Thành viên:Naazulene/Thụ thể nhân
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Trong sinh học phân tử, thụ thể nhân là một phân loại protein có chức cảm nhận các phân tử tan trong mỡ như steroid, hormone giáp, vitamin và các phân tử khác. Các thụ thể này hợp tác cùng các protein khác để điều hòa biểu hiện một số gen, từ đó điều hòa cân bằng nội môi, sự phát triển, và chuyển hóa của sinh vật.
Các thụ thể nhân bám trực tiếp vào DNA để điều hóa các gen quanh vị trí bám; vì vậy các thụ thể này được xem là yếu tố phiên mã.[2][3] Sự điều hòa biểu hiện gen bởi thụ thể nhân thường diễn ra khi có ligand (chất bám)
Một đặc tính độc đáo của các thụ thể nhân làm chúng khác biệt với các thụ thể khác là khả năng điều khiển trực tiếp DNA. Các thụ thể nhân đóng vai trò quan trọng trong phát triểu phôi và cân bằng nội môi ở người lớn. Trong phần sau của bài viết này, thụ thể nhân sẽ được phân loại nhỏ hơn dựa vào cơ chế[4][5] hoặc cấu tạo.[6][7]
Phân bố trong các loài
sửaThụ thể nhân chỉ có ở các loài động vật và không được tìm thấy ở nguyên sinh vật, tảo, nâm hay thực vật.[8]
Nuclear receptors are specific to metazoans (animals) and are not found in protists, algae, fungi, or plants.[8] Amongst the early-branching animal lineages with sequenced genomes, two have been reported from the sponge Amphimedon queenslandica, two from the comb jelly Mnemiopsis leidyi[9] four from the placozoan Trichoplax adhaerens and 17 from the cnidarian Nematostella vectensis.[10] There are 270 nuclear receptors in the roundworm Caenorhabditis elegans alone,[11] 21 in the fruit fly and other insects,[12] 73 in zebrafish.[13] Humans, mice, and rats have respectively 48, 49, and 47 nuclear receptors each.[14]
Ligand
sửaLigand kích hoạt các thụ thể nhân là các chất tan trong mỡ như một số hormone nội sinh, vitamin A và D, và một số chất lạ sinh học. Vì rất nhiều gen được điều hòa bởi thụ thể nhân, những ligand hoạt hóa các thụ thể này có thể gây ảnh hưởng sâu đậm đến sinh vật. Nhiều gen trong số này liên quan đến các bệnh, điều đó lý giải tại sao tận 13% thuốc đạt chuẩn FDA có đích là thụ thể nhân.[15]
Một số thụ thể nhân được gọi là thụ thể mồ côi vì chúng không có ligand nội sinh tương ứng.[16] Một số thụ thể loại này ví dụ như FXR, LXR và PPAR được bám bởi một số chất trung gian chuyển hóa như acid béo, acid muối mật và sterol với ái lực thấp. Vì vậy chúng có thể hoạt động như cảm biến cho chuyển hóa. Một só thụ thể nhân khác, ví dụ như CAR và PXR, cảm nhận các chất lạ sinh học để điều hòa tăng biểu hiện của cytochrome P450 - enzyme chuyển hóa chất lạ sinh học này.[17]
Cấu trúc
sửaHầu hết các thụ thể nhân có khối lượng phân tử nằm trong khoẳng 50 000 và 100 000 dalton. Các thụ thể nhân có cấu trúc gồm nhiều vùng, các vùng đó là:[18][19]
Các miền C và E là các miền được có cấu trúc ổn định, còn các miền A/B, D và F có cấu trúc linh hoạt và hỗn loạn hơn.[22]
Top – Schematic 1D amino acid sequence of a nuclear receptor. Bottom – 3D structures of the DBD (bound to DNA) and LBD (bound to hormone) regions of the nuclear receptor. The structures shown are of the estrogen receptor. Experimental structures of N-terminal domain (A/B), hinge region (D), and C-terminal domain (F) have not been determined therefore are represented by red, purple, and orange dashed lines, respectively. |
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Cơ chế hoạt động
sửaThụ thể nhân là các protein đa chức năng có
Nuclear receptors are multifunctional proteins that transduce signals of their cognate ligands. Nuclear receptors (NRs) may be classified into two broad classes according to their mechanism of action and subcellular distribution in the absence of ligand.[cần dẫn nguồn]
Small lipophilic substances such as natural hormones diffuse through the cell membrane and bind to nuclear receptors located in the cytosol (type I NR) or nucleus (type II NR) of the cell. Binding causes a conformational change in the receptor which, depending on the class of receptor, triggers a cascade of downstream events that direct the NRs to DNA transcription regulation sites which result in up or down-regulation of gene expression. They generally function as homo/heterodimers.[25] In addition, two additional classes, type III which are a variant of type I, and type IV that bind DNA as monomers have also been identified.[4]
Accordingly, nuclear receptors may be subdivided into the following four mechanistic classes:[4][5]
Type I
sửaLigand binding to type I nuclear receptors in the cytosol results in the dissociation of heat shock proteins, homo-dimerization, translocation (i.e., active transport) from the cytoplasm into the cell nucleus, and binding to specific sequences of DNA known as hormone response elements (HREs). Type I nuclear receptors bind to HREs consisting of two half-sites separated by a variable length of DNA, and the second half-site has a sequence inverted from the first (inverted repeat). Type I nuclear receptors include members of subfamily 3, such as the androgen receptor, estrogen receptors, glucocorticoid receptor, and progesterone receptor.[26]
It has been noted that some of the NR subfamily 2 nuclear receptors may bind to direct repeat instead of inverted repeat HREs. In addition, some nuclear receptors that bind either as monomers or dimers, with only a single DNA binding domain of the receptor attaching to a single half site HRE. These nuclear receptors are considered orphan receptors, as their endogenous ligands are still unknown.[cần dẫn nguồn]
The nuclear receptor/DNA complex then recruits other proteins that transcribe DNA downstream from the HRE into messenger RNA and eventually protein, which causes a change in cell function.[cần dẫn nguồn]
Type II
sửaType II receptors, in contrast to type I, are retained in the nucleus regardless of the ligand binding status and in addition bind as hetero-dimers (usually with RXR) to DNA.[25] In the absence of ligand, type II nuclear receptors are often complexed with corepressor proteins. Ligand binding to the nuclear receptor causes dissociation of corepressor and recruitment of coactivator proteins. Additional proteins including RNA polymerase are then recruited to the NR/DNA complex that transcribe DNA into messenger RNA.
Type II nuclear receptors include principally subfamily 1, for example the retinoic acid receptor, retinoid X receptor and thyroid hormone receptor.[27]
Type III
sửaType III nuclear receptors (principally NR subfamily 2) are similar to type I receptors in that both classes bind to DNA as homodimers. However, type III nuclear receptors, in contrast to type I, bind to direct repeat instead of inverted repeat HREs.
Type IV
sửaType IV nuclear receptors bind either as monomers or dimers, but only a single DNA binding domain of the receptor binds to a single half site HRE. Examples of type IV receptors are found in most of the NR subfamilies.
Dimerization
sửaHuman nuclear receptors are capable of dimerizing with many other nuclear receptors (homotypic dimerization), as has been shown from large-scale Y2H experiments and text mining efforts of the literature that were focused on specific interactions.[28][29][25] Nevertheless, there exists specificity, with members of the same subfamily having very similar NR dimerization partners and the underlying dimerization network has certain topological features, such as the presence of highly connected hubs (RXR and SHP).[25]
Coregulatory proteins
sửaNuclear receptors bound to hormone response elements recruit a significant number of other proteins (referred to as transcription coregulators) that facilitate or inhibit the transcription of the associated target gene into mRNA.[30][31][32] The function of these coregulators are varied and include chromatin remodeling (making the target gene either more or less accessible to transcription) or a bridging function to stabilize the binding of other coregulatory proteins. Nuclear receptors may bind specifically to a number of coregulator proteins, and thereby influence cellular mechanisms of signal transduction both directly, as well as indirectly.[33]
Coactivators
sửaBinding of agonist ligands (see section below) to nuclear receptors induces a conformation of the receptor that preferentially binds coactivator proteins. These proteins often have an intrinsic histone acetyltransferase (HAT) activity, which weakens the association of histones to DNA, and therefore promotes gene transcription.
Corepressors
sửaBinding of antagonist ligands to nuclear receptors in contrast induces a conformation of the receptor that preferentially binds corepressor proteins. These proteins, in turn, recruit histone deacetylases (HDACs), which strengthens the association of histones to DNA, and therefore represses gene transcription.
Agonism vs antagonism
sửaDepending on the receptor involved, the chemical structure of the ligand and the tissue that is being affected, nuclear receptor ligands may display dramatically diverse effects ranging in a spectrum from agonism to antagonism to inverse agonism.[36]
Agonists
sửaThe activity of endogenous ligands (such as the hormones estradiol and testosterone) when bound to their cognate nuclear receptors is normally to upregulate gene expression. This stimulation of gene expression by the ligand is referred to as an agonist response. The agonistic effects of endogenous hormones can also be mimicked by certain synthetic ligands, for example, the glucocorticoid receptor anti-inflammatory drug dexamethasone. Agonist ligands work by inducing a conformation of the receptor which favors coactivator binding (see upper half of the figure to the right).
Antagonists
sửaOther synthetic nuclear receptor ligands have no apparent effect on gene transcription in the absence of endogenous ligand. However they block the effect of agonist through competitive binding to the same binding site in the nuclear receptor. These ligands are referred to as antagonists. An example of antagonistic nuclear receptor drug is mifepristone which binds to the glucocorticoid and progesterone receptors and therefore blocks the activity of the endogenous hormones cortisol and progesterone respectively. Antagonist ligands work by inducing a conformation of the receptor which prevents coactivator binding, and promotes corepressor binding (see lower half of the figure to the right).
Inverse agonists
sửaFinally, some nuclear receptors promote a low level of gene transcription in the absence of agonists (also referred to as basal or constitutive activity). Synthetic ligands which reduce this basal level of activity in nuclear receptors are known as inverse agonists.[37]
Selective receptor modulators
sửaA number of drugs that work through nuclear receptors display an agonist response in some tissues and an antagonistic response in other tissues. This behavior may have substantial benefits since it may allow retaining the desired beneficial therapeutic effects of a drug while minimizing undesirable side effects. Drugs with this mixed agonist/antagonist profile of action are referred to as selective receptor modulators (SRMs). Examples include Selective Androgen Receptor Modulators (SARMs), Selective Estrogen Receptor Modulators (SERMs) and Selective Progesterone Receptor Modulators (SPRMs). The mechanism of action of SRMs may vary depending on the chemical structure of the ligand and the receptor involved, however it is thought that many SRMs work by promoting a conformation of the receptor that is closely balanced between agonism and antagonism. In tissues where the concentration of coactivator proteins is higher than corepressors, the equilibrium is shifted in the agonist direction. Conversely in tissues where corepressors dominate, the ligand behaves as an antagonist.[38]
Alternative mechanisms
sửaTransrepression
sửaThe most common mechanism of nuclear receptor action involves direct binding of the nuclear receptor to a DNA hormone response element. This mechanism is referred to as transactivation. However some nuclear receptors not only have the ability to directly bind to DNA, but also to other transcription factors. This binding often results in deactivation of the second transcription factor in a process known as transrepression.[39] One example of a nuclear receptor that are able to transrepress is the glucocorticoid receptor (GR). Furthermore, certain GR ligands known as Selective Glucocorticoid Receptor Agonists (SEGRAs) are able to activate GR in such a way that GR more strongly transrepresses than transactivates. This selectivity increases the separation between the desired antiinflammatory effects and undesired metabolic side effects of these selective glucocorticoids.
Non-genomic
sửaThe classical direct effects of nuclear receptors on gene regulation normally take hours before a functional effect is seen in cells because of the large number of intermediate steps between nuclear receptor activation and changes in protein expression levels. However it has been observed that many effects of the application of nuclear hormones, such as changes in ion channel activity, occur within minutes which is inconsistent with the classical mechanism of nuclear receptor action. While the molecular target for these non-genomic effects of nuclear receptors has not been conclusively demonstrated, it has been hypothesized that there are variants of nuclear receptors which are membrane associated instead of being localized in the cytosol or nucleus. Furthermore, these membrane associated receptors function through alternative signal transduction mechanisms not involving gene regulation.[40][41]
While it has been hypothesized that there are several membrane associated receptors for nuclear hormones, many of the rapid effects have been shown to require canonical nuclear receptors.[42][43] However, testing the relative importance of the genomic and nongenomic mechanisms in vivo has been prevented by the absence of specific molecular mechanisms for the nongenomic effects that could be blocked by mutation of the receptor without disrupting its direct effects on gene expression.
A molecular mechanism for non-genomic signaling through the nuclear thyroid hormone receptor TRβ involves the phosphatidylinositol 3-kinase (PI3K).[44] This signaling can be blocked by a single tyrosine to phenylalanine substitution in TRβ without disrupting direct gene regulation.[45] When mice were created with this single, conservative amino acid substitution in TRβ,[45] synaptic maturation and plasticity in the hippocampus was impaired almost as effectively as completely blocking thyroid hormone synthesis.[46] This mechanism appears to be conserved in all mammals but not in TRα or any other nuclear receptors. Thus, phosphotyrosine-dependent association of TRβ with PI3K provides a potential mechanism for integrating regulation of development and metabolism by thyroid hormone and receptor tyrosine kinases. In addition, thyroid hormone signaling through PI3K can alter gene expression.[47]
Family members
sửaThe following is a list of the 48 known human nuclear receptors (and their orthologs in other species)[14][48][49] categorized according to sequence homology.[6][7] The list also includes selected family members that lack human orthologs (NRNC symbol highlighted in yellow).
Subfamily | Group | Member | ||||||
---|---|---|---|---|---|---|---|---|
NRNC Symbol[6] | Abbreviation | Name | Gene | Ligand(s) | ||||
1 | Thyroid Hormone Receptor-like | A | Thyroid hormone receptor | NR1A1 | TRα | Thyroid hormone receptor-α | THRA | thyroid hormone |
NR1A2 | TRβ | Thyroid hormone receptor-β | THRB | |||||
B | Retinoic acid receptor | NR1B1 | RARα | Retinoic acid receptor-α | RARA | vitamin A and related compounds | ||
NR1B2 | RARβ | Retinoic acid receptor-β | RARB | |||||
NR1B3 | RARγ | Retinoic acid receptor-γ | RARG | |||||
C | Peroxisome proliferator-activated receptor | NR1C1 | PPARα | Peroxisome proliferator-activated receptor-α | PPARA | fatty acids, prostaglandins | ||
NR1C2 | PPAR-β/δ | Peroxisome proliferator-activated receptor-β/δ | PPARD | |||||
NR1C3 | PPARγ | Peroxisome proliferator-activated receptor-γ | PPARG | |||||
D | Rev-ErbA | NR1D1 | Rev-ErbAα | Rev-ErbAα | NR1D1 | heme | ||
NR1D2 | Rev-ErbAβ | Rev-ErbAα | NR1D2 | |||||
E | E78C-like (arthropod, trematode, mullosc, nematode)[48][50] |
NR1E1 | Eip78C | Ecdysone-induced protein 78C | Eip78C | |||
F | RAR-related orphan receptor | NR1F1 | RORα | RAR-related orphan receptor-α | RORA | cholesterol, ATRA | ||
NR1F2 | RORβ | RAR-related orphan receptor-β | RORB | |||||
NR1F3 | RORγ | RAR-related orphan receptor-γ | RORC | |||||
G | CNR14-like (nematode)[48] | NR1G1 | sex-1 | Steroid hormone receptor cnr14[51] | sex-1 | |||
H | Liver X receptor-like | NR1H1 | EcR | Ecdysone receptor, EcR (arthropod) | EcR | ecdysteroids | ||
NR1H2 | LXRβ | Liver X receptor-β | NR1H2 | oxysterols | ||||
NR1H3 | LXRα | Liver X receptor-α | NR1H3 | |||||
NR1H4 | FXR | Farnesoid X receptor | NR1H4 | |||||
NR1H5[52] | FXR-β | Farnesoid X receptor-β (pseudogene in human) |
NR1H5P | |||||
I | Vitamin D receptor-like | NR1I1 | VDR | Vitamin D receptor | VDR | vitamin D | ||
NR1I2 | PXR | Pregnane X receptor | NR1I2 | xenobiotics | ||||
NR1I3 | CAR | Constitutive androstane receptor | NR1I3 | androstane | ||||
J | Hr96-like[48] | NR1J1 | Hr96/Daf-12 | Nuclear hormone receptor HR96 | Hr96 | cholesterol/dafachronic acid[53] | ||
NR1J2 | ||||||||
NR1J3 | ||||||||
K | Hr1-like[48] | NR1K1 | Hr1 | Nuclear hormone receptor HR1 | ||||
2 | Retinoid X Receptor-like | A | Hepatocyte nuclear factor-4 | NR2A1 | HNF4α | Hepatocyte nuclear factor-4-α | HNF4A | fatty acids |
NR2A2 | HNF4γ | Hepatocyte nuclear factor-4-γ | HNF4G | |||||
B | Retinoid X receptor | NR2B1 | RXRα | Retinoid X receptor-α | RXRA | retinoids | ||
NR2B2 | RXRβ | Retinoid X receptor-β | RXRB | |||||
NR2B3 | RXRγ | Retinoid X receptor-γ | RXRG | |||||
NR2B4 | USP | Ultraspiracle protein (arthropod) | usp | phospholipids[54] | ||||
C | Testicular receptor | NR2C1 | TR2 | Testicular receptor 2 | NR2C1 | |||
NR2C2 | TR4 | Testicular receptor 4 | NR2C2 | |||||
E | TLX/PNR | NR2E1 | TLX | Homologue of the Drosophila tailless gene | NR2E1 | |||
NR2E3 | PNR | Photoreceptor cell-specific nuclear receptor | NR2E3 | |||||
F | COUP/EAR | NR2F1 | COUP-TFI | Chicken ovalbumin upstream promoter-transcription factor I | NR2F1 | |||
NR2F2 | COUP-TFII | Chicken ovalbumin upstream promoter-transcription factor II | NR2F2 | retinoic acid (weak)[55] | ||||
NR2F6 | EAR-2 | V-erbA-related | NR2F6 | |||||
3 | Estrogen Receptor-like | A | Estrogen receptor | NR3A1 | ERα | Estrogen receptor-α | ESR1 | estrogens |
NR3A2 | ERβ | Estrogen receptor-β | ESR2 | |||||
B | Estrogen related receptor | NR3B1 | ERRα | Estrogen-related receptor-α | ESRRA | |||
NR3B2 | ERRβ | Estrogen-related receptor-β | ESRRB | |||||
NR3B3 | ERRγ | Estrogen-related receptor-γ | ESRRG | |||||
C | 3-Ketosteroid receptors | NR3C1 | GR | Glucocorticoid receptor | NR3C1 | cortisol | ||
NR3C2 | MR | Mineralocorticoid receptor | NR3C2 | aldosterone | ||||
NR3C3 | PR | Progesterone receptor | PGR | progesterone | ||||
NR3C4 | AR | Androgen receptor | AR | testosterone | ||||
D | Estrogen Receptor-like (in lophotrochozoa)[56] |
NR3D | ||||||
E | Estrogen Receptor-like (in cnidaria)[57] |
NR3E | ||||||
F | Estrogen Receptor-like (in placozoa)[57] |
NR3F | ||||||
4 | Nerve Growth Factor IB-like | A | NGFIB/NURR1/NOR1 | NR4A1 | NGFIB | Nerve Growth factor IB | NR4A1 | |
NR4A2 | NURR1 | Nuclear receptor related 1 | NR4A2 | |||||
NR4A3 | NOR1 | Neuron-derived orphan receptor 1 | NR4A3 | |||||
5 | Steroidogenic Factor-like |
A | SF1/LRH1 | NR5A1 | SF1 | Steroidogenic factor 1 | NR5A1 | phosphatidylinositols |
NR5A2 | LRH-1 | Liver receptor homolog-1 | NR5A2 | phosphatidylinositols | ||||
B | Hr39-like | NR5B1[48] | HR39/FTZ-F1 | Nuclear hormone receptor fushi tarazu factor I beta | Hr39 | |||
6 | Germ Cell Nuclear Factor-like | A | GCNF | NR6A1 | GCNF | Germ cell nuclear factor | NR6A1 | |
7 | NRs with two DNA binding domains[58][48][59] | A | 2DBD-NRα | NR7A1 | 2DBD-NRA2 | |||
B | 2DBD-NRβ | NR7B1 | 2DBD-NRA3 | |||||
C | 2DBD-NRγ | NR7C1 | 2DBD-NRA1 | arthropod "α/β" | ||||
8 | NR8[60] (eumetazoa) | A | NR8A | NR8A1 | CgNR8A1 | Nuclear receptor 8 | AKG49571 | |
0 | Miscellaneous (lacks either LBD or DBD) | A | knr/knrl/egon[48] (arthropods) | NR0A1 | KNI | Zygotic gap protein knirps | knl | |
B | DAX/SHP | NR0B1 | DAX1 | Dosage-sensitive sex reversal, adrenal hypoplasia critical region, on chromosome X, gene 1 | NR0B1 | |||
NR0B2 | SHP | Small heterodimer partner | NR0B2 |
Of the two 0-families, 0A has a family 1-like DBD, and 0B has a unique LBD. The second DBD of family 7 is probably related to the family 1 DBD. Three probably family-1 NRs from Biomphalaria glabrata possess a DBD along with a family 0B-like LBD.[48] The placement of C. elegans nhr-1 (Q21878) is disputed: although most sources place it as NR1K1,[48] manual annotation at WormBase considers it a member of NR2A.[61] There used to be a group 2D for which the only member was Drosophila HR78/NR1D1 (Q24142) and orthologues, but it was merged into group 2C later due to high similarity, forming a "group 2C/D".[48] Knockout studies on mice and fruit flies support such a merged group.[62]
Evolution
sửaA topic of debate has been on the identity of the ancestral nuclear receptor as either a ligand-binding or an orphan receptor. This debate began more than twenty-five years ago when the first ligands were identified as mammalian steroid and thyroid hormones.[63] Shortly thereafter, the identification of the ecdysone receptor in Drosophila introduced the idea that nuclear receptors were hormonal receptors that bind ligands with a nanomolar affinity. At the time, the three known nuclear receptor ligands were steroids, retinoids, and thyroid hormone, and of those three, both steroids and retinoids were products of terpenoid metabolism. Thus, it was postulated that ancestral receptor would have been liganded by a terpenoid molecule.[64]
In 1992, a comparison of the DNA-binding domain of all known nuclear receptors led to the construction of a phylogenic tree of nuclear receptor that indicated that all nuclear receptors shared a common ancestor.[65] As a result, there was an increased effort upon uncovering the state of the first nuclear receptor, and by 1997 an alternative hypothesis was suggested: the ancestral nuclear receptor was an orphan receptor and it acquired ligand-binding ability over time[7] This hypothesis was proposed based on the following arguments:
- The nuclear receptor sequences that had been identified in the earliest metazoans (cnidarians and Schistosoma) were all members of the COUP-TF, RXR, and FTZ-F1 groups of receptors. Both COUP-TF and FTZ-F1 are orphan receptors, and RXR is only found to bind a ligand in vertebrates.[66]
- While orphan receptors had known arthropod homologs, no orthologs of liganded vertebrate receptors had been identified outside vertebrates, suggesting that orphan receptors are older than liganded-receptors.[67]
- Orphan receptors are found amongst all six subfamilies of nuclear receptors, while ligand-dependent receptors are found amongst three.[7] Thus, since the ligand-dependent receptors were believed to be predominantly member of recent subfamilies, it seemed logical that they gained the ability to bind ligands independently.
- The phylogenetic position of a given nuclear receptor within the tree correlates to its DNA-binding domain and dimerization abilities, but there is no identified relationship between a ligand-dependent nuclear receptor and the chemical nature of its ligand. In addition to this, the evolutionary relationships between ligand-dependent receptors did not make much sense as closely related receptors of subfamilies bound ligands originating from entirely different biosynthetic pathways (e.g. TRs and RARs). On the other hand, subfamilies that are not evolutionarily related bind similar ligands (RAR and RXR both bind all-trans and 9-cis retinoic acid respectively).[67]
- In 1997, it was discovered that nuclear receptors did not exist in static off and on conformations, but that a ligand could alter the equilibrium between the two states. Furthermore, it was found that nuclear receptors could be regulated in a ligand-independent manner, through either phosphorylation or other post-translational modifications. Thus, this provided a mechanism for how an ancestral orphan receptor was regulated in a ligand-independent manner, and explained why the ligand binding domain was conserved.[67]
Over the next 10 years, experiments were conducted to test this hypothesis and counterarguments soon emerged:
- Nuclear receptors were identified in the newly sequenced genome of the demosponge Amphimedon queenslandica, a member Porifera, the most ancient metazoan phylum. The A. queenslandica genome contains two nuclear receptors known as AqNR1 and AqNR2 and both were characterized to bind and be regulated by ligands.[68]
- Homologs for ligand-dependent vertebrate receptors were found outside vertebrates in mollusks and Platyhelminthes. Furthermore, the nuclear receptors found in cnidarians were found to have structural ligands in mammals, which could mirror the ancestral situation.
- Two putative orphan receptors, HNF4 and USP were found, via structural and mass spectrometry analysis, to bind fatty acids and phospholipids respectively.[54]
- Nuclear receptors and ligands are found to be a lot less specific than was previously thought. Retinoids can bind mammalian receptors other than RAR and RXR such as, PPAR, RORb, or COUP-TFII. Furthermore, RXR is sensitive to a wide range of molecules including retinoids, fatty acids, and phospholipids.[69]
- Study of steroid receptor evolution revealed that the ancestral steroid receptor could bind a ligand, estradiol. Conversely, the estrogen receptor found in mollusks is constitutively active and did not bind estrogen-related hormones. Thus, this provided an example of how an ancestral ligand-dependent receptor could lose its ability to bind ligands.[70]
A combination of this recent evidence, as well as an in-depth study of the physical structure of the nuclear receptor ligand binding domain has led to the emergence of a new hypothesis regarding the ancestral state of the nuclear receptor. This hypothesis suggests that the ancestral receptor may act as a lipid sensor with an ability to bind, albeit rather weakly, several different hydrophobic molecules such as, retinoids, steroids, hemes, and fatty acids. With its ability to interact with a variety of compounds, this receptor, through duplications, would either lose its ability for ligand-dependent activity, or specialize into a highly specific receptor for a particular molecule.[69]
History
sửaBelow is a brief selection of key events in the history of nuclear receptor research.[71]
- 1905 – Ernest Starling coined the word hormone
- 1926 – Edward Calvin Kendall and Tadeus Reichstein isolated and determined the structures of cortisone and thyroxine
- 1929 – Adolf Butenandt and Edward Adelbert Doisy – independently isolated and determined the structure of estrogen
- 1958 – Elwood Jensen – isolated the estrogen receptor
- 1980s – cloning of the estrogen, glucocorticoid, and thyroid hormone receptors by Pierre Chambon, Ronald Evans, and Björn Vennström respectively
- 2004 – Pierre Chambon, Ronald Evans, and Elwood Jensen were awarded the Albert Lasker Award for Basic Medical Research, an award that frequently precedes a Nobel Prize in Medicine
See also
sửaReferences
sửa- ^ PDB: 3E00; Chandra V, Huang P, Hamuro Y, Raghuram S, Wang Y, Burris TP, Rastinejad F (tháng 11 năm 2008). “Structure of the intact PPAR-gamma-RXR- nuclear receptor complex on DNA”. Nature. 456 (7220): 350–6. doi:10.1038/nature07413. PMC 2743566. PMID 19043829.
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<ref>
có tên “Chandra_2013” được định nghĩa trong <references>
không được đoạn văn bản trên sử dụng.External links
sửa- MeSH Nuclear+Receptors
- Vincent Laudet (2006). “The IUPHAR Compendium of the Pharmacology and Classification of the Nuclear Receptor Superfamily 2006E”. Nuclear Receptor Compendium. The International Union of Basic and Clinical Pharmacology. Bản gốc lưu trữ ngày 2 tháng 4 năm 2015. Truy cập ngày 21 tháng 2 năm 2008.
- “Nuclear Receptor online journal”. Home page. published by BioMed Central (no longer accepting submissions since May 2007). Truy cập ngày 21 tháng 2 năm 2008.
- “Nuclear Receptor Resource”. Georgetown University. Bản gốc lưu trữ ngày 11 tháng 5 năm 2008. Truy cập ngày 21 tháng 2 năm 2008.
- “Nuclear Receptor Signaling Atlas (Receptors, Coactivators, Corepressors and Ligands)”. The NURSA Consortium. Truy cập ngày 21 tháng 2 năm 2008.
an NIH-funded research consortium and database; includes open-access PubMed-indexed journal, Nuclear Receptor Signaling
- “Nuclear Receptor Resource”. Jack Vanden Heuvel. Truy cập ngày 21 tháng 9 năm 2009.
Bản mẫu:Transcription factors Bản mẫu:Receptor/signaling modulators