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1. The Get1/2 insertase forms a channel to mediate the insertion of tail-anchored proteins into the ER

2. The Sec61 translocon limits IRE1α signaling during the unfolded protein response

3. A functional link between the co-translational protein translocation pathway and the UPR

4. HERV1-env Induces Unfolded Protein Response Activation in Autoimmune Liver Disease: A Potential Mechanism for Regulatory T Cell Dysfunction

5. Deciphering the molecular organization of GET pathway chaperones through native mass spectrometry

7. Supplementary Table 2 from Adaptive Protein Translation by the Integrated Stress Response Maintains the Proliferative and Migratory Capacity of Lung Adenocarcinoma Cells

8. Supplementary Table 4 from Adaptive Protein Translation by the Integrated Stress Response Maintains the Proliferative and Migratory Capacity of Lung Adenocarcinoma Cells

10. Supplementary Table 1 from Adaptive Protein Translation by the Integrated Stress Response Maintains the Proliferative and Migratory Capacity of Lung Adenocarcinoma Cells

11. Supplementary Table 3 from Adaptive Protein Translation by the Integrated Stress Response Maintains the Proliferative and Migratory Capacity of Lung Adenocarcinoma Cells

12. Signal sequences encode information for protein folding in the endoplasmic reticulum

13. Adaptive Protein Translation by the Integrated Stress Response Maintains the Proliferative and Migratory Capacity of Lung Adenocarcinoma Cells

14. Deubiquitinases USP20/33 promote the biogenesis of tail-anchored membrane proteins

15. Membrane Protein Biogenesis: PAT Complex Pats Membrane Proteins into Shape

16. A Molecular Mechanism for Turning off IRE1α Signaling During Endoplasmic Reticulum Stress

17. A second chance for protein targeting/folding: Ubiquitination and deubiquitination of nascent proteins

18. Dynamic changes in complexes of IRE1α, PERK, and ATF6α during endoplasmic reticulum stress

20. C-terminal tail length guides insertion and assembly of membrane proteins

21. Lonely ER Membrane Proteins Travel to the Nucleus to Rest in Peace by the Asi Complex

22. The C-terminal tail guides assembly and degradation of membrane proteins

23. Eukaryotic formylglycine-generating enzyme catalyses a monooxygenase type of reaction

24. Dynamic changes in oligomeric complexes of UPR sensors induced by misfolded proteins in the ER

26. A Ribosome-Associating Factor Chaperones Tail-Anchored Membrane Proteins

27. Paralog of the formylglycine-generating enzyme - retention in the endoplasmic reticulum by canonical and noncanonical signals

29. Multiple Sulfatase Deficiency Is Caused by Mutations in the Gene Encoding the Human Cα-Formylglycine Generating Enzyme

30. Proprotein convertases process and thereby inactivate formylglycine-generating enzyme

31. The mechanism of membrane-associated steps in tail-anchored protein insertion

32. A conserved archaeal pathway for tail-anchored membrane protein insertion

34. Protein targeting and degradation are coupled for elimination of mislocalized proteins

35. Tail-Anchored Membrane Protein Recognition by Get3

36. In Vitro Dissection of Protein Translocation into the Mammalian Endoplasmic Reticulum

37. The structural basis of tail-anchored membrane protein recognition by Get3

38. The non-catalytic N-terminal extension of formylglycine-generating enzyme is required for its biological activity and retention in the endoplasmic reticulum

39. ERp44 mediates a thiol-independent retention of formylglycine-generating enzyme in the endoplasmic reticulum

40. Expression, localization, structural, and functional characterization of pFGE, the paralog of the C alpha-formylglycine-generating enzyme

41. Crystal structure of human pFGE, the paralog of the C alpha-formylglycine-generating enzyme

42. Molecular characterization of the human C alpha-formylglycine-generating enzyme

43. Molecular Basis for Multiple Sulfatase Deficiency and Mechanism for Formylglycine Generation of the Human Formylglycine-Generating Enzyme

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