pthrp receptor
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2021 ◽  
Vol 2021 (3) ◽  
Author(s):  
Alessandro Bisello ◽  
Michael Chorev ◽  
Peter A. Friedman ◽  
Tom Gardella ◽  
Rebecca Hills ◽  
...  

The parathyroid hormone receptors (nomenclature as agreed by the NC-IUPHAR Subcommittee on Parathyroid Hormone Receptors [49]) are class B G protein-coupled receptors. The parathyroid hormone (PTH)/parathyroid hormone-related peptide (PTHrP) receptor (PTH1 receptor) is activated by precursor-derived peptides: PTH (84 amino acids), and PTHrP (141 amino-acids) and related peptides (PTH-(1-34), PTHrP-(1-36)). The parathyroid hormone 2 receptor (PTH2 receptor) is activated by the precursor-derived peptide TIP39 (39 amino acids). [125I]PTH may be used to label both PTH1 and PTH2 receptors. The structure of a long-active PTH analogue (LA-PTH, an hybrid of PTH-(1-13) and PTHrP-(14-36)) bound to the PTH1 receptor-Gs complex has been resolved by cryo-electron microscopy [147]. Another structure of a PTH-(1-34) analog bound to a thermostabilized inactive PTH1 receptor has been obtained with X-ray crytallography [34].


2021 ◽  
Vol 2021 (2) ◽  
Author(s):  
Alessandro Bisello ◽  
Michael Chorev ◽  
Peter A. Friedman ◽  
Tom Gardella ◽  
Rebecca Hills ◽  
...  

The parathyroid hormone receptors (nomenclature as agreed by the NC-IUPHAR Subcommittee on Parathyroid Hormone Receptors [49]) are class B G protein-coupled receptors. The parathyroid hormone (PTH)/parathyroid hormone-related peptide (PTHrP) receptor (PTH1 receptor) is activated by precursor-derived peptides: PTH (84 amino acids), and PTHrP (141 amino-acids) and related peptides (PTH-(1-34), PTHrP-(1-36)). The parathyroid hormone 2 receptor (PTH2 receptor) is activated by the precursor-derived peptide TIP39 (39 amino acids). [125I]PTH may be used to label both PTH1 and PTH2 receptors. The structure of a long-active PTH analog (LA-PTH, an hybrid of PTH-(1-13) and PTHrP-(14-36)) bound to the PTH1 receptor-Gs complex has been resolved by cryo-electron microscopy [147]. Another structure of a PTH-(1-34) analog bound to a thermostabilized inactive PTH1 receptor has been obtained with X-ray crytallography [34].


2020 ◽  
Vol 126 (10) ◽  
pp. 1363-1378 ◽  
Author(s):  
Abraham Behrmann ◽  
Dalian Zhong ◽  
Li Li ◽  
Su-Li Cheng ◽  
Megan Mead ◽  
...  

2019 ◽  
Vol 30 (11) ◽  
pp. 860-874 ◽  
Author(s):  
Ieva Sutkeviciute ◽  
Lisa J. Clark ◽  
Alex D. White ◽  
Thomas J. Gardella ◽  
Jean-Pierre Vilardaga

2019 ◽  
Vol 2019 (4) ◽  
Author(s):  
Alessandro Bisello ◽  
Michael Chorev ◽  
Peter A. Friedman ◽  
Tom Gardella ◽  
Rebecca Hills ◽  
...  

The parathyroid hormone receptors (nomenclature as agreed by the NC-IUPHAR Subcommittee on Parathyroid Hormone Receptors [47]) are family B G protein-coupled receptors. The parathyroid hormone (PTH)/parathyroid hormone-related peptide (PTHrP) receptor (PTH1 receptor) is activated by precursor-derived peptides: PTH (84 amino acids), and PTHrP (141 amino-acids) and related peptides (PTH-(1-34), PTHrP-(1-36)). The parathyroid hormone 2 receptor (PTH2 receptor) is activated by the precursor-derived peptide TIP39 (39 amino acids). [125I]PTH may be used to label both PTH1 and PTH2 receptors.


PLoS ONE ◽  
2019 ◽  
Vol 14 (1) ◽  
pp. e0211076 ◽  
Author(s):  
Joseph D. Gardinier ◽  
Conor Daly-Seiler ◽  
Niloufar Rostami ◽  
Siddharth Kundal ◽  
Chunbin Zhang

Bone ◽  
2018 ◽  
Vol 116 ◽  
pp. 135-143 ◽  
Author(s):  
Christopher Dedic ◽  
Tin Shing Hung ◽  
Alan M. Shipley ◽  
Akira Maeda ◽  
Thomas Gardella ◽  
...  

2018 ◽  
Vol 10 (459) ◽  
pp. eaat9356 ◽  
Author(s):  
Fabiana Csukasi ◽  
Ivan Duran ◽  
Maya Barad ◽  
Tomas Barta ◽  
Iva Gudernova ◽  
...  

Studies have suggested a role for the mammalian (or mechanistic) target of rapamycin (mTOR) in skeletal development and homeostasis, yet there is no evidence connecting mTOR with the key signaling pathways that regulate skeletogenesis. We identified a parathyroid hormone (PTH)/PTH-related peptide (PTHrP)–salt-inducible kinase 3 (SIK3)–mTOR signaling cascade essential for skeletogenesis. While investigating a new skeletal dysplasia caused by a homozygous mutation in the catalytic domain of SIK3, we observed decreased activity of mTOR complex 1 (mTORC1) and mTORC2 due to accumulation of DEPTOR, a negative regulator of both mTOR complexes. This SIK3 syndrome shared skeletal features with Jansen metaphyseal chondrodysplasia (JMC), a disorder caused by constitutive activation of the PTH/PTHrP receptor. JMC-derived chondrocytes showed reduced SIK3 activity, elevated DEPTOR, and decreased mTORC1 and mTORC2 activity, indicating a common mechanism of disease. The data demonstrate that SIK3 is an essential positive regulator of mTOR signaling that functions by triggering DEPTOR degradation in response to PTH/PTHrP signaling during skeletogenesis.


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