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Factor VIII exhibits chaperone-dependent and glucose-regulated reversible amyloid formation in the endoplasmic reticulum

Juthakorn Poothong, Anita Pottekat, Marina Siirin, Alexandre Rosa Campos, Adrienne W. Paton, James C. Paton, Jacqueline Lagunas-Acosta, Zhouji Chen, Mark Swift, Niels Volkmann, Dorit Hanein, Jing Yong, Randal J. Kaufman
doi: https://doi.org/10.1101/2020.01.13.905190
Juthakorn Poothong
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Anita Pottekat
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Marina Siirin
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Alexandre Rosa Campos
2Proteomics Core Facility, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Adrienne W. Paton
3Research Centre for Infectious Diseases, Department of Molecular and Biomedical Science, University of Adelaide, Adelaide, Australia
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James C. Paton
3Research Centre for Infectious Diseases, Department of Molecular and Biomedical Science, University of Adelaide, Adelaide, Australia
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Jacqueline Lagunas-Acosta
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Zhouji Chen
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Mark Swift
4Immunity and Pathogenesis Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Niels Volkmann
4Immunity and Pathogenesis Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Dorit Hanein
4Immunity and Pathogenesis Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Jing Yong
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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Randal J. Kaufman
1Degenerative Diseases Program, SBP Medical Discovery Institute, 10901 N. Torrey Pines Rd., La Jolla CA 92037, USA
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  • For correspondence: rkaufman@sbp.edu
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Abstract

Factor VIII (FVIII) is the coagulation factor deficient in hemophilia A, which is treated by protein replacement. Unfortunately, this regimen is costly due to the expense of producing recombinant FVIII as a consequence of its low level secretion. FVIII expression activates the endoplasmic reticulum (ER) stress response, causes oxidative stress and induces apoptosis. Importantly, little is known about the factors that cause protein misfolding and aggregation in metazoans. Here we identified intrinsic and extrinsic factors that cause FVIII to form aggregates in the ER. We show that FVIII forms amyloid-like fibrils within the ER upon increased FVIII synthesis or inhibition of glucose metabolism. Significantly, FVIII amyloids can be dissolved upon restoration of glucose metabolism to produce functional secreted FVIII. Two ER chaperones and their co-chaperones, BiP and CANX/CRT, promote FVIII solubility in the ER, where the former is also required for disaggregation. A short aggregation motif in the FVIII A1 domain (termed Aggron) is necessary and sufficient to seed β-sheet polymerization and BiP binding to this Aggron prevents amyloidogenesis. Our findings provide novel insight into mechanisms that limit FVIII secretion and ER protein folding in general and have implication for ongoing hemophilia A gene therapy clinical trials.

Key Points

  • - FVIII forms amyloid aggregates in the ER that are dissolved in a chaperone- and glucose-dependent manner to produce secreted active FVIII.

  • - A short amino acid sequence in the A1 domain causes β sheet polymerization and ER chaperone BiP binding to this site prevents aggregation.

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Posted January 14, 2020.
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Factor VIII exhibits chaperone-dependent and glucose-regulated reversible amyloid formation in the endoplasmic reticulum
Juthakorn Poothong, Anita Pottekat, Marina Siirin, Alexandre Rosa Campos, Adrienne W. Paton, James C. Paton, Jacqueline Lagunas-Acosta, Zhouji Chen, Mark Swift, Niels Volkmann, Dorit Hanein, Jing Yong, Randal J. Kaufman
bioRxiv 2020.01.13.905190; doi: https://doi.org/10.1101/2020.01.13.905190
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Factor VIII exhibits chaperone-dependent and glucose-regulated reversible amyloid formation in the endoplasmic reticulum
Juthakorn Poothong, Anita Pottekat, Marina Siirin, Alexandre Rosa Campos, Adrienne W. Paton, James C. Paton, Jacqueline Lagunas-Acosta, Zhouji Chen, Mark Swift, Niels Volkmann, Dorit Hanein, Jing Yong, Randal J. Kaufman
bioRxiv 2020.01.13.905190; doi: https://doi.org/10.1101/2020.01.13.905190

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