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dc.date.available
2026-01-08T09:40:30Z  
dc.identifier.citation
Sommese, Leandro Matías; Velez Rueda, Ana Julia; (2026): Functional Specialization of Ca²⁺-Binding Motifs in Human MICU1. Consejo Nacional de Investigaciones Científicas y Técnicas. (dataset). http://hdl.handle.net/11336/278960  
dc.identifier.uri
http://hdl.handle.net/11336/278960  
dc.description.abstract
The mitochondrial calcium uniporter (MCU) channel is essential for energy production, cytosolic Ca²⁺ signalling, and regulation of cell death. Its activity is regulated by the core proteins MICU1 and MICU2, which respond to intracellular Ca²⁺ levels. In cardiomyocytes, MICU1 inhibits calcium uptake under basal conditions, while Ca²⁺ binding during contraction induces a conformational change that relieves this inhibition, allowing calcium entry. However, the molecular basis of MICU1’s dual regulatory effect, mediated by its two known conformations, remains unclear. Although twelve x-ray crystal and cryo-EM structures of MICU1 have been resolved, each has approximately 30% of their structure missing, leaving key flexible regions uncharacterised. This structural incompleteness limits our understanding of the molecular basis underlying MICU1’s dual regulatory effect on calcium sensing. Here, we provide structural and computational evidence to address this gap further. Using structural modelling, molecular dynamics simulations, and large-scale sequence analysis, we investigate MICU1’s calcium binding sites from both conformational and evolutionary perspectives. Simulations based on human MICU1 models revealed a previously uncharacterised pseudo-EF-hand (pEF-h) motif. Our findings indicate that this motif functions as an early Ca²⁺ sensor, triggering conformational transitions– including shifts in surface charge distribution and isoelectric point– that prime the canonical EF-hand sites for subsequent binding. This hierarchical activation mechanism refines MICU1’s on–off regulation of the MCU. The biological relevance of the EF-hand motifs would be supported by its evolutionary conservation. Therefore, we analysed the evolutionary shaping of MICU1 EF-hand motifs across major eukaryotic lineages using clustering analysis and found strong lineage-specific segregation: canonical DXN/DXD-type motifs predominated in EF-h1 and EF-h2 in plants and protists, while non-canonical EXE(X)₃DEG(X)₇E motifs were exclusive to Opisthokonts, coinciding with the emergence of the auxiliary subunit EMRE. This pattern suggests that high-affinity calcium binding evolved in parallel with increasing regulatory complexity in metazoans. Together, these findings support previous research linking EF-hand function as sensors to specialised Ca²⁺ gatekeepers in multicellular lineages. By integrating structural and evolutionary perspectives, our study provides mechanistic insight into how MICU1 can act as a Ca²⁺-dependent molecular switch, clarifying the cooperative and threshold-setting behaviour underlying its regulatory role in mitochondrial calcium uptake.  
dc.rights
info:eu-repo/semantics/openAccess  
dc.rights.uri
https://creativecommons.org/licenses/by-nc-sa/2.5/ar/  
dc.title
Functional Specialization of Ca²⁺-Binding Motifs in Human MICU1  
dc.type
dataset  
dc.date.updated
2026-01-08T08:51:39Z  
dc.description.fil
Fil: Sommese, Leandro Matías. Universidad Nacional de Quilmes; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.description.fil
Fil: Velez Rueda, Ana Julia. Universidad Nacional de Quilmes; Argentina. Consejo Nacional de Investigaciones Científicas y Técnicas; Argentina  
dc.datacite.PublicationYear
2026  
dc.datacite.Creator
Sommese, Leandro Matías  
dc.datacite.Creator
Velez Rueda, Ana Julia  
dc.datacite.affiliation
Universidad Nacional de Quilmes  
dc.datacite.affiliation
Consejo Nacional de Investigaciones Científicas y Técnicas  
dc.datacite.affiliation
Universidad Nacional de Quilmes  
dc.datacite.affiliation
Consejo Nacional de Investigaciones Científicas y Técnicas  
dc.datacite.publisher
Consejo Nacional de Investigaciones Científicas y Técnicas  
dc.datacite.subject
Bioquímica y Biología Molecular  
dc.datacite.subject
Ciencias Biológicas  
dc.datacite.subject
CIENCIAS NATURALES Y EXACTAS  
dc.datacite.subject
Ciencias de la Información y Bioinformática  
dc.datacite.subject
Ciencias de la Computación e Información  
dc.datacite.subject
CIENCIAS NATURALES Y EXACTAS  
dc.datacite.date
2025  
dc.datacite.DateType
Creado  
dc.datacite.language
eng  
dc.datacite.version
1.0  
dc.subject.keyword
MICU1  
dc.subject.keyword
Conformational Diversity  
dc.subject.keyword
Structural Dynamics  
dc.subject.keyword
EF-hand motif’s structural and evolutionary constraints  
dc.datacite.resourceTypeGeneral
dataset  
dc.conicet.datoinvestigacionid
30891  
dc.conicet.justificacion
Los datos pertenecen a secuencias de referencia de MICU1 de distintas especies tomadas de bases de datos  
dc.datacite.formatedDate
2025