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'''Introduction'''
'''Introduction'''
[https://en.wikipedia.org/wiki/Thyroglobulin Human thyroglobulin (TG)] is a precursor of two  [https://en.wikipedia.org/wiki/Thyroid_hormones thyroid hormones] (TH): tetraiodothyronine or [[thyroxine]] (T4) and [[triiodothyronine (T3)]], two thyroid hormones (TH). Its structure is essential for the diagnosis, treatment and monitoring of thyroid-related diseases.
[https://en.wikipedia.org/wiki/Thyroglobulin Human thyroglobulin (TG)] is a precursor of two  [https://en.wikipedia.org/wiki/Thyroid_hormones thyroid hormones] (TH): tetraiodothyronine or [[thyroxine]] (T4) and [[triiodothyronine (T3)]], essential for '''growth''', '''development''' and the '''control of metabolism'''. Its structure is essential for the diagnosis, treatment and monitoring of thyroid-related diseases.


'''PDBID''': 6scj.
[https://www.rcsb.org/sequence/6SCJ/ See the complete sequence.]


== Composition and 3D structure <ref>DOI 32025030</ref> ==
== Composition and 3D structure <ref>DOI 32025030</ref> ==
=== Global structure ===  
=== Global structure ===  
Human thyroglobulin is a dimeric glycoprotein consisting of 2749 amino acid residues with a molecular weight of 660 kDa. The average size of the dimer is 120x235 Å.  
'''Human thyroglobulin''' is a dimeric glycoprotein (see a <scene name='86/868183/Monomer_tg/1'>monomer</scene>) consisting of 2 times '''2749 amino acid residues''' with a molecular weight of '''660 kDa'''. The average size of the dimer is '''120x235 Å'''.  
   
   
Each of its monomers comprises 5 distinct regions on which approximately 66 <scene name='86/868183/Tyr/2'>tyrosines</scene> (chain A in blue, chain B in green, chain C in dark red, chain D in light red) are distributed. These are the regions :  
Each of its monomers comprises '''5 distinct regions''' on which approximately 66 <scene name='86/868183/Tyr/1'>tyrosines</scene> (chain A in blue, chain B in green, chain C in dark red, chain D in light red) are distributed. These are the regions :  
<scene name='86/868183/Ntd/4'>N-terminal domain</scene> [[https://www.youtube.com/watch?v=MuFHlCZCetU&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=5>NTD]], <scene name='86/868183/Core/3'>Core</scene> [[https://www.youtube.com/watch?v=Lx1G1KGxKN8&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=8>CORE]], <scene name='86/868183/Flap/2'>Flap</scene> [[https://www.youtube.com/watch?v=vk60Rdyo28A&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=6>FLAP]], <scene name='86/868183/Arm/2'>Arm</scene> [[https://www.youtube.com/watch?v=XzeTjQKfO0E&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=9>ARM]] and <scene name='86/868183/Ctd/2'>C-terminal domain</scene> [[https://www.youtube.com/watch?v=N-mg_xj-deI&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=7>CTD]].
<scene name='86/868183/Ntd/6'>N-terminal domain (NTD)</scene> [[https://www.youtube.com/watch?v=MuFHlCZCetU&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=5>NTD]], <scene name='86/868183/Core/4'>Core</scene> [[https://www.youtube.com/watch?v=Lx1G1KGxKN8&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=8>CORE]], <scene name='86/868183/Flap/4'>Flap</scene> [[https://www.youtube.com/watch?v=vk60Rdyo28A&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=6>FLAP]], <scene name='86/868183/Arm/3'>Arm</scene> [[https://www.youtube.com/watch?v=XzeTjQKfO0E&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=9>ARM]] and <scene name='86/868183/Ctd/4'>C-Terminal Domain (CTD)</scene> [[https://www.youtube.com/watch?v=N-mg_xj-deI&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=7>CTD]].
 
In addition, <scene name='86/868183/Full_tg/2'>TG</scene> has about 120 <scene name='86/868183/Cysteine/1'>cysteine residues</scene> allowing the formation of about 60 disulfide bridge bonds per monomer [[https://www.youtube.com/watch?v=Nuryu1aSqvY&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=11>Disulfide bridge]]. It is therefore a very stable and soluble protein.
The <scene name='86/868183/Ctd/4'>carboxyl-terminal domain</scene> of TG (about 520 amino acids) shows homology with the [[Acetylcholinesterase]] and other esterases.
 
In addition, <scene name='86/868183/Tg/2'>TG</scene> has about 120 cysteine residues allowing the formation of about 60 <scene name='86/868183/Ssbonds/1'>disulfide bridge bonds</scene> per <scene name='86/868183/Monomer_tg/1'>monomer</scene> [[https://www.youtube.com/watch?v=Nuryu1aSqvY&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=11>Disulfide bridge]]. It confers great stability and solubility.
 
These enzymes belong to the class of α-β hydrolase fold superfamily, characterized by α–helices and β-strands that roughly alternate along the polypeptide chain.<ref name="jeso">DOI 26595189</ref>


=== Structure of hormonogenic sites ===
=== Structure of hormonogenic sites ===
Hormonogenic sites are substrates for TH formation. They are formed by 2 or even 3 tyrosines at less than 15 Å from each other, and exposed to the solvent. Of these tyrosines, 1 or 2 are acceptors and 1 is a donor.  
'''Hormonogenic sites''' are substrates for TH formation. They are formed by 2 or even 3 tyrosines at less than 15 Å from each other, and exposed to the solvent. Of these tyrosines, 1 or 2 are acceptors and 1 is a donor.  
   
   
There are 4 hormonogenic sites for <scene name='86/868183/Full_tg/2'>TG</scene> :
There are 4 hormonogenic sites for <scene name='86/868183/Tg/3'>TG</scene> :


- a <scene name='86/868183/Site_a/1'>A sites</scene>, comprising two fixed donor tyrosines Y234 and Y149 and one flexible acceptor tyrosine: Y24 [[https://www.youtube.com/watch?v=98MKFRc6S_w&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=4>Site A]]
- an <scene name='86/868183/Site_a/2'>A site</scene>, comprising two fixed donor tyrosines Y234 and Y149 and one flexible acceptor tyrosine: Y24 [[https://www.youtube.com/watch?v=98MKFRc6S_w&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=4>Site A]].


- a <scene name='86/868183/Site_b/3'>B sites</scene>, including one Y2573 donor and one Y2540 acceptor [[https://www.youtube.com/watch?v=aNd32NLk9Fk&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=3>Site B]]
- a <scene name='86/868183/Site_b/4'>B site</scene>, including one Y2573 donor and one Y2540 acceptor [[https://www.youtube.com/watch?v=aNd32NLk9Fk&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=3>Site B]].


- a C site, comprising both donor and acceptor tyrosine Y2766
- a '''C site''', comprising both donor and acceptor tyrosine Y2766 (not resolved in the map).


- a <scene name='86/868183/Sites_d/1'>D sites</scene>, comprising a Y108 donor and a Y1310 acceptor [[https://www.youtube.com/watch?v=JYUPk59lVVw&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=2>Site D]]
- a <scene name='86/868183/Site_d/1'>D site</scene>, comprising a Y108 donor and a Y1310 acceptor [[https://www.youtube.com/watch?v=JYUPk59lVVw&list=PLMGnv0h7EIJydYifu7JSxrkXMzpwlkyDF&index=2>Site D]].
   
   
An acidic Asp (aspartic acid) or Glu (glutamic acid) residue always precedes the acceptor and a lysine is always close to the donor.   
An acidic Asp (aspartic acid) or Glu (glutamic acid) residue always precedes the acceptor and a lysine is always close to the donor.   
Except for site C, donors are at the fixed regions of the dimer while acceptors are at the flexible regions.
Except for site C, donors are at the fixed regions of the dimer while acceptors are at the flexible regions.


== Synthesis <ref>PMID: 3681978</ref><ref>DOI 11581009</ref> <ref>PMID: 3595599</ref><ref>DOI 11479128</ref><ref>PMID: 6895876</ref><ref>DOI 3016640</ref> and acquisition of its structure ==
== Synthesis<!-- <ref>PMID: 3681978</ref> <ref>DOI 11581009</ref> --><ref>DOI 11479128</ref><ref>PMID: 6895876</ref><ref>DOI 3016640</ref> and acquisition of its structure ==
=== Role and composition of the thyroid gland ===
=== Role and composition of the thyroid gland ===
The thyroid gland is an endocrine organ located in the neck that secretes thyroid hormones into the bloodstream. Among them, T4 and T3 are involved in the growth, development and regulation of the metabolism of vertebrates.


The thyroid gland is made up of thyroid vesicles, which are made up of thyroid follicular cells that are arranged around a lumen containing a viscous substance called colloid. The diet is a source of iodide I- ions which, once in the blood, are picked up by the thyroid cells and then partly discharged into the colloid.
The [https://en.wikipedia.org/wiki/Thyroid/ thyroid] gland is an endocrine organ located in the neck that secretes thyroid hormones into the bloodstream. Among them, T4 and T3 are involved in the growth, development and regulation of the metabolism of vertebrates.
 
The [https://en.wikipedia.org/wiki/Thyroid/ thyroid] gland is made up of thyroid vesicles, which are made up of thyroid follicular cells that are arranged around a lumen containing a viscous substance called colloid. The diet is a source of iodide I- ions which, once in the blood, are picked up by the thyroid cells and then partly discharged into the colloid.


=== Expression of the TG gene===
=== Expression of the TG gene===
Thyroid follicular cells synthesize human <scene name='86/868183/Full_tg/2'>TG</scene> via the TG gene on chromosome 8.
In  humans, TG is coded by a large gene roughly '''300 kb long''', located on chromosome 8. The number of exons has been estimated to be around 48, each of which is separated by introns varying in size up to 64 kb. TG gene expression is controlled positively  by '''thyro-tropin (TSH)''' through the modulation of the intra-cellular levels of '''cyclic adenosine monophosphate (cAMP)''' via its receptor (TSHr) located at the basal membrane of the cell.<ref>PMID: 11581009</ref>


=== Post-translational modifications ===
=== Post-translational modifications ===
TG also undergoes N-glycosylations in the ER at 17 <scene name='86/868183/Carbohydrated/1'>glycosylation sites</scene>, so that 10% of its molecular weight is carbohydrate. These modifications enhance its stability and solubility. Indeed, the two monomers are linked not by covalent interactions but via numerous interactions allowed by these N-glycosylations.
TG also undergoes N-glycosylations in the [https://en.wikipedia.org/wiki/Endoplasmic_reticulum endoplasmic reticulum] at <scene name='86/868183/Glycosylation_sites/1'>17 glycosylation sites</scene>, so that 10% of its molecular weight is carbohydrate. TG also undergoes maturation steps in this organelle, where it acquires dilsufide-bonds. These modifications enhance its stability and solubility. Indeed, the two monomers are linked not by covalent interactions but via numerous interactions allowed by these N-glycosylations.


=== Folding ===
=== Folding ===
Line 53: Line 61:
Once their 3D structure is acquired, TGs are exported into the colloid by exocytosis thanks to their signal peptide which will be cleaved. This extracellular storage increases the amount of TG stored in the body.  
Once their 3D structure is acquired, TGs are exported into the colloid by exocytosis thanks to their signal peptide which will be cleaved. This extracellular storage increases the amount of TG stored in the body.  
   
   
In the colloid, about 30 tyrosines out of the 66 tyrosines, each consisting of a phenol group, are iodized. The quantity of iodinated tyrosine depends however on the iodide concentration of the colloid. Indeed, one or two iodide ions can be covalently bound to the colloid and thus give a di (DIT) or mono-iodinated (MIT) phenol group. The iodination of the phenol groups is carried out by two membrane enzymes of the follicular cells: the double oxidase (DUOX) synthesizes the hydrogen peroxide H2O2 necessary for thyroid peroxidase (TPO).  
In the colloid, about '''30 tyrosines''' out of the '''66 tyrosines''', each consisting of a phenol group, are iodized. The quantity of iodinated tyrosine depends however on the iodide concentration of the colloid. Indeed, one or two iodide ions can be covalently bound to the colloid and thus give a '''di- (DIT)''' or '''mono-iodinated (MIT) phenol group'''. The iodination of the phenol groups is carried out by two membrane enzymes of the follicular cells: the double oxidase ('''DUOX''') synthesizes the hydrogen peroxide H2O2 necessary for thyroid peroxidase ('''TPO'''). The synthesis is completed by TG proteolysis.  
   
   
Due to the spatial conformation of <scene name='86/868183/Full_tg/2'>TG</scene>, there is a transfer of di or mono iodinated aromatic ring from a donor tyrosine to a close acceptor diiodotyrosine for the 14 tyrosines of the hormonogenic sites. Acceptor iodinated tyrosines are DITs because they are deprotonated due to their 6.5 acid pka facilitating the acceptance reaction leading to the formation of quinol-ether bonds, whereas donor iodinated tyrosines are MITs with a pKa of 8.5<ref>DOI 10.1530/eje.0.1380227</ref>.
Due to the spatial conformation of <scene name='86/868183/Tg/3'>TG</scene>, there is a transfer of di- or mono-iodinated aromatic ring from a donor tyrosine to a close acceptor diiodotyrosine for the 14 tyrosines of the hormonogenic sites. Acceptor iodinated tyrosines are DITs because they are deprotonated due to their 6.5 acid pka facilitating the acceptance reaction leading to the formation of quinol-ether bonds, whereas donor iodinated tyrosines are MITs with a pKa of 8.5<ref>DOI 10.1530/eje.0.1380227</ref>.
   
   
At the end of the coupling, the donor tyrosines are left with a dehydroalanine.
At the end of the coupling, the donor tyrosines are left with a dehydroalanine.
   
   
Once iodization and coupling have been performed, endocytosis of the colloid to the lysosome occurs. The <scene name='86/868183/Full_tg/2'>TG</scene> is proteolyzed by cathepsin proteases<ref>DOI 1939080</ref> and 7 TH are thus released from 14 mono- or di iodinated tyrosines.
Once iodization and coupling have been performed, endocytosis of the colloid to the lysosome occurs. The <scene name='86/868183/Tg/3'>TG</scene> is proteolyzed by cathepsin proteases<ref>DOI 1939080</ref> and 7 TH are thus released from 14 mono- or di-iodinated tyrosines.
   
   
The hormone synthesis function of TG is thus particularly linked to its structure. Moreover, research shows that denaturation or a simple modification of its conformation prevents the formation of TH <ref>PMID:4710237</ref><ref>DOI 456595</ref>.
The hormone synthesis function of TG is thus particularly linked to its structure. Moreover, research shows that denaturation or a simple modification of its conformation prevents the formation of TH <ref>PMID:4710237</ref><ref>DOI 456595</ref>.
Line 68: Line 76:


=== Iodine tank ===
=== Iodine tank ===
The complex and particularly stable structure of <scene name='86/868183/Full_tg/2'>TG</scene> gives it iodide reservoir properties. Indeed, all iodinated but non-hormonoid tyrosines are useful for iodine storage in the thyroid gland.  
The complex and particularly stable structure of <scene name='86/868183/Tg/3'>TG</scene> gives it iodide reservoir properties. Indeed, all iodinated but non-hormonoid tyrosines are useful for iodine storage in the thyroid gland.  


== Interest in the medical field<ref>DOI 17614775</ref><ref>DOI 10.1677/ERC-10-0292</ref><ref>DOI 5773064</ref><ref>DOI 3681445</ref><ref>DOI 12089177</ref><ref>DOI 21134539</ref><ref>DOI 6814409</ref><ref>DOI 29984794</ref><ref>DOI 26595189</ref> ==
== Interest in the medical field<ref>DOI 6814409</ref><ref>DOI 29984794</ref><ref name="jeso"/> ==
=== Modification of the TG quantity related to the desease ===
=== Modification of the TG quantity related to the disease ===
A healthy subject has between 5 and 25 µg of TG per liter of blood. In case of thyroid dysfunction, this level may increase or decrease. For example, it decreases in the case of congenital athyreosis (insufficiency of the thyroid gland) or prior to a miscarriage due to the presence of anti-TG antibodies, but increases in the case of cancer, thyroiditis, inflammation of the thyroid or autoimmune thyroid diseases AITD <ref>DOI 24147207</ref>(Grave's disease, Hashimoto's thyroiditis).<ref>DOI 11788684</ref>
A healthy subject has between '''5 and 25 µg of TG per liter''' of blood.<ref>DOI 5773064</ref> In case of thyroid dysfunction, this level may increase or decrease. For example, it decreases in the case of congenital athyreosis (insufficiency of the thyroid gland) or prior to a miscarriage due to the presence of anti-TG antibodies, but increases in the case of cancer, thyroiditis, inflammation of the thyroid or autoimmune thyroid diseases '''AITD''' <ref>DOI 24147207</ref>(Grave's disease, Hashimoto's thyroiditis).<ref>DOI 11788684</ref><ref>DOI 17614775</ref>
   
   
In addition, a decrease in the size or capacity of the thyroid causes a decrease in the synthesis of TH by the <scene name='86/868183/Full_tg/2'>TG</scene>, and thus a drop in the blood level of T4 and T3, which in turn causes heart disease, brain disease and abnormalities in the development of the fetus. <ref>DOI 29246752</ref><ref>DOI 28593684</ref><ref>DOI 12721190</ref>
In addition, a decrease in the size or capacity of the thyroid causes a decrease in the synthesis of TH by the <scene name='86/868183/Tg/3'>TG</scene>, and thus a drop in the blood level of T4 and T3, which in turn causes heart disease, brain disease and abnormalities in the development of the fetus. <ref>DOI 29246752</ref><ref>DOI 28593684</ref><ref>DOI 12721190</ref>
   
   
The variation of the quantity of TG can thus be as much a cause as a consequence of disease.<ref>DOI 17201802</ref>
The variation of the quantity of TG can thus be as much a cause as a consequence of disease.<ref>DOI 17201802</ref>


=== Use of TG to treat deseases ===
=== Use of TG to treat diseases ===
A classic TSH-stimulated <scene name='86/868183/Full_tg/2'>TG</scene> measurement or ultrasensitive <scene name='86/868183/Full_tg/2'>TG</scene> measurement allows to control its rate in a more or less sensitive way and therefore to detect a disease like those mentioned above, to ensure the effectiveness of a treatment and the absence of recurrence and to avoid
A classic '''TSH-stimulated''' <scene name='86/868183/Tg/3'>TG</scene> measurement or ultrasensitive <scene name='86/868183/Tg/4'>TG</scene> measurement allows to control its rate in a more or less sensitive way and therefore to detect a disease like those mentioned above, to ensure the effectiveness of a treatment and the absence of recurrence and to avoid
miscarriages.
miscarriages.<ref>DOI 3681445</ref>
Since serum <scene name='86/868183/Full_tg/2'>TG</scene> levels are correlated with the volume of thyroid tissue, we can also estimate the mass of thyroid tissue to detect hyperthyroidism, a disease related to an enlarged thyroid or, conversely, hypothyroidism.
Since serum <scene name='86/868183/Tg/3'>TG</scene> levels are correlated with the volume of thyroid tissue, we can also estimate the mass of thyroid tissue to detect '''hyperthyroidism''', a disease related to an enlarged thyroid or, conversely, '''hypothyroidism'''.
   
   
For example, thyroidectomy and a iodine-131 therapy can be performed to cure thyroid cancer with an 80% chance. Following removal and iodine-131 therapy, thyroglobulin is this time produced by malignant thyrocytes. As a result, its blood level is indistinguishable from that of a healthy person. <ref>PMID: 762873</ref><ref>DOI 21649472</ref>
For example, [https://en.wikipedia.org/wiki/Thyroidectomy  thyroidectomy] and a iodine-131 therapy can be performed to cure thyroid cancer with an 80% chance. Following removal and iodine-131 therapy, thyroglobulin is this time produced by malignant thyrocytes. As a result, its blood level is indistinguishable from that of a healthy person. <ref>PMID: 762873</ref><ref>DOI 21649472</ref>
But in case of recurrence and persistence of cancer, its level can increase again. Thyroglobulin therefore always serves as a tumor marker allowing us to estimate the risk of recurrence (>2ng/ml) or persistence (>1ng/ml) or remission.
But in case of recurrence and persistence of cancer, its level can increase again. Thyroglobulin therefore always serves as a tumor marker allowing us to estimate the risk of recurrence (>2ng/ml) or persistence (>1ng/ml) or remission.<ref>DOI 10.1677/ERC-10-0292</ref>
 





Latest revision as of 15:36, 20 January 2022

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Human thyroglobulin (TG)

Human thyroglobulin

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References