Literature DB >> 22743102

Propeptides are sufficient to regulate organelle-specific pH-dependent activation of furin and proprotein convertase 1/3.

Stephanie L Dillon1, Danielle M Williamson, Johannes Elferich, David Radler, Rajendra Joshi, Gary Thomas, Ujwal Shinde.   

Abstract

The proprotein convertases (PCs) furin and proprotein convertase 1/3 (PC1) cleave substrates at dibasic residues along the eukaryotic secretory/endocytic pathway. PCs are evolutionarily related to bacterial subtilisin and are synthesized as zymogens. They contain N-terminal propeptides (PRO) that function as dedicated catalysts that facilitate folding and regulate activation of cognate proteases through multiple-ordered cleavages. Previous studies identified a histidine residue (His69) that functions as a pH sensor in the propeptide of furin (PRO(FUR)), which regulates furin activation at pH~6.5 within the trans-Golgi network. Although this residue is conserved in the PC1 propeptide (PRO(PC1)), PC1 nonetheless activates at pH~5.5 within the dense core secretory granules. Here, we analyze the mechanism by which PRO(FUR) regulates furin activation and examine why PRO(FUR) and PRO(PC1) differ in their pH-dependent activation. Sequence analyses establish that while both PRO(FUR) and PRO(PC1) are enriched in histidines when compared with cognate catalytic domains and prokaryotic orthologs, histidine content in PRO(FUR) is ~2-fold greater than that in PRO(PC1), which may augment its pH sensitivity. Spectroscopy and molecular dynamics establish that histidine protonation significantly unfolds PRO(FUR) when compared to PRO(PC1) to enhance autoproteolysis. We further demonstrate that PRO(FUR) and PRO(PC1) are sufficient to confer organelle sensing on folding and activation of their cognate proteases. Swapping propeptides between furin and PC1 transfers pH-dependent protease activation in a propeptide-dictated manner in vitro and in cells. Since prokaryotes lack organelles and eukaryotic PCs evolved from propeptide-dependent, not propeptide-independent prokaryotic subtilases, our results suggest that histidine enrichment may have enabled propeptides to evolve to exploit pH gradients to activate within specific organelles.
Copyright © 2012 Elsevier Ltd. All rights reserved.

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Year:  2012        PMID: 22743102      PMCID: PMC3444655          DOI: 10.1016/j.jmb.2012.06.023

Source DB:  PubMed          Journal:  J Mol Biol        ISSN: 0022-2836            Impact factor:   5.469


  69 in total

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Review 2.  Insights from bacterial subtilases into the mechanisms of intramolecular chaperone-mediated activation of furin.

Authors:  Ujwal Shinde; Gary Thomas
Journal:  Methods Mol Biol       Date:  2011

3.  Classification of acid denaturation of proteins: intermediates and unfolded states.

Authors:  A L Fink; L J Calciano; Y Goto; T Kurotsu; D R Palleros
Journal:  Biochemistry       Date:  1994-10-18       Impact factor: 3.162

4.  Homology modelling of the catalytic domain of human furin. A model for the eukaryotic subtilisin-like proprotein convertases.

Authors:  R J Siezen; J W Creemers; W J Van de Ven
Journal:  Eur J Biochem       Date:  1994-06-01

Review 5.  The proprotein convertases, 20 years later.

Authors:  Nabil G Seidah
Journal:  Methods Mol Biol       Date:  2011

6.  Genetic and functional characterization of PCSK1.

Authors:  Hélène Choquet; Pieter Stijnen; John W M Creemers
Journal:  Methods Mol Biol       Date:  2011

Review 7.  The role of prohormone convertases in insulin biosynthesis: evidence for inherited defects in their action in man and experimental animals.

Authors:  D F Steiner; Y Rouillé; Q Gong; S Martin; R Carroll; S J Chan
Journal:  Diabetes Metab       Date:  1996-04       Impact factor: 6.041

8.  Ion transport in the gramicidin channel: molecular dynamics study of single and double occupancy.

Authors:  B Roux; B Prod'hom; M Karplus
Journal:  Biophys J       Date:  1995-03       Impact factor: 4.033

9.  Genetic variants in novel pathways influence blood pressure and cardiovascular disease risk.

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Carl G P Platou; Elin Org; Rebecca Hardy; Santosh Dahgam; Jutta Palmen; Veronique Vitart; Peter S Braund; Tatiana Kuznetsova; Cuno S P M Uiterwaal; Adebowale Adeyemo; Walter Palmas; Harry Campbell; Barbara Ludwig; Maciej Tomaszewski; Ioanna Tzoulaki; Nicholette D Palmer; Thor Aspelund; Melissa Garcia; Yen-Pei C Chang; Jeffrey R O'Connell; Nanette I Steinle; Diederick E Grobbee; Dan E Arking; Sharon L Kardia; Alanna C Morrison; Dena Hernandez; Samer Najjar; Wendy L McArdle; David Hadley; Morris J Brown; John M Connell; Aroon D Hingorani; Ian N M Day; Debbie A Lawlor; John P Beilby; Robert W Lawrence; Robert Clarke; Jemma C Hopewell; Halit Ongen; Albert W Dreisbach; Yali Li; J Hunter Young; Joshua C Bis; Mika Kähönen; Jorma Viikari; Linda S Adair; Nanette R Lee; Ming-Huei Chen; Matthias Olden; Cristian Pattaro; Judith A Hoffman Bolton; Anna Köttgen; Sven Bergmann; Vincent Mooser; Nish Chaturvedi; Timothy M Frayling; Muhammad Islam; Tazeen H Jafar; Jeanette Erdmann; Smita R Kulkarni; Stefan R Bornstein; 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Pilar Galan; Serge Hercberg; Mark Lathrop; Diana Zelenika; Panos Deloukas; Massimo Mangino; Tim D Spector; Guangju Zhai; James F Meschia; Michael A Nalls; Pankaj Sharma; Janos Terzic; M V Kranthi Kumar; Matthew Denniff; Ewa Zukowska-Szczechowska; Lynne E Wagenknecht; F Gerald R Fowkes; Fadi J Charchar; Peter E H Schwarz; Caroline Hayward; Xiuqing Guo; Charles Rotimi; Michiel L Bots; Eva Brand; Nilesh J Samani; Ozren Polasek; Philippa J Talmud; Fredrik Nyberg; Diana Kuh; Maris Laan; Kristian Hveem; Lyle J Palmer; Yvonne T van der Schouw; Juan P Casas; Karen L Mohlke; Paolo Vineis; Olli Raitakari; Santhi K Ganesh; Tien Y Wong; E Shyong Tai; Richard S Cooper; Markku Laakso; Dabeeru C Rao; Tamara B Harris; Richard W Morris; Anna F Dominiczak; Mika Kivimaki; Michael G Marmot; Tetsuro Miki; Danish Saleheen; Giriraj R Chandak; Josef Coresh; Gerjan Navis; Veikko Salomaa; Bok-Ghee Han; Xiaofeng Zhu; Jaspal S Kooner; Olle Melander; Paul M Ridker; Stefania Bandinelli; Ulf B Gyllensten; Alan F Wright; James F Wilson; Luigi Ferrucci; Martin Farrall; Jaakko Tuomilehto; Peter P Pramstaller; Roberto Elosua; Nicole Soranzo; Eric J G Sijbrands; David Altshuler; Ruth J F Loos; Alan R Shuldiner; Christian Gieger; Pierre Meneton; Andre G Uitterlinden; Nicholas J Wareham; Vilmundur Gudnason; Jerome I Rotter; Rainer Rettig; Manuela Uda; David P Strachan; Jacqueline C M Witteman; Anna-Liisa Hartikainen; Jacques S Beckmann; Eric Boerwinkle; Ramachandran S Vasan; Michael Boehnke; Martin G Larson; Marjo-Riitta Järvelin; Bruce M Psaty; Gonçalo R Abecasis; Aravinda Chakravarti; Paul Elliott; Cornelia M van Duijn; Christopher Newton-Cheh; Daniel Levy; Mark J Caulfield; Toby Johnson
Journal:  Nature       Date:  2011-09-11       Impact factor: 49.962

10.  Intracellular trafficking and activation of the furin proprotein convertase: localization to the TGN and recycling from the cell surface.

Authors:  S S Molloy; L Thomas; J K VanSlyke; P E Stenberg; G Thomas
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  12 in total

1.  The mechanism by which a propeptide-encoded pH sensor regulates spatiotemporal activation of furin.

Authors:  Danielle M Williamson; Johannes Elferich; Parvathy Ramakrishnan; Gary Thomas; Ujwal Shinde
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2.  O-Glycosylation of a Secretory Granule Membrane Enzyme Is Essential for Its Endocytic Trafficking.

Authors:  Kurutihalli S Vishwanatha; Nils Bäck; TuKiet T Lam; Richard E Mains; Betty A Eipper
Journal:  J Biol Chem       Date:  2016-03-09       Impact factor: 5.157

3.  Determination of Histidine pKa Values in the Propeptides of Furin and Proprotein Convertase 1/3 Using Histidine Hydrogen-Deuterium Exchange Mass Spectrometry.

Authors:  Johannes Elferich; Danielle M Williamson; Larry L David; Ujwal Shinde
Journal:  Anal Chem       Date:  2015-07-15       Impact factor: 6.986

4.  A novel subtilase inhibitor in plants shows structural and functional similarities to protease propeptides.

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5.  Propeptides of eukaryotic proteases encode histidines to exploit organelle pH for regulation.

Authors:  Johannes Elferich; Danielle M Williamson; Bala Krishnamoorthy; Ujwal Shinde
Journal:  FASEB J       Date:  2013-04-12       Impact factor: 5.191

6.  Biochemical and cell biological properties of the human prohormone convertase 1/3 Ser357Gly mutation: a PC1/3 hypermorph.

Authors:  Elias H Blanco; Juan R Peinado; Martín G Martín; Iris Lindberg
Journal:  Endocrinology       Date:  2014-06-16       Impact factor: 4.736

7.  Functional Characterization of Propeptides in Plant Subtilases as Intramolecular Chaperones and Inhibitors of the Mature Protease.

Authors:  Michael Meyer; Sebastian Leptihn; Max Welz; Andreas Schaller
Journal:  J Biol Chem       Date:  2016-07-22       Impact factor: 5.157

8.  Mechanism of Fine-tuning pH Sensors in Proprotein Convertases: IDENTIFICATION OF A pH-SENSING HISTIDINE PAIR IN THE PROPEPTIDE OF PROPROTEIN CONVERTASE 1/3.

Authors:  Danielle M Williamson; Johannes Elferich; Ujwal Shinde
Journal:  J Biol Chem       Date:  2015-07-30       Impact factor: 5.157

Review 9.  PCSK1 Variants and Human Obesity.

Authors:  B Ramos-Molina; M G Martin; I Lindberg
Journal:  Prog Mol Biol Transl Sci       Date:  2016-01-29       Impact factor: 3.622

10.  A toggle switch controls the low pH-triggered rearrangement and maturation of the dengue virus envelope proteins.

Authors:  Aihua Zheng; Fei Yuan; Lara M Kleinfelter; Margaret Kielian
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