HMG-CoA reductase

HMGCR
Available structures
PDBOrtholog search: PDBe RCSB
Identifiers
AliasesHMGCR, HMG-CoA reductase, Entrez 3156, LDLCQ3, 3-hydroxy-3-methylglutaryl-CoA reductase, Hydroxymethylglutaryl-CoA reductase
External IDsOMIM: 142910; MGI: 96159; HomoloGene: 30994; GeneCards: HMGCR; OMA:HMGCR - orthologs
Orthologs
SpeciesHumanMouse
Entrez
Ensembl
UniProt
RefSeq (mRNA)

NM_000859
NM_001130996
NM_001364187

NM_008255
NM_001360165
NM_001360166

RefSeq (protein)

NP_000850
NP_001124468
NP_001351116
NP_000850.1

NP_032281
NP_001347094
NP_001347095

Location (UCSC)Chr 5: 75.34 – 75.36 MbChr 13: 96.79 – 96.81 Mb
PubMed search[3][4]
Wikidata
View/Edit HumanView/Edit Mouse
hydroxymethylglutaryl-CoA reductase (NADH)
Identifiers
EC no.1.1.1.88
CAS no.37250-24-1
Databases
IntEnzIntEnz view
BRENDABRENDA entry
ExPASyNiceZyme view
KEGGKEGG entry
MetaCycmetabolic pathway
PRIAMprofile
PDB structuresRCSB PDB PDBe PDBsum
Gene OntologyAmiGO / QuickGO
Search
PMCarticles
PubMedarticles
NCBIproteins
hydroxymethylglutaryl-CoA reductase (NADPH)
HMG-CoA reductase (NADPH), Human
Identifiers
EC no.1.1.1.34
Databases
IntEnzIntEnz view
BRENDABRENDA entry
ExPASyNiceZyme view
KEGGKEGG entry
MetaCycmetabolic pathway
PRIAMprofile
PDB structuresRCSB PDB PDBe PDBsum
Gene OntologyAmiGO / QuickGO
Search
PMCarticles
PubMedarticles
NCBIproteins

HMG-CoA reductase (3-hydroxy-3-methyl-glutaryl-coenzyme A reductase, official symbol HMGCR) is the rate-controlling enzyme (NADH-dependent, EC 1.1.1.88; NADPH-dependent, EC 1.1.1.34) of the mevalonate pathway, the metabolic pathway that produces cholesterol and other isoprenoids. HMGCR catalyzes the conversion of HMG-CoA to mevalonic acid, a necessary step in the biosynthesis of cholesterol. Normally in mammalian cells this enzyme is competitively suppressed so that its effect is controlled. This enzyme is the target of the widely available cholesterol-lowering drugs known collectively as the statins, which help treat dyslipidemia.

HMG-CoA reductase is anchored in the membrane of the endoplasmic reticulum, and was long regarded as having seven transmembrane domains, with the active site located in a long carboxyl terminal domain in the cytosol. More recent evidence shows it to contain eight transmembrane domains.[5]

In humans, the gene for HMG-CoA reductase (NADPH) is located on the long arm of the fifth chromosome (5q13.3-14).[6] Related enzymes having the same function are also present in other animals, plants and bacteria.

Structure

The main isoform (isoform 1) of HMG-CoA reductase in humans is 888 amino acids long. It is a polytopic transmembrane protein (meaning it possesses many alpha helical transmembrane segments). It contains two main domains:

  • a conserved N-terminal sterol-sensing domain (SSD, amino acid interval: 88–218). The related SSD of SCAP has been shown to bind cholesterol.[7][8]
  • a C-terminal catalytic domain (amino acid interval: 489-871), namely the 3-hydroxy-3-methyl-glutaryl-CoA reductase domain. This domain is required for the proper enzymatic activity of the protein.[9]

Isoform 2 is 835 amino acids long. This variant is shorter because it lacks an exon in the middle region (amino acids 522–574). This does not affect any of the aforementioned domains.

Function

HMGCR catalyses the conversion of HMG-CoA to mevalonic acid, a necessary step in the biosynthesis of cholesterol:

Mevalonate pathway
Mevalonate pathway

Normally in mammalian cells this enzyme is competitively suppressed by cholesterol derived from the internalization and degradation of low density lipoprotein (LDL) via the LDL receptor as well as oxidized species of cholesterol. Competitive inhibitors of the reductase induce the expression of LDL receptors in the liver, which in turn increases the catabolism of plasma LDL and lowers the plasma concentration of cholesterol, which is considered, by those who accept the standard lipid hypothesis, an important determinant of atherosclerosis.[10] This enzyme is thus the target of the widely available cholesterol-lowering drugs known collectively as the statins (see Drugs section for more).

In Drosophila melanogaster, Hmgcr is the homolog of Human HMGCR, and plays crucial roles in regulating energy metabolism and food intake but also sleep homeostasis through the central mechanisms according to these studies

Al-Sabri, M. H. (2024). Unveiling the Mechanisms for Statin-Associated Sleep Problems and Myopathy : Statin Medication, Sleep Problems and Myopathy Mechanisms (PhD dissertation, Acta Universitatis Upsaliensis). Retrieved from https://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-525998

, https://www.mdpi.com/2073-4409/11/6/970 and https://www.mdpi.com/1424-8247/15/1/79

Interactive pathway map

Click on genes, proteins and metabolites below to link to respective articles. [§ 1]

[[File:
Statin_Pathway_WP430go to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to article
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Statin_Pathway_WP430go to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to articlego to article
|alt=Statin pathway edit]]
Statin pathway edit
  1. ^ The interactive pathway map can be edited at WikiPathways: "Statin_Pathway_WP430".

Inhibitors

Drugs

Drugs that inhibit HMG-CoA reductase, known collectively as HMG-CoA reductase inhibitors (or "statins"), are used to lower serum cholesterol as a means of reducing the risk for cardiovascular disease.[11]

These drugs include rosuvastatin (CRESTOR), lovastatin (Mevacor), atorvastatin (Lipitor), pravastatin (Pravachol), fluvastatin (Lescol), pitavastatin (Livalo), and simvastatin (Zocor).[12] Red yeast rice extract, one of the fungal sources from which the statins were discovered, contains several naturally occurring cholesterol-lowering molecules known as monacolins. The most active of these is monacolin K, or lovastatin (previously sold under the trade name Mevacor, and now available as generic lovastatin).[13]

Vytorin is drug that combines the use simvastatin and ezetimibe, which slows the formation of cholesterol by every cell in the body, along with ezetimibe reducing absorption of cholesterol, typically by about 53%, from the intestines.[14]

Statins, HMG-CoA reductase inhibitors, are competent in lowering cholesterol levels and reducing cardiac-related diseases. However, there have been controversies surrounding the potential of statins increasing the risk of new-onset diabetes mellitus (NOD). Experiments have demonstrated that glucose and cholesterol homeostasis are regulated by statins. The HMG-CoA reductase (HMGCR), converts HMG-CoA into mevalonic acid. Thus, when HMGCR activities are reduced, the cell associated cholesterols are also reduced. This results in the activation of SREBP-2-mediated signaling pathways. SREBP-2 activation for cholesterol homeostasis is crucial for the upregulation of low density lipoprotein (LDL) receptor (LDLR). The removal of LDL particles from blood circulation is enhanced when the number of LDLR on hepatocytes increases. Due to the removal of atherogenic lipoprotein particles, such as LDLs and intermediate density lipoproteins, HMGCR inhibitors have been proven to be efficient in reducing cardiovascular diseases from the blood circulation, which is represented by the reduction of LDL-cholesterol levels. In many studies, lipophilic statins are shown as more diabetogenic, possibly due to the fact that they can easily diffuse into cells and inhibit the production of isoprenoids which become more potent. Additionally, statins have been shown to change glucose levels as well.[15]

Hormones

HMG-CoA reductase is active when blood glucose is high. The basic functions of insulin and glucagon are to maintain glucose homeostasis. Thus, in controlling blood sugar levels, they indirectly affect the activity of HMG-CoA reductase, but a decrease in activity of the enzyme is caused by AMP-activated protein kinase,[16] which responds to an increase in AMP concentration, and also to leptin.

Clinical significance

Since the reaction catalysed by HMG-CoA reductase is the rate-limiting step in cholesterol synthesis, this enzyme represents the sole major drug target for contemporary cholesterol-lowering drugs in humans. The medical significance of HMG-CoA reductase has continued to expand beyond its direct role in cholesterol synthesis following the discovery that statins can offer cardiovascular health benefits independent of cholesterol reduction.[17] Statins have been shown to have anti-inflammatory properties,[18] most likely as a result of their ability to limit production of key downstream isoprenoids that are required for portions of the inflammatory response. It can be noted that blocking of isoprenoid synthesis by statins has shown promise in treating a mouse model of multiple sclerosis, an inflammatory autoimmune disease.[19]

Inhibition of HMG-CoA reductase by statins is lessened in patients with type 2 diabetes, which results in lessened inhibition of coronary atheromatous plaque, development.[20]

HMG-CoA reductase is an important developmental enzyme. Inhibition of its activity and the concomitant lack of isoprenoids that yields can lead to germ cell migration defects[21] as well as intracerebral hemorrhage.[22]

Homozygous mutation of HMGCR can lead to a form of limb girdle myopathy that may share features with mild statin-induced myopathy. The clinical syndrome was partially reversed in a model system by supplementation with the downstream metabolite mevalonolactone.[23]

The presence of anti HMG-CoA reductase antibodies is seen in people with statin-associated autoimmune myopathy, which is a very rare form of muscle damage caused by the immune system in people who take statin medications.[24] The exact mechanism is unclear. A combination of consistent findings on physical examination, the presence of anti HMG-CoA reductase antibodies in a person with myopathy, evidence of muscle breakdown, and muscle biopsy diagnose SAAM.[25]

Regulation

HMG-CoA reductase-Substrate complex (Blue:Coenzyme A, red:HMG, green:NADP)

Regulation of HMG-CoA reductase is achieved at several levels: transcription, translation, degradation and phosphorylation.

Transcription

Transcription of the reductase gene is enhanced by the sterol regulatory element binding protein (SREBP). This protein binds to the sterol regulatory element (SRE), located on the 5' end of the reductase gene after controlled proteolytic processing. When SREBP is inactive, it is bound to the ER or nuclear membrane with another protein called SREBP cleavage-activating protein (SCAP). SCAP senses low cholesterol concentration and transports SREBP to the Golgi membrane where a consecutive proteolysis by S1P and S2P cleaves SREBP into an active nuclear form, nSREBP. nSREBPs migrate to the nucleus and activate transcription of SRE-containing genes. The nSREBP transcription factor is short-lived. When cholesterol levels rise, Insigs retains the SCAP-SREBP complex in the ER membrane by preventing its incorporation into COPII vesicles.[26][27]

Translation

Translation of mRNA is inhibited by a mevalonate derivative, which has been reported to be the isoprenoid farnesol,[28][29] although this role has been disputed.[30]

Degradation

Rising levels of sterols increase the susceptibility of the reductase enzyme to ER-associated degradation (ERAD) and proteolysis. Helices 2-6 (total of 8) of the HMG-CoA reductase transmembrane domain are thought to sense increased cholesterol levels (direct sterol binding to the SSD of HMG-CoA reductase has not been demonstrated). Lysine residues 89 and 248 can become ubiquinated by ER-resident E3 ligases. The identity of the multiple E3 ligases involved in HMG-CoA degradation is controversial, with suggested candidates being AMFR,[31] Trc8,[32] and RNF145[33][34] The involvement of AMFR and Trc8 has been contested.[35]

Phosphorylation

Short-term regulation of HMG-CoA reductase is achieved by inhibition by phosphorylation (of Serine 872, in humans[36]). Decades ago it was believed that a cascade of enzymes controls the activity of HMG-CoA reductase: an HMG-CoA reductase kinase was thought to inactivate the enzyme, and the kinase in turn was held to be activated via phosphorylation by HMG-CoA reductase kinase kinase. An excellent review on regulation of the mevalonate pathway by Nobel Laureates Joseph Goldstein and Michael Brown adds specifics: HMG-CoA reductase is phosphorylated and inactivated by an AMP-activated protein kinase, which also phosphorylates and inactivates acetyl-CoA carboxylase, the rate-limiting enzyme of fatty acid biosynthesis.[37] Thus, both pathways utilizing acetyl-CoA for lipid synthesis are inactivated when energy charge is low in the cell, and concentrations of AMP rise. There has been a great deal of research on the identity of upstream kinases that phosphorylate and activate the AMP-activated protein kinase.[38]

Fairly recently, LKB1 has been identified as a likely AMP kinase kinase,[39] which appears to involve calcium/calmodulin signaling. This pathway likely transduces signals from leptin, adiponectin, and other signaling molecules.[38]

See also

References

  1. ^ a b c GRCh38: Ensembl release 89: ENSG00000113161Ensembl, May 2017
  2. ^ a b c GRCm38: Ensembl release 89: ENSMUSG00000021670Ensembl, May 2017
  3. ^ "Human PubMed Reference:". National Center for Biotechnology Information, U.S. National Library of Medicine.
  4. ^ "Mouse PubMed Reference:". National Center for Biotechnology Information, U.S. National Library of Medicine.
  5. ^ Roitelman J, Olender EH, Bar-Nun S, Dunn WA, Simoni RD (June 1992). "Immunological evidence for eight spans in the membrane domain of 3-hydroxy-3-methylglutaryl coenzyme A reductase: implications for enzyme degradation in the endoplasmic reticulum". The Journal of Cell Biology. 117 (5): 959–973. doi:10.1083/jcb.117.5.959. PMC 2289486. PMID 1374417.
  6. ^ Lindgren V, Luskey KL, Russell DW, Francke U (December 1985). "Human genes involved in cholesterol metabolism: chromosomal mapping of the loci for the low density lipoprotein receptor and 3-hydroxy-3-methylglutaryl-coenzyme A reductase with cDNA probes". Proceedings of the National Academy of Sciences of the United States of America. 82 (24): 8567–8571. Bibcode:1985PNAS...82.8567L. doi:10.1073/pnas.82.24.8567. PMC 390958. PMID 3866240.
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  23. ^ Yogev Y, Shorer Z, Koifman A, Wormser O, Drabkin M, Halperin D, Dolgin V, Proskorovski-Ohayon R, Hadar N, Davidov G, Nudelman H, Zarivach R, Shelef I, Perez Y, Birk OS (February 2023). "Limb girdle muscular disease caused by HMGCR mutation and statin myopathy treatable with mevalonolactone". Proc Natl Acad Sci U S A. 120 (7): e2217831120. Bibcode:2023PNAS..12017831Y. doi:10.1073/pnas.2217831120. PMC 9963716. PMID 36745799.
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У Вікіпедії є статті про інших людей із прізвищем Соляник. Соляник Олексій МиколайовичНародився 2 листопада 1912(1912-11-02)Слов'янка[d], Російська імперіяПомер 17 лютого 1984(1984-02-17) (71 рік)Одеса, Українська РСР, СРСРПоховання Другий християнський цвинтарКраїна  СРСРПартія КП...

Cette cathédrale n’est pas la seule cathédrale Notre-Dame. Cathédrale Notre-Dame Présentation Nom local Cathédrale Notre-Dame de Senlis Culte Catholique romain Dédicataire Notre-Dame Type Ancienne Cathédraleéglise paroissiale depuis 1801 Rattachement Diocèse de Beauvais, Noyon et Senlis Début de la construction 1153 Fin des travaux 16 juin 1191 Architecte Martin ChambigesPierre Chambiges Style dominant Gothique Protection  Classée MH (1840) Site web Paroisse Saint-Rieul...

 

President of Panama (1845–1910) In this Spanish name, the first or paternal surname is Obaldía and the second or maternal family name is Gallegos. José Domingo de Obaldía2nd President of PanamaIn office1 October 1908 – 1 March 1910DeputyPresidential designatesJosé Agustín ArangoCarlos Antonio MendozaJuan M. LambertPreceded byManuel AmadorSucceeded byCarlos Antonio Mendoza Personal detailsBorn(1845-01-30)January 30, 1845David, Republic of New Granada (now Panama)DiedM...

 

Critique of the classical Islamic consensus on the collection and use of hadith This article is about the critique of the classical Islamic consensus on the collection and use of hadith. For the religious science of the collection and use of hadith, see Hadith studies. Part of a series onHadith Hadith studies Terminology Types (categories) Biographical evaluation Musannaf Israʼiliyyat Collections Sunni1Kutub Al-Sittah(The Six Books) Sahih al-Bukhari صحيح البخاري Sahih Muslim صح...

庾澄慶台灣三星電子Galaxy S5上市發表會男艺人英文名Harlem Yu昵称哈林、哈林哥、音樂頑童、哈林老哥、哈林大哥国籍 中華民國 美國[1]出生 (1961-07-28) 1961年7月28日(62歲) 臺灣臺北市职业歌手、詞曲作家、音樂製作人、主持人、演員语言國語、台語、粵語、英語教育程度國立臺北工業專科學校機械工程科宗教信仰基督教配偶伊能靜(2000年结婚—2009年離婚)張嘉...

 

Fictitious name assumed for a particular purpose Aliases redirects here. For other uses, see Alias (disambiguation). Pseud. redirects here. For the columnn in Private Eye, see List of regular mini-sections in Private Eye § Pseuds Corner. Allonym redirects here. For a definition of the term allonym, see the Wiktionary entry allonym. A pseudonym (/ˈsjuːdənɪm/; from Ancient Greek ψευδώνυμος (pseudṓnumos) 'falsely named') or alias (/ˈeɪli.əs/) is a fictitiou...

 

この項目には、一部のコンピュータや閲覧ソフトで表示できない文字(Microsoftコードページ932(はしご高))が含まれています(詳細)。 難波駅* 南海難波駅 外観 なんば NAMBA 所在地 大阪市中央区難波五丁目1-60北緯34度39分48.28秒 東経135度30分6.88秒 / 北緯34.6634111度 東経135.5019111度 / 34.6634111; 135.5019111 (南海難波駅)座標: 北緯34度39分48.28秒 東経135度...

2009 studio album by Rise and FallOur Circle Is ViciousStudio album by Rise and FallReleasedOctober 27, 2009 (2009-10-27)RecordedMarch 2009 at God City StudiosGenreHardcore punk, metalcore, crust punkLength29:15LabelDeathwish (DWI96)ProducerKurt BallouRise and Fall chronology Clawing(2007) Our Circle Is Vicious(2009) Deceiver(2011) Professional ratingsReview scoresSourceRatingDecibel7/10[1]Punknews.org[2] Our Circle Is Vicious is the third studio album b...

 

1996 studio album by Eugene Chadbourne and John ZornIn Memory of Nikki AraneStudio album by Eugene Chadbourne and John ZornReleased1996Recorded1980GenreAvant-gardeLength61:09LabelIncus Records[1]John Zorn chronology Bar Kokhba(1996) In Memory of Nikki Arane(1996) Masada: Zayin(1996) In Memory of Nikki Arane is an album of improvised music by Eugene Chadbourne and John Zorn recorded in 1980 but not released on Derek Bailey's Incus Records until 1996. The album is named after a ...

 

2019 video gameMadden NFL 20Standard Edition cover art featuring Patrick MahomesDeveloper(s)EA TiburonPublisher(s)EA SportsDesigner(s)Clint Oldenburg[1]SeriesMadden NFLEngineFrostbite 3Platform(s)Microsoft WindowsPlayStation 4Xbox OneReleaseAugust 2, 2019Genre(s)SportsMode(s)Single-playerMultiplayer Madden NFL 20 is an American football video game based on the National Football League (NFL), developed by EA Tiburon and published by Electronic Arts. The 31st installment in the long-run...

Ann Morgan GuilbertGuilbert pada The Dick Van Dyke ShowLahir(1928-10-16)16 Oktober 1928Minneapolis, Minnesota, ASMeninggal14 Juni 2016(2016-06-14) (umur 87)Los Angeles, California, ASNama lainAnn GuilbertPekerjaanPemeran/pelawakTahun aktif1952–2016Tinggi5 ft 1 in (155 cm)Suami/istriGeorge Eckstein ​ ​(m. 1951; bercerai 1966)​ Guy Raymond ​ ​(m. 1967; wafat 1997)​Anak...

 

  Nycteridae Nycteris thebaica.TaxonomíaReino: AnimaliaFilo: ChordataClase: MammaliaOrden: ChiropteraSuborden: MicrochiropteraSuperfamilia: RhinolophoideaFamilia: NycteridaeVan der Hoeven, 1855Género: NycterisG. Cuvier & E. Geoffroy Saint-Hilaire, 1795Especies Nycteris arge Nycteris aurita Nycteris gambiensis Nycteris grandis Nycteris hispida Nycteris intermedia Nycteris javanica Nycteris macrotis Nycteris vinsoni Nycteris madagascariensis Nycteris major Nycteris nana Nycteris theb...

 

Election for U.S. senator from Maryland Main article: 1968 United States Senate elections 1968 United States Senate election in Maryland ← 1962 November 5, 1968 1974 →   Nominee Charles Mathias Daniel Brewster George P. Mahoney Party Republican Democratic American Independent Popular vote 541,893 443,667 148,467 Percentage 47.79% 39.12% 13.09% County resultsMathias:      30–40%      40–50%    ...

American geologist and CIA informant (1911–1977) George de MohrenschildtBornJerzy Sergius von MohrenschildtApril 17, 1911Mozyr, Russian Empire (now Belarus)DiedMarch 29, 1977(1977-03-29) (aged 65)Manalapan, Florida, U.S.Cause of deathSuicideNationalityAmerican (naturalized)EducationPolish Cavalry AcademyAlma materInstitute of Higher Commercial StudiesUniversity of LiègeUniversity of Texas at AustinOccupationPetroleum geologistKnown forBefriending Lee Harvey Oswald, the ...

 

Kafka Americana First edition coverAuthorJonathan LethemCarter ScholzCover artistJacket design by Zwetana PenovaCover illustration by Perry HobermanCountryUnited StatesLanguageEnglishGenreShort stories, pastiche, parodyPublisherSubterranean PressPublication dateNovember 1999Media typePrint (hardback & paperback)Pages100 pp (first edition, hardcover)ISBN1-892284-43-X (first edition, hardcover)OCLC43333743Preceded byMotherless Brooklyn Followed byThe Fortress of Sol...

 

Strategi Solo vs Squad di Free Fire: Cara Menang Mudah!