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== Disease ==
== Disease ==
Defect in the OST-A complex causes the inherited congenital disorder of glycosylation (CDG). This is a multi-organ disorder since mistakes in N-linked glycosylation can affect many cellular processes such as folding of the protein and cell recognition and communication. The phenotype of this disorder includes microcephaly, dysmorphic facies, congenital heart defect, infantile spasm, and skeletal dysplasia (Bryant et. al. 2020). Other phenotypes of this disorder are mental retardation, development delay, liver dysfunction, dysmorphic feature, anorexia, and gastrointestinal disorders (Mohanty et. al. 2020).
Defect in the OST-A complex causes the inherited congenital disorder of glycosylation (CDG). This is a multi-organ disorder since mistakes in N-linked glycosylation can affect many cellular processes such as folding of the protein and cell recognition and communication. The phenotype of this disorder includes microcephaly, dysmorphic facies, congenital heart defect, infantile spasm, and skeletal dysplasia (Bryant et. al. 2020). Other phenotypes of this disorder are mental retardation, development delay, liver dysfunction, dysmorphic feature, anorexia, and gastrointestinal disorders (Mohanty et. al. 2020).
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Recently, the RPN-1, RPN-2, and STT3A subunits of the OST-A complex are found to associate with the development of breast cancer. Defective OST-A complex produces misfolded proteins leading to ER stress by the accumulation of these proteins. ER stress is associated with the development of cancer cells. The research found that knock-out RPN-1 cells have a poorer proliferation rate and a lower rate of migration and invasion of cancer cells. It also found that the defective genes of RPN-1, RPN-2, and STT3A subunits are significantly up-regulated (Ding et. al. 2021). This allows the cells to produce misfolded proteins and persist ER stress.
Recently, the RPN-1, RPN-2, and STT3A subunits of the OST-A complex are found to associate with the development of breast cancer. Defective OST-A complex produces misfolded proteins leading to ER stress by the accumulation of these proteins. ER stress is associated with the development of cancer cells. The research found that knock-out RPN-1 cells have a poorer proliferation rate and a lower rate of migration and invasion of cancer cells. It also found that the defective genes of RPN-1, RPN-2, and STT3A subunits are significantly up-regulated (Ding et. al. 2021). This allows the cells to produce misfolded proteins and persist ER stress.

Revision as of 18:08, 26 April 2022

Human Oligosaccharyltransferase complex A (OST-A)

The structure of the oligosaccharyltransferase complex A (OST-A)

Drag the structure with the mouse to rotate

References

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  2. Herraez A. Biomolecules in the computer: Jmol to the rescue. Biochem Mol Biol Educ. 2006 Jul;34(4):255-61. doi: 10.1002/bmb.2006.494034042644. PMID:21638687 doi:10.1002/bmb.2006.494034042644
  3. 3.0 3.1 Bai L, Wang T, Zhao G, Kovach A, Li H. The atomic structure of a eukaryotic oligosaccharyltransferase complex. Nature. 2018 Jan 22. pii: nature25755. doi: 10.1038/nature25755. PMID:29466327 doi:http://dx.doi.org/10.1038/nature25755
  4. Lu H, Fermaintt CS, Cherepanova NA, Gilmore R, Yan N, Lehrman MA. Mammalian STT3A/B oligosaccharyltransferases segregate N-glycosylation at the translocon from lipid-linked oligosaccharide hydrolysis. Proc Natl Acad Sci U S A. 2018 Sep 18;115(38):9557-9562. doi:, 10.1073/pnas.1806034115. Epub 2018 Sep 4. PMID:30181269 doi:http://dx.doi.org/10.1073/pnas.1806034115
  5. Bai L, Li H. Cryo-EM is uncovering the mechanism of eukaryotic protein N-glycosylation. FEBS J. 2019 May;286(9):1638-1644. doi: 10.1111/febs.14705. Epub 2018 Dec 3. PMID:30450807 doi:http://dx.doi.org/10.1111/febs.14705
  6. 6.0 6.1 6.2 6.3 6.4 6.5 Ramirez AS, Kowal J, Locher KP. Cryo-electron microscopy structures of human oligosaccharyltransferase complexes OST-A and OST-B. Science. 2019 Dec 13;366(6471):1372-1375. doi: 10.1126/science.aaz3505. PMID:31831667 doi:http://dx.doi.org/10.1126/science.aaz3505
  7. 7.0 7.1 7.2 Mohanty S, Chaudhary BP, Zoetewey D. Structural Insight into the Mechanism of N-Linked Glycosylation by Oligosaccharyltransferase. Biomolecules. 2020 Apr 17;10(4). pii: biom10040624. doi: 10.3390/biom10040624. PMID:32316603 doi:http://dx.doi.org/10.3390/biom10040624
  8. Lara P, Ojemalm K, Reithinger J, Holgado A, Maojun Y, Hammed A, Mattle D, Kim H, Nilsson I. Refined topology model of the STT3/Stt3 protein subunit of the oligosaccharyltransferase complex. J Biol Chem. 2017 Jul 7;292(27):11349-11360. doi: 10.1074/jbc.M117.779421. Epub, 2017 May 16. PMID:28512128 doi:http://dx.doi.org/10.1074/jbc.M117.779421

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