Manuela Cervelli
Associate Professor
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Articles (13)
Comparative genomics provides insights into molecular adaptation to hypermetamorphosis and cantharidin metabolism in blister beetles (Coleoptera: Meloidae)
Blister beetles (Coleoptera: Meloidae) are currently subdivided into three subfamilies: Eleticinae (a basal group), Nemognathinae, and Meloinae. These are all characterized by the endogenous production of the defensive terpene cantharidin (CA), whereas the two most derived subfamilies show a hypermetamorphic larval development. Here, we provide novel draft genome assemblies of five species sampled across the three blister beetle subfamilies ( Iselma pallidipennis , Stenodera caucasica , Zonitis immaculata , Lydus trimaculatus , and Mylabris variabilis ) and performed a comparative analysis with other available Meloidae genomes and the closely‐related canthariphilous species ( Pyrochroa serraticornis ) to disclose adaptations at a molecular level. Our results highlighted the expansion and selection of genes potentially responsible for CA production and metabolism, as well as its mobilization and vesicular compartmentalization. Furthermore, we observed adaptive selection patterns and gain of genes devoted to epigenetic regulation, development, and morphogenesis, possibly related to hypermetamorphosis. We hypothesize that most genetic adaptations occurred to support both CA biosynthesis and hypermetamorphosis, two crucial aspects of Meloidae biology that likely contributed to their evolutionary success.
Year:
2024
Spermine Oxidase–Substrate Electrostatic Interactions: The Modulation of Enzyme Function by Neighboring Colloidal ɣ-Fe2O3
Protein–nanoparticle hybridization can ideally lead to novel biological entities characterized by emerging properties that can sensibly differ from those of the parent components. Herein, the effect of ionic strength on the biological functions of recombinant His-tagged spermine oxidase (i.e., SMOX) was studied for the first time. Moreover, SMOX was integrated into colloidal surface active maghemite nanoparticles (SAMNs) via direct self-assembly, leading to a biologically active nano-enzyme (i.e., SAMN@SMOX). The hybrid was subjected to an in-depth chemical–physical characterization, highlighting the fact that the protein structure was perfectly preserved. The catalytic activity of the nanostructured hybrid (SAMN@SMOX) was assessed by extracting the kinetics parameters using spermine as a substrate and compared to the soluble enzyme as a function of ionic strength. The results revealed that the catalytic function was dominated by electrostatic interactions and that they were drastically modified upon hybridization with colloidal ɣ-Fe2O3. The fact that the affinity of SMOX toward spermine was significantly higher for the nanohybrid at low salinity is noteworthy. The present study supports the vision of using protein–nanoparticle conjugation as a means to modulate biological functions.
Year:
2023
Collaborators (20)
Silvano Sozzani
Full Professor
Sapienza University of Rome
Paolo MARIOTTINI
Professor
Università degli Studi di Roma La Sapienza
Guglielmo Duranti
University of Rome Foro Italico
manuela marcoli
University of Genova
Laura VERGANI
University of Genova
MONICA AVERNA
Professore associato
Università degli Studi di Torino
Alessandra Soriani
Sapienza University of Rome
Marianna Nicoletta Rossi
Università degli Studi di Roma La Sapienza
Mariangela Morlando
University of Perugia
Maria Luisa Di Paolo
University of Padova
GIORGIO COZZA
Associate Professor
University of Padova
Alessandra Riccieri
Università degli Studi di Roma La Sapienza
Paolo Sgrò
University of Rome Foro Italico
Fabio Vianello
University of Padua
Ivan Dimauro
Associate Professor
University of Rome Foro Italico
Anna Minarini
professor
University of Bologna
Ming Li
Assistant Professor
University of Konstanz
Marco Alberto BOLOGNA
Professor
Università degli Studi di Roma La Sapienza
Fabio Polticelli
Roma Tre University
Emiliano MANCINI
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