strategies for increasing surface contact among species.
After returning with a new power cell, Calhoun assists Rosenberg in evacuating the few surviving personnel through the teleporter. Calhoun is the last to enter the portal and as he does so, Marines breach the laboratory and fire on him, causing the teleporter to explode. As a result of the teleporter's destruction, Calhoun enters a "harmonic reflux", causing him to be rapidly teleported to a variety of locations in Xen and Black Mesa. At one location, he witnesses Freeman's capture by Marines midway through Half-Life, before eventually stabilizing at the intended teleport location with Rosenberg at the outskirts of Black Mesa, where they then escape the facility in a company SUV.
==== Trophic interactions ==== Assimilation of diet into tissue has a tissue-specific fractionation known as the trophic discrimination factor. Diet sources can be tracked through a food web via deuterium isotope profiles, though this is complicated by deuterium having two potential sources – water and food. Food more strongly impacts δD than does exchange with surrounding water, and that signal is seen across trophic levels. However, different organisms derive organic hydrogen in varying ratios of water to food: for example, in quail, 20-30% of organic hydrogen was from water and the remainder from food. The precise percentage of hydrogen from water, depended on tissue source and metabolic activity. In chironomids, 31-47% of biomass hydrogen derived from water, and in microbes as much as 100% of fatty acid hydrogen can be derived from water depending on substrate. In caterpillars, diet δD from organic matter correlates linearly with tissue δD. The same relationship does not appear to hold consistently for diet δD from water, however – water derived from either the caterpillar or its prey plant is more 2H-enriched than their organic material. Going up trophic levels from prey (plant) to predator (caterpillar) results in an isotopic enrichment. This same trend of enrichment is seen in many other animals - carnivores, omnivores, and herbivores - and seems to follow 15N relative abundances. Carnivores at the same trophic level tend to exhibit the same level of 2H enrichment.
Decarboxylation is a chemical reaction that removes a carboxyl group and releases carbon dioxide (CO2). Usually the term refers to a reaction of carboxylic acids, removing a carbon atom from a carbon chain. The reverse process, which is the first chemical step in photosynthesis, is called carboxylation, the addition of CO2 to a compound. Enzymes that catalyze decarboxylations are called decarboxylases or, more formally, carboxy-lyases (EC number 4.1.1).
== History == Erythritol was discovered in 1848 by the Scottish chemist John Stenhouse and first isolated in 1852. Starting from 1945, American chemists applied newly-developed techniques of chromatography to sugarcane juice and blackstrap molasses, finding in 1950 that erythritol was present in molasses fermented by yeast. It was first approved and marketed as a sweetener in Japan in 1990, and in the US in 1997. In February 1997, Cerestar Holding Co., Mitsubishi Chemical Co., and Nikken Chemicals Co. submitted a formal generally recognized as safe (GRAS) affirmation petition with the US FDA. However, in April 1997 the FDA replaced the GRAS affirmation petition process with the current GRAS notification process, a notice was first filed by Cerestar in April 2001, and the FDA responded with "no questions" in September 2001.
Sources: en.wikipedia.org
Native GLP-1 is degraded within minutes by dipeptidyl peptidase-4 and neutral endopeptidases. Semaglutide carries a non-natural amino acid at position eight that blocks that cleavage, and a fatty diacid side chain that binds albumin. The result is a much longer duration of action than the native hormone.
The fatty diacid chain associates strongly with serum albumin, which keeps the peptide in circulation and shields it from rapid renal clearance. Bound peptide is released gradually, producing a sustained receptor signal. This mechanism also reduces the peak-to-trough variation seen with shorter-acting analogues.
The balance between peripheral receptor activation and signalling in the central nervous system is not fully resolved. The extent to which slowed gastric emptying accounts for reduced energy intake, compared with direct effects on appetite circuits, is debated. Long-term effects on lean mass and on tissues outside the gut and brain are still under study.
Native GLP-1 is degraded within minutes by circulating enzymes. The synthetic version carries substitutions at positions that block enzymatic cleavage, plus a fatty acid side chain that promotes albumin binding. These two changes together extend circulation time from minutes to roughly a week.