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dc.contributor.author Carrasco, Miguel
dc.contributor.author Toledo, Patricio
dc.contributor.author Tischler, Nicole D.
dc.date.accessioned 2024-09-26T00:32:27Z
dc.date.available 2024-09-26T00:32:27Z
dc.date.issued 2019-12
dc.identifier.issn 2218-273X
dc.identifier.uri https://repositorio.uss.cl/handle/uss/12524
dc.description Publisher Copyright: © 2019 by the authors. Licensee MDPI, Basel, Switzerland.
dc.description.abstract Segmentation is one of the most important stages in the 3D reconstruction of macromolecule structures in cryo-electron microscopy. Due to the variability of macromolecules and the low signal-to-noise ratio of the structures present, there is no generally satisfactory solution to this process. This work proposes a new unsupervised particle picking and segmentation algorithm based on the composition of two well-known image filters: Anisotropic (Perona–Malik) diffusion and non-negative matrix factorization. This study focused on keyhole limpet hemocyanin (KLH) macromolecules which offer both a top view and a side view. Our proposal was able to detect both types of views and separate them automatically. In our experiments, we used 30 images from the KLH dataset of 680 positive classified regions. The true positive rate was 95.1% for top views and 77.8% for side views. The false negative rate was 14.3%. Although the false positive rate was high at 21.8%, it can be lowered with a supervised classification technique. en
dc.language.iso eng
dc.relation.ispartof vol. 9 Issue: no. 12 Pages:
dc.source Biomolecules
dc.title Macromolecule particle picking and segmentation of a KLH database by unsupervised Cryo-EM image processing en
dc.type Artículo
dc.identifier.doi 10.3390/biom9120809
dc.publisher.department Facultad de Medicina y Ciencia


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