Discovery and development of beta-blockers
Discovery and development of beta-blockers
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Discovery and development of beta-blockers

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Discovery and development of beta-blockers

β adrenergic receptor antagonists (also called beta-blockers or β-blockers) were initially developed in the 1960s, for the treatment of angina pectoris but are now also used for hypertension, congestive heart failure and certain arrhythmias. In the 1950s, dichloroisoproterenol (DCI) was discovered to be a β-antagonist that blocked the effects of sympathomimetic amines on bronchodilation, uterine relaxation and heart stimulation. Although DCI had no clinical utility, a change in the compound did provide a clinical candidate, pronethalol, which was introduced in 1962.

The β-blockers are an immensely important class of drugs due to their high prevalence of use. The discovery of β-blockers reaches back to more than 100 years ago, when early investigators came up with the idea that catecholamines were binding selectively to receptor-like structures and that this was the cause of their pharmacological actions. In 1948, Raymond P. Ahlquist published a seminal paper concluding his findings, that there were two distinct receptors for catecholamine drugs, and they caused different responses in the heart muscle. He labeled them α-and β-adrenoceptors. These findings were soon to be a foundation for further research into drug development.

In the early 1960s, James Black, a Scottish pharmacologist, and associates of his at the Imperial Chemical Industries (ICI) in Great Britain were working on a series of β-adrenergic blocking compounds, pronethalol and propranolol. Dr. Black focused on developing a drug that would relieve the pain of angina pectoris, which results from oxygen deprivation in the heart. His plan was to create a drug that would decrease the heart's requirement for oxygen. He hypothesized that these compounds would lower the heart's oxygen consumption by interfering with the effects of catecholamines. In 1958, the pharmacological properties of dichloroisoproterenol (DCI) were described, a β-antagonist discovered a few years before by the Eli Lilly group. It was the synthesis of DCI which established that β-receptors could be chemically blocked and thus its existence could be confirmed. DCI had no clinical utility but a replacement of the 3,4-dichloro substituents, with a carbon bridge to form a naphtylethanolamine derivative, afforded a clinical candidate, pronethalol.

In April 1963, toxicity tests for pronethalol showed results of thymic tumours in mice. Nevertheless, it was launched under the trade name Alderlin, as the first clinically useful β-blocker. The launch took place in November 1963 when many small-scale clinical trials had proved their effectiveness in angina and certain types of arrhythmias. Pronethalol was only marketed for use in life-threatening situations. Dr. James Black went on to create another β-blocker, called propranolol; a non-selective β-blocker. Clinical trials started in the summer of 1964 and a year later, propranolol was launched under the trade name Inderal, only two and a half years after it had first been tested. It turned out to have a higher potency than pronethalol, with fewer side effects. Propranolol became the first major drug in the treatment of angina pectoris, since the introduction of coronary vasodilators, (such as nitroglycerin), almost 100 years earlier. Propranolol became a best-selling drug, used to treat a wide range of cardiovascular diseases such as arrhythmia, hypertension and hypertrophic cardiomyopathy.

By the time propranolol was launched, ICI was beginning to experience competition from other companies. This potential threat led to ongoing refinements in the pharmacologic structure of β-blockers and subsequent advances in drug delivery. ICI studied analogues further and in 1970 launched practolol (figure 4) under the trade name Eraldin. It was withdrawn from the market a few years later because of the severe side effects it caused, nevertheless it played a large role in the fundamental study of β-blockade and β-receptors. The withdrawal of Eraldin gave ICI the nudge to launch another β-blocker, atenolol, which was launched in 1976 under the trade name Tenormin. Atenolol is a selective β1-receptor antagonist and was developed for the purpose of obtaining the "ideal β-blocker". It soon became one of the best-selling heart drug. ICI's β-blocker project was based on Ahlquist's dual receptor theory. The drugs that were the outcome of this project, from propranolol to atenolol, helped to establish the receptor theory among scientist and pharmaceutical companies.

The progress in β-blocker development led to the introduction of drugs with variety of properties. β-blockers were developed having a relative selectivity for cardiac β1-receptors (for example metoprolol and atenolol), partial adrenergic agonist activity (pindolol), concomitant α-adrenergic blocking activity (for example labetalol and carvedilol) and additional direct vasodilator activity (nebivolol). In addition, long-acting and ultra-short formulations of β-blockers were developed. In 1988, Sir James Black was awarded the Nobel Prize in Medicine for his work on drug development.

The β-adrenergic receptor antagonists all have similar therapeutic and pharmacodynamic actions in patients with cardiovascular disorders. They vary greatly in their pharmacokinetic properties, as they demonstrate a high range of values in plasma protein binding, the percent of drug eliminated by metabolism or unchanged in the urine and hepatic extraction ratio. Each of the β-blockers possesses at least one chiral centre and a high degree of enantioselectivity when binding to the β-adrenergic receptor. For those β-blockers containing a single chiral centre, the (-) enantiomer has a much higher affinity in binding to the β-adrenergic receptor than the (+) enantiomer. All β-blockers used systemically are delivered as racemate, except for timolol.

Three different types of β-adrenergic receptors have been identified by molecular pharmacology. β1-receptors are located in the heart and consist of about 75% of all β-receptors. β2-receptors can be found in the smooth muscles of vessels and the bronchies. β3-receptors are presumed to be involved in fatty acid metabolism and are found in the adipocytes. β-blockers cause a competitive inhibition of the β-receptor, which counters the effects of catecholamines. β1 and β2-receptors are G-protein coupled receptors, which couple to Gαs-proteins. When activated, it stimulates an increase in intracellular cAMP via the adenylyl cyclase. cAMP, which is the second messenger, then activates protein kinase A that phosphorylates the membrane's calcium channel and increases the entry of calcium into the cytosol. Protein kinase A also increases the release of calcium from the sarcoplasmic reticulum, which causes a positive inotropic effect. The phosphorylation of troponin I and phospholamban by protein kinase A causes the lusitropic effects of β-blockers. This increases the re-uptake of calcium by the sarcoplasmic reticulum.

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