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Self-assembly of glycoprotein nanostructured filaments for modulating extracellular networks at long range

Title: Self-assembly of glycoprotein nanostructured filaments for modulating extracellular networks at long range
Authors: Matassa R.; Gatti M.; Crociati M.; Brunelli R.; Battaglione E.; Papi M.; De Spirito M.; Nottola S. A.; Familiari G.
Contributors: Matassa, R.; Gatti, M.; Crociati, M.; Brunelli, R.; Battaglione, E.; Papi, M.; De Spirito, M.; Nottola, S. A.; Familiari, G.
Publisher Information: Royal Society of Chemistry; Cambridge, UK
Publication Year: 2023
Collection: Sapienza Università di Roma: CINECA IRIS
Subject Terms: cytoskeleton; fertilization; glycoprotein; oocyte; zona pellucida; self assembly
Description: The intriguing capability of branched glycoprotein filaments to change their hierarchical organization, mediated by external biophysical stimuli, continues to expand understanding of self-assembling strategies that can dynamically rearrange networks at long range. Previous research has explored the corresponding biological, physiological and genetic mechanisms, focusing on protein assemblies within a limited range of nanometric units. Using direct microscopy bio-imaging, we have determined the morpho-structural changes of self-assembled filament networks of the zona pellucida, revealing controlled levels of structured organizations to join distinct evolved stages of the oocyte (Immature, Mature, and Fertilized). This natural soft network reorganizes its corresponding hierarchical network to generate symmetric, asymmetric, and ultimately a state with the lowest asymmetry of the outer surface roughness, and internal pores reversibly changed from elliptical to circular configurations at the corresponding stages. These elusive morpho-structural changes are regulated by the nanostructured polymorphisms of the branched filaments by self-extension/-contraction/-bending processes, modulated by determinate theoretical angles among repetitive filament units. Controlling the nanoscale self-assembling properties by delivering a minimum number of activation bio-signals may be triggered by these specific nanostructured polymorphic organizations. Finally, this research aims to guide this soft biomaterial into a desired state to protect oocytes, eggs, and embryos during development, to favour/prevent the fertilization/polyspermy processes and eventually to impact interactions with bacteria/virus at multiscale levels.
Document Type: article in journal/newspaper
Language: English
Relation: info:eu-repo/semantics/altIdentifier/pmid/37905731; info:eu-repo/semantics/altIdentifier/wos/WOS:001090083700001; volume:15; issue:44; firstpage:17972; lastpage:17986; numberofpages:15; journal:NANOSCALE; https://hdl.handle.net/11573/1696745
DOI: 10.1039/d3nr02644b
Availability: https://hdl.handle.net/11573/1696745; https://doi.org/10.1039/d3nr02644b
Rights: info:eu-repo/semantics/openAccess
Accession Number: edsbas.2DE73A9E
Database: BASE