Functional amyloidogenesis and cytotoxicity-insights into biology and pathology.
Prions are self-templating protein structures that can be transferred from organism to organism. The [Het-s] prion propagates as a functional amyloid aggregate in the filamentous fungi Podospora anserina, and is involved in mediating heterokaryon incompatibility. Fusion of a P. anserina strain harbo...
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doaj-e0018326ce804d46954476194223ea152021-07-02T07:40:49ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852012-01-011012e100145910.1371/journal.pbio.1001459Functional amyloidogenesis and cytotoxicity-insights into biology and pathology.Douglas M FowlerJeffery W KellyPrions are self-templating protein structures that can be transferred from organism to organism. The [Het-s] prion propagates as a functional amyloid aggregate in the filamentous fungi Podospora anserina, and is involved in mediating heterokaryon incompatibility. Fusion of a P. anserina strain harboring the [Het-s] prion with another strain expressing the soluble Het-S protein results in cell death. The mechanism of Het-s/Het-S-mediated cell death has now been revealed in a paper just published in PLOS Biology. The study shows that Het-s and Het-S C-terminal domain co-amyloidogenesis induces a profound conformational rearrangement in the N-terminal Het-S HeLo domain, resulting in the exposure of a nascent transmembrane helix. Oligomerization of these helices leads to pore formation, leakage of the cytosolic contents, and subsequent cell death. Thus, Het-s amyloid plays a major role in the life cycle of P. anserina by orchestrating a complex conformational change in the Het-S protein, resulting in cytotoxicity by compromising membrane integrity. This ability of Het-s functional amyloid to initiate programmed cytotoxicity by mediating a conformational change in another protein significantly expands the functional repertoire of amyloid. Moreover, the mechanism of Het-S cell killing may be similar to the mechanism by which some pathological amyloid proteins lead to the demise of post-mitotic tissue.http://europepmc.org/articles/PMC3531510?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Douglas M Fowler Jeffery W Kelly |
spellingShingle |
Douglas M Fowler Jeffery W Kelly Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. PLoS Biology |
author_facet |
Douglas M Fowler Jeffery W Kelly |
author_sort |
Douglas M Fowler |
title |
Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
title_short |
Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
title_full |
Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
title_fullStr |
Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
title_full_unstemmed |
Functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
title_sort |
functional amyloidogenesis and cytotoxicity-insights into biology and pathology. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Biology |
issn |
1544-9173 1545-7885 |
publishDate |
2012-01-01 |
description |
Prions are self-templating protein structures that can be transferred from organism to organism. The [Het-s] prion propagates as a functional amyloid aggregate in the filamentous fungi Podospora anserina, and is involved in mediating heterokaryon incompatibility. Fusion of a P. anserina strain harboring the [Het-s] prion with another strain expressing the soluble Het-S protein results in cell death. The mechanism of Het-s/Het-S-mediated cell death has now been revealed in a paper just published in PLOS Biology. The study shows that Het-s and Het-S C-terminal domain co-amyloidogenesis induces a profound conformational rearrangement in the N-terminal Het-S HeLo domain, resulting in the exposure of a nascent transmembrane helix. Oligomerization of these helices leads to pore formation, leakage of the cytosolic contents, and subsequent cell death. Thus, Het-s amyloid plays a major role in the life cycle of P. anserina by orchestrating a complex conformational change in the Het-S protein, resulting in cytotoxicity by compromising membrane integrity. This ability of Het-s functional amyloid to initiate programmed cytotoxicity by mediating a conformational change in another protein significantly expands the functional repertoire of amyloid. Moreover, the mechanism of Het-S cell killing may be similar to the mechanism by which some pathological amyloid proteins lead to the demise of post-mitotic tissue. |
url |
http://europepmc.org/articles/PMC3531510?pdf=render |
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