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Principal Investigator: Maria Cecilia Caino
Organization: UNIVERSITY OF COLORADO DENVER
Fiscal Year: 2024
Award: $383,699
Funding agency: National Institute of General Medical Sciences
PROJECT SUMMARY
Mitochondria function is tightly regulated by a complex, intertwined machinery that dictates
mitochondrial gross morphology, transport of organelles, inner membrane and cristae morphology,
communication between adjacent mitochondria and contact with other organelles. These processes are
collectively known as mitochondrial dynamics. My overall goal is to reach a comprehensive understanding on
the mechanisms that govern mitochondrial dynamics and the interplay between mitochondrial transport with
other aspects of mitochondrial and cellular biology. While the mechanisms of mitochondrial transport had been
largely characterized in neurons, our recent advances showed that transport of energetically active
mitochondria to the cortical cytoskeleton supports lamellipodia dynamics, fuels turnover of focal adhesion
complexes and increases velocity and distance of random cell migration in epithelial cells. Because specialized
cell types have unique spatiotemporal needs for mitochondria functions, a fundamental question is how similar
are the mechanisms of mitochondrial movement between neurons and other cell types? Here we will focus on
characterizing the function and regulation of alternative isoforms of trafficking proteins that are expressed in
non-neuronal cells. Adding complexity to this picture, we have evidence of multifunctionality amongst trafficking
proteins in non-neuronal cells. These novel functions include mitochondrial metabolism and mitochondrial
signaling. This poses an important question: how are these multifunctional proteins regulated so single or
double functions are enabled at a particular time and location? Overall, my research program will lead to
discoveries on the regulation of mitochondrial trafficking and mitochondrial signaling pathways in non-neuronal
cells. Because mitochondria are key organelles that maintain cellular homeostasis, and mitochondrial
dysfunction are associated with neurological and metabolic diseases, cancer and aging, our advances have
the potential to inform how to exploit these mechanisms for practical applications in medicine.
Terms: <Adhesion Plaques><Aging><Ampullary Crest><Autoregulation><Cancers><Cell Body><Cell Communication and Signaling><Cell Locomotion><Cell Migration><Cell Movement><Cell Signaling><Cell-Matrix Adherens Junctions><Cells><Cellular Matrix><Cellular Migration><Cellular Motility><Cellular biology><Communication><Complex><Crista ampullaris><Cytoskeletal System><Cytoskeleton><Environment><Epithelial Cells><Focal Adhesions><Focal Contacts><Glia><Glial Cells><Goals><Homeostasis><Intracellular Communication and Signaling><Isoforms><Kolliker's reticulum><Location><Malignant Neoplasms><Malignant Tumor><Mammalian Cell><Medicine><Membrane><Metabolic Diseases><Metabolic Disorder><Mitochondria><Morphology><Movement><Nerve Cells><Nerve Unit><Nervous System Diseases><Nervous System Disorder><Neural Cell><Neurocyte><Neuroglia><Neuroglial Cells><Neurologic Disorders><Neurological Disorders><Neurons><Non-neuronal cell><Nonneuronal cell><Organelles><Pathway interactions><Physiological Homeostasis><Process><Protein Isoforms><Protein Trafficking><Proteins><Regulation><Research><Signal Pathway><Signal Transduction><Signal Transduction Systems><Signaling><Supporting Cell><Thesaurismosis><Time><application in practice><biological signal transduction><body movement><cell biology><cell motility><cell type><crista ampulla><cristae><fitness><intracellular skeleton><malignancy><membrane structure><metabolism disorder><mitochondrial><mitochondrial dysfunction><mitochondrial metabolism><neoplasm/cancer><nerve cement><neurological disease><neuronal><novel><pathway><practical application><programs><protein transport><spatiotemporal><trafficking>